Method for producing retinal tissue
By culturing retinal tissue in a medium that inhibits the differentiation of unnecessary cells and enhances photoreceptor progenitor cells using thyroid hormone signaling pathway substances, efficient synapse formation is achieved, addressing the challenge of retinal tissue transplantation.
Patent Information
- Application Number
- JP2023144857
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-09-14
- Filing Date
- 2023-09-06
- Publication Date
- 2025-09-24
- Estimated Expiration
- 2038-09-14
AI Technical Summary
Existing methods fail to produce retinal tissue suitable for transplantation that enables efficient synapse formation between patient-derived bipolar cells and transplanted photoreceptor cells, as bipolar cells, amacrine cells, and horizontal cells can hinder this process.
Culturing neural retinal tissue containing photoreceptor progenitor cells in a medium that inhibits the differentiation of ganglion cells, amacrine cells, and horizontal cells by using substances that act on the thyroid hormone signaling pathway, such as triiodothyronine, and optionally adding dorsalizing signaling substances like BMP4 or Cyclopamine-KAAD, to increase the proportion of photoreceptor progenitor cells.
The method produces retinal tissue with a high proportion of photoreceptor progenitor cells and reduced bipolar, amacrine, and horizontal cells, facilitating efficient neural circuit formation upon transplantation, useful for treating conditions like retinitis pigmentosa.
Smart Images

Figure 0007742999000005 
Figure 0007742999000006 
Figure 0007742999000007
Abstract
Description
[Technical Field]
[0001] The present invention relates to retinal tissue suitable for transplantation, which has a low proportion of bipolar cells, amacrine cells, ganglion cells, horizontal cells, etc., and a high proportion of photoreceptor precursor cells or photoreceptors, and a method for producing the same. [Background technology]
[0002] In diseases such as retinitis pigmentosa, in which visual acuity decline and visual field defects occur due to the degeneration and loss of photoreceptor cells, it is known that bipolar cells, which are the first to receive signals from photoreceptor cells, and other retinal cells remain in the retinal tissue for a certain period of time even after photoreceptor degeneration and loss (Non-Patent Document 1). Therefore, for regenerative medicine using transplants of retinal tissue containing photoreceptor cells or photoreceptor precursor cells to be effective, it is believed that the transplanted retinal tissue-derived photoreceptor cells or photoreceptor precursor cells should come into contact with the bipolar cells of the patient receiving the transplant (recipient) and form synapses, i.e., form a retinal neural circuit (Non-Patent Document 2). Thus, there is a strong need for the development of retinal tissue suitable for transplantation, which allows efficient synapse formation between the patient's retinal tissue-derived bipolar cells and the transplanted retinal tissue-derived photoreceptor cells, and a method for producing the same. On the other hand, it has been reported that when retinal cells collected from fetuses are differentiated into photoreceptor precursor cells, retinal tissue containing neural retinal precursor cells is dispersed, and then adherent culture is performed with the addition of retinoic acid and triiodothyronine (T3), a thyroid hormone (Non-Patent Document 3).It has also been reported that when rat retinal tissue is dispersed and then adherent cultured in the presence of retinoic acid, amacrine cells are reduced (Non-Patent Document 4). However, it was unknown whether thyroid hormones affect the differentiation of bipolar cells, ganglion cells, horizontal cells, etc. Furthermore, methods for adjusting the ratio of cells such as amacrine cells, bipolar cells, ganglion cells, and horizontal cells contained in retinal tissue with a three-dimensional structure induced from stem cells, and photoreceptor precursor cells and photoreceptors, to prepare retinal tissue suitable for transplantation were also unknown. [Prior art documents] [Non-patent literature]
[0003] [Non-Patent Document 1] Prog Retin Eye Res,17(2),175-205(1998) [Non-patent document 2] Proc Natl Acad Sci USA,113(1),E81-90(2016) [Non-patent document 3] Invest Ophthalmol Vis Sci,36(7),1280-1289(1995) [Non-patent document 4] Development 120(8),2091-2102 (1994) Summary of the Invention [Problem to be solved by the invention]
[0004] The object of the present invention is to provide retinal tissue suitable for transplantation, which enables efficient synapse formation between bipolar cells derived from the patient's retinal tissue and photoreceptor cells derived from the transplanted retinal tissue, and a method for producing the same. [Means for solving the problem]
[0005] In diseases such as retinitis pigmentosa, in which visual acuity decline and visual field defects occur due to the degeneration and loss of photoreceptor cells, it is known that bipolar cells, which are the first to receive signals from photoreceptor cells that degenerate and fall out, and other retinal cells remain in the retinal tissue for a certain period of time even after the degeneration and loss of photoreceptor cells (Non-Patent Document 1). Therefore, in order for regenerative medicine using transplants of retinal tissue containing photoreceptor progenitor cells to be effective, it is thought that photoreceptors derived from the transplanted retinal tissue should come into contact with the bipolar cells of the patient receiving the transplant (recipient) and form synapses via the synaptic terminals of the photoreceptor progenitor cells (or photoreceptor cells), i.e., form a retinal neural circuit (Non-Patent Document 2). It has also been reported that transplanted retinal tissue can survive at the transplant site and form a characteristic rosette-like structure, and that the basement membrane side of photoreceptor precursor cells (or photoreceptor cells) (i.e., the synaptic terminal side of the photoreceptor precursor cells or photoreceptor cells) can come into contact with the recipient's bipolar cells and form synapses (Non-Patent Document 2). In addition to bipolar cells, retinal tissue also contains amacrine cells, ganglion cells, and horizontal cells, which are located closer to the basement membrane of the neural retina than the layer (external nuclear layer) where photoreceptor precursor cells reside. Therefore, when the transplanted retinal tissue forms a rosette-like structure, the bipolar cells, amacrine cells, ganglion cells, and horizontal cells derived from the transplanted retinal tissue are positioned between the transplanted retinal tissue-derived photoreceptor precursor cells and the recipient's bipolar cells.
[0006] Therefore, the inventors considered that when transplanted retinal tissue-derived photoreceptors attempt to contact the recipient's bipolar cells, the bipolar cells, amacrine cells, ganglion cells, and horizontal cells derived from the transplanted retinal tissue may pose a spatial or physical obstacle. Furthermore, if bipolar cells are present in the neural retinal tissue to be transplanted, photoreceptors and bipolar cells may form circuits in the transplanted neural retinal tissue, which may prevent the transplanted retinal tissue-derived photoreceptors from efficiently forming neural circuits with the recipient's bipolar cells. For these reasons, the inventors considered that the smaller the proportion of bipolar cells, amacrine cells, ganglion cells, and horizontal cells in the neural retinal tissue to be transplanted, the better. That is, the inventors conducted extensive research, believing that reducing the proportion of these unnecessary cells in the retinal tissue used for transplantation would increase the probability that bipolar cells derived from the recipient's retinal tissue and photoreceptor cells derived from the transplanted retinal tissue would come into contact and form synapses. As a result, they discovered that by maturing retinal tissue containing neural retinal progenitor cells in which ganglion cells have not yet appeared or are in a differentiation stage immediately after their appearance in a medium containing a substance acting on the thyroid hormone signaling pathway, it is possible to reduce the number of cells in the retinal tissue that are unnecessary for synapse formation with the transplant site in the living body and increase the proportion of photoreceptor progenitor cells, thereby completing the present invention. Furthermore, by adding a dorsalizing signaling substance in addition to the substance acting on the thyroid hormone signaling pathway, it was possible to obtain neural retinal tissue with a higher proportion of photoreceptor progenitor cells among all cells in the neural retina and a higher proportion of cone photoreceptor progenitor cells among the photoreceptor progenitor cells.
[0007] That is, the present invention relates to: [1] A method for inhibiting differentiation of ganglion cells, amacrine cells, horizontal cells, and / or bipolar cells in neural retinal tissue containing photoreceptor progenitor cells and / or photoreceptor cells, comprising the step of culturing retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from the stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum in a medium containing a substance acting on the thyroid hormone signaling pathway; [2] The method according to [1] above, comprising culturing the cells in a medium containing a substance acting on the thyroid hormone signaling pathway until a differentiation stage at which rod photoreceptor precursor cells and / or bipolar cells appear; [3] The method according to [1] above, comprising culturing the cells in a medium containing a substance acting on the thyroid hormone signaling pathway until the differentiation stage in which the outer reticular membrane is formed; [4] The method according to [1] above, which comprises culturing the cells in a medium containing a substance acting on the thyroid hormone signaling pathway until the differentiation stage at which Muller cells appear; [5] The method for inhibiting differentiation according to any one of [1] to [4] above, characterized in that the generation of PAX6-negative / strongly CHX10-positive cells and PAX6-positive / CHX10-negative cells is inhibited; [6] The method according to any one of [1] to [5] above, wherein the neural retinal tissue is derived from stem cells; [7] The method according to [6] above, wherein the stem cells are pluripotent stem cells; [8] The method according to [6] above, wherein the stem cells are somatic stem cells obtained from adult retina; [9] The method according to any one of the above [1] to [8], wherein the substance acting on the thyroid hormone signaling pathway is triiodothyronine;
[10] The method according to [9] above, wherein the concentration of triiodothyronine is 1 to 100 nM;
[11] The method according to any one of the above [1] to
[10] , wherein the retinal tissue contains neural retinal progenitor cells and is in a differentiation stage immediately after the appearance of ganglion cells, and the content of neural retinal progenitor cells relative to the total cell number is 50% or more;
[12] The method according to any one of [1] to
[11] above, wherein the culture method is suspension culture;
[13] (1) A process of culturing retinal tissue at an early stage of development in a culture medium to obtain retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from the differentiation stage immediately after the appearance of ganglion cells to the differentiation stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum; (2) culturing the retinal tissue obtained in step (1) in a medium containing a substance acting on the thyroid hormone signaling pathway; a method for producing mature neural retinal tissue, or neural retinal tissue that can be matured into mature neural retinal tissue, comprising:
[14] The production method according to the above
[13] , wherein the medium in step (1) and / or the medium in at least a part of step (2) contains a dorsalization signaling substance at a concentration sufficient to suppress the expression of ventral markers;
[15] The method according to
[13] or
[14] above, wherein the medium in step (2) contains a dorsalization signaling substance at a concentration sufficient to suppress the expression of ventral markers;
[16] The method according to any one of
[13] to
[15] above, wherein the medium in step (1) contains a dorsalization signaling substance at a concentration sufficient to suppress the expression of ventral markers;
[17] Mature neural retinal tissue exhibits the following characteristics (i) to (iii): (i) the ratio of photoreceptor precursors and photoreceptors to the total cell number is 40% or more; (ii) the content of cone photoreceptor precursors and cone photoreceptors in the photoreceptor precursors and photoreceptors is 70% or more; and (iii) the ratio of bipolar cells, ganglion cells, amacrine cells, and horizontal cells to the total cell number is 30% or less; The method for producing a semiconductor device according to any one of the above
[13] to
[16] ,
[18] A neural retinal tissue capable of maturing into a mature neural retinal tissue has the following characteristics (i) to (ii): (i) the ratio of the number of photoreceptor precursor cells and photoreceptors (CRX-positive cells) to the total number of cells is 11% or more, preferably 20% or more; and (ii) the proportion of CRX-positive and TRβ2-positive cells to the total number of cells is 7% or more, preferably 10% or more; The method according to any one of the above
[13] to
[16] , characterized in that the culture is continued for 30 to 50 days, preferably 30 to 40 days, after the appearance of cone photoreceptor precursor cells is observed;
[19] A neural retinal tissue capable of maturing into a mature neural retinal tissue has the following characteristics (i) to (ii): (i) The ratio of photoreceptor precursor cells and photoreceptor cells (CRX-positive cells) to the total cell number is 25% or more; and (ii) photoreceptor precursor cells and / or photoreceptors (CRX-positive cells) are in contact with the apical surface, and at least two cells are present side by side along a line perpendicular to the tangent to the apical surface; The method according to any one of the above
[13] to
[16] , characterized in that the culture is continued for 55 to 80 days, preferably 55 to 70 days, after the appearance of cone photoreceptor precursor cells is observed;
[20] The step (2) comprises the following steps (2-1) and (2-2): (2-1) culturing the retinal tissue obtained in step (1) in a medium containing a substance acting on the thyroid hormone signaling pathway for 30 to 80 days after the appearance of cone photoreceptor progenitor cells is observed; and (2-2) culturing the retinal tissue obtained in step (2-1) in a medium that may contain a substance acting on the thyroid hormone signaling pathway for 60 to 120 days; The method for producing a product according to any one of the above
[13] to
[17] ,
[21] The method according to the above
[20] , wherein the medium used in step (2-2) contains a substance acting on the thyroid hormone signaling pathway and / or a dorsalizing signaling substance at a concentration sufficient to suppress the expression of ventral markers;
[22] The method according to any one of
[13] to
[21] above, wherein the dorsalization signaling substance is BMP4;
[23] The method according to
[22] above, wherein the concentration of BMP4 is 0.05 to 0.45 nM;
[24] The method according to any one of
[13] to
[21] above, wherein the dorsalization signaling substance is Cyclopamine-KAAD;
[25] The method according to
[24] above, wherein the concentration of Cyclopamine-KAAD is 0.01 to 100 μM;
[26] The method according to any one of
[20] to
[25] above, wherein the medium used in step (2-2) is a medium for maintaining a continuous epithelial structure;
[27] Neural retinal tissue containing ectopic CRX-positive cells, obtained by the method according to any one of
[13] to
[26] above;
[28] Containing cone photoreceptors and cone photoreceptor precursors, and having the following characteristics (1) to (3): (1) The ratio of the number of photoreceptor precursor cells and photoreceptor cells to the total number of cells is 11% or more, preferably 20% or more; (2) containing ectopic photoreceptor precursor cells and / or photoreceptors that appear on the basement membrane side of the neuroblastic layer; and (3) Neural retinal tissue cultured for 30–50 days after the initial appearance of cone photoreceptor precursors, which does not contain CRX-positive and NRL-positive photoreceptors or photoreceptor precursors; having neural retinal tissue;
[29] The neural retinal tissue according to
[28] above, wherein the ratio of the number of cone photoreceptor progenitor cells and the number of cone photoreceptor cells is 7% or more, preferably 10% or more of the total number of cells;
[30] The neural retinal tissue according to
[28] or
[29] above, wherein the neuroblastic layer is CHX10-positive and PAX6-positive, or Ki67-positive;
[31] The neural retinal tissue according to any one of
[28] to
[30] above, wherein the number of ectopic photoreceptor precursor cells and photoreceptors per a certain area on the basal membrane side of the neuroblastic layer (NBL) is 1 / 10 to 10 times the number of photoreceptor precursor cells and photoreceptors in the apical region including the NBL;
[32] The following characteristics (1) to (4): (1) The content of CRX-positive cells is 25% or more; (2) Photoreceptor precursor cells (CRX-positive cells) are adjacent to the apical surface, and at least two cells are present side by side along a line perpendicular to the tangent to the apical surface; (3) Cone photoreceptor precursor cells and / or cone photoreceptors, and bipolar cells, but not Muller cells; and (4) containing neural retinal progenitor cells at the stage of differentiation into rod photoreceptor progenitors and / or bipolar cells; neural retinal tissue with;
[33] Furthermore, the following characteristics (5): (5) The presence of ectopic photoreceptor precursor cells on the basal membrane side of the neuroblastic layer (NBL); The neural retinal tissue according to
[32] above,
[34] The following characteristics (1) to (5): (1) The stage of differentiation is such that Müller cells can be detected; (2) ganglion cell, amacrine cell, and horizontal cell content is 30% or less; (3) bipolar cell content is 10% or less; (4) The percentage of ganglion cells, amacrine cells, horizontal cells, and bipolar cells is 30% or less; and (5) The ratio of photoreceptor precursor cells and photoreceptor cells to the total cell number is 40% or more; mature neural retinal tissue comprising cone photoreceptor progenitor cells and / or cone photoreceptors;
[35] The neural retinal tissue according to
[34] above, in which an ectopic photoreceptor layer is formed in the cell layer on the basal membrane side;
[36] Mature neural retinal tissue according to
[34] or
[35] above, in which the content of PAX6-negative / strongly CHX10-positive cells and PAX6-positive / CHX10-negative cells is 30% or less;
[37] The mature neural retinal tissue according to any one of
[34] to
[36] above, wherein the ratio of the number of ectopic photoreceptor precursor cells and / or photoreceptors to the number of cells in the outer nuclear layer is 30% or more;
[38] The mature neural retinal tissue according to any one of
[34] to
[37] above, wherein the content of cone photoreceptor progenitors and cone photoreceptors among the photoreceptor progenitors and photoreceptors is 70% or more;
[39] A mature neural retinal tissue according to any one of
[34] to
[38] above, in which the proportion of CRX-positive cells to the total cell number is 40% or more;
[40] The neural retinal tissue according to any one of
[27] to
[33] above, or the mature neural retinal tissue according to any one of
[34] to
[39] above, wherein 50% or more of the layer structure of the neural retinal tissue forms a continuous epithelial structure;
[41] The neural retinal tissue according to
[40] above, wherein the diameter of the retinal tissue in the long axis direction is 0.6 mm or more;
[42] A neural retinal tissue that can be matured into the mature neural retinal tissue described in any one of
[34] to
[41] above by culturing;
[43] A pharmaceutical composition for transplantation containing the neural retinal tissue according to any one of
[27] to
[33] and
[40] to
[42] above, or the mature neural retinal tissue according to any one of
[34] to
[41] above;
[44] A method for treating or preventing a disease resulting in decreased vision or visual field loss, comprising transplanting the neural retinal tissue according to any one of
[27] to
[33] and
[40] to
[42] above, or the mature neural retinal tissue according to any one of
[34] to
[41] above, into an animal;
[45] Use of the neural retinal tissue described in any one of
[27] to
[33] and
[40] to
[42] above, or the mature neural retinal tissue described in any one of
[34] to
[41] above, as a reagent for evaluating toxicity and efficacy. [Effects of the Invention]
[0008] According to the present invention, it is possible to produce retinal tissue containing a low proportion of bipolar cells, amacrine cells, ganglion cells, horizontal cells, etc., and an increased proportion of photoreceptor progenitor cells. Furthermore, in one embodiment of the present invention, it is possible to increase the proportion of cone photoreceptor progenitor cells among the photoreceptor progenitor cells in the retinal tissue. Furthermore, in one embodiment of the present invention, photoreceptor progenitor cells or cone photoreceptor progenitor cells appear ectopically and are present on the basement membrane side of the retinal layer where bipolar cells, amacrine cells, ganglion cells, etc. are present. When transplanted, efficient neural circuit formation with patient-derived bipolar cells is expected. Thus, the retinal tissue of the present invention is useful for treating diseases such as retinitis pigmentosa, which cause visual acuity loss and visual field defects due to degeneration and loss of photoreceptor cells. [Brief explanation of the drawings]
[0009] [Figure 1] Figure 1 shows examples of images of cell aggregates containing retinal tissue prepared from human ES cells, taken with a fluorescent stereomicroscope on days 35 (a, b) and 42 (c, d) after the start of suspension culture. Images a and b are of aggregates containing retinal tissue excised with tweezers on day 35 after the start of suspension culture and taken with a fluorescent stereomicroscope, while images c and d are of cells in which CRX::Venus protein fluorescence was observed in the cell aggregates containing retinal tissue on day 42 after the start of suspension culture, confirming the appearance of photoreceptor precursor cells. [Figure 2]Figure 2 shows images (a–d) of cell aggregates containing retinal tissue generated from human ES cells, cultured for 69–74 days after the start of suspension culture, taken with a fluorescent stereomicroscope. Compared to the T3-free group (−T3; a), the T3-added group (+T3; b) exhibited stronger fluorescence from CRX::Venus, indicating an increase in CRX::Venus-positive cells. Furthermore, when dorsalizing signaling substances were added in addition to T3 (+T3+BMP; c, +T3+Cyclopamine-KAAD; d), an even greater increase in CRX::Venus-positive cells was observed compared to the T3-added group. In particular, the +T3+Cyclopamine-KAAD group exhibited an even greater increase in CRX::Venus-positive cells compared to the +T3+BMP group. It has been reported that cell aggregates containing retinal tissue cultured in vitro undergo differentiation in roughly the same order and period as human retinal development, and the CRX::Venus-positive cells that appear at this differentiation stage are cone photoreceptor precursor cells. In Figure 2, T3 was added to the culture medium at concentrations of 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 3] Figure 3 shows images (a–c) taken with a fluorescent stereomicroscope of cell aggregates containing retinal tissue prepared from human ES cells. The aggregates were cultured in the presence of 100 nM 9-cis retinoic acid from day 38 of suspension culture, when photoreceptor precursor cells began to appear, until day 74 of suspension culture. Compared to the T3-free group (-T3; a), the T3-added group (+T3; b) exhibited stronger CRX::Venus fluorescence, indicating an increase in CRX::Venus-positive cells. Furthermore, the addition of a dorsalizing signaling agent in addition to T3 (+T3+BMP; c) resulted in an even greater increase in CRX::Venus-positive cells compared to the T3-added group. It has been reported that in vitro cultured cell aggregates containing retinal tissue undergo differentiation in a sequence and time period roughly similar to that of human retinal development. The CRX::Venus-positive cells that emerge at this differentiation stage are cone photoreceptor precursor cells. In addition, in FIG. 3, T3 and BMP4 were added to the medium at 60 nM and 0.45 nM, respectively. [Figure 4] Figure 4 shows the results of analyzing CRX-positive cells and TRβ2-positive cells among CRX-positive cells. Cell aggregates containing retinal tissue prepared from human ES cells were cultured for approximately 71–75 days after the start of suspension culture. The collected cell aggregates were then sectioned and immunostained using anti-CRX and anti-TRβ2 antibodies and DAPI. Compared to the T3-free group (−T3; a, e, i), the T3-added group (+T3; b, f, j) showed an increase in CRX-positive cells and CRX-positive and TRβ2-positive cells. Furthermore, the addition of dorsalizing signaling agents in addition to T3 (+T3+BMP4; c, g, k; +T3+Cyclopamine-KAAD; d, h, l) further increased the number of CRX-positive cells and CRX-positive and TRβ2-positive cells. In particular, the T3 + Cyclopamine-KAAD group showed a greater increase in CRX-positive cells and CRX-positive and TRβ2-positive cells compared to the T3 + BMP4 group. Furthermore, these cells appeared ectopically not only on the apical side but also on the basal membrane side (neuroblastic layer and ganglion cell layer), with the proportions of these cells being approximately equal between the basal membrane side of the neuroblastic layer and other regions. At this differentiation stage, CRX-positive cells and CRX-positive and TRβ2-positive cells are photoreceptor precursor cells and cone photoreceptor precursor cells. In Figure 4, T3 was added to the medium at 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 5]Figure 5 shows an example of a cell aggregate containing retinal tissue prepared from human ES cells and cultured for 188–191 days in suspension culture, the differentiation stage at which Müller cells are observed. Sections were prepared from the recovered cell aggregate containing retinal tissue and immunostained using anti-PAX6, anti-CHX10, and DAPI. The abundance of amacrine, ganglion, or horizontal cells (PAX6-positive / CHX10-negative cells) and bipolar cells (PAX6-negative / strongly CHX10-positive cells) in the neural retina tissue was significantly reduced in the presence of T3 (+T3; b, h, n; +T3 + BMP; d, j, p; +T3 + Cyclopamine-KAAD; f, l, r) compared with the absence of T3 (−T3; a, g, m; +BMP; c, i, o; +Cyclopamine-KAAD; e, k, q). In FIG. 5, T3 was added to the medium at 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 6]Figure 6 shows the results of analyzing GFP-positive cells, i.e., RXR-γ-positive and NRL-negative cells (cone photoreceptor precursor cells) among CRX::Venus-positive cells, or NRL-positive cells (rod photoreceptor precursor cells) among CRX::Venus-positive cells (a-p). Cell aggregates containing retinal tissue prepared from human ES cells were cultured until 188 to 193 days after the initiation of suspension culture, which is the differentiation stage at which Müller cells are observed. The collected cell aggregates containing retinal tissue were then sectioned and immunostained by standard methods using an anti-GFP antibody (which detects the CRX::Venus protein), an anti-NRL antibody, an anti-RXR-γ antibody, and DAPI. Compared with the T3-free group (-T3; a, e, i, m), the T3-added groups (+T3; b, f, j, n; +T3+BMP; c, g, k, o; +T3+Cyclopamine-KAAD; d, h, l, p) show an increased proportion of CRX::Venus-positive photoreceptor progenitors and cone photoreceptor progenitors. In particular, when BMP4 was added as a dorsalizing signaling agent in addition to T3 (+T3+BMP; c, g, k, o), the number of cells adjacent to the basal membrane decreased compared with the T3-added group, resulting in a further increase in the proportion of photoreceptor progenitors and cone photoreceptor progenitors. Furthermore, rod photoreceptor progenitors were almost completely absent. In Figure 6, T3 was added to the medium at 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 7]Figure 7 shows the results of cell aggregates containing retinal tissue prepared from human ES cells cultured for approximately 70 days in suspension culture. The collected cell aggregates containing retinal tissue were sectioned and immunostained using standard methods with anti-CRX, anti-TRβ2, and DAPI. The number of CRX-positive cells in the retinal tissue and the number of TRβ2-positive cells among the CRX-positive cells were then measured using image analysis software (ImageJ). Compared to the control group (white bars), the control group (black bars) showed an increase in CRX-positive cells and CRX-positive and TRβ2-positive cells, i.e., photoreceptor precursor cells and cone photoreceptor precursor cells. Furthermore, the control group (black bars) showed an increase in CRX-positive cells and CRX-positive and TRβ2-positive cells, i.e., photoreceptor precursor cells and cone photoreceptor precursor cells, compared to the control group (white bars). Furthermore, the control group (black bars) showed an increase in CRX-positive cells and CRX-positive and TRβ2-positive cells, i.e., photoreceptor precursor cells and cone photoreceptor precursor cells, compared to the control group (white bars). In FIG. 7, T3 was added to the medium at 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 8]Figure 8 shows the results of culture of cell aggregates containing retinal tissue prepared from human ES cells up to approximately 190 days after the start of suspension culture, when Müller cells were detected. Sections were prepared from the recovered cell aggregates containing retinal tissue and immunostained using standard methods with anti-PAX6, anti-CHX10, and DAPI. The proportions of PAX6-positive / CHX10-negative cells, PAX6-negative / strongly CHX10-positive cells (i.e., amacrine, ganglion, or horizontal cells), and bipolar cells were measured using image analysis software (ImageJ). Compared to the control group (white bars), the proportions of amacrine, ganglion, or horizontal cells (PAX6-positive / CHX10-negative cells) and bipolar cells (PAX6-negative / strongly CHX10-positive cells) were reduced in the T3-treated group (black bars). Furthermore, in the group in which BMP4 was added in addition to T3 as a dorsalizing signaling substance, the proportion of bipolar cells (PAX6-negative / strongly CHX10-positive cells) increased slightly compared to when no dorsalizing signaling substance was added in addition to T3, but the proportion of amacrine cells, ganglion cells, or horizontal cells (PAX6-positive / CHX10-negative cells) decreased, and it can be seen that the combined proportion of bipolar cells (PAX6-negative / strongly CHX10-positive cells) and amacrine cells, ganglion cells, or horizontal cells (PAX6-positive / CHX10-negative cells) remained almost unchanged. On the other hand, in the group treated with T3 and Cyclopamine-KAAD as a dorsalizing signaling agent, the proportion of bipolar cells (PAX6-negative / strongly CHX10-positive cells) remained unchanged compared to the group without T3 and no dorsalizing signaling agent, but the proportion of amacrine cells, ganglion cells, or horizontal cells (PAX6-positive / CHX10-negative cells) decreased, and the combined proportion of bipolar cells (PAX6-negative / strongly CHX10-positive cells) and amacrine cells, ganglion cells, or horizontal cells (PAX6-positive / CHX10-negative cells) decreased. In Figure 8, T3 was added to the medium at 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 9]Figure 9 shows the results of culturing cell aggregates containing retinal tissue prepared from human ES cells until approximately 190 days after the initiation of suspension culture, when Müller cells were detected. Sections were prepared from the recovered cell aggregates containing retinal tissue and immunostained using standard methods with anti-GFP antibodies (detecting the CRX::Venus protein), anti-NRL antibodies, anti-RXR-γ antibodies, and DAPI. The proportions of GFP-positive cells, i.e., CRX::Venus-positive cells (photoreceptor precursors), RXR-γ-positive and NRL-negative cells (cone photoreceptor precursors) among CRX::Venus-positive cells, and NRL-positive cells (rod photoreceptor precursors) among CRX::Venus-positive cells were measured using image analysis software (ImageJ). Compared to the control group (white bars), the proportions of photoreceptor precursors and cone photoreceptor precursors were both increased in the T3-treated group (black bars). Furthermore, the groups treated with T3 and a dorsalizing signaling agent showed a greater increase in the proportion of both photoreceptor progenitors and cone photoreceptor progenitors than those treated without T3 and a dorsalizing signaling agent. In particular, the groups treated with BMP4 as a dorsalizing signaling agent in addition to T3 showed a lower proportion of rod photoreceptor progenitors and a higher proportion of cone photoreceptor progenitors than those treated without T3 and a dorsalizing signaling agent. On the other hand, the groups treated with Cyclopamine-KAAD as a dorsalizing signaling agent in addition to T3 showed no significant change in the proportion of rod photoreceptor progenitors compared to those treated without T3 and a dorsalizing signaling agent, but showed a much higher proportion of photoreceptor progenitors and cone photoreceptor progenitors. In Figure 9, T3 was added to the medium at 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 10]Figure 10 shows the results of sectioning retinal tissue-containing cell aggregates prepared from human ES cells, cultured for approximately 100–105 days after the start of suspension culture, and then immunostaining with anti-CRX and anti-Ki67 antibodies or DAPI staining for cell nuclei. The results were then observed under a fluorescence microscope. The percentage of CRX-positive cells in neural retinal tissue prepared under similar conditions was measured using image analysis software (ImageJ). Figure 10 shows that the number of CRX-positive photoreceptor precursor cells was significantly increased in the +T3 group (T3-treated group) compared with the -T3 group (T3-untreated group). In particular, the thickness of the photoreceptor precursor cell layer at the apical surface was approximately two to three times thicker in the +T3 group compared with the -T3 group. These results were also observed in the +T3 + BMP4 group (T3 plus BMP4) and the +T3 + Cyclopamine-KAAD group (T3 plus Cyclopamine-KAAD). Furthermore, even at approximately 100 days after the start of suspension culture, a layer containing proliferating Ki67-positive neural retinal progenitor cells, i.e., the neuroblastic layer, was observed. Compared to the retinal tissue in the -T3 group, the retinal tissue in the +T3 group contained numerous ectopic photoreceptor progenitor cells in areas other than the apical surface (photoreceptor layer and outer nuclear layer) where photoreceptor progenitors are naturally present in fetal retinal tissue, i.e., the neuroblastic layer where Ki67-positive neural retinal progenitor cells are present, and in the ganglion cell layer closer to the basal membrane. These results were also observed in the +T3 + Cyclopamine-KAAD group. On the other hand, although ectopic photoreceptor precursor cells were also observed in the +T3+BMP4 group, they were not as common in the +T3 group or the +T3+Cyclopamine-KAAD group, suggesting that the appearance of photoreceptor precursor cells at this differentiation stage is lower in the +T3 group than in the +T3+Cyclopamine-KAAD group.The graph also shows that the proportion of CRX-positive cells in the neural retina tissue increases in the -T3 group, +T3 group, +T3+BMP4 group, and +T3+Cyclopamine-KAAD group.These results indicate that thyroid hormone signaling pathway agonists increase photoreceptor progenitor cells in retinal tissues around day 100 after the start of suspension culture, and that the combination of thyroid hormone signaling pathway agonists and dorsalizing signaling agents can further increase the number of photoreceptor progenitor cells compared to the single administration of a thyroid hormone signaling pathway agonist. In Figure 10, T3 was added to the medium at 60 nM, BMP4 at 0.15 nM, and Cyclopamine-KAAD at 500 nM. [Figure 11-1] Figure 11-1 shows the results of observation and analysis of cell aggregates containing retinal tissue prepared from human ES cells cultured for approximately 69 days, approximately 104-105 days, and approximately 188-192 days after the start of suspension culture. Figure 11-1 shows examples of images taken with a fluorescent stereomicroscope of cell aggregates containing retinal tissue cultured for the indicated number of days after the start of suspension culture (e.g., day 69 is labeled d69). These images show that under all conditions and for all number of days, cell aggregates containing retinal tissue with a diameter of at least 2 mm were included. [Figure 11-2] Figure 11-2 shows the results of sectioning the cell aggregates containing retinal tissue prepared from human ES cells, which were cultured for approximately 188 days after the start of suspension culture. The sections were then immunostained with anti-GFP antibodies and observed under a fluorescence microscope. This figure shows that CRX::Venus-positive cells, i.e., photoreceptor precursor cells or photoreceptors, stained with anti-GFP antibodies are continuously and regularly aligned on the surface of the cell aggregates containing retinal tissue under all conditions. This means that these cell aggregates containing retinal tissue have a continuous epithelial structure without rosette-like structures, even at least 188 days after the start of suspension culture. Furthermore, this figure shows that numerous ectopic photoreceptor precursor cells are observed not only in the photoreceptor layer (outer nuclear layer) near the apical surface, but also in the retinal tissue. [Figure 11-3]Figure 11-3 shows a graph (left) showing the average diameter of cell aggregates containing retinal tissue, which were generated from human ES cells and cultured for approximately 70, 100, and 190 days after the start of suspension culture. Images were then taken using a fluorescence microscope, and the long axis diameters of the images were measured using analysis software. The graph on the left shows that the average diameter of cell aggregates containing retinal tissue was 1.1 mm or larger under all conditions and at all stages. The graph on the right shows that the majority of cell aggregates containing retinal tissue were 1.0 mm or larger, and cell aggregates containing retinal tissue 1.5 mm or larger were easily observed. Furthermore, the long axis diameter of the cell aggregates containing retinal tissue reached nearly 3.0 mm (2.93 mm). DETAILED DESCRIPTION OF THE INVENTION
[0010] 1.Definition As used herein, "stem cells" refer to undifferentiated cells that have the ability to proliferate (particularly the ability to self-renew) and maintain the same differentiation potential even after cell division. Stem cells include subpopulations such as pluripotent stem cells, multipotent stem cells, and unipotent stem cells, depending on their differentiation potential. Pluripotent stem cells refer to stem cells that can be cultured in vitro and have the ability (pluripotency) to differentiate into all cell lineages belonging to the three germ layers (ectoderm, mesoderm, and endoderm). Multipotent stem cells refer to stem cells that have the ability to differentiate into multiple types of tissues and cells, although not all types. Unipotent stem cells refer to stem cells that have the ability to differentiate into specific tissues or cells.
[0011] Pluripotent stem cells can be induced from fertilized eggs, cloned embryos, germline stem cells, tissue stem cells, etc. Examples of pluripotent stem cells include embryonic stem cells (ES cells), embryonic germ cells (EG cells), and induced pluripotent stem cells (iPS cells). Embryonic stem cells were first established in 1981 and have been used to generate knockout mice since 1989. Human embryonic stem cells were established in 1998 and are now being used in regenerative medicine. ES cells can be produced by culturing inner cell masses on feeder cells or in a medium containing LIF. Methods for producing ES cells are described in, for example, WO96 / 22362, WO02 / 101057, US5,843,780, US6,200,806, and US6,280,718. Embryonic stem cells are available from designated institutions and are also commercially available. For example, human embryonic stem cells KhES-1, KhES-2, and KhES-3 are available from the Institute for Frontier Medical Sciences, Kyoto University. EB5 cells, which are mouse embryonic stem cells, are available from RIKEN, and the D3 strain is available from ATCC. Nuclear transfer ES cells (ntES cells), a type of ES cell, can be established from cloned embryos created by transplanting the nucleus of a somatic cell into an egg from which the cell line has been removed.
[0012] In the present invention, "induced pluripotent stem cells" (also referred to as iPS cells) refer to cells in which pluripotency has been induced by reprogramming somatic cells using known methods. Specifically, iPS cells include cells in which pluripotency has been induced by reprogramming somatic cells differentiated into fibroblasts or peripheral blood mononuclear cells through the expression of any combination of multiple genes selected from a group of reprogramming genes including Oct3 / 4, Sox2, Klf4, Myc (c-Myc, N-Myc, L-Myc), Glis1, Nanog, Sall4, lin28, Esrrb, etc. Preferred combinations of reprogramming factors include (1) Oct3 / 4, Sox2, Klf4, and Myc (c-Myc or L-Myc), and (2) Oct3 / 4, Sox2, Klf4, Lin28, and L-Myc (Stem Cells, 2013;31:458-466). In 2006, Yamanaka et al. established induced pluripotent stem cells using mouse cells (Cell, 2006, 126(4) pp.663-676). In 2007, induced pluripotent stem cells were also established using human fibroblasts, and they possess the same pluripotency and self-renewal capabilities as embryonic stem cells (Cell, 2007, 131(5) pp.861-872; Science, 2007, 318(5858) pp.1917-1920; Nat. Biotechnol., 2008, 26(1) pp.101-106). Various improvements have been made since then to methods for inducing induced pluripotent stem cells (e.g., mouse iPS cells: Cell. 2006 Aug 25;126(4):663-76, human iPS cells: Cell. 2007 Nov 30;131(5):861-72). In addition to producing induced pluripotent stem cells by direct reprogramming through gene expression, induced pluripotent stem cells can also be induced from somatic cells by adding chemical compounds (Science, 2013, 341 pp. 651-654). It is also possible to obtain established induced pluripotent stem cells. For example, human induced pluripotent cell lines such as 201B7 cells, 201B7-Ff cells, 253G1 cells, 253G4 cells, 1201C1 cells, 1205D1 cells, 1210B2 cells, 1231A3 cells, Ff-I01 cells, and QHJI01 cells established at Kyoto University are available from Kyoto University.
[0013] Somatic cells used in producing induced pluripotent stem cells are not particularly limited, but include tissue-derived fibroblasts, blood cells (e.g., peripheral blood mononuclear cells and T cells), hepatocytes, pancreatic cells, intestinal epithelial cells, smooth muscle cells, etc. Fibroblasts include those derived from the dermis.
[0014] When producing induced pluripotent stem cells, if reprogramming is performed by expressing several types of genes, the means for expressing the genes is not particularly limited. Examples of such means include infection methods using viral vectors (e.g., retroviral vectors, lentiviral vectors, Sendai virus vectors, adenoviral vectors, and adeno-associated virus vectors), gene transfer methods using plasmid vectors (e.g., plasmid vectors and episomal vectors) (e.g., calcium phosphate method, lipofection method, retronectin method, and electroporation method), gene transfer methods using RNA vectors (e.g., calcium phosphate method, lipofection method, and electroporation method), and direct protein injection methods. The pluripotent stem cells used in the present invention are preferably ES cells or induced pluripotent stem cells, more preferably induced pluripotent stem cells. The pluripotent stem cells used in the present invention are preferably primate (e.g., human, monkey) pluripotent stem cells, and more preferably human pluripotent stem cells. Accordingly, the pluripotent stem cells used in the present invention are preferably human ES cells or human induced pluripotent stem cells (human iPS cells), and most preferably human induced pluripotent stem cells (human iPS cells). Stem cells present in the retina of an adult (for example, somatic stem cells) can also be collected and used as stem cells in the present invention.
[0015] Genetically modified pluripotent stem cells can be produced, for example, by using homologous recombination techniques. Examples of genes on chromosomes that can be modified include cell marker genes, histocompatibility antigen genes, and disease-related genes due to retinal cell damage. Target genes on chromosomes can be modified using methods described in "Manipulating the Mouse Embryo, A Laboratory Manual, Second Edition, Cold Spring Harbor Laboratory Press (1994)"; "Gene Targeting, A Practical Approach, IRL Press at Oxford University Press (1993)"; "Biomanual Series 8, Gene Targeting, Generation of Mutant Mice Using ES Cells," Yodosha (1995); and the like.
[0016] Specifically, for example, genomic DNA containing the target gene to be modified (e.g., a cell marker gene, a gene for a histocompatibility antigen, or a disease-related gene) is isolated, and a target vector for homologous recombination of the target gene is prepared using the isolated genomic DNA. The prepared target vector is introduced into stem cells, and cells in which homologous recombination has occurred between the target gene and the target vector are selected, thereby producing stem cells in which a gene on the chromosome has been modified.
[0017] Methods for isolating genomic DNA containing a target gene include known methods described in Molecular Cloning, A Laboratory Manual, Second Edition, Cold Spring Harbor Laboratory Press (1989) and Current Protocols in Molecular Biology, John Wiley & Sons (1987-1997). Genomic DNA containing a target gene can also be isolated using a genomic DNA library screening system (manufactured by Genome Systems) or Universal GenomeWalker Kits (manufactured by CLONTECH). Instead of genomic DNA, a polynucleotide encoding the target protein can also be used. The polynucleotide can be obtained by amplifying the corresponding polynucleotide by PCR.
[0018] Construction of a target vector for homologous recombination of a target gene and efficient selection of homologous recombinants can be performed according to the methods described in Gene Targeting, A Practical Approach, IRL Press at Oxford University Press (1993); Biomanual Series 8, Gene Targeting, Generation of Mutant Mice Using ES Cells, Yodosha (1995); etc. Target vectors can be either replacement or insertion types. Selection methods that can be used include positive selection, promoter selection, negative selection, and poly(A) selection. Methods for selecting the desired homologous recombinant from the selected cell lines include Southern hybridization and PCR for genomic DNA.
[0019] In the present invention, "suspension culture" or "suspension culture method" refers to culturing cells or cell aggregates while maintaining a state in which they exist suspended in a culture medium, and to the method of culturing. In other words, suspension culture is performed under conditions that do not allow cells or cell aggregates to adhere to cultureware, etc., and culture performed under conditions that allow cells or cell aggregates to adhere to cultureware, etc. (adhesion culture or adhesion culture method) is not included in the category of suspension culture. In this case, cell adhesion refers to the formation of strong cell-substratum junctions between cells or cell aggregates and the cultureware, etc. More specifically, suspension culture refers to culture under conditions that do not allow strong cell-substratum junctions to form between cells or cell aggregates and the cultureware, etc., and "adhesion culture" refers to culture under conditions that allow strong cell-substratum junctions to form between cells or cell aggregates and the cultureware, etc. In cell aggregates cultured in suspension, cells adhere to each other through plane attachment. In cell aggregates cultured in suspension, cell-substrate bonds are rarely formed between the aggregate and the cultureware, or even if they are formed, their contribution is small. In some embodiments, in cell aggregates cultured in suspension, endogenous cell-substrate bonds are present within the aggregate, but cell-substrate bonds are rarely formed between the aggregate and the cultureware, or even if they are formed, their contribution is small. From this perspective, one form of "suspension culture" includes a culture method in which cell aggregates are fixed to a thin, needle-shaped device that serves as a scaffold for the cell aggregate and cultured in the device filled with culture medium. Examples of such a culture method include a method using the bio 3D printer "Regenova (registered trademark)" manufactured by Cyfuse Co., Ltd., which was presented at the 136th Annual Meeting of the Pharmaceutical Society of Japan, 29AB-pm009. Surface adhesion between cells refers to surface adhesion between cells. More specifically, surface adhesion between cells refers to the proportion of the surface area of a cell that is adhered to the surface of another cell, for example, 1% or more, preferably 3% or more, and more preferably 5% or more. Cell surfaces can be observed by staining with a membrane-staining reagent (e.g., DiI) or immunostaining for cell adhesion factors (e.g., E-cadherin or N-cadherin).
[0020] The culture vessel used for suspension culture is not particularly limited as long as it is capable of "suspension culture," and those skilled in the art can appropriately determine the appropriate vessel. Examples of such culture vessels include flasks, tissue culture flasks, dishes, Petri dishes, tissue culture dishes, multi-dishes, microplates, microwell plates, micropores, multi-plates, multi-well plates, chamber slides, Petri dishes, tubes, trays, culture bags, spinner flasks, and roller bottles. These culture vessels are preferably non-cell-adhesive to enable suspension culture. Examples of non-cell-adhesive culture vessels that can be used include those whose surfaces have not been artificially treated to improve cell adhesion (e.g., coating with basement membrane preparations, extracellular matrices such as laminin, entactin, collagen, and gelatin, or polymers such as polylysine and polyornithine, or surface treatments such as positive charge treatment). Non-cell-adhesive culture vessels can be used that have a surface artificially treated to reduce cell adhesion (e.g., ultrahydrophilic treatment with MPC polymer, low protein adsorption treatment, etc.). Rotational culture can also be performed using spinner flasks or roller bottles. The culture surface of the culture vessel can be flat or uneven. On the other hand, culture vessels used for adhesion culture include those whose surfaces have been artificially treated to improve adhesion to cells (for example, coating with extracellular matrices such as basement membrane preparations, laminin, entactin, collagen, gelatin, Matrigel, Synthemax, vitronectin, etc., or polymers such as polylysine and polyornithine, or surface treatments such as positive charge treatment).
[0021] As used herein, the term "aggregate" (cell mass or cell aggregate) of cells is not particularly limited as long as it is a mass formed by adhesion of multiple cells to each other. It may be a mass formed by the aggregation of cells dispersed in a medium, a colony formed by cell culture, or a cell mass newly formed by budding from another cell mass. Cell aggregates also include embryoid bodies, spheres, and spheroids. Preferably, in a cell aggregate, cells are adhered to each other via a surface. In some embodiments, cells may form cell-cell junctions or cell adhesions, such as adherens junctions, in part or all of the aggregate. Aggregates also include cell populations that are derived from the cell aggregates.
[0022] "Uniform aggregates" means that when multiple aggregates are cultured, the size of each aggregate is constant, and when the size of an aggregate is evaluated by the length of its maximum diameter, uniform aggregates mean that the variance of the maximum diameter is small. More specifically, this means that 75% or more of the aggregates in the entire population of aggregates are within the mean value of the maximum diameter of the population of aggregates ±100%, preferably within the mean value ±50%, and more preferably within the mean value ±20%.
[0023] "Forming uniform aggregates" refers to the formation of uniformly sized cell aggregates by "rapidly aggregating a certain number of dispersed cells" when cells are aggregated to form cell aggregates and cultured in suspension. In other words, if pluripotent stem cells are rapidly aggregated to form pluripotent stem cell aggregates, epithelial-like structures can be reproducibly formed in cells induced to differentiate from the formed aggregates. Specifically, pluripotent stem cells can be rapidly aggregated in serum-free medium to form cell aggregates with epithelial-like structures (SFEBq method (Serum-free Floating Culture of Embryoid Body-like Aggregates with Quick Reaggregation)). An experimental procedure for forming the aggregates is, for example, a small well plate (e.g., a well with a bottom area of 0.1 to 2.0 cm2 in terms of a flat bottom). 2 Examples of such methods include confining cells in a small space using a plate (such as a 96-well plate) or micropores, and aggregating cells by centrifuging them for a short period of time in a small centrifuge tube.
[0024] A small plate with wells, such as a 24-well plate (with an area of 1.88 cm2 in flat-bottom equivalent) 2 48-well plate (approximately 1.0 cm2 in flat-bottom equivalent area) 2 96-well plate (area equivalent to a flat bottom is 0.35 cm 2Examples of suitable well plates include a 384-well plate (approximately 6-8 mm in inner diameter) and a 96-well plate. A preferred example is a 96-well plate. The shape of the bottom of a small well plate when viewed from above can be polygonal, rectangular, elliptical, or circular, with a perfect circle being preferred. The shape of the bottom of a small well plate when viewed from the side is preferably a structure with a high outer periphery and a low inner recess, such as a U-bottom, V-bottom, or μ-bottom, with a U-bottom or V-bottom being preferred, and a V-bottom being most preferred. Cell culture dishes (e.g., 60-150 mm dishes, culture flasks) with an uneven or recessed bottom (e.g., EZSPHERE (Asahi Technoglass)) may also be used as small well plates. The bottom of a small well plate is preferably a non-cell-adhesive bottom, preferably a bottom coated with the aforementioned non-cell-adhesive material.
[0025] "Dispersion" refers to separating cells or tissues into small cell fragments (2 to 100 cells, preferably 50 cells or less) or single cells by a dispersion treatment such as enzymatic or physical treatment. A certain number of dispersed cells refers to a collection of a certain number of cell fragments or single cells. Methods for dispersing pluripotent stem cells include, for example, mechanical dispersion treatment, cell dispersion liquid treatment, and treatment with the addition of a cell protective agent. These treatments may also be performed in combination. Preferably, cell dispersion liquid treatment is performed first, followed by mechanical dispersion treatment. Methods for mechanical dispersion treatment include pipetting or scraping with a scraper.
[0026] As used herein, the term "tissue" refers to a structure of a cell population in which multiple types of cells with different morphologies and properties are arranged three-dimensionally in a specific pattern. As used herein, "retinal tissue" refers to a tissue in which at least multiple types of retinal cells, such as photoreceptors, horizontal cells, bipolar cells, amacrine cells, ganglion cells, retinal pigment epithelial cells, and Muller cells, which constitute each retinal layer in a living retina, and their precursor cells, neural retinal progenitor cells or retinal progenitor cells, are arranged three-dimensionally in layers (however, in the case of retinal progenitor cells, other retinal cells may not be included). The retinal layer to which each cell belongs can be determined by known methods, such as the presence or absence of expression of a cell marker or the degree of expression. As used herein, "retinal tissue" includes retinal tissue obtained by inducing differentiation of pluripotent stem cells, or retinal tissue derived from a living body. Specifically, the term "retinal tissue" includes cell aggregates or parts thereof having epithelial tissue containing retinal progenitor cells and / or neural retinal progenitor cells formed on the surface of aggregates formed from pluripotent stem cells, which are obtained by suspension culture of the aggregates under appropriate differentiation-inducing conditions. As used herein, the term "cell aggregate containing retinal tissue" is not particularly limited as long as it is a cell aggregate containing the retinal tissue.
[0027] As used herein, the term "retinal layer" refers to any layer constituting the retina, specifically the retinal pigment epithelium layer and the neural retinal layer, which include the outer limiting membrane, photoreceptor layer (external nuclear layer), outer plexiform layer, inner nuclear layer, inner plexiform layer, ganglion cell layer, nerve fiber layer, and internal limiting membrane. In addition, in retinal tissue at an intermediate stage between "retinal tissue at an early stage of development" (described below) and mature retinal tissue, the neural retinal layer includes a layer containing neural retinal progenitor cells, called the neuroblastic layer in the neural retinal tissue. As used herein, the term "retinal progenitor cells" refers to precursor cells that can differentiate into any of the mature retinal cells that make up retinal tissue, including photoreceptors, horizontal cells, bipolar cells, amacrine cells, ganglion cells, retinal pigment epithelial cells, and Muller cells. As used herein, the term "neural retinal progenitor cells" refers to cells that are destined to become the inner layer of the optic cup, and can be a precursor cell that can differentiate into any of the mature cells that make up the neural retinal layer (a retinal layer that contains retinal layer-specific neurons) that does not contain the retinal pigment epithelium.
[0028] Photoreceptor progenitor cells, horizontal cell progenitor cells, bipolar cell progenitor cells, amacrine cell progenitor cells, ganglion cell progenitor cells, and retinal pigment epithelial progenitor cells refer to progenitor cells that are committed to differentiating into photoreceptor cells, horizontal cells, bipolar cells, amacrine cells, ganglion cells, and retinal pigment epithelial cells, respectively. However, because the differentiation stages are continuous, it is difficult to clearly distinguish the boundary at which the differentiation stage transitions, for example, from photoreceptor progenitor cells to photoreceptor cells. Therefore, in this specification, references to photoreceptor cells, horizontal cells, bipolar cells, amacrine cells, ganglion cells, retinal pigment epithelial cells, etc. may also include the respective progenitor cells. Conversely, references to photoreceptor progenitor cells, horizontal cell progenitor cells, bipolar cell progenitor cells, amacrine cell progenitor cells, ganglion cell progenitor cells, and retinal pigment epithelial cell progenitor cells may also include the respective differentiated cells, i.e., photoreceptor cells, horizontal cells, bipolar cells, amacrine cells, ganglion cells, and retinal pigment epithelial cells, etc.
[0029] As used herein, "retinal layer-specific neurons" refer to neurons that constitute a retinal layer and are specific to that layer. Examples of retinal layer-specific neurons include bipolar cells, ganglion cells, amacrine cells, horizontal cells, and photoreceptor cells. Examples of photoreceptor cells include rod photoreceptor cells and cone photoreceptor cells. Examples of cone photoreceptor cells include S-cone photoreceptor cells that express S-opsin and receive blue light, L-cone photoreceptor cells that express L-opsin and receive red light, and M-cone photoreceptor cells that express M-opsin and receive green light. As used herein, the term "retinal cells" is a concept that encompasses the above-mentioned retinal pigment epithelial cells, Muller cells, photoreceptors, horizontal cells, bipolar cells, amacrine cells, ganglion cells and their precursor cells, retinal progenitor cells, neural retinal progenitor cells, retinal layer-specific neurons and precursor cells of retinal layer-specific neurons, etc.
[0030] The cells that constitute the above-mentioned retinal tissue can be detected or identified using retinal cell markers that are either expressed or not expressed in each cell as indicators. Retinal cell markers include genes and proteins that are predominantly expressed in retinal cells, and examples for each cell type are listed below. Alternatively, genes and proteins that are predominantly expressed in cells other than retinal cells can be used as negative markers. Negative markers for retinal cells, such as retinal progenitor cells, neural retinal progenitor cells, and photoreceptor progenitor cells, include NKX2.1, which is expressed in hypothalamic neuron progenitor cells but not in retinal progenitor cells, and SOX1, which is expressed in the hypothalamic neuroepithelium but not in the retina. Markers for retinal progenitor cells include RX (also called RAX) and PAX6. Markers of neural retinal progenitor cells include RX, PAX6 and CHX10. Markers of retinal layer-specific neurons include CHX10, which is strongly expressed in bipolar cells; PKCα, Goα, VSX1, and L7, which are expressed in bipolar cells; TUJ1 and BRN3, which are expressed in ganglion cells; calretinin and HPC-1, which are expressed in amacrine cells; and calbindin and LIM1, which are expressed in horizontal cells. Markers expressed in photoreceptor progenitors and photoreceptors include CRX, recoverin, BLIMP1, and OTX2. Markers expressed in rod photoreceptors and rod photoreceptor progenitors include NRL and rhodopsin. Therefore, for example, rod photoreceptors and rod photoreceptor progenitors can be identified by using the fact that CRX-positive cells are NRL-positive as an indicator. Markers expressed in cone photoreceptors, cone photoreceptor progenitors, and ganglion cells include RXR-γ. Markers expressed in cone photoreceptors and cone photoreceptor progenitors include TRβ2 and TRβ1. For example, cone photoreceptor progenitors can be identified by the coexpression of TRβ2 and CRX, or TRβ1 and CRX as an indicator. Cone photoreceptor progenitors can also be identified by the coexpression of RXR-γ and CRX, but not NRL as an indicator. OC1 (ONECUT1 / HNF6) and OC2 (ONECUT2) are factors required for the differentiation of cone photoreceptor progenitors and are transiently expressed during differentiation. They are also expressed in some ganglion cells, horizontal cells, and some amacrine cells. For example, when cone photoreceptor progenitors or progenitors of cone photoreceptors and horizontal cells that express OC1 and OC2 differentiate into cone photoreceptor progenitors or cone photoreceptors and horizontal cells, the expression of OC1 and OC2 decreases in the cone photoreceptor progenitors or cone photoreceptors, whereas the expression of OC1 and OC2 increases in the horizontal cells. Therefore, the differentiation efficiency of cone photoreceptor progenitors can be determined by measuring the expression level or ratio. Furthermore, retinal tissue at a stage where cone photoreceptors and cone photoreceptor progenitors have been induced but before the appearance of rod photoreceptor progenitors can be confirmed by checking whether CRX-positive cells are NRL-negative and TRβ2-positive, or NRL-negative and RXR-γ-positive. OTX2 is a marker expressed not only in photoreceptor progenitors and photoreceptors but also in bipolar cells. However, if OTX2-positive cells in neural retinal tissue are CHX10-negative and NRL-negative, they can be used as a marker for cone photoreceptor progenitors and cone photoreceptors. On the other hand, among OTX2-positive cells in neural retinal tissue, NRL-positive cells can be identified as rod photoreceptor progenitors and rod photoreceptors. Furthermore, examples of a marker for S-cone photoreceptors include S-opsin, a marker for L-cone photoreceptors including L-opsin, and a marker for M-cone photoreceptors including M-opsin. Markers commonly expressed in horizontal cells, amacrine cells, and ganglion cells include PAX6. Other markers of retinal cells contained in retinal tissue include RPE65, MITF, and PAX6, which are expressed in retinal pigment epithelial cells, and CRABP and CRALBP, which are expressed in Muller cells.
[0031] Dorsal and ventral markers in retinal tissue refer to genes and proteins expressed in tissues corresponding to the dorsal and ventral sides of the retina, respectively. Dorsal markers include markers such as TBX5, TBX3, TBX2, COUP-TF II, CYP26A1, CYP26C1, and ALDH1A1, which are expressed in the dorsalized region of the neural retina. Of these, COUP-TF II can be classified as the "most dorsal marker," and ALDH1A1 is also a factor whose expression level increases with proximity to the region. Ventral markers include markers such as VAX2, COUP-TF I, and ALDH1A3, which are expressed in the ventral region of the neural retina.
[0032] As used herein, the term "serum-free medium" refers to a medium that does not contain unconditioned or unpurified serum. As used herein, media containing purified blood-derived components or animal tissue-derived components (e.g., growth factors) are also included in the term serum-free medium as long as they do not contain unconditioned or unpurified serum. As used herein, "serum-free conditions" refers to conditions that do not contain unconditioned or unpurified serum, specifically conditions that use a serum-free medium. Here, the serum-free medium may contain a serum substitute. Examples of serum substitutes include those that appropriately contain albumin, transferrin, fatty acids, collagen precursors, trace elements, 2-mercaptoethanol, 3'-thiolglycerol, or equivalents thereof. Such serum substitutes can be prepared, for example, by the method described in WO98 / 30679. Commercially available serum substitutes may also be used. Examples of such commercially available serum substitutes include Knockout TM Serum Replacement (manufactured by Life Technologies; hereinafter, also referred to as KSR), Chemically-defined Lipid concentrated (manufactured by Life Technologies), Glutamax TM (manufactured by Life Technologies), B27 (manufactured by Life Technologies), and N2 (manufactured by Life Technologies). Furthermore, the serum-free medium may contain fatty acids or lipids, amino acids (e.g., non-essential amino acids), vitamins, growth factors, cytokines, antioxidants, 2-mercaptoethanol, pyruvic acid, buffers, inorganic salts, etc. as appropriate. To avoid the complicated preparation process, a serum-free medium containing an appropriate amount (e.g., about 0.5% to about 30%, preferably about 1% to about 20%) of commercially available KSR (Life Technologies) may be used as the serum-free medium (e.g., a medium containing 10% KSR and 450 μM 1-monothioglycerol in a 1:1 mixture of F-12 medium and IMDM medium). Examples of a medium equivalent to KSR include the medium disclosed in JP-A-2001-508302.
[0033] As used herein, the term "serum medium" refers to a medium containing unconditioned or unpurified serum. The medium may contain fatty acids or lipids, amino acids (e.g., non-essential amino acids), vitamins, growth factors, cytokines, antioxidants, 2-mercaptoethanol, 1-monothioglycerol, pyruvic acid, buffers, inorganic salts, and the like. Furthermore, serum medium can be used in the process of maintaining retinal cells or retinal tissues produced by the present invention (Cell Stem Cell, 10(6), 771-775 (2012)).
[0034] The serum-free medium or serum-based medium may be supplemented with known growth factors, proteins, growth-promoting additives, chemical substances, etc. Examples of known growth factors and proteins include EGF, FGF, IGF, insulin, etc. Examples of growth-promoting additives include N2 supplement (N2, Invitrogen), B27 supplement (Invitrogen), etc. Examples of growth-promoting chemical substances include retinoids (e.g., retinoic acid or its derivatives), taurine, glutamine, etc. As used herein, "xeno-free" refers to conditions under which components derived from organisms different from the organism species of the cells to be cultured are excluded.
[0035] In the present invention, "a medium containing substance X" or "in the presence of substance X" means a medium to which exogenous substance X has been added, a medium containing exogenous substance X, or in the presence of exogenous substance X. In other words, when cells or tissues present in the medium endogenously express, secrete, or produce substance X, endogenous substance X is distinguished from exogenous substance X, and a medium that does not contain exogenous substance X is not considered to fall within the category of "a medium containing substance X," even if it contains endogenous substance X.
[0036] For example, "a medium containing a thyroid hormone signaling pathway agonist" refers to a medium supplemented with or containing an exogenous thyroid hormone signaling pathway agonist, "in the presence of a thyroid hormone signaling pathway agonist" refers to the presence of an exogenous thyroid hormone signaling pathway agonist, and "a medium free of a BMP signaling pathway inhibitor" refers to a medium free of or containing an exogenous BMP signaling pathway inhibitor.
[0037] As used herein, a substance acting on the thyroid hormone signaling pathway refers to a substance that can enhance signal transduction mediated by thyroid hormone, and is not particularly limited as long as it can enhance the thyroid hormone signaling pathway. Examples of substances acting on the thyroid hormone signaling pathway include triiodothyronine (hereinafter sometimes abbreviated as T3), thyroxine (hereinafter sometimes abbreviated as T4), and thyroid hormone receptor (preferably TRβ receptor) agonists.
[0038] Further, thyroid hormone receptor agonists well known to those skilled in the art include those described in International Publication Nos. 97 / 21993, 2004 / 066929, 2004 / 093799, 2000 / 039077, 2001 / 098256, 2003 / 018515, 2003 / 084915, 2002 / 094319, 2003 / 064369, and JP-A-2002-053564. Examples of the diphenylmethane derivatives include compounds such as diphenylmethane derivatives, diaryl ether derivatives, pyridazine derivatives, pyridine derivatives, and indole derivatives described in JP 2002-370978 A, JP 2000-256190 A, WO 2007 / 132475 A, WO 2007 / 009913 A, WO 2003 / 094845 A, WO 2002 / 051805 A, and WO 2010 / 122980 A.
[0039] 2. Preparation of Early Developmental Retinal Tissue As used herein, the term "early developmental stage" refers to a stage in which retinal progenitor cells have appeared but ganglion cells have not. At this stage, neural retinal progenitor cells may have appeared. That is, at this stage, the tissue contains RX (RAX)-positive and PAX6-positive cells (and may also contain CHX10-positive cells), but does not contain TUJ1-positive cells, BRN3-positive cells, or cells that are positive for at least two of the markers TUJ1, BRN3, and PAX6. "Retinal tissue at an early stage of development" includes retinal progenitor cells and / or neural retinal progenitor cells, i.e., cells that can differentiate into photoreceptors and ganglion cells, and is not particularly limited as long as it does not contain ganglion cells, and may also contain ciliary marginal structures. Retinal tissue in the early developmental stage corresponds to 22 days (d22) to 33 days (d33) after the start of suspension culture when produced in accordance with raw material production methods 5 to 7 described below, and corresponds to 12 days (d12) to 27 days (d27) after the start of suspension culture when produced in accordance with raw material production methods 1 to 4. "Retinal tissue at an early stage of development" can be identified by confirming the expression status of retinal progenitor cell markers, neural retinal progenitor cell markers, and ganglion cell markers. Retinal tissue in the early stages of development includes tissue that corresponds to the "optic vesicle" or the "earliest stage of the optic cup" retinal tissue that has undergone some differentiation from the optic vesicle and contains neural retinal progenitor cells that are RX-positive, PAX6-positive, and CHX10-positive but does not contain ganglion cells. Examples of retinal tissue at an early stage of development include retinal tissue at a differentiation stage that contains retinal progenitor cells or neural retinal progenitor cells induced to differentiate from pluripotent stem cells and that has not yet produced ganglion cells. Furthermore, retinal tissue at an early stage of development may contain cells that can differentiate into photoreceptors or neurons. There are no particular limitations on the method for producing retinal tissue at an early stage of development, and either suspension culture or adherent culture may be used. Specifically, examples include aggregates containing retinal progenitor cells or neural retinal progenitor cells, which are obtained by suspension culture of aggregates (cell masses) prepared from pluripotent stem cells such as ES cells or iPS cells using the SFEBq method (see Nat Commun. 6:6286 (2015)) in the presence of a differentiation inducer such as BMP4. Furthermore, retinal tissue in the early developmental stage may be cells derived from a cell population containing neuroepithelial cells, and the cell population may be obtained by inducing differentiation from pluripotent stem cells such as ES cells or iPS cells, or by collecting stem cells present in the adult retina and inducing their differentiation.
[0040] Specifically, retinal tissue in the early developmental stage is retinal tissue that contains retinal progenitor cells that are positive for retinal progenitor cell markers (preferably RX positive and PAX6 positive) or neural retinal progenitor cells that are positive for neural retinal progenitor cell markers (preferably CHX10 positive, PAX6 positive and RX positive) in an amount of 30% or more, preferably 50% or more, more preferably 80% or more, even more preferably 90% or more, and even more preferably 99% or more of the total number of cells contained in the retinal tissue, and in which the proportion of ganglion cells that are positive for ganglion cell markers (preferably BRN3 positive) is 40% or less of the total number of cells, preferably 20% or less, 10% or less, 5% or less, more preferably 1% or less, even more preferably 0.1% or less, and even more preferably 0.01% or less.
[0041] We describe a method for producing retinal tissue at the early developmental stage from pluripotent stem cells such as human iPS cells. Pluripotent stem cells such as human iPS cells can be obtained or produced by methods well known to those skilled in the art as described above, and can be subjected to maintenance culture and expansion culture. Maintenance culture and expansion culture of pluripotent stem cells can be performed in either suspension culture or adherent culture, but is preferably performed in adherent culture. Maintenance culture and expansion culture of pluripotent stem cells can be performed in the presence or absence of feeder cells (feeder-free), but is preferably performed in the absence of feeder cells.
[0042] Using cultured pluripotent stem cells, retinal tissue at an early stage of development can be produced by methods well known to those skilled in the art. Examples of such methods include those described in WO2013 / 077425 (& US2014 / 341864), WO2015 / 025967 (& US2016 / 251616), WO2016 / 063985, WO2016 / 063986, and WO2017 / 183732. Examples of such methods include those described in non-patent literature: Proc Natl Acad Sci US A. 111(23): 8518-8523(2014), Nat Commun. 5:4047(2014), Stem Cells. (2017):35(5), 1176-1188, etc.
[0043] 2-1. Raw material manufacturing method 1 A preferred embodiment of producing retinal tissue at an early developmental stage is a method described in WO2015 / 025967, which comprises the following steps: (1) a first step of forming cell aggregates by culturing pluripotent stem cells in suspension in a serum-free medium; (2) A second step in which the aggregates formed in the first step are cultured in suspension in a serum-free medium or serum-free medium containing a substance acting on the BMP signaling pathway but not a substance acting on the SHH signaling pathway, to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells. The aggregates containing retinal progenitor cells or neural retinal progenitor cells obtained by this method can be used as retinal tissue at an early stage of development, which serves as the starting material for the method of the present invention.
[0044] [Regarding the first step] The first step can be carried out in accordance with the method described in WO2015 / 025967 (& US2014 / 341864), in which pluripotent stem cells are cultured in suspension in a serum-free medium to form cell aggregates. The serum-free medium used in the first step is not particularly limited as long as it is as described above. For example, a serum-free medium containing neither a substance acting on the BMP signaling pathway nor a substance inhibiting the Wnt signaling pathway can be used. To avoid the complicated preparation process, it is preferable to use a serum-free medium supplemented with an appropriate amount of a commercially available serum substitute such as KSR (e.g., a medium containing a 1:1 mixture of IMDM and F-12 supplemented with 10% KSR, 450 μM 1-monothioglycerol, and 1x Chemically Defined Lipid Concentrate). As a serum substitute, bovine serum albumin (BSA) can also be added to the serum-free medium at a concentration of 0.1 mg / mL to 20 mg / mL, preferably 4 mg / mL to 6 mg / mL. Furthermore, the amount of KSR added to the serum-free medium is usually about 1% to about 20%, preferably about 2% to about 20%, for human ES cells or human iPS cells, for example. The culture conditions in the first step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is, for example, about 30° C. to about 40° C., preferably about 37° C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%. The concentration of pluripotent stem cells that can be used in the first step can be appropriately set so as to form pluripotent stem cell aggregates more uniformly and efficiently. For example, when human ES cells are cultured in suspension in a 96-well plate, the concentration is about 1 × 10 per well. 3 to approximately 1 × 10 5 cells, preferably about 3 x 10 3 to about 5 × 10 4 cells, more preferably about 5 x 10 3 ~Approx. 3×10 4 cells, even more preferably about 0.9 x 10 4 ~1.2×10 4 A solution prepared to form cells is added to the wells, and the plate is left to stand to allow aggregates to form. The suspension culture time required for forming aggregates can be determined appropriately depending on the pluripotent stem cells used, but it is desirable to keep the time as short as possible to form uniform aggregates (e.g., the SFEBq method). The process by which dispersed cells form cell aggregates can be divided into a cell aggregation process and a cell aggregation process in which the aggregated cells form cell aggregates. For example, in the case of human ES cells or human iPS cells, the time from seeding the dispersed cells (i.e., the start of suspension culture) to cell aggregation is preferably within about 24 hours, more preferably within about 12 hours. For example, in the case of human pluripotent stem cells (e.g., human iPS cells), the time from seeding the dispersed cells (i.e., the start of suspension culture) to forming cell aggregates is preferably within about 72 hours, more preferably within about 48 hours. This time until aggregate formation can be adjusted appropriately by adjusting the cell aggregation tool, centrifugation conditions, etc. The formation of cell aggregates can be determined based on the size and cell number of the aggregates, macroscopic morphology, microscopic morphology and its uniformity determined by tissue staining analysis, expression and uniformity of differentiated and undifferentiated markers, control of expression and synchronization of differentiation markers, and reproducibility of differentiation efficiency between aggregates.
[0045] [Regarding the second step] The second step involves suspension-culturing the aggregates formed in the first step in a serum-free medium or serum-free medium containing a substance acting on the BMP signaling pathway but not on the SHH signaling pathway, to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells as retinal tissue at an early stage of development. The medium used in the second step is, for example, a serum-free medium or serum-free medium supplemented with a substance acting on the BMP signaling pathway but not with a substance acting on the SHH signaling pathway, and does not require the addition of a basement membrane preparation. The serum-free medium or serum-free medium used is not particularly limited, as long as it is as described above. To avoid the complexity of the preparation process, it is preferable to use a serum-free medium supplemented with an appropriate amount of a commercially available serum substitute such as KSR (e.g., a medium containing a 1:1 mixture of IMDM and F-12 supplemented with 10% KSR, 450 μM 1-monothioglycerol, and 1x Chemically Defined Lipid Concentrate). BSA can also be added to the serum-free medium as a serum substitute at a concentration of 0.1 mg / mL to 20 mg / mL, preferably 4 mg / mL to 6 mg / mL. For human ES cells, the amount of KSR added to the serum-free medium is usually about 1% to about 20%, preferably about 2% to about 20%.
[0046] As long as the serum-free medium used in the first step does not contain a substance acting on the SHH signaling pathway, the serum-free medium used in the second step can be used as is or can be replaced with a new serum-free medium. When the serum-free medium used in the first step, which does not contain a substance acting on the BMP signaling pathway, is used as is in the second step, a substance acting on the BMP signaling pathway can be added to the medium. A medium that is "free of SHH signaling pathway active substances" includes a medium that is substantially free of SHH signaling pathway active substances, for example, a medium that does not contain SHH signaling pathway active substances at concentrations that adversely affect selective differentiation into retinal progenitor cells and retinal tissue. A medium "not containing an SHH signaling pathway active substance" also includes a medium to which an SHH signaling pathway active substance has not been added substantially, for example, a medium to which an SHH signaling pathway active substance has not been added at a concentration that would adversely affect selective differentiation into retinal progenitor cells and retinal tissue.
[0047] Examples of substances acting on the BMP signaling pathway used in the second step include BMP proteins such as BMP2, BMP4, and BMP7, GDF proteins such as GDF7, anti-BMP receptor antibodies, and BMP partial peptides. BMP2, BMP4, and BMP7 are available from R&D Systems, for example, and GDF7 is available from Wako Pure Chemical Industries, Ltd. A preferred example of a substance acting on the BMP signaling pathway is BMP4. The concentration of the substance acting on the BMP signaling pathway used in the second step may be any concentration capable of inducing differentiation of the cells contained in the aggregates obtained in the first step into retinal cells. For example, BMP4 is added to the medium to a concentration of about 0.01 nM to about 1 μM, preferably about 0.1 nM to about 100 nM, more preferably about 1 nM to about 10 nM, and even more preferably about 1.5 nM (55 ng / mL). When a substance acting on the BMP signaling pathway other than BMP4 is used, it is preferably used at a concentration that exerts the same BMP signaling pathway activation effect as the above-mentioned BMP4 concentration. The substance acting on the BMP signaling pathway may be added to the medium at least about 24 hours after the initiation of suspension culture in the first step, and may be added to the medium within several days (e.g., within 15 days) after the initiation of suspension culture in the first step. Preferably, the substance acting on the BMP signaling pathway is added to the medium on days 1 to 15, more preferably days 1 to 9, even more preferably days 2 to 9, even more preferably days 3 to 8, still more preferably days 3 to 6, and even more preferably day 6 after the initiation of suspension culture. After the substance acting on the BMP signaling pathway is added to the culture medium and the differentiation induction of the cells contained in the aggregate obtained in the first step into retinal cells is initiated, there is no need to further add a substance acting on the BMP signaling pathway to the culture medium, and the culture medium may be replaced with a serum-free medium or serum medium that does not contain a substance acting on the BMP signaling pathway. Alternatively, the concentration of the substance acting on the BMP signaling pathway in the medium may be varied during the second step. For example, the concentration of the substance acting on the BMP signaling pathway may be set within the above range at the start of the second step, and then gradually or stepwise reduced by 40 to 60% every 2 to 4 days. In a specific embodiment, on days 1 to 9, preferably days 2 to 9, more preferably days 3 to 8, and even more preferably days 3 to 6, after the initiation of suspension culture (i.e., after the initiation of the first step), the medium is partially or entirely replaced with a medium containing BMP4, the final concentration of BMP4 is adjusted to about 1 to 10 nM, and the cells are cultured in the presence of BMP4 for, for example, 1 to 16 days, preferably 2 to 9 days, and even more preferably 6 to 9 days. Culture for longer periods, specifically 20 or more days or 30 or more days, is also possible. That is, in the second step, the culture in the presence of a substance acting on the BMP signaling pathway is continued as appropriate for a period until the aggregates obtained in the first step are induced to differentiate into retinal tissue at an early stage of development. Specifically, retinal tissue at an early stage of development can be obtained 6 to 12 days after the addition of the substance acting on the BMP signaling pathway. In this case, to maintain the same BMP4 concentration, part or all of the medium can be replaced with a medium containing BMP4 once or twice, or, as described above, the BMP4 concentration can be reduced stepwise. In one aspect, after initiating culture in a medium containing a substance acting on the BMP signaling pathway, the concentration of the substance acting on the BMP signaling pathway in the medium can be gradually or stepwise reduced by 40 to 60% every 2 to 4 days by replacing the medium with a serum-free medium or serum medium that does not contain the substance acting on the BMP signaling pathway. The induction of differentiation into retinal tissue at an early stage of development can be confirmed, for example, by detecting the expression of a retinal progenitor cell marker or a neural retinal progenitor cell marker in cells in the tissue. The time when differentiation induction into retinal cells has begun can also be confirmed by detecting the expression of a retinal progenitor cell marker or a neural retinal progenitor cell marker in cells in the tissue. The aggregates formed in the first step using pluripotent stem cells in which a fluorescent reporter protein gene such as GFP has been knocked into the RX locus are cultured in suspension in the presence of a substance acting on the BMP signaling pathway at a concentration required for induction of differentiation into retinal cells, and detecting the fluorescence emitted from the expressed fluorescent reporter protein. One embodiment of the second step includes a step of suspension-culturing the aggregates formed in the first step in a serum-free medium or a serum-free medium containing a substance acting on the BMP signaling pathway at a concentration necessary to induce differentiation into retinal cells but not containing a substance acting on the SHH signaling pathway, until cells expressing retinal progenitor cell markers or neural retinal progenitor cell markers (e.g., RX, PAX6, CHX10) begin to appear, thereby obtaining aggregates containing retinal progenitor cells or neural retinal progenitor cells as retinal tissue at an early stage of development.
[0048] When a medium exchange operation is performed in the second step, examples include an operation in which new medium is added without discarding the original medium (medium addition operation), an operation in which about half of the original medium (about 40 to 80% of the volume of the original medium) is discarded and about half of the new medium (40 to 80% of the volume of the original medium) is added (half medium exchange operation), and an operation in which about the entire volume of the original medium (90% or more of the volume of the original medium) is discarded and about the entire volume of new medium (90% or more of the volume of the original medium) is added (full medium exchange operation). When adding a specific component (e.g., BMP4) at a certain point, for example, after calculating the final concentration, approximately half of the original medium may be discarded and approximately half of new medium containing the specific component at a concentration higher than the final concentration (specifically, 1.5 to 3.0 times the final concentration, for example, approximately twice the final concentration) may be added (half medium exchange operation, half medium exchange). If, at a certain point, the concentration of a particular component contained in the original medium is to be maintained, for example, about half of the original medium may be discarded and about half of a new medium containing the particular component at the same concentration as that contained in the original medium may be added. When components contained in the original medium are diluted to reduce their concentrations at a certain point, for example, the medium exchange procedure may be performed multiple times a day, preferably multiple times within an hour (e.g., 2 to 3 times).Furthermore, when components contained in the original medium are diluted to reduce their concentrations at a certain point, the cells or aggregates may be transferred to another culture vessel. The tools used for the medium replacement operation are not particularly limited, and examples include pipettors, micropipettes, multichannel micropipettes, repeating dispensers, etc. For example, when a 96-well plate is used as the culture vessel, a multichannel micropipette may be used. In a preferred embodiment, the concentration of the substance acting on the SHH signaling pathway in the medium used in the second step is 700 nM or less, preferably 300 nM or less, more preferably 10 nM or less, even more preferably 0.1 nM or less, and even more preferably does not contain any substance acting on the SHH signaling pathway, in terms of the SHH signaling-promoting activity of SAG. A medium "free of a substance acting on the SHH signaling pathway" also includes a medium that is substantially free of a substance acting on the SHH signaling pathway, for example, a medium that does not contain a substance acting on the SHH signaling pathway at a concentration that would adversely affect selective differentiation into retinal progenitor cells and retinal tissue. A medium "not supplemented with a substance acting on the SHH signaling pathway" also includes a medium that is substantially free of a substance acting on the SHH signaling pathway, for example, a medium that is not supplemented with a substance acting on the SHH signaling pathway at a concentration that would adversely affect selective differentiation into retinal progenitor cells and retinal tissue.
[0049] The culture conditions in the second step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is, for example, about 30° C. to about 40° C., preferably about 37° C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%. By such culturing, differentiation of the cells forming the aggregates obtained in the first step into retinal tissue at an early stage of development can be induced. Whether aggregates containing retinal progenitor cells or neural retinal progenitor cells have been obtained as retinal tissue at an early stage of development can be confirmed, for example, by detecting whether the aggregates contain cells expressing RX or PAX6, which are markers for retinal progenitor cells, or RX, PAX6, or CHX10, which are markers for neural retinal progenitor cells. One embodiment of the second step is to culture the aggregates formed in the first step in suspension in a serum-free medium or serum medium containing a substance acting on the BMP signaling pathway at a concentration necessary for inducing differentiation into retinal cells until cells expressing the RX gene begin to appear, thereby obtaining aggregates containing retinal progenitor cells or neural retinal progenitor cells. In one aspect, the culture in the second step is carried out until 20% or more (preferably 30% or more, 40% or more, 50% or more, 60% or more, or 80% or more) of the cells contained in the aggregates express RX.
[0050] The aggregates obtained by the above method can be used as retinal tissue in the early developmental stage, which serves as a starting material for the production method of the present invention, after being subjected to suspension culture in a serum-free medium or serum-free medium that does not contain any substance acting on the SHH signaling pathway, BMP signaling pathway, or Wnt signaling pathway. The suspension culture period is not particularly limited as long as it is long enough for ganglion cells to appear, but can be 1 to 50 days, preferably 1 to 15 days, and more preferably 1 to 7 days. The medium used in the suspension culture is, for example, a serum-free medium or a serum-free medium to which none of a substance acting on the SHH signaling pathway, a substance acting on the BMP signaling pathway, and a substance acting on the Wnt signaling pathway is added. The medium "containing no SHH signaling pathway active substance, no BMP signaling pathway active substance, and no Wnt signaling pathway active substance" also includes a medium that is substantially free of any of SHH signaling pathway active substances, BMP signaling pathway active substances, and Wnt signaling pathway active substances, for example, a medium that does not contain SHH signaling pathway active substances, BMP signaling pathway active substances, and Wnt signaling pathway active substances at concentrations that adversely affect selective differentiation into retinal tissue. The medium "to which none of an SHH signaling pathway active substance, a BMP signaling pathway active substance, and a Wnt signaling pathway active substance has been added" also includes a medium to which none of an SHH signaling pathway active substance, a BMP signaling pathway active substance, and a Wnt signaling pathway active substance has been added substantially, for example, a medium to which none of an SHH signaling pathway active substance, a BMP signaling pathway active substance, and a Wnt signaling pathway active substance has been added at concentrations that would adversely affect selective differentiation into retinal tissue.
[0051] The serum-free or serum-containing medium used for such a medium is not particularly limited as long as it is as described above. To avoid the complicated preparation process, it is preferable to use a serum-free medium supplemented with an appropriate amount of a commercially available serum substitute such as KSR (e.g., a medium containing 10% KSR, 450 μM 1-monothioglycerol, and 1x Chemically Defined Lipid Concentrate in a 1:1 mixture of IMDM and F-12). The serum-free medium can also be supplemented with bovine serum albumin (BSA) at 0.1 mg / mL to 20 mg / mL, preferably 4 mg / mL to 6 mg / mL. For human ES cells, the amount of KSR added to the serum-free medium is usually about 1% to about 20%, preferably about 2% to about 20%. To avoid the complicated preparation process for a serum-containing medium, it is more preferable to use a serum-free medium supplemented with an appropriate amount of commercially available serum (e.g., a medium containing serum and N2 supplement in a 1:1 mixture of DMEM and F-12). The amount of serum added to serum-containing media is usually about 1% to about 20%, and preferably about 2% to about 20%, in the case of human ES cells, for example. Taurine and the like may be added to any of the above media. Culture conditions such as culture temperature, CO2 concentration, and O2 concentration can be set appropriately. The culture temperature is, for example, about 30°C to about 40°C, preferably about 37°C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%. The O2 concentration is about 5% or higher, for example, about 20% to about 70%, preferably about 20% to about 60%, more preferably about 20% to about 40%, and particularly preferably about 20%.
[0052] As described above, the retinal tissue obtained by Raw Material Production Method 1 can be identified as being at an early developmental stage, i.e., an early differentiation stage in which retinal progenitor cells or neural retinal progenitor cells are present and ganglion cells have not yet appeared, by measuring the expression status of at least one of retinal progenitor cell markers such as RX and PAX6, neural retinal progenitor cell markers such as CHX10, RX, and PAX6, and ganglion cell markers such as BRN3. That is, it can be confirmed that the retinal tissue is at a differentiation stage in which cells expressing retinal progenitor cell markers and / or neural retinal progenitor cell markers account for 30% or more, preferably 50% or more, more preferably 80% or more, even more preferably 90% or more, and even more preferably 99% or more of all cells contained in the retinal tissue, and cells expressing ganglion cell markers account for 40% or less, preferably 20% or less, 10% or less, 5% or less, 1% or less, even more preferably 0.1% or less, and even more preferably 0.01% or less of all cells contained in the retinal tissue. At this time, the expression of ventral markers and / or the most dorsal markers (e.g., ALDH1A3 and / or ALDH1A1) is not an issue, as long as they are at a differentiation stage that can be suppressed or promoted by dorsalizing signaling substances.
[0053] 2-2. Raw material manufacturing method 2 A preferred embodiment of the method for producing retinal tissue at an early developmental stage is a method described in WO2016 / 063985 or WO2017 / 183732, which comprises the following steps: (1) a first step of culturing pluripotent stem cells in a medium containing 1) a TGFβ family signaling pathway inhibitor and / or an SHH signaling pathway activator, and 2) an undifferentiated state maintenance factor, in the absence of feeder cells; (2) a second step in which the cells obtained in the first step are cultured in suspension to form cell aggregates; and (3) a third step in which the aggregates obtained in the second step are cultured in suspension in the presence of a substance that acts on the BMP signaling pathway to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells. The aggregates containing retinal progenitor cells or neural retinal progenitor cells obtained by this method can be used as a starting material for the method of the present invention as retinal tissue at an early stage of development.
[0054] [Regarding the first step] The first step can be carried out in accordance with the method described in WO2016 / 063985. That is, in the first step, "in the absence of feeder cells" (hereinafter also referred to as "feeder-free") means conditions in which feeder cells are substantially not included (for example, the ratio of the number of feeder cells to the total number of cells is 3% or less). Preferably, the first step is carried out under conditions in which feeder cells are not included. The medium used in the first step is not particularly limited as long as it is a medium (feeder-free medium) that allows pluripotent stem cells to be cultured under feeder-free conditions to maintain the undifferentiated state, but preferably contains factors for maintaining the undifferentiated state in order to enable the culture to maintain the undifferentiated state. The undifferentiated state maintenance factor is not particularly limited as long as it is a substance that has the effect of suppressing the differentiation of pluripotent stem cells. Examples of factors commonly used by those skilled in the art for maintaining undifferentiated states include substances acting on the FGF signaling pathway, substances acting on the TGFβ family signaling pathway, and insulin. Specific examples of substances acting on the FGF signaling pathway include fibroblast growth factors (e.g., bFGF, FGF4, and FGF8). Furthermore, examples of substances acting on the TGFβ family signaling pathway include substances acting on the TGFβ signaling pathway and substances acting on the Nodal / Activin signaling pathway. Examples of substances acting on the TGFβ signaling pathway include TGFβ1 and TGFβ2. Examples of substances acting on the Nodal / Activin signaling pathway include Nodal, Activin A, and Activin B. When culturing human pluripotent stem cells (human ES cells, human iPS cells), the medium in the first step preferably contains bFGF as an undifferentiated state maintenance factor. The factors for maintaining undifferentiation state used in the present invention are not particularly limited as long as they are derived from mammals, but preferably are derived from the same mammalian species as the cells to be cultured. For example, human factors for maintaining undifferentiation state (e.g., bFGF, FGF4, FGF8, EGF, Nodal, Activin A, Activin B, TGFβ1, TGFβ2, etc.) are used to culture human pluripotent stem cells, and isolated factors for maintaining undifferentiation state can be added exogenously (or exogenously). Alternatively, factors for maintaining undifferentiation state may be added in advance to the medium used in the first step. The concentration of the undifferentiation maintenance factor in the medium used in the first step is a concentration that allows the pluripotent stem cells to be cultured in an undifferentiated state, and can be appropriately determined by those skilled in the art. For example, specifically, when bFGF is used as the undifferentiation maintenance factor in the absence of feeder cells, the concentration is usually about 4 ng to 500 ng / mL, preferably about 10 ng to 200 ng / mL, and more preferably about 30 ng to 150 ng / mL. Many synthetic media containing factors for maintaining undifferentiated states and usable as feeder-free media for culturing pluripotent stem cells have been developed and are commercially available, such as Essential 8 medium (Life Technologies). Essential 8 medium is a DMEM / F12 medium supplemented with the following additives: L-ascorbic acid-2-phosphate magnesium (64 mg / L), sodium selenium (14 μg / L), insulin (19.4 mg / L), NaHCO3 (543 mg / L), transferrin (10.7 mg / L), bFGF (100 ng / mL), and TGFβ family signaling pathway agents (TGFβ1 (2 ng / mL) or Nodal (100 ng / mL)) (Nature Methods, 8, 424-429 (2011)). Other commercially available feeder-free media include S-medium (manufactured by DS Pharma Biomedical), StemPro (manufactured by Life Technologies), hESF9 (Proc. Natl. Acad. Sci. USA. 2008 Sep 9;105(36):13409-14), mTeSR1 (manufactured by STEMCELL Technologies), mTeSR2 (manufactured by STEMCELL Technologies), TeSR-E8 (manufactured by STEMCELL Technologies), and StemFit (manufactured by Ajinomoto Co., Inc.). By using these media in the first step, the present invention can be carried out easily.
[0055] The culture of pluripotent stem cells in the first step may be carried out under either suspension culture or adherent culture conditions, but is preferably carried out by adherent culture. The culture vessel used for adherent culture is not particularly limited as long as it is capable of "adherent culture," but a cell-adhesive culture vessel is preferred. Examples of cell-adhesive culture vessels include those whose surfaces have been artificially treated to improve cell adhesion, specifically those whose interiors are coated with the aforementioned coating agent. Examples of coating agents include laminin [including laminin α5β1γ1 (hereinafter referred to as laminin 511), laminin α1β1γ1 (hereinafter referred to as laminin 111), and laminin fragments (such as laminin 511E8)], entactin, collagen, gelatin, vitronectin, Synthemax (Corning), and extracellular matrices such as Matrigel, as well as polymers such as polylysine and polyornithine. Alternatively, culture vessels with surface treatments such as positive charging can also be used. Laminin is preferred, and laminin 511E-8 is more preferred. Laminin 511E-8 can be purchased commercially (e.g., iMatrix-511, Nippi). The medium used in the first step contains a TGFβ family signaling pathway inhibitor and / or an SHH signaling pathway activator. A TGFβ family signaling pathway inhibitor refers to a substance that inhibits the TGFβ family signaling pathway, i.e., the signaling pathway transmitted by the Smad family, and specific examples include TGFβ signaling pathway inhibitors, Nodal / Activin signaling pathway inhibitors, and BMP signaling pathway inhibitors. The TGFβ signaling pathway inhibitor is not particularly limited as long as it inhibits the signaling pathway caused by TGFβ, and may be any of nucleic acids, proteins, and low-molecular-weight organic compounds. Examples of such substances include substances that act directly on TGFβ (e.g., proteins, antibodies, aptamers, etc.), substances that suppress the expression of genes encoding TGFβ (e.g., antisense oligonucleotides, siRNA, etc.), substances that inhibit the binding of TGFβ receptors to TGFβ, and substances that inhibit physiological activities caused by signal transduction by TGFβ receptors (e.g., TGFβ receptor inhibitors, Smad inhibitors, etc.). Proteins known to inhibit the TGFβ signaling pathway include Lefty. Compounds well known to those skilled in the art can be used as TGFβ signaling pathway inhibitors, and specific examples include SB431542 (4[4-(1,3-benzodioxol-5-yl)-5-(2-pyridinyl)-1H-imidazol-2-yl]benzamide), LY-364947 (4-[3-(2-pyridinyl)-1H-pyrazol-4-yl]-quinoline), SB-505124 (2-(5-benzo[1,3]dioxol-5-yl-2-tert-butyl-3H-imidazol-4-yl)-6-methylpyridine), A-83-01 (3-(6-methyl-2-pyridinyl)-N-phenyl-4-(4-quinolinyl)-1H-pyrazole-1-carbothioamide), and the like. The Nodal / Activin signaling pathway inhibitor is not particularly limited as long as it inhibits the signaling pathway caused by Nodal or Activin, and may be any of nucleic acids, proteins, and low-molecular-weight organic compounds. Examples of such substances include substances that act directly on Nodal or Activin (e.g., antibodies, aptamers, etc.), substances that suppress the expression of genes encoding Nodal or Activin (e.g., antisense oligonucleotides, siRNA, etc.), substances that inhibit the binding of Nodal / Activin receptors to Nodal / Activin, and substances that inhibit physiological activities resulting from signal transduction via Nodal / Activin receptors. Compounds well known to those skilled in the art can be used as Nodal / Activin signaling pathway inhibitors, including, for example, SB431542 and A-83-01. Proteins known as Nodal / Activin signaling pathway inhibitors (e.g., Lefty and Cerberus) may also be used. The Nodal / Activin signaling pathway inhibitor is preferably SB431542, A-83-01, or Lefty. The BMP signaling pathway inhibitor is not particularly limited as long as it inhibits the signaling pathway caused by BMP, and the above-mentioned substances can be used. Compounds well known to those skilled in the art can be used as the BMP signaling pathway inhibitor, and specific examples include LDN193189 (4-[6-(4-(piperazin-1-yl)phenyl)pyrazolo[1,5-a]pyrimidin-3-yl]quinoline) and Dorsomorphin. Proteins known as BMP signaling pathway inhibitors (Chordin, Noggin, etc.) may also be used. The BMP signaling pathway inhibitor is preferably LDN193189. The TGFβ family signaling pathway inhibitor is preferably Lefty, SB431542, A-83-01, or LDN193189. Multiple types of TGFβ family signaling pathway inhibitors with different sites of action may be used in combination. Combinations are expected to enhance the effect of improving aggregate quality. Examples include a combination of a TGFβ signaling pathway inhibitor and a BMP signaling pathway inhibitor, a combination of a TGFβ signaling pathway inhibitor and a Nodal / Activin signaling pathway inhibitor, and a combination of a BMP signaling pathway inhibitor and a Nodal / Activin signaling pathway inhibitor. Preferably, a TGFβ signaling pathway inhibitor is used in combination with a BMP signaling pathway inhibitor. A specific preferred combination is the combination of SB431542 and LDN193189. The SHH signaling pathway active substance is not particularly limited as long as it can enhance signal transduction mediated by SHH (meaning Sonic Hedgehog). Examples include proteins belonging to the Hedgehog family (e.g., SHH and Ihh), SHH receptors, SHH receptor agonists, Purmorphamine (PMA), and SAG (Smoothened Agonist; N-Methyl-N'-(3-pyridinylbenzyl)-N'-(3-chlorobenzo[b]thiophene-2-carbonyl)-1,4-diaminocyclohexane). A preferred example of the SHH signaling pathway active substance is SAG. The preferred SHH signaling pathway active substance is SHH protein (GenBank accession numbers: NM_000193, NP_000184), SAG, or PMA. A TGFβ family signaling pathway inhibitor and a substance acting on the SHH signaling pathway may be used in combination. Specific combinations include, for example, a combination of a TGFβ family signaling pathway inhibitor selected from the group consisting of Lefty, SB431542, A-83-01, and LDN193189 with a substance acting on the SHH signaling pathway selected from the group consisting of SHH protein, SAG, and PMA. When a TGFβ family signaling pathway inhibitor and a substance acting on the SHH signaling pathway are used in combination, cells may be cultured in a medium containing both a TGFβ family signaling pathway inhibitor and a substance acting on the SHH signaling pathway, or cells may be treated with either a TGFβ family signaling pathway inhibitor or a substance acting on the SHH signaling pathway, and then subsequently treated with either or both. The concentrations of the TGFβ family signaling pathway inhibitor and the SHH signaling pathway activator can be appropriately set within a range that achieves the above-mentioned effects. For example, SB431542 is typically used at a concentration of 0.1 μM to 200 μM, preferably 2 μM to 50 μM. A-83-01 is typically used at a concentration of 0.05 μM to 50 μM, preferably 0.5 μM to 5 μM. LDN193189 is typically used at a concentration of 1 nM to 2000 nM, preferably 10 nM to 300 nM. Lefty is typically used at a concentration of 5 ng / ml to 200 ng / ml, preferably 10 ng / ml to 50 ng / ml. SHH protein is typically used at a concentration of 20 ng / ml to 1000 ng / ml, preferably 50 ng / ml to 300 ng / ml. SAG is usually used at a concentration of 1 nM to 2000 nM, preferably 10 nM to 700 nM, more preferably 30 to 600 nM, and PMA is usually used at a concentration of 0.002 to 20 μM, preferably 0.02 μM to 2 μM. In one embodiment, the TGFβ family signaling pathway inhibitor can be used in an amount that has the same inhibitory activity on the TGFβ family signaling pathway as the aforementioned concentration of SB431542. In another embodiment, the SHH signaling pathway active substance can be used in a concentration that has the same SHH signaling pathway activation effect as the aforementioned concentration of SAG. The medium used in the first step may be a serum-containing medium or a serum-free medium, but is preferably a serum-free medium from the viewpoint of avoiding contamination with chemically undefined components. The medium used in the first step may be a medium whose components are chemically defined, from the viewpoint of avoiding contamination with chemically undefined components. The culture of pluripotent stem cells in the first step may be carried out under either suspension culture or adherent culture conditions, but is preferably carried out by adherent culture.
[0056] In the first step of culturing pluripotent stem cells under feeder-free conditions, an appropriate matrix may be used as a scaffold to provide the pluripotent stem cells with a scaffold instead of feeder cells. The pluripotent stem cells are cultured in an adherent manner in a cell container whose surface is coated with the scaffold matrix. Examples of matrices that can be used as scaffolds include laminin (Nat. Biotechnol. 28, 611-615 (2010)), laminin fragments (Nat. Commun. 3, 1236 (2012)), basement membrane preparations (Nat. Biotechnol. 19, 971-974 (2001)), gelatin, collagen, heparan sulfate proteoglycan, entactin, and vitronectin. Preferably, in the first step of culturing pluripotent stem cells under feeder-free conditions, the pluripotent stem cells are cultured in an adherent manner in a cell container whose surface is coated with isolated laminin 511 or the E8 fragment of laminin 511 (more preferably the E8 fragment of laminin 511).
[0057] The culture time of the pluripotent stem cells in the first step is not particularly limited as long as it is within a range that can achieve the effect of improving the quality of the aggregates formed in the second step, but is usually 0.5 to 144 hours. The culture time of the pluripotent stem cells in the first step is preferably 1 hour or more, 2 hours or more, 6 hours or more, 12 hours or more, 18 hours or more, or 24 hours or more. The culture time of the pluripotent stem cells in the first step is preferably 96 hours or less, or 72 hours or less. In one aspect, the culture time of the pluripotent stem cells in the first step is preferably 2 to 96 hours, more preferably 6 to 48 hours, even more preferably 12 to 48 hours, and even more preferably 18 to 28 hours (e.g., 24 hours). That is, the first step is started 0.5 to 144 hours (preferably 18 to 28 hours) before the start of the second step, and the second step is carried out immediately after the first step is completed. In a further aspect, the culture time range of the pluripotent stem cells in the first step is preferably 18 to 144 hours, 24 to 144 hours, 24 to 96 hours, or 24 to 72 hours. When cells are treated with either a substance inhibiting the TGFβ family signaling pathway or a substance acting on the SHH signaling pathway, and then subsequently treated with the other substance, the respective treatment times can be set within the above-mentioned culture time ranges. The culture conditions in the first step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is, for example, about 30° C. to about 40° C., preferably about 37° C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%.
[0058] In a preferred embodiment, the cells obtained in the first step are cells in which pluripotent-like properties are maintained, and pluripotent-like properties are maintained throughout the first step. Pluripotent-like properties refer to a state in which at least some of the traits common to pluripotent stem cells, including pluripotency, are maintained that are specific to pluripotent stem cells. Strict pluripotency is not required for pluripotent-like properties. Specifically, "pluripotent-like properties" include a state in which all or some of the markers that indicate the pluripotent state are expressed. Examples of markers for pluripotent-like properties include Oct3 / 4 positivity and alkaline phosphatase positivity. In one embodiment, cells in which pluripotent-like properties are maintained are Oct3 / 4 positivity. Even if the expression level of Nanog is lower than that of ES cells or iPS cells, the cells are still considered to be "cells exhibiting pluripotent-like properties." In one embodiment, the cells obtained by the first step are stem cells capable of differentiating into at least retinal tissue, retinal cells, retinal progenitor cells, and retinal layer-specific nerve cells.
[0059] In a preferred embodiment, human pluripotent stem cells (e.g., iPS cells) are cultured in an adherent manner in the absence of feeder cells in a serum-free medium containing a TGFβ family signaling pathway inhibitor and / or an SHH signaling pathway agonist, and bFGF. The adherent culture is preferably carried out in a cell container whose surface is coated with laminin-511 or the E8 fragment of laminin-511. The TGFβ family signaling pathway inhibitor is preferably a TGFβ signaling pathway inhibitor (e.g., SB431542, A-83-01, Lefty), a Nodal / Activin signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01), a BMP signaling pathway inhibitor (e.g., LDN193189, Chordin, Noggin), or a combination thereof (e.g., SB431542 and LDN193189). The TGFβ family signaling pathway inhibitor is more preferably Lefty, SB431542, A-83-01, or LDN193189, or a combination thereof (e.g., SB431542 and LDN193189). The substance acting on the SHH signaling pathway is preferably an SHH protein, SAG, or Purmorphamine (PMA), more preferably SAG. A TGFβ family signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01, LDN193189) may be used in combination with a substance acting on the SHH signaling pathway (e.g., an SHH protein, SAG, or PMA). The culture time is 0.5 to 144 hours (preferably 18 to 144 hours, 24 to 144 hours, 24 to 96 hours, or 24 to 72 hours (e.g., 18 to 28 hours)). For example, human pluripotent stem cells (e.g., human iPS cells) are maintained and cultured in a serum-free medium containing bFGF in the absence of feeder cells. The maintenance culture is preferably performed by adhesion culture. The adhesion culture is preferably performed in a cell container whose surface is coated with vitronectin, laminin 511, or the E8 fragment of laminin 511. Then, a TGFβ family signaling pathway inhibitor and / or an SHH signaling pathway agonist is added to the culture, and the culture is continued. The TGFβ family signaling pathway inhibitor is preferably a TGFβ signaling pathway inhibitor (e.g., SB431542, A-83-01, Lefty), a Nodal / Activin signaling pathway inhibitor (e.g., SB431542, A-83-01, Lefty), a BMP signaling pathway inhibitor (e.g., LDN193189), or a combination thereof (e.g., SB431542 and LDN193189). The TGFβ family signaling pathway inhibitor is more preferably Lefty, SB431542, A-83-01, or LDN193189, or a combination thereof (e.g., SB431542 and LDN193189). The SHH signaling pathway active substance is preferably SHH protein, SAG, or PMA. A TGFβ family signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01, LDN193189) may be used in combination with a substance active on the SHH signaling pathway (e.g., SHH protein, SAG, PMA). After addition, the culture is continued for 0.5 to 144 hours (preferably 18 to 144 hours, 24 to 144 hours, 24 to 96 hours, or 24 to 72 hours (e.g., 18 to 28 hours)).
[0060] [Regarding the second step] The second step, in which the cells obtained in the first step are cultured in suspension in a medium to form cell aggregates, will now be described. The medium used in the second step can be serum-containing or serum-free. To avoid contamination with chemically undefined components, serum-free medium is preferred in the present invention. For example, serum-free medium containing neither a substance acting on the BMP signaling pathway nor a substance inhibiting the Wnt signaling pathway can be used. To avoid the complexity of the preparation process, it is preferable to use a serum-free medium supplemented with an appropriate amount of a commercially available serum substitute such as KSR (e.g., a 1:1 mixture of IMDM and F-12 supplemented with 10% KSR, 450 μM 1-monothioglycerol, and 1× Chemically Defined Lipid Concentrate, or a medium containing GMEM supplemented with 5% to 20% KSR, NEAA, pyruvic acid, and 2-mercaptoethanol). For example, in the case of human pluripotent stem cells, the amount of KSR added to the serum-free medium is typically about 1% to about 30%, preferably about 2% to about 20%. When forming aggregates, first, dispersed cells are prepared by dispersing the cells obtained in the first step. The "dispersed cells" obtained by the dispersion step are, for example, those in which 70% or more are single cells and 30% or less are clumps of 2 to 50 cells. Dispersed cells are preferably those in which 80% or more are single cells and 20% or less are clumps of 2 to 50 cells. Dispersed cells are those in which there is almost no adhesion between cells (for example, surface adhesion). The dispersion procedure of the cells obtained in the first step may include the above-mentioned mechanical dispersion treatment, cell dispersion treatment, and cell protective agent treatment. These treatments may also be performed in combination. Preferably, the cell dispersion treatment is performed simultaneously with the cell protective agent treatment, followed by the mechanical dispersion treatment. Examples of cytoprotective agents used in the cytoprotective agent treatment include substances acting on the FGF signaling pathway (e.g., fibroblast growth factors such as bFGF, FGF4, and FGF8), heparin, substances acting on the IGF signaling pathway (e.g., insulin), serum, or serum substitutes. Furthermore, a Rho-associated coiled-coil kinase (ROCK) inhibitor or a myosin inhibitor may be added as a cytoprotective agent to suppress cell death of pluripotent stem cells (particularly human pluripotent stem cells) induced by dissociation. To suppress cell death and protect pluripotent stem cells (particularly human pluripotent stem cells) induced by dissociation, a ROCK inhibitor or a myosin inhibitor may be added from the start of the second-step culture. Examples of ROCK inhibitors include Y-27632, Fasudil (HA1077), and H-1152. Examples of myosin inhibitors include Blebbistatin. Examples of cell dispersion solutions used in cell dispersion treatment include solutions containing enzymes such as trypsin, collagenase, hyaluronidase, elastase, pronase, DNase, or papain, or chelating agents such as ethylenediaminetetraacetic acid. Commercially available cell dispersion solutions, such as TrypLE Select (Life Technologies) or TrypLE Express (Life Technologies), can also be used. Methods for mechanical dispersion include pipetting and scraping with a scraper. The dispersed cells are suspended in the above medium. The dispersed cell suspension is then seeded in the above-mentioned culture vessel, and the dispersed cells are cultured under non-adhesive conditions to aggregate multiple cells. In this case, the dispersed cells may be seeded in a relatively large culture vessel, such as a 10 cm dish, to simultaneously form multiple cell aggregates in a single culture vessel. However, this results in variations in the size of each aggregate. Therefore, for example, if a certain number of dispersed stem cells are placed in each well of a multi-well plate (U-bottom, V-bottom), such as a 96-well plate, and the plate is subjected to static culture, the cells rapidly aggregate to form a single aggregate in each well. By collecting these aggregates from multiple wells, a uniform population of aggregates can be obtained (e.g., using the SFEBq method). The cell concentration in the second step can be appropriately set so as to form cell aggregates more uniformly and efficiently. For example, when human cells (e.g., cells obtained from human iPS cells in the first step) are cultured in suspension in a 96-well plate, the cell concentration is about 1 x 10 per well. 3 From approximately 1 x 10 5 cells, preferably about 3 x 10 3 From about 5 x 10 4 cells, more preferably about 4 x 10 3 From about 2 x 10 4 cells, more preferably about 4 x 10 3 to approximately 1.6 x 10 4 cells, even more preferably about 8 x 10 3 to approximately 1.2 x 10 4 A solution prepared to form cells is added to the wells, and the plate is left to stand to allow aggregates to form. The culture conditions in the second step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is, for example, about 30° C. to about 40° C., preferably about 37° C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%.
[0061] When a medium exchange operation is performed in the second step, examples include an operation in which new medium is added without discarding the original medium (medium addition operation), an operation in which about half of the original medium (about 30 to 90% of the volume of the original medium, for example, about 40 to 60%) is discarded and about half of the new medium (about 30 to 90% of the volume of the original medium, for example, about 40 to 60%) is added (half medium exchange operation), and an operation in which about the entire volume of the original medium (90% or more of the volume of the original medium) is discarded and about the entire volume of new medium (90% or more of the volume of the original medium) is added (full medium exchange operation). The tools used for the medium replacement operation are not particularly limited, and examples include pipettors, micropipettes, multichannel micropipettes, repeating dispensers, etc. For example, when a 96-well plate is used as the culture vessel, a multichannel micropipette may be used. The suspension culture time required to form cell aggregates can be determined appropriately depending on the cells used so as to uniformly aggregate the cells, but it is desirable to keep the time as short as possible to form uniform cell aggregates. The process by which dispersed cells form cell aggregates can be divided into a cell aggregation process and a cell aggregate formation process in which the aggregated cells form cell aggregates. For example, in the case of human cells (e.g., stem cells obtained from human iPS cells in the first process) the time from seeding the dispersed cells (i.e., at the start of suspension culture) to cell aggregation is preferably within about 24 hours, more preferably within about 12 hours. For example, in the case of human pluripotent stem cells (e.g., human iPS cells), the time from seeding the dispersed cells (i.e., at the start of suspension culture) to cell aggregate formation is preferably within about 72 hours, more preferably within about 48 hours. This time until aggregate formation can be adjusted appropriately by adjusting the cell aggregation tool, centrifugation conditions, etc. The formation of cell aggregates and their uniformity can be determined based on the size and cell number of the aggregates, macroscopic morphology, microscopic morphology and uniformity determined by tissue staining analysis, expression and uniformity of differentiated and undifferentiated markers, control of expression of differentiation markers and their synchronization, and reproducibility of differentiation efficiency between aggregates. After the formation of aggregates, the culture of the aggregates may be continued as is. The time for suspension culture in the second step may usually be continued until the substance acting on the BMP signaling pathway is added, and specifically, the time may usually be 12 hours to 6 days, and preferably 12 hours to 3 days.
[0062] Examples of the medium used in the second step include a medium containing an SHH signaling pathway agonist (see WO 2016 / 063985), a medium containing a Wnt signaling pathway inhibitor, or a medium containing a Wnt signaling pathway inhibitor and an SHH signaling pathway agonist (see WO 2017 / 183732). In the first step, pluripotent stem cells are treated with a TGFβ family signaling pathway inhibitor and / or an SHH signaling pathway agonist. In the second step, the cells obtained in the first step are subjected to suspension culture in a medium (preferably serum-free medium) containing an SHH signaling pathway agonist and / or a Wnt signaling pathway inhibitor to form aggregates. This further improves the quality of the aggregates and enhances their ability to differentiate into retinal tissue. Using these high-quality aggregates, aggregates containing retinal progenitor cells or neural retinal progenitor cells can be induced with high efficiency. The substances acting on the SHH signaling pathway can be those described above. Preferably, the substance acting on the SHH signaling pathway is SHH protein, SAG, or PMA. The concentration of the substance acting on the SHH signaling pathway in the medium can be appropriately set within a range that achieves the above-mentioned effects. SAG is usually used at a concentration of 1 nM to 2000 nM, preferably 10 nM to 700 nM, and more preferably 30 nM to 600 nM. PMA is usually used at a concentration of 0.002 μM to 20 μM, preferably 0.02 μM to 2 μM. SHH protein is usually used at a concentration of 20 ng / ml to 1000 ng / mL, preferably 50 ng / mL to 300 ng / mL. When a substance acting on the SHH signaling pathway other than SHH protein, SAG, or PMA is used, it is desirable to use it at a concentration that exerts the same SHH signaling pathway activation effect as the above-mentioned concentration of SAG. The concentration of the substance acting on the SHH signaling pathway in the medium may be varied during the second step. For example, the concentration of the substance acting on the SHH signaling pathway may be set within the above range at the start of the second step, and then gradually or stepwise reduced by 40 to 60% every 2 to 4 days. The timing of adding the substance acting on the SHH signaling pathway to the medium is not particularly limited as long as the above-mentioned effects can be achieved, but the earlier the addition, the greater the effect. The substance acting on the SHH signaling pathway is added to the medium usually within 6 days, preferably within 3 days, more preferably within 1 day, and even more preferably at the time of the start of the second step.
[0063] The Wnt signaling pathway inhibitor is not particularly limited as long as it can inhibit signaling mediated by Wnt, and examples thereof include substances that act directly on Wnt or Wnt receptor (anti-Wnt neutralizing antibodies, anti-Wnt receptor neutralizing antibodies, etc.), substances that inhibit the expression of genes encoding Wnt or Wnt receptor (e.g., antisense oligonucleotides, siRNA, etc.), substances that inhibit the binding of Wnt receptor and Wnt (soluble Wnt receptor, dominant-negative Wnt receptor, Wnt antagonist, Dkk1, Cerberus protein, etc.), substances that inhibit physiological activity caused by signaling via Wnt receptor [CKI-7 (N-(2-aminoethyl)-5-chloroisoquinoline-8-sulfonamide), D4476 (4-[4-(2,3-dihydro-1,4-benzodioxin-6-yl)-5-(2-pyridinyl)-1H-imidazol-2-yl]benzamide), IWR-1-endo (IWR1e) (4-[(3aR,4S,7R,7aS)-1,3,3a,4,7,7a-hexahydro-1,3-dioxo-4,7-methano-2H-isoindol-2-yl]-N-8-quinolinyl-benzamide), and small molecular weight compounds such as IWP-2 (N-(6-methyl-2-benzothiazolyl)-2-[(3,4,6,7-tetrahydro-4-oxo-3-phenylthieno[3,2-d]pyrimidin-2-yl)thio]acetamide). IWR1e is preferably used as the Wnt signaling pathway inhibitor. The concentration of the Wnt signaling pathway inhibitor in the medium can be appropriately set within a range that achieves the above-mentioned effects. IWR1e is usually added to the medium to a concentration of about 0.1 μM to about 100 μM, preferably about 0.3 μM to about 30 μM, more preferably about 1 μM to about 10 μM, and even more preferably about 3 μM. When a Wnt signaling pathway inhibitor other than IWR-1-endo is used, it is desirably used at a concentration that exhibits Wnt signaling pathway inhibitory activity equivalent to the above-mentioned concentration of IWR-1-endo. The concentration of the Wnt signaling pathway inhibitor in the medium may be varied during the second step. For example, the concentration of the Wnt signaling pathway inhibitor may be set within the above range at the start of the second step, and then gradually or stepwise reduced by 40 to 60% every 2 to 4 days. The timing of adding the Wnt signaling pathway inhibitor to the medium is not particularly limited as long as the above-mentioned effects can be achieved, but the earlier the addition, the greater the effect. The Wnt signaling pathway inhibitor is usually added to the medium within 6 days, preferably within 3 days, more preferably within 1 day, more preferably within 12 hours, and even more preferably at the start of suspension culture in the second step. Specifically, for example, basal medium supplemented with the Wnt signaling pathway inhibitor can be added, or a partial or complete medium exchange with the basal medium can be performed. The period during which the cells obtained in the first step are exposed to the Wnt signaling pathway inhibitor in the second step is not particularly limited as long as the above-mentioned effects can be achieved, but preferably, the cells are added to the medium at the start of suspension culture in the second step and allowed to be exposed to the Wnt signaling pathway inhibitor until the end of the second step. Furthermore, the cells can be continuously exposed to the Wnt signaling pathway inhibitor even after the end of the second step (i.e., during the third step). In one embodiment, the Wnt signaling pathway inhibitor can be allowed to act on the cells continuously after the end of the second step (i.e., during the third step) until neuroepithelial tissue and / or neural tissue are formed.
[0064] In a preferred embodiment, the human cells obtained in the first step (e.g., cells obtained from human iPS cells in the first step) are subjected to suspension culture in a serum-free medium containing a substance acting on the SHH signaling pathway (e.g., SAG, PMA, SHH protein) and / or a substance inhibiting the Wnt signaling pathway (e.g., IWR1e) to form aggregates. The substance acting on the SHH signaling pathway is preferably contained in the medium from the start of suspension culture. A ROCK inhibitor (e.g., Y-27632) may also be added to the medium. The culture time is 12 hours to 6 days, preferably 12 hours to 3 days. The formed aggregates are preferably uniform aggregates.
[0065] For example, human cells obtained in the first step (e.g., cells obtained from human iPS cells in the first step) are collected, dispersed into single cells or a state close to single cells, and subjected to suspension culture in a serum-free medium containing an agent acting on the SHH signaling pathway (e.g., SAG, PMA) and / or an agent inhibiting the Wnt signaling pathway (e.g., IWR1e). The serum-free medium may also contain a ROCK inhibitor (e.g., Y-27632). A suspension of human stem cells (e.g., stem cells derived from human iPS cells) is seeded in the above-mentioned culture vessel, and the dispersed cells are cultured under non-adhesive conditions to form aggregates. The culture time is 12 hours to 6 days (preferably 12 hours to 3 days). The aggregates formed are preferably uniform. In this manner, by carrying out the second step, aggregates of the cells obtained in the first step or cells derived therefrom are formed. The aggregates obtained in the second step have higher quality than those obtained without treatment with a TGFβ family signaling pathway inhibitor and / or an SHH signaling pathway agonist in the first step. Specifically, a population of aggregates can be obtained that is round, has a smooth surface, is dense inside, and is enriched in aggregates that do not lose their shape. In one embodiment, when aggregates (e.g., 100 or more) are randomly selected on day 6 from the start of the second step, the proportion of aggregates that do not form cysts is, for example, 70% or more, preferably 80% or more. The aggregates obtained in the second step have the ability to differentiate into retinal tissue. In a preferred embodiment, in the first step, pluripotent stem cells are treated with a TGFβ signaling pathway inhibitor, and in the second step, the cells obtained in the first step are suspension cultured in a medium containing an SHH signaling pathway agonist (e.g., SAG, PMA, SHH protein) and / or a Wnt signaling pathway inhibitor (e.g., IWR1e). Preferably, SB431542 or A-83-01 can be used as the TGFβ signaling pathway inhibitor.
[0066] In a preferred embodiment, in the first step, pluripotent stem cells are treated with a BMP signaling pathway inhibitor, and in the second step, the cells obtained in the first step are suspension cultured in a medium that does not contain an SHH signaling pathway agonist (e.g., SAG, PMA, SHH protein). Preferably, LDN193189 can be used as the BMP signaling pathway inhibitor. In a preferred embodiment, in the first step, pluripotent stem cells (e.g., human pluripotent stem cells) are treated with a TGFβ family signaling pathway inhibitor (e.g., a TGFβ signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01), a Nodal / Activin signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01), a BMP signaling pathway inhibitor (e.g., LDN193189), or a combination thereof (e.g., SB431542 and LDN193189), etc. ); or a combination of a TGFβ family signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01, LDN193189) and a substance active in the SHH signaling pathway (e.g., SHH protein, SAG, PMA), and in the second step, the cells obtained in the first step are subjected to suspension culture in a medium containing a substance active in the SHH signaling pathway (e.g., SAG, PMA, SHH protein). In another aspect, in the first step, pluripotent stem cells (e.g., human pluripotent stem cells) are treated with a TGFβ family signaling pathway inhibitor (e.g., a TGFβ signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01), a Nodal / Activin signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01), a BMP signaling pathway inhibitor (e.g., LDN193189), or a combination thereof (e.g., SB431542 and LDN193189)); The cells are treated with a substance active in the HH signaling pathway (e.g., SHH protein, SAG, PMA); or a combination of a TGFβ family signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01, LDN193189) and a substance active in the SHH signaling pathway (e.g., SHH protein, SAG, PMA), and in the second step, suspension culture of the cells obtained in the first step is carried out in a medium that does not contain a substance active in the SHH signaling pathway (e.g., SAG, PMA, SHH protein). In either embodiment, the medium in the second step preferably contains a ROCK inhibitor (eg, Y-27632).
[0067] [Regarding the third process] The aggregates formed in the second step are subjected to suspension culture in the presence of a substance acting on the BMP signaling pathway to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells. This step can be carried out in accordance with the second step in the above-mentioned raw material production method 1. In one embodiment, when the concentration of the substance acting on the SHH signaling pathway added to the medium in the second step is relatively low (e.g., 700 nM or less for SAG, or a concentration that activates the SHH signaling pathway equivalent to or less than that of SAG at the aforementioned concentration for other substances acting on the SHH signaling pathway), it is not necessary to change the medium, and a substance acting on the BMP signaling pathway (e.g., BMP4) can be added to the medium used in the second step. On the other hand, when the concentration of the substance acting on the SHH signaling pathway is relatively high (e.g., more than 700 nM for SAG or 1000 nM or more, or a concentration that activates the SHH signaling pathway equivalent to that of SAG at the aforementioned concentration for other substances acting on the SHH signaling pathway), it is desirable to change the medium to fresh one containing a substance acting on the BMP signaling pathway (e.g., BMP4) to suppress the effects of any remaining substance acting on the SHH signaling pathway at the time of addition of the substance acting on the BMP signaling pathway. In a preferred embodiment, the concentration of the substance acting on the SHH signaling pathway in the medium used in the third step is 700 nM or less, preferably 300 nM or less, more preferably 10 nM or less, even more preferably 0.1 nM or less, and even more preferably does not contain any substance acting on the SHH signaling pathway, in terms of the SHH signaling-promoting activity of SAG. A medium "free of a substance acting on the SHH signaling pathway" also includes a medium that is substantially free of a substance acting on the SHH signaling pathway, for example, a medium that does not contain a substance acting on the SHH signaling pathway at a concentration that would adversely affect selective differentiation into retinal progenitor cells and retinal tissue. A medium "not supplemented with a substance acting on the SHH signaling pathway" also includes a medium that is substantially free of a substance acting on the SHH signaling pathway, for example, a medium that is not supplemented with a substance acting on the SHH signaling pathway at a concentration that would adversely affect selective differentiation into retinal progenitor cells and retinal tissue. In a preferred embodiment for producing retinal tissue at an early stage of development, in the first step, human pluripotent stem cells (e.g., human iPS cells) are cultured in an adherent manner in a serum-free medium containing a TGFβ signaling pathway inhibitor (e.g., SB431542, A-83-01) and bFGF in the absence of feeder cells; in the second step, the cells are cultured in suspension in a serum-free medium containing an SHH signaling pathway active substance (e.g., SAG, PMA, SHH protein); and in the third step, the aggregates are cultured in suspension in a serum-free medium containing a BMP signaling pathway active substance (e.g., BMP4). Furthermore, in a preferred embodiment for producing retinal tissue at an early stage of development, in the first step, human pluripotent stem cells (e.g., human iPS cells) are cultured in an adherent manner in a serum-free medium containing a BMP signaling pathway inhibitor (e.g., LDN193189) and bFGF in the absence of feeder cells; in the second step, the cells are cultured in suspension in a serum-free medium containing or not containing a substance acting on the SHH signaling pathway (e.g., SAG, PMA); and in the third step, the aggregates are cultured in suspension in a serum-free medium containing a substance acting on the BMP signaling pathway (e.g., BMP4). In a preferred embodiment for producing retinal tissue at an early stage of development, in the first step, human pluripotent stem cells (e.g., human iPS cells) are cultured in an adhesion manner in a serum-free medium containing a substance acting on the SHH signaling pathway (e.g., SAG, PMA) and bFGF in the absence of feeder cells, preferably for 1 to 6 days, more preferably 2 to 4 days; in the second step, the cells are cultured in suspension in a serum-free medium containing a substance acting on the SHH signaling pathway (e.g., SAG, PMA); and in the third step, the aggregates are cultured in suspension in a serum-free medium containing a substance acting on the BMP signaling pathway (e.g., BMP4). In a preferred embodiment of the method for producing retinal tissue at an early stage of development, in the first step, human pluripotent stem cells (e.g., human iPS cells) are cultured in the absence of feeder cells with a TGFβ family signaling pathway inhibitor (e.g., a TGFβ signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01), a Nodal / Activin signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01), a BMP signaling pathway inhibitor (e.g., LDN193189), or a combination thereof (e.g., SB431542 and LDN193189)); an SHH signaling pathway agonist (e.g., SHH protein, SAG, PMA); or a TGFβ family signaling pathway inhibitor (e.g., Lefty, SB431542, A-83-01, LDN193189). and a substance acting on the SHH signaling pathway (e.g., SHH protein, SAG, PMA); and bFGF. In a second step, the cells obtained in the first step are cultured in suspension in a serum-free medium containing a substance acting on the SHH signaling pathway (e.g., SAG, PMA, SHH protein) to form cell aggregates. In a third step, the aggregates are cultured in suspension in a serum-free medium containing a substance acting on the BMP signaling pathway (e.g., BMP4) to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells.
[0068] 2-3. Raw material manufacturing method 3 A preferred embodiment of the method for producing retinal tissue at an early stage of development includes a method described in WO2016 / 063986, which comprises the following steps: (1) a first step of culturing pluripotent stem cells in a medium containing factors for maintaining undifferentiated state in the absence of feeder cells; (2) a second step of culturing the pluripotent stem cells obtained in the first step in suspension in the presence of an agent acting on the SHH signaling pathway to form cell aggregates; and (3) A third step in which the aggregates obtained in the second step are cultured in suspension in the presence of a substance acting on the BMP signaling pathway to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells.
[0069] [Regarding the first step] The first step can be carried out according to the method described in WO2016 / 063986. That is, in the first step, human pluripotent stem cells, preferably human induced pluripotent stem cells (iPS cells) or human embryonic stem cells (ES cells), are cultured in a medium containing a factor for maintaining undifferentiated state in the absence of feeder cells. In the first step, "feeder-free" refers to conditions in which feeder cells are substantially absent (for example, the ratio of the number of feeder cells to the total number of cells is 3% or less). Preferably, the first step is carried out under conditions in which feeder cells are not present. The medium used in the first step is not particularly limited as long as it is a medium that allows pluripotent stem cells to be cultured under feeder-free conditions and maintain the undifferentiated state (feeder-free medium), but preferably contains factors for maintaining the undifferentiated state so that the culture can maintain the undifferentiated state. For example, a medium containing factors for maintaining the undifferentiated state but not containing an inhibitor of the TGFβ family signaling pathway or a substance acting on the SHH signaling pathway can be used. The undifferentiated maintenance factors and feeder-free medium include those described in the raw material production method 2 above. The culture time for pluripotent stem cells in the first step is not particularly limited as long as it is within a range that can achieve the effect of improving the quality of the aggregates formed in the second step, but is usually 0.5 to 144 hours, preferably 2 to 96 hours, more preferably 6 to 48 hours, even more preferably 12 to 48 hours, and even more preferably 18 to 28 hours (e.g., 24 hours). That is, the first step is started 0.5 to 144 hours (preferably 18 to 28 hours) before the start of the second step, and the second step is carried out immediately after the first step is completed. In the first step, the medium may be replaced as needed, specifically every 1 to 2 days, for example, with a medium that does not contain a cell protective agent or a cell death inhibitor such as a ROCK inhibitor. The culture conditions in the first step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is, for example, about 30° C. to about 40° C., preferably about 37° C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%. In a preferred embodiment, human pluripotent stem cells (e.g., human iPS cells) are cultured in an adherent manner in a serum-free medium containing bFGF in the absence of feeder cells. The adherent culture is preferably carried out in a cell container whose surface is coated with laminin-511, the E8 fragment of laminin-511, or vitronectin. The adherent culture is preferably carried out using Essential 8, TeSR medium, mTeSR medium, mTeSR-E8 medium, or StemFit medium as the feeder-free medium, more preferably Essential 8 or StemFit medium.
[0070] [Regarding the second step] The second step, in which the pluripotent stem cells obtained in the first step are cultured in suspension in the presence of a substance acting on the SHH signaling pathway to form pluripotent stem cell aggregates, may be carried out in accordance with the method described in the second step of the above-mentioned raw material production method 2.
[0071] [Regarding the third step] The third step can be carried out in accordance with the second step in the raw material production method 1 or the third step in the raw material production method 2.
[0072] 2-4. Raw material manufacturing method 4 A preferred embodiment of producing retinal tissue at an early stage of development includes a method described in WO2013 / 077425, which comprises the following steps: (1) a first step of forming pluripotent stem cell aggregates by suspension culture of pluripotent stem cells in a serum-free medium containing a Wnt signaling pathway inhibitor; (2) A second step in which the aggregates formed in the first step are cultured in suspension in a serum-free medium containing a basement membrane preparation to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells. Raw material production method 4 can be carried out in accordance with the description in WO2013 / 077425 (& US2014 / 341864).
[0073] [Regarding the first step] Examples of Wnt signaling pathway inhibitors include those mentioned above. The concentration of the Wnt signaling pathway inhibitor used here may be any concentration that allows pluripotent stem cell aggregates to be formed, for example, in the case of a typical Wnt signaling pathway inhibitor such as IWR1e, the concentration is 0.1 μM to 100 μM, preferably 1 μM to 10 μM, and more preferably about 3 μM. The Wnt signaling pathway inhibitor may be added to the serum-free medium before the start of suspension culture, or may be added to the serum-free medium within a few days (e.g., within 5 days) after the start of suspension culture. Preferably, the Wnt signaling pathway inhibitor is added to the serum-free medium within 5 days, more preferably within 3 days, and most preferably simultaneously with the start of suspension culture. Furthermore, suspension culture is continued with the addition of the Wnt signaling pathway inhibitor until day 18, more preferably until day 12, after the start of suspension culture. Culture conditions such as culture temperature and CO2 concentration can be set appropriately. The culture temperature is not particularly limited, but is, for example, about 30°C to about 40°C, preferably about 37°C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%. Furthermore, those skilled in the art can appropriately set the concentration of pluripotent stem cells so as to form pluripotent stem cell aggregates more uniformly and efficiently. The concentration of pluripotent stem cells during aggregate formation is not particularly limited as long as it is a concentration that allows the formation of uniform stem cell aggregates. For example, when human ES cells are cultured in suspension on a 96-well plate, the concentration of pluripotent stem cells per well is about 1 × 10 3 ~Approx. 5×10 4 cells, preferably about 3 x 10 3 ~Approx. 3×10 4 cells, more preferably about 5 x 10 3 ~Approx. 2×10 4 cells, most preferably 9 x 10 3 A solution prepared so as to be in front of or behind the cells is added, and the plate is left to stand to form aggregates. The suspension culture time required for aggregate formation can be determined appropriately depending on the pluripotent stem cells used, as long as the cells can be rapidly aggregated; however, it is desirable to keep the time as short as possible to form uniform aggregates (e.g., the SFEBq method). For example, in the case of human ES cells or human iPS cells, it is desirable to form aggregates preferably within 24 hours, more preferably within 12 hours. Those skilled in the art can adjust the time required for aggregate formation as appropriate by adjusting the cell aggregation tool, centrifugation conditions, etc. Those skilled in the art can determine whether pluripotent stem cell aggregates have been formed based on the size and cell number of the aggregates, their macroscopic morphology, the microscopic morphology and its uniformity determined by tissue staining analysis, the expression and uniformity of differentiated and undifferentiated markers, the control and synchronization of expression of differentiation markers, and the reproducibility of differentiation efficiency between aggregates.
[0074] [Regarding the second step] The second step involves suspension culture of the aggregates formed in the first step in a serum-free medium containing a basement membrane preparation to obtain aggregates containing retinal progenitor cells or neural retinal progenitor cells. A "basement membrane preparation" refers to a preparation containing basement membrane components that, when desired cells capable of forming a basement membrane are seeded and cultured, regulate epithelial cell-like cell morphology, differentiation, proliferation, motility, and functional expression. Here, "basement membrane components" refers to thin membrane-like extracellular matrix molecules present between the epithelial cell layer and the interstitial cell layer in animal tissues. Basement membrane preparations can be prepared, for example, by removing cells capable of forming a basement membrane that are attached to a support via a basement membrane using a solution capable of dissolving lipids from the cells or an alkaline solution. Preferred basement membrane preparations include commercially available products containing basement membrane components (e.g., Matrigel (hereinafter sometimes referred to as Matrigel)) and preparations containing extracellular matrix molecules known as basement membrane components (e.g., laminin, type IV collagen, heparan sulfate proteoglycan, entactin, etc.). Matrigel is a basement membrane preparation derived from the Engelbreth Holm Swarn (EHS) murine sarcoma. Its main components are type IV collagen, laminin, heparan sulfate proteoglycan, and entactin, but it also contains TGF-β, fibroblast growth factor (FGF), tissue plasminogen activator, and growth factors naturally produced by EHS tumors. The "growth factor reduced" Matrigel formulation contains lower concentrations of growth factors than standard Matrigel, typically <0.5 ng / mL EGF, <0.2 ng / mL NGF, <5 pg / mL PDGF, 5 ng / mL IGF-1, and 1.7 ng / mL TGF-β. For raw material manufacturing method 4, the "growth factor reduced" formulation is preferred. The concentration of the basement membrane preparation added to the serum-free medium for suspension culture in the second step is not particularly limited as long as the epithelial structure of neural tissue (e.g., retinal tissue) is stably maintained, but when Martigel is used, for example, the concentration can be preferably 1 / 20 to 1 / 200 of the volume of the culture medium, more preferably about 1 / 100 of the volume. The basement membrane preparation may be added to the medium already at the start of culture of pluripotent stem cell aggregates, but is preferably added to the serum-free medium within 5 days, more preferably within 2 days, after the start of suspension culture. The serum-free medium used in the second step can be the same as that used in the first step, or can be replaced with a new serum-free medium. When the serum-free medium used in the first step is used in this step as is, the "basement membrane preparation" can be added to the medium. The serum-free medium used for suspension culture in the first and second steps is not particularly limited as long as it is as described above. However, from the viewpoint of avoiding the cumbersome preparation process, it is preferable to use a commercially available serum-free medium (GMEM or DMEM, 0.1 mM 2-mercaptoethanol, 0.1 mM non-essential amino acid mix, 1 mM sodium pyruvate) supplemented with an appropriate amount of KSR. The amount of KSR added to the serum-free medium is not particularly limited; for example, in the case of human ES cells, it is usually 1 to 20%, preferably 2 to 20%. The culture conditions in the second step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is not particularly limited, but is, for example, about 30°C to about 40°C, preferably about 37°C. The CO2 concentration is, for example, about 1% to about 10%, preferably about 5%.
[0075] The aggregates obtained by the second step can be used as retinal tissue at an early stage of development. However, in order to increase the content of retinal progenitor cells or neural retinal progenitor cells, the aggregates can be cultured in suspension in a serum-free medium containing a basement membrane preparation, and then the following third step can be carried out, and the resulting aggregates can be used as retinal tissue at an early stage of development: (3) A third step of culturing the aggregates cultured in the second step in suspension in a serum-containing medium. The serum medium used in the third step may be the serum-free medium used for culture in the second step to which serum has been directly added, or may be replaced with a new serum medium. The serum to be added to the medium in the third step may be, for example, mammalian serum such as bovine serum, calf serum, fetal bovine serum, horse serum, foal serum, fetal horse serum, rabbit serum, baby rabbit serum, fetal rabbit serum, or human serum. Serum is added after the 7th day, more preferably after the 9th day, and most preferably after the 12th day of suspension culture (i.e., the first step). The serum is added at a concentration of 1 to 30%, preferably 3 to 20%, and more preferably about 10%. The serum-containing medium used in the third step is not particularly limited as long as it is as described above, but it is preferable to use the serum-free medium (GMEM or DMEM, 0.1 mM 2-mercaptoethanol, 0.1 mM non-essential amino acid mix, 1 mM sodium pyruvate) to which serum has been added. Furthermore, such serum medium may be used by adding an appropriate amount of a commercially available serum substitute such as KSR. In the third step, the production efficiency of retinal tissue at the early developmental stage can be increased by adding an SHH signaling pathway active substance in addition to serum. The substance acting on the SHH signaling pathway is not particularly limited as long as it is capable of enhancing signaling mediated by SHH, and includes those mentioned above. The concentration of the substance acting on the SHH signaling pathway used in this step is 0.1 nM to 10 μM, preferably 10 nM to 1 μM, and more preferably about 100 nM, in the case of a conventional substance acting on the SHH signaling pathway, such as SAG. The aggregates thus obtained can also be used as retinal tissue at an early stage of development.
[0076] Furthermore, in a preferred embodiment of producing retinal tissue at an early stage of development, after the third step, the following fourth step can be carried out, and the resulting optic-cup-like structure can be used as retinal tissue at an early stage of development: (4) A fourth step of culturing the aggregates cultured in the third step in suspension in a serum-free medium or serum-containing medium containing a substance acting on the SHH signaling pathway and a substance acting on the Wnt signaling pathway. Here, the substance acting on the SHH signaling pathway is not particularly limited as long as it is capable of enhancing signaling mediated by SHH, and includes those mentioned above. The concentration of the substance acting on the SHH signaling pathway used here, for example, in the case of a conventional substance acting on the SHH signaling pathway such as SAG, is added at a concentration of 0.1 nM to 10 μM, preferably 10 nM to 1 μM, and more preferably about 100 nM. Substances acting on the Wnt signaling pathway are not particularly limited as long as they can enhance signal transduction mediated by Wnt, and examples thereof include proteins belonging to the Wnt family (e.g., Wnt1, Wnt3A, Wnt7A, Wnt2B), Wnt receptors, Wnt receptor agonists, anti-Wnt receptor antibodies, Wnt partial peptides, β-catenin signaling substances, GSK3β inhibitors (e.g., 6-Bromoindirubin-3'-oxime (BIO), CHIR99021 (6-[[2-[[4-(2,4-dichlorophenyl)-5-(5-methyl-1H-imidazol-2-yl)-2-pyrimidinyl]amino]ethyl]amino]-3-pyridicarbonitrile), Kenpaullone), and the like. The concentration of the substance acting on the Wnt signaling pathway used here, for example, in the case of a typical substance acting on the Wnt signaling pathway such as CHIR99021, is added at a concentration of 0.1 μM to 100 μM, preferably 1 μM to 30 μM, and more preferably about 3 μM. The substance acting on the SHH signaling pathway and the substance acting on the Wnt signaling pathway are added within 12 to 25 days after the start of suspension culture (start of the first step), preferably within 15 to 18 days. In this case, it is preferable to use a medium that does not contain the Wnt signaling pathway inhibitor added in the aggregate formation step. After 18 days from the start of suspension culture, optic-cup-like structures are formed in the form of protrusions from the aggregates. The optic-cup-like structures produced by the fourth step can also be used as retinal tissue at an early stage of development, which serves as the starting material for the method of the present invention.
[0077] The aggregates obtained in the fourth step can be used as retinal tissue in the early developmental stage, which serves as the starting material for the method of the present invention, after 1 to 20 days of suspension culture in a serum-free medium or serum-free medium containing neither an SHH signaling pathway nor a Wnt signaling pathway active substance. This raw material production method may also simultaneously form neural tissue other than retinal tissue, which may express dorsalization signaling substances, such as substances acting on the Wnt signaling pathway. Therefore, preferably, to eliminate the effects of excess dorsalization signaling substances, such as substances acting on the Wnt signaling pathway, the optic cup-like structures present on the surface of the aggregates can be physically excised from the aggregates using tweezers, scissors, a syringe needle, a razor, or similar tools.
[0078] 2-5. Raw material manufacturing method 5 The retinal tissue at an early stage of development may contain ciliary marginal structures, and the retinal tissue at an early stage of development containing ciliary marginal structures can be produced by the methods described in WO2015 / 087614 (& US2016 / 376554). Specifically, cell aggregates containing retinal tissue, in which the proportion of CHX10-positive cells in the retinal tissue is 20% or more and 100% or less (for example, in Raw Material Production Methods 1 to 4, cell aggregates corresponding to about 9 to 60 days, preferably 9 to 40 days, more preferably about 15 to 20 days, for example, 18 days, after the initiation of suspension culture after the initiation of suspension culture), are cultured in a serum-free or serum-based medium containing a substance acting on the Wnt signaling pathway and a substance inhibiting the FGF signaling pathway, for a period until cells expressing the RPE65 gene appear. Aggregates containing ciliary marginal zone-like structures, which are obtained by culturing the resulting "cell aggregates in which cells expressing the RPE65 gene do not appear," in a serum-free or serum-based medium not containing a substance acting on the Wnt signaling pathway, can also be used as the retinal tissue in an early developmental stage that serves as the starting material for the methods of the present invention. Specifically, aggregates containing ciliary marginal structures, prepared by the following method, for example, are also included in retinal tissue at an early stage of development: (1) A method for producing an aggregate containing ciliary margin-like structures, comprising the steps of culturing a cell aggregate containing retinal tissue, in which the proportion of CHX10-positive cells in the retinal tissue is 20% or more and 100% or less, in a serum-free medium or serum medium containing a substance that acts on the Wnt signaling pathway and a substance that inhibits the FGF signaling pathway, for a period until cells that express the RPE65 gene appear, and then culturing the resulting "cell aggregate in which cells that express the RPE65 gene do not appear" in a serum-free medium or serum medium that does not contain a substance that acts on the Wnt signaling pathway.
[0079] "Cell aggregates containing retinal tissue, in which the proportion of CHX10-positive cells in the retinal tissue is 20% or more and 100% or less" can be obtained by the methods described in the above-mentioned raw material production methods 1 to 4. That is, the cell aggregates themselves are aggregates containing retinal tissue in an early stage of development. For example, in the second step of raw material production method 1 or the third step of raw material production method 2 or 3, retinal tissue in an early stage of development can be obtained by culturing for 6 to 15 days in the presence of a substance acting on the BMP signaling pathway, such as BMP4, thereby obtaining "cell aggregates containing retinal tissue, in which the proportion of CHX10-positive cells in the retinal tissue is 20% or more and 100% or less." Furthermore, the above-mentioned "step of culturing in a serum-free or serum-containing medium containing a substance acting on the Wnt signaling pathway and a substance inhibiting the FGF signaling pathway, for a period limited to the time until cells expressing the RPE65 gene appear" is preferably initiated by continuously culturing in a serum-free or serum-containing medium containing a substance acting on the Wnt signaling pathway and a substance inhibiting the FGF signaling pathway (for example, for 30 days or more) until 50% or more, preferably 80% or more, more preferably 90% or more, and even more preferably 99% or more of the cells contained in the retinal tissue are able to express the RPE65 gene, i.e., until the above percentage of cells contained in the retinal tissue are able to differentiate into retinal pigment epithelium. Specifically, the culture is initiated within 40 days, preferably 30 days, and more preferably 20 days after the start of suspension culture. The cell aggregate obtained in this manner can be used in this process as a "cell aggregate containing retinal tissue, in which the proportion of Chx10-positive cells in the retinal tissue is 20% or more and 100% or less." First, "cell aggregates containing retinal tissue, in which the proportion of CHX10-positive cells in the retinal tissue is 20% to 100%" are cultured in a serum-free or serum-free medium containing a substance acting on the Wnt signaling pathway and a substance inhibiting the FGF signaling pathway, for a period until cells expressing the RPE65 gene appear, according to the method described in WO2015 / 087614. Here, suspension culture is a preferred example of the culture method. Examples of serum-free media include those prepared by adding N2 or KSR to a basal medium, more specifically, those prepared by adding N2 supplement (N2, Invitrogen) to DMEM / F-12 medium. Examples of serum-free media include those prepared by adding fetal bovine serum to a basal medium. Culture conditions such as culture temperature and CO2 concentration can be set appropriately. The culture temperature can be, for example, in the range of about 30°C to about 40°C. A preferred example is about 37°C. The CO2 concentration can be, for example, in the range of about 1% to about 10%. A preferred example is about 5%. When the cell aggregates are cultured in a serum-free medium or a serum-containing medium, the Wnt signaling pathway active substance contained in the medium is not particularly limited as long as it is capable of enhancing signaling mediated by Wnt, and examples thereof include those listed above. The concentration of a substance acting on the Wnt signaling pathway contained in a serum-free medium or serum medium may range, for example, from about 0.1 μM to about 100 μM in the case of a typical substance acting on the Wnt signaling pathway, such as CHIR99021. A preferred range is, for example, from about 1 μM to about 30 μM. A more preferred concentration is, for example, about 3 μM. When the "cell aggregates containing retinal tissue" are cultured in a serum-free medium or a serum-based medium, the FGF signaling pathway inhibitor contained in the medium is not particularly limited, as long as it can inhibit FGF-mediated signal transduction. Examples of FGF signaling pathway inhibitors include FGF receptors, FGF receptor inhibitors (e.g., SU-5402, AZD4547, BGJ398), MAP kinase cascade inhibitors (e.g., MEK inhibitors, MAPK inhibitors, ERK inhibitors), PI3 kinase inhibitors, and Akt inhibitors. The concentration of the FGF signaling pathway inhibitor contained in the serum-free medium or serum medium may be any concentration that can induce differentiation of cells forming pluripotent stem cell aggregates into retinal cells. For example, in the case of SU-5402, it is added at a concentration of about 0.1 μM to about 100 μM, preferably about 1 μM to about 30 μM, and more preferably about 5 μM. As used herein, "culturing only during the period until cells expressing the RPE65 gene appear" means culturing only for all or part of the period until cells expressing the RPE65 gene appear. In other words, the "cell aggregates containing retinal tissue" present in the culture system may be cultured only for all or part of the period (any period) during which the cells are composed of cells that do not substantially express the RPE65 gene. By employing such culture, cell aggregates in which cells expressing the RPE65 gene do not appear can be obtained. "Cell aggregates in which cells expressing the RPE65 gene do not appear" include "cell aggregates in which no cells expressing the RPE65 gene appear" and "cell aggregates in which cells expressing the RPE65 gene do not substantially appear." "Cell aggregates in which cells expressing the RPE65 gene do not substantially appear" can be exemplified by cell aggregates in which the proportion of RPE65-positive cells in the retinal tissue contained in the cell aggregates is approximately 1% or less. To set such a specific period, the presence or absence of RPE65 gene expression in the "cellular aggregate containing retinal tissue" can be measured using conventional genetic engineering or biochemical techniques. Specifically, for example, frozen sections of the "cellular aggregate containing retinal tissue" can be immunostained with an antibody against the RPE65 protein to determine the presence or absence of RPE65 gene expression. The "period until cells expressing the RPE65 gene appear" can be, for example, the period until the proportion of CHX10-positive cells in the retinal tissue decreases to within the range of 30% to 0% compared to the time when the cell aggregates were cultured in a serum-free medium or serum medium containing a substance acting on the Wnt signaling pathway and a substance inhibiting the FGF signaling pathway. The "cell aggregates in which cells expressing the RPE65 gene do not appear" can be, for example, cell aggregates in which the proportion of Chx10-positive cells in the retinal tissue is within the range of 30% to 0%. The number of days in the "period until cells expressing the RPE65 gene appear" varies depending on the type of substance acting on the Wnt signaling pathway and the substance inhibiting the FGF signaling pathway, the type of serum-free or serum-based medium, other culture conditions, etc., but can be, for example, within 14 days. More specifically, when a serum-free medium (e.g., a serum-free medium in which N2 is added to a basal medium) is used, the period is preferably, for example, within 10 days, more preferably, for example, within 2 to 6 days, and even more specifically, for example, within 3 to 5 days. When a serum-based medium (e.g., a serum-based medium in which fetal bovine serum is added to a basal medium) is used, the period is preferably, for example, within 12 days, more preferably, for example, within 6 to 9 days. The aggregates thus obtained can be used as retinal tissue at an early stage of development, which serves as the starting material for the method of the present invention. Next, the "cell aggregates in which cells expressing the RPE65 gene have not appeared" obtained by culturing as described above may be further cultured in a serum-free medium or serum medium that does not contain a substance acting on the Wnt signaling pathway for 1 to 50 days (corresponding to the "differentiation stage from immediately after the appearance of ganglion cells until the appearance rate of cone photoreceptor precursor cells reaches its maximum"), preferably for 1 to 15 days (corresponding to within about 5 days after ganglion cells begin to appear), and more preferably for 1 to 7 days (corresponding to the stage at which ganglion cells begin to appear), and then used as retinal tissue in an early developmental stage that serves as the starting material for the method of the present invention; for details of this culture method, see WO2015 / 087614 (e.g., paragraphs
[0076] to
[0079] ).
[0080] 2-6. Raw material manufacturing method 6 Retinal tissue at an early stage of development containing ciliary marginal structures that can be used as a starting material for the production method of the present invention can also be produced by the method described in WO2013 / 183774 (&US2015 / 132787). Specifically, cell aggregates containing retinal tissue, in which the proportion of CHX10-positive cells in the retinal tissue is 20% or more and 100% or less, are cultured in a serum-free medium or serum medium containing a substance acting on the Wnt signaling pathway, for a period until cells expressing the RPE65 gene appear; or aggregates containing ciliary margin-like structures obtained by further culturing the resulting "cell aggregates in which cells expressing the RPE65 gene have not appeared" in a serum-free medium or serum medium not containing a substance acting on the Wnt signaling pathway, are also retinal tissue in an early stage of development.
[0081] The "cell aggregates containing retinal tissue, in which the proportion of CHX10-positive cells in the retinal tissue is 20% or more and 100% or less" or "Wnt signaling pathway active substances" used as raw materials here include the same as those used in raw material production method 5 above. A preferred culture method is, for example, suspension culture, and a preferred medium is, for example, serum-free medium. Culture conditions such as culture temperature and CO2 concentration can be set appropriately. The culture temperature can be, for example, in the range of about 30°C to about 40°C, and preferably, for example, about 37°C. The CO2 concentration can be, for example, in the range of about 1% to about 10%, and preferably, for example, about 5%. The substance acting on the Wnt signaling pathway to be contained in the medium is not particularly limited as long as it is capable of enhancing signaling mediated by Wnt, and examples thereof include those listed above. Furthermore, the concentration of a substance acting on the Wnt signaling pathway contained in a serum-free medium or serum medium can be, for example, in the range of about 0.1 μM to 100 μM in the case of a typical substance acting on the Wnt signaling pathway, such as CHIR99021. Preferably, the concentration can be, for example, in the range of about 1 μM to 30 μM. More preferably, the concentration can be, for example, about 3 μM. The cell aggregates are cultured in the same manner as in Production Method 5, except that they do not need to contain an FGF signaling pathway inhibitor, and are "cultured only until cells expressing the RPE65 gene appear." A preferred "period until cells expressing the RPE65 gene appear" is, for example, the period during which the proportion of CHX10-positive cells in the retinal tissue is within the range of 50% to 1%. In this case, the resulting "cell aggregate in which cells expressing the RPE65 gene have not appeared" will be a cell aggregate in which the proportion of CHX10-positive cells in the retinal tissue is within the range of 50% to 1%. The number of days in the "period until cells expressing the RPE65 gene appear" varies depending on the type of agent acting on the Wnt signaling pathway, the type of serum-free or serum-containing medium, other culture conditions, etc., but can be, for example, within 14 days. More specifically, when a serum-free medium (e.g., a serum-free medium in which N2 is added to a basal medium) is used, the period is preferably, for example, within 10 days, more preferably, for example, within 2 to 6 days, and even more specifically, for example, within 3 to 5 days. When a serum-containing medium (e.g., a serum-containing medium in which fetal bovine serum is added to a basal medium) is used, the period is preferably, for example, within 12 days, more preferably, for example, within 6 to 9 days. The aggregates thus obtained can be used as the starting material for the method of the present invention as retinal tissue at an early stage of development. Subsequently, the "cell aggregates in which cells expressing the RPE65 gene have not appeared" obtained by culturing as described above may be used as retinal tissue at an early stage of development as is, or may be further cultured in a serum-free medium or serum medium that does not contain a substance acting on the Wnt signaling pathway for 1 to 50 days, preferably 1 to 15 days, and more preferably 1 to 7 days, before being used as aggregates containing retinal tissue at an early stage of development. For details of this culturing method, see WO2015 / 087614 (e.g., paragraphs
[0076] to
[0079] ).
[0082] 2-7. Raw material manufacturing method 7 The retinal tissue at an early stage of development may contain ciliary marginal structures, and the retinal tissue at an early stage of development containing ciliary marginal structures can be produced by the method described in WO2015 / 107738 (and U.S. Patent Application No. 15 / 112,187). Specifically, for example, retinosphers prepared by a method comprising the following steps can also be used as the retinal tissue at an early stage of development that serves as the starting material for the production method of the present invention: (1) A step of culturing cells obtained from cell aggregates containing ciliary marginal zone-like structures induced to differentiate from pluripotent stem cells in a suspension culture to obtain retinospheric cells.
[0083] That is, "cell aggregates containing ciliary marginal zone-like structures induced to differentiate from pluripotent stem cells" can be produced according to the above-mentioned raw material production method 5 or 6, and the cells obtained from these can be dispersed and cultured in suspension to obtain retinosphers. Examples of such cells include cells obtained by dispersing the above-mentioned "cell aggregates containing ciliary marginal zone-like structures differentiated from pluripotent stem cells," cells obtained by dispersing ciliary marginal zone-like structures separated from the cell aggregates, and cells obtained by dispersing cells sorted from the cell aggregates. When such cells are cultured in suspension at low density in the presence of growth factors and the like, spherical cell aggregates derived from a single cell or a small number of cells (approximately 2 to 10 cells), i.e., retinospheric cells, are formed. For methods of producing retinospheric cells, see WO2015 / 107738 (and U.S. Patent Application No. 15 / 112,187). Specifically, the dispersed cells can be cultured in suspension in a serum-free or serum-based medium supplemented with neuronal culture additives and growth factors. The medium preferably includes a serum-free or serum-based medium containing one or more substances selected from the group consisting of substances acting on the FGF signaling pathway and substances acting on the EGF signaling pathway. Substances acting on the FGF signaling pathway include FGF proteins such as FGF1, bFGF, FGF4, FGF7, FGF8, and FGF9, and FGF signaling aids such as heparin. Substances acting on the EGF signaling pathway include EGF and TGF-alpha. The retinosphers produced as described above contain retinal progenitor cells or neural retinal progenitor cells, just like retinal tissue, and can therefore be used as retinal tissue at an early stage of development as a starting material for the production method of the present invention. Furthermore, retinosphers cultured in suspension in a serum-free or serum-based medium containing a substance acting on the BMP signaling pathway (e.g., BMP4) after step (1) above can also be used as retinal tissue at an early stage of development as a starting material for the production method of the present invention. The retinosphers obtained as described above may then be further cultured in a serum-free or serum-based medium not containing a substance acting on the Wnt signaling pathway for 1 to 50 days, preferably 1 to 15 days, and more preferably 1 to 7 days, and the resulting cell aggregates may be used as retinal tissue at an early stage of development.
[0084] 3. Production of retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from the differentiation stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum (raw material that can be used in the method according to the present invention [1]) The "retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from the stage immediately after the appearance of ganglion cells until the appearance rate of cone photoreceptor progenitor cells reaches its peak" used in the present invention [1] is described below.
[0085] The retinal tissue at the time of starting culture in a medium containing a substance acting on the thyroid hormone signaling pathway is not particularly limited as long as it is at a differentiation stage that can reduce the proportion of PAX6-negative, strongly CHX10-positive cells (e.g., bipolar cells) and PAX6-positive, CHX10-negative cells (e.g., amacrine cells, ganglion cells, or horizontal cells) when cultured in a medium containing a substance acting on the thyroid hormone signaling pathway and differentiated and matured to the extent that Muller cells can be observed, and can increase the proportion of photoreceptor precursor cells and / or photoreceptors. However, as described below, retinal tissue that is at "any stage of differentiation that contains neural retinal precursor cells and ranges from the differentiation stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor precursor cells reaches its maximum" can be preferably used. Specifically, retinal tissue "containing neural retinal progenitor cells and at a differentiation stage immediately after the appearance of ganglion cells" includes retinal tissue containing neural retinal progenitor cells (e.g., CHX10-positive, RX-positive, and PAX6-positive cells) that can differentiate into at least two, preferably five, or more, and more preferably six or more of the following cells: photoreceptors, and retinal pigment epithelial cells, ganglion cells, horizontal cells, amacrine cells, bipolar cells, and Muller cells, at a differentiation stage immediately after the appearance of ganglion cells, where CHX10, preferably RX, PAX6, and CHX10, which are markers for neural retinal progenitor cells, are detected at detectable levels, and TUJ1 or BRN3, which are markers for ganglion cells, are detected at detectable levels; and the retinal tissue may contain retinal progenitor cells. Here, whether or not the stage is "a differentiation stage immediately after the appearance of ganglion cells" can be determined by determining the time when cells positive for the ganglion cell marker BRN3 begin to appear in the neural retinal tissue. Specifically, "a differentiation stage immediately after the appearance of ganglion cells" refers to a stage within about 10 days, preferably within about 5 days, more preferably within 1 day, and even more preferably within 1 hour after the detection of the ganglion cell marker. For example, the retinal tissue may contain retinal progenitor cells, in which 30% or more, preferably 50% or more, more preferably 70% or more, even more preferably 80% or more, even more preferably 90% or more, and particularly preferably 99% or more of the total number of cells are neural retinal progenitor cells, and ganglion cell marker-positive (preferably BRN3-positive) cells are detected, and the proportion of such cells is 40% or less, preferably 20% or less, 10% or less, 5% or less, more preferably 1% or less, even more preferably 0.1% or less, and even more preferably 0.01% or less of the total number of cells. For example, retinal tissue "containing neural retinal progenitor cells and at a differentiation stage immediately after the appearance of ganglion cells" includes retinal tissue corresponding to approximately 27 to 40 days, preferably 28 to 37 days, and more preferably 28 to 33 days after the start of suspension culture when produced using the methods described in the above-mentioned raw material production methods 1 to 4. Furthermore, for example, when produced by the methods described in the above-mentioned raw material production methods 5 to 7, examples of such retinal tissue include retinal tissues that are approximately 33 to 45 days, preferably approximately 33 to 42 days, and more preferably 33 to 38 days after the start of suspension culture (corresponding to approximately 11 to 23 days, preferably 11 to 20 days, and more preferably 11 to 16 days after the start of culture in a serum-free medium or serum medium that does not contain a substance acting on the Wnt signaling pathway).
[0086] In this specification, one embodiment of retinal tissue "containing neural retinal progenitor cells and at a differentiation stage immediately after the appearance of ganglion cells" is retinal tissue at a stage at which photoreceptor progenitor cells or cone photoreceptor progenitor cells begin to appear, for example, retinal tissue at a stage at which CRX-positive cells or CRX-positive and TRβ2-positive cells begin to appear. For example, when produced by the methods described in the above raw material production methods 1 to 4, the retinal tissue corresponds to about 30 to 45 days, preferably about 30 to 40 days, after the start of suspension culture. For example, when produced by any of the above-mentioned raw material production methods 5 to 7, the retinal tissue may be retinal tissue that is about 35 to 45 days, preferably about 35 to 42 days, after the start of suspension culture (corresponding to about 13 to 23 days, preferably 13 to 20 days, after the start of culture in a serum-free medium or serum medium that does not contain a substance acting on the Wnt signaling pathway).
[0087] As used herein, one embodiment of retinal tissue at a "differentiation stage up to when the appearance rate of cone photoreceptor precursor cells reaches a maximum" specifically includes retinal tissue at a differentiation stage at least one day before "retinal tissue at a differentiation stage up to when the appearance rate of cone photoreceptor precursor cells reaches a maximum." Here, "retinal tissue at a differentiation stage up to when the appearance rate of cone photoreceptor precursor cells reaches a maximum" refers to a differentiation stage corresponding to 30 to 50 days, preferably 30 to 40 days, after the appearance of cone photoreceptor precursor cells or cone photoreceptors is observed. As the timing for starting culture in a medium containing a substance acting on the thyroid hormone signaling pathway, retinal tissue at the earliest differentiation stage possible after "the differentiation stage containing neural retinal progenitor cells immediately after the appearance of ganglion cells" can be preferably used, as described below. Therefore, preferred examples of "retinal tissue at a differentiation stage at which the appearance rate of cone photoreceptor progenitor cells reaches a maximum" include retinal tissue at a stage at which ganglion cells have appeared, preferably 10 days or more, more preferably 20 days or more, even more preferably 30 days or more, or 40 days or more before the differentiation stage at which the appearance rate of cone photoreceptor progenitor cells reaches a maximum, i.e., "retinal tissue at any differentiation stage from neural retinal tissue at a differentiation stage immediately after the appearance of ganglion cells to the stage at which photoreceptor progenitor cells or cone photoreceptor progenitor cells begin to appear." "Retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from the stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitor cells reaches its peak" corresponds to approximately 27 to 69 days, preferably 28 to 60 days, more preferably 28 to 50 days, and even more preferably 28 to 40 days or 28 to 35 days after the start of culture in a medium containing a substance acting on the BMP signaling pathway (e.g., BMP4), in the case of the methods described above in Raw Material Production Method 1 (WO2015 / 025967), Raw Material Production Method 2 (WO2016 / 063985), and Raw Material Production Method 3 (WO2016 / 063986).
[0088] Furthermore, for example, in the case of the method described in the above-mentioned raw material production method 4 (WO2013 / 077425), the differentiation stage corresponds to approximately 27 to 69 days, preferably 28 to 60 days, more preferably 28 to 50 days, and even more preferably 28 to 40 days or 28 to 35 days after the start of culture in a medium containing a basement membrane preparation (e.g., Matrigel).
[0089] Furthermore, for example, in the case of the method described in the above-mentioned Raw Material Production Method 5 (WO2015 / 087614), Raw Material Production Method 6 (WO2013 / 183774), or Raw Material Production Method 7 (WO2015 / 107738), the differentiation stage corresponds to the stage at which retinal tissue containing RPE65-positive ciliary marginal structures is obtained, and corresponds to about 33 to 74 days, preferably about 33 to 65 days, more preferably 33 to 55 days, even more preferably 33 to 45 days, or 33 to 40 days after the start of suspension culture, In the method described in the above-mentioned raw material production method 5 (WO2015 / 087614), raw material production method 6 (WO2013 / 183774), or raw material production method 7 (WO2015 / 107738), this corresponds to about 11 to 52 days, preferably 11 to 43 days, more preferably 11 to 33 days, and even more preferably 11 to 23 days or 11 to 18 days, after the culture in the presence of a substance acting on the Wnt signaling pathway is terminated and the culture in a serum-free medium or serum medium not containing a substance acting on the Wnt signaling pathway is initiated. In other words, the process of producing "retinal tissue at an early stage of development" and the process of culturing "retinal tissue at an early stage of development" to produce "retinal tissue that contains neural retinal progenitor cells and is at any stage of differentiation from the differentiation stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum" may be carried out continuously without any boundary between the processes, without identifying or isolating the retinal tissue at an early stage of development.
[0090] 4. Method for inhibiting differentiation of bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells One aspect of the present invention is a method for inhibiting differentiation of bipolar cells, ganglion cells, amacrine cells, and / or horizontal cells in neural retinal tissue containing photoreceptor precursor cells and / or photoreceptors. According to the differentiation-inhibiting method of the present invention, by culturing "retinal tissue containing neural retinal progenitor cells and at the differentiation stage immediately after the appearance of ganglion cells," i.e., "cell aggregates containing neural retinal progenitor cells and at the differentiation stage immediately after the appearance of ganglion cells," in a medium containing a substance acting on the thyroid hormone signaling pathway, it is possible to reduce the proportion of ganglion cells, amacrine cells, horizontal cells, and bipolar cells, or at least one of these progenitor cells, or the total number of these cells, in neural retinal tissue containing photoreceptor progenitor cells and / or photoreceptor cells, and thereby increase the proportion of photoreceptor progenitor cells and photoreceptor cells. Furthermore, the differentiation-inhibiting method of the present invention can reduce the proportion of bipolar cells and increase the proportion of photoreceptor progenitor cells and photoreceptor cells. Furthermore, among the various layers that make up the retinal tissue, it is possible to form an ectopic photoreceptor layer (also called a photoreceptor precursor layer) in the cell layer on the basement membrane side, such as the inner nuclear layer where bipolar cells and amacrine cells are present, and the ganglion cell layer where ganglion cells are present.This makes it possible to create retinal tissue suitable for transplantation, in which the spatial or physical distance between the recipient's bipolar cells and the photoreceptor precursor cells contained in the transplanted retinal tissue is short when transplanted.
[0091] It is known to those skilled in the art that, in one embodiment of retinal tissue for transplantation containing photoreceptor progenitor cells and / or photoreceptors, at a stage of differentiation and maturation to the extent that Müller cells are found in the neural retinal tissue, PAX6-negative / strongly CHX10-positive cells are bipolar cells, and PAX6-positive / CHX10-negative cells are ganglion cells, amacrine cells, or horizontal cells. Therefore, whether or not the proportion of bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells that are unnecessary for transplantation in neural retinal tissue for transplantation containing photoreceptor progenitor cells can be reduced can be determined, for example, by determining the proportion of PAX6-negative / strongly CHX10-positive cells and / or PAX6-positive / CHX10-negative cells contained in retinal tissue at a stage of differentiation and maturation to the extent that Müller cells are found. Furthermore, whether or not Müller cells are found in the retinal tissue can be determined, for example, by confirming the presence of CRALBP-positive cells and / or CRABP-positive cells.
[0092] The concentration of the substance acting on the thyroid hormone signaling pathway to be added here is not particularly limited, as long as it is a concentration that suppresses the differentiation of bipolar cells, and any of amacrine cells, ganglion cells, and horizontal cells, but does not suppress the differentiation of photoreceptor precursor cells. The concentration can be set appropriately by measuring the ratio of the number of cells positive for bipolar cell, amacrine cell, ganglion cell, and / or horizontal cell markers to the number of cells positive for photoreceptor precursor markers. The concentration of the substance acting on the thyroid hormone signaling pathway can be set so that, for example, PAX6-negative / strongly CHX10-positive cells account for 8% or less, preferably 6% or less, and more preferably 5% or less of the total cells contained in neural retinal tissue at a late differentiation stage, where Müller cells have appeared (e.g., this corresponds to approximately 180-200 days after the initiation of suspension culture when retinal tissue produced by the methods described in the above-mentioned raw material production methods 1-3, 4, or 5-7 is used as the raw material). Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway can be set so that the proportion of PAX6-positive / CHX10-negative cells is 30% or less, preferably 20% or less, and more preferably 15% or less. Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway can be set so that the proportion of photoreceptors (or photoreceptor precursor cells) is 40% or more, preferably 45% or more, and more preferably 50% or more.
[0093] Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway to be added may be, for example, a differentiation stage at which the appearance rate of cone photoreceptor precursor cells (e.g., CRX-positive and TRβ2-positive cells, or CRX-positive and RXR-γ-positive cells) is maximized (i.e., a differentiation stage corresponding to 30 to 50 days, preferably 30 to 40 days, after the appearance of cone photoreceptor precursor cells is observed, or, for example, about 60 to 70 days after the start of suspension culture when retinal tissue produced by the methods described in Raw Material Production Methods 1 to 4 is used as the raw material, or about 60 to 70 days after the start of suspension culture when retinal tissue produced by the methods described in Raw Material Production Methods 5 to 7 is used as the raw material). The concentration of the substance acting on the thyroid hormone signaling pathway may be set so that, at the differentiation stage corresponding to approximately 65 to 75 days after initiation, ectopic photoreceptor precursor cells appearing closer to the basement membrane than the neuroblastic layer (NBL) are observed, and the ratio per unit area of the number of photoreceptor precursor cells and photoreceptor cells appearing on the apical surface side, including the NBL, to the number of ectopic photoreceptor precursor cells and photoreceptor cells appearing closer to the basement membrane than the NBL is approximately 10:1 to 1:10, preferably 2:1 to 1:2, and more preferably 10:7 to 7:10. Here, the "ratio per unit area" can be determined by the following procedure: 1) Identify the neural retinal tissue and the cells contained therein using a sectioning method and immunostaining method commonly performed by those skilled in the art; 2) Measure and compare the number of CRX-positive cells contained per unit area of the neural retinal tissue (i.e., per unit area) using image analysis software or the like. This allows for comparison of the ratio per unit area between the number of photoreceptor progenitor cells appearing on the apical side, including the NBL, and the number of ectopic photoreceptor progenitor cells appearing on the basal side of the NBL. Here, neural retinal tissue can be identified by, for example, combining it with markers for the neural retinal tissue and cells contained therein, identifying the areas where the apical surface, basement membrane, and / or DAPI-positive cell nuclei are present, and comparing their positional relationships. Examples of apical surface markers include atypical PKC (hereinafter abbreviated as aPKC), E-cadherin, and N-cadherin, and basement membrane markers include laminin, Type-IV collagen, heparan sulfate proteoglycan, and entactin. Antibodies against these markers can also be used.Furthermore, NBL can be roughly identified from retinal structure as a layer in which neural retinal progenitor cells proliferate, but it may also be identified as a layer in which neural retinal progenitor cells present in NBL and / or proliferating cells contained in the neural retina exist using antibodies against CHX10, RX, PAX6 and / or Ki67. Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway to be added may be set so that the proportion of photoreceptor progenitor cells that are CRX-positive cells in retinal tissue at that differentiation stage (the differentiation stage at which the appearance rate of cone photoreceptor progenitor cells (e.g., CRX-positive and TRβ2-positive cells, or CRX-positive and RXR-γ-positive cells) is at its maximum) is 11% or more, preferably 15% or more, and more preferably 20% or more of all cells contained in the neural retinal tissue. Alternatively, the concentration may be set so that the proportion of CRX-positive and TRβ2-positive cells in retinal tissue at that differentiation stage is 7% or more, preferably 10% or more, and more preferably 11% or more of all cells contained in the neural retinal tissue. When T3 is used as a substance acting on the thyroid hormone signaling pathway, it can be added to the medium at a concentration of, for example, 0.1 to 1000 nM, preferably 1 to 500 nM, more preferably 10 to 100 nM, even more preferably 30 to 90 nM, and even more preferably around 60 nM, which is a concentration that has thyroid hormone signaling enhancing activity equivalent to T3 at a concentration of 1 to 500 nM, more preferably 10 to 100 nM, even more preferably 30 to 90 nM, and even more preferably around 60 nM. When T4 is used as a substance acting on the thyroid hormone signaling pathway, it can be added to the medium at a concentration in the range of, for example, 1 nM to 500 μM, preferably 50 nM to 50 μM, and more preferably 500 nM to 5 μM.
[0094] Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway to be added may be set so that the proportion of photoreceptor precursor cells (CRX-positive cells) in retinal tissue at a differentiation stage at which rod photoreceptor precursor cells (or bipolar cells) begin to appear is 20% or more, preferably 25% or more, and more preferably 30% or more of all cells contained in the neural retinal tissue. Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway to be added may be set so that an average of two cells, preferably three or more cells, and more preferably four or more cells along a line perpendicular to the tangent to the apical surface of the retinal tissue at that differentiation stage become photoreceptor precursor cells (CRX-positive cells). Preferably, the concentration of the substance acting on the thyroid hormone signaling pathway to be added can be determined so that the retinal tissue at that differentiation stage contains ectopic photoreceptor precursor cells closer to the basement membrane than the NBL.
[0095] The timing for starting the culture in a medium containing a substance acting on the thyroid hormone signaling pathway is not particularly limited, as long as the culture is started at a differentiation stage that can reduce the proportion of PAX6-negative, strongly CHX10-positive cells (e.g., bipolar cells) and PAX6-positive, CHX10-negative cells (e.g., amacrine cells, ganglion cells, or horizontal cells) when the cells are differentiated and matured in a medium containing a substance acting on the thyroid hormone signaling pathway to the extent that Muller cells can be observed, and that can increase the proportion of photoreceptor precursor cells and / or photoreceptors. However, preferred examples of the timing include any of the above-mentioned differentiation stages that include neural retinal progenitor cells and immediately after the appearance of ganglion cells, up to the stage at which the appearance rate of cone photoreceptor precursor cells reaches its maximum. Here, the "differentiation stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum" specifically refers to retinal tissue at a differentiation stage at least one day before the "differentiation stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum." Furthermore, the timing for starting culture in a medium containing a substance acting on the thyroid hormone signaling pathway is preferably at an earlier differentiation stage than when the neural retinal tissue used as the raw material "contains neural retinal progenitor cells and is immediately after the appearance of ganglion cells." Therefore, the timing of the "differentiation stage up to when the appearance rate of cone photoreceptor progenitor cells reaches its maximum" is preferably at least 10 days, more preferably at least 20 days, even more preferably at least 30 days or at least 40 days before the differentiation stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum, and at which ganglion cells have appeared, i.e., from "the differentiation stage including neural retinal progenitor cells and is immediately after the appearance of ganglion cells" to "the stage at which photoreceptor progenitor cells or cone photoreceptor progenitor cells begin to appear." Furthermore, the differentiation stage immediately after the appearance of ganglion cells, i.e., the time when ganglion cells or cone photoreceptor precursor cells begin to appear, can be determined by suspension-culturing aggregates containing retinal tissue at a differentiation stage where neural retinal precursor cells are present but ganglion cells have not yet appeared in a culture medium, and identifying the time when ganglion cells, cone photoreceptor precursor cells, or cells positive for photoreceptor precursor cell markers first appear. Specifically, for example, retinal tissue undergoing differentiation is collected at regular intervals (e.g., every day) (e.g., 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, and 42 days after the start of culture), fixed with paraformaldehyde, etc., and then frozen sections are prepared. The frozen sections are stained with, for example, anti-BRN3 antibody, anti-CRX antibody, anti-TRβ2 antibody, anti-RXR-γ antibody, etc., and at the same time, cell nuclei are stained using DAPI or the like, and then the time when ganglion cells (BRN3-positive cells), cone photoreceptor precursor cells (CRX and RXR-γ, or CRX and TRβ2-positive cells), or photoreceptor precursor cells (CRX-positive cells) appear can be identified.
[0096] Furthermore, those skilled in the art can identify the differentiation stage at which the appearance rate of cone photoreceptor progenitor cells is at its maximum by immunostaining with a cone photoreceptor progenitor marker and nuclear staining with DAPI, for example. Specifically, for example, retinal tissue undergoing differentiation is collected at regular intervals (e.g., 1-20 days) (e.g., 40, 50, 60, 70, and 80 days after the start of culture), fixed with paraformaldehyde, or the like, and then frozen sections are prepared. The frozen sections are stained with, for example, an anti-CRX antibody, an anti-TRβ2 antibody, an anti-RXR-γ antibody, or the like, and cell nuclei are simultaneously stained with DAPI or the like, and the proportion of cone photoreceptor progenitor cells (i.e., cells expressing CRX and RXR-γ, or CRX and TRβ2) can be identified. By determining the proportion of cone photoreceptor progenitor marker-positive cells to the total number of cells during the specified period, i.e., the appearance rate, at multiple times, the period with the highest appearance rate of cone photoreceptor progenitor marker-positive cells can be identified as the "period when the appearance rate of cone photoreceptor progenitor cells reaches its maximum." Furthermore, by adding BrdU, EdU, or the like, which is incorporated into cells in the cell proliferation phase (here, retinal progenitor cells or neural retinal progenitor cells with the ability to proliferate), to the culture medium for a specific period (e.g., 1 to 7 days), and measuring the percentage of cells that have incorporated BrdU, EdU, or the like and differentiated into cells that express the above-mentioned cone photoreceptor progenitor markers by immunostaining or the like, which is well known to those skilled in the art, and determining the relationship between this percentage and the differentiation stage (e.g., the time (stage) at which this percentage is highest), it is possible to identify the "time at which the appearance rate of cone photoreceptor progenitors reaches its maximum." Specifically, the identification can be performed, for example, by the following procedure: 1) adding BrdU or EdU to a culture medium for culturing retinal tissue at any differentiation stage for one day at any time and culturing the tissue (for example, adding BrdU every other day and culturing for one day, for example, 40 to 41 days after the start of culture, 41 to 42 days after the start of culture, and 42 to 43 days after the start of culture, and repeating this process until 80 days after the start of culture), and measuring the proportion of CRX and RXR-γ positive cells or the proportion of CRX and TRβ2 positive cells among BrdU or EdU positive cells in the retinal tissue recovered immediately thereafter; 2) comparing the measurement results and identifying the retinal tissue in which the proportion of CRX and RXR-γ positive cells or the proportion of CRX and TRβ2 positive cells is highest among BrdU or EdU positive cells; and 3) A process of identifying the period (e.g., 1 day) during which BrdU or EdU is added to the culture medium when culturing retinal tissue that shows the highest increase in the proportion of CRX and RXR-γ positive cells or the highest increase in the proportion of CRX and TRβ2 positive cells among BrdU or EdU positive cells as the "period during which the appearance rate of cone photoreceptor progenitor cells reaches its maximum." Specifically, the "differentiation stage at which the appearance rate of cone photoreceptor precursor cells reaches a maximum" corresponds to 30 to 50 days, preferably 30 to 40 days, after the appearance of cone photoreceptor precursor cells is observed. In carrying out the method of the present invention, it is preferable to identify in advance the "time when the appearance rate of cone photoreceptor precursor cells reaches a maximum" using a medium that does not contain a substance acting on the thyroid hormone signaling pathway. When using cell aggregates prepared from pluripotent stem cells, and particularly when using retinal tissue produced by the methods described in Raw Material Production Methods 1 to 4, the timing for starting culture in a medium containing a substance acting on the thyroid hormone signaling pathway is specifically within 60 to 65 days after the initial appearance of photoreceptor precursor cells (within approximately 95 days after the start of suspension culture); preferably within 30 to 40 days after the initial appearance of photoreceptor precursor cells (within approximately 60 to 70 days after the start of suspension culture; the upper limit is the period up to the time when the appearance rate of cone photoreceptor precursor cells reaches a maximum); more preferably around the time when photoreceptor precursor cells first appear or earlier (within approximately 30 to 40 days after the start of suspension culture); and even more preferably immediately after the appearance of ganglion cells (approximately 28 to 33 days after the start of suspension culture). When using cell aggregates prepared from pluripotent stem cells, and particularly when using retinal tissue produced by the methods described in Raw Material Production Methods 5 to 7, the timing for starting culture in a medium containing a substance acting on the thyroid hormone signaling pathway is specifically within 60 to 65 days after the first appearance of photoreceptor precursor cells (within approximately 100 days after the start of suspension culture); preferably within 30 to 40 days after the first appearance of photoreceptor precursor cells (within approximately 65 to 75 days after the start of suspension culture; the upper limit is the period until the appearance rate of cone photoreceptor precursor cells reaches its maximum); more preferably around the time when photoreceptor precursor cells first appear or earlier (within approximately 35 to 42 days after the start of suspension culture); or immediately after the appearance of ganglion cells (approximately 33 to 38 days after the start of suspension culture).
[0097] Culturing in the presence of a thyroid hormone signaling pathway agonist is preferably continued for a period during which cone photoreceptor precursor cells emerge from the neural retinal progenitor cells. The period during which cone photoreceptor progenitor cells emerge can be determined by adding BrdU, EdU, or the like, which is taken up by proliferating cells in the target retinal tissue, to the culture medium, and then using an antibody to identify whether the cells that have taken up BrdU or EdU express a marker for cone photoreceptor progenitor cells. For example, if BrdU is added to the culture medium for a certain period (e.g., one day from day 30, one day from day 40, one day from day 50, one day from day 60, one day from day 70, one day from day 80, one day from day 90, etc.), and the retinal tissue is analyzed immediately thereafter, cells that are BrdU-positive and positive for the marker for cone photoreceptor progenitor cells are observed, the period during which BrdU was added can be identified as the period during which cone photoreceptor progenitor cells emerge. More specifically, the period includes 65 to 70 days after the differentiation stage when cone photoreceptor precursor cells first begin to differentiate. Furthermore, the period of culture in a medium containing a substance acting on the thyroid hormone signaling pathway includes a "period during which differentiation into bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells is possible." This period can be identified as the period during which new bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells emerge from neural retinal progenitor cells. Specifically, BrdU, EdU, or the like, which is incorporated into cells in retinal tissue at an early stage of development, is added to the culture medium, and the cells that have incorporated BrdU or EdU, etc. (here, neural retinal progenitor cells) are identified using antibodies to determine whether they express markers for amacrine cells, ganglion cells, and / or horizontal cells. For example, if BrdU is added to the medium for a certain period (e.g., one day from day 60, one day from day 70, one day from day 90, one day from day 110, one day from day 130 after the start of suspension culture), and the retinal tissue is analyzed immediately thereafter, and cells that are BrdU-positive and positive for markers for amacrine cells, ganglion cells, and / or horizontal cells are observed, the period during which BrdU was added (for example, one day in the case of one day) can be identified as the period (days) during which amacrine cells, ganglion cells, and / or horizontal cells can emerge. The time when amacrine cells, ganglion cells, and / or horizontal cells begin to appear can be determined by culturing aggregates containing retinal tissue in suspension in a culture medium and identifying the time when cells positive for amacrine cell, ganglion cell, and / or horizontal cell markers first appear. Examples of such markers include ganglion cell marker BRN3 and PTF1a, which is commonly expressed in the precursor cells of amacrine cells and horizontal cells.
[0098] Furthermore, the culture in the presence of a substance acting on the thyroid hormone signaling pathway is preferably continued for a period that allows differentiation of the neural retinal progenitor cells into PAX6-negative / strongly CHX10-positive cells, PAX6-positive / CHX10-negative cells, etc., i.e., bipolar cells, and any of amacrine cells, ganglion cells, and horizontal cells. Furthermore, when producing cone photoreceptor progenitor cells, the culture in the presence of a substance acting on the thyroid hormone signaling pathway may be continued until the desired cells are obtained. For example, the period from the differentiation stage when ganglion cells first begin to differentiate, i.e., immediately after their appearance (or the differentiation stage when photoreceptor precursor cells first begin to differentiate; for example, in the case of the above-mentioned raw material production methods 1 to 4, this corresponds to 30 to 40 days after the start of suspension culture, and in the case of the above-mentioned raw material production methods 5 to 7, this corresponds to 35 to 42 days after the start of suspension culture) to the differentiation stage when the appearance rate of cone photoreceptor precursor cells in the early developmental stage is at its maximum; preferably, from the differentiation stage when ganglion cells first begin to differentiate (or the differentiation stage when photoreceptor precursor cells first begin to differentiate) to the differentiation stage when bipolar cells (or rod photoreceptor precursor cells) begin to differentiate Here, the stage at which bipolar cells (or rod photoreceptor precursor cells) begin to appear can be determined by a person skilled in the art by using a conventional technique such as immunostaining to identify the stage at which cells that are strongly positive for CHX10, a bipolar cell marker, and negative for PAX6 begin to appear (or the stage at which cells that are NRL-positive and CRX-positive, rod photoreceptor precursor cell markers, begin to appear). Specifically, the stage at which bipolar cells (or rod photoreceptor precursor cells) begin to appear can be determined by using a conventional technique such as immunostaining to identify the stage at which cells that are strongly positive for CHX10, a bipolar cell marker, and negative for PAX6 begin to appear (or the stage at which cells that are NRL-positive and CRX-positive, rod photoreceptor precursor cell markers, begin to appear). This differentiation stage includes neural retinal progenitor cells at a stage of differentiating into bipolar cells (or rod photoreceptor progenitor cells) within 20 days, preferably within 15 days, more preferably within 10 days, and even more preferably within 5 days after the start of differentiation. Whether neural retinal progenitor cells are at the stage of differentiating into bipolar cells (or rod photoreceptor progenitor cells) can be determined by adding BrdU, EdU, or the like, which is taken up by neural retinal cells, which are proliferating cells in retinal tissue, to the culture medium, and checking whether the cells that have taken up BrdU or EdU, etc., express a marker for bipolar cells (or rod photoreceptor progenitor cells). For example, if retinal tissue is analyzed immediately after adding BrdU to the medium for a certain period (e.g., one day from day 90, 91, 92, 93, or 94 to day 110 after the start of suspension culture), and cells that are BrdU-positive and bipolar cell (or rod photoreceptor progenitor) marker-positive are observed, the period during which BrdU was added (or the day in the case of one day) can be identified as a stage containing neural retinal tissue at a stage of differentiation into bipolar cells (or rod photoreceptor progenitor cells).Alternatively, the stage may be identified as the stage at which bipolar cell (or rod photoreceptor precursor cell) marker-positive cells and BLIMP1-positive cells, which are known to be transiently expressed in photoreceptor precursor cells, are detected. In this case, since a substance acting on the thyroid hormone signaling pathway has the effect of suppressing the emergence of bipolar cells (or rod photoreceptor precursor cells), it is preferable to identify the stage in advance using a medium that does not contain a substance acting on the thyroid hormone signaling pathway. More specifically, the stage may be the period from 35 to 45 days after the differentiation stage at which ganglion cells first begin to differentiate (or the differentiation stage at which photoreceptor precursor cells first begin to differentiate); preferably, the period may be the period from 65 to 70 days after the differentiation stage at which ganglion cells first begin to differentiate (or the differentiation stage at which photoreceptor precursor cells first begin to differentiate). From the viewpoint of inhibiting the differentiation of rod photoreceptor precursor cells, it is preferable to add a substance acting on the thyroid hormone signaling pathway from the differentiation stage when ganglion cells first begin to differentiate, i.e., immediately after the appearance of ganglion cells (or the differentiation stage when photoreceptor precursor cells first begin to differentiate; corresponding to 30 to 45 days after the start of suspension culture), to the differentiation stage when the outer plexiform membrane is formed, i.e., until the expression of outer plexiform layer markers, preferably until the appearance of Müller cells, i.e., until the expression of Müller cell markers. More specifically, the period includes the period from the differentiation stage when ganglion cells first begin to differentiate, i.e., immediately after the appearance of ganglion cells (or the differentiation stage when photoreceptor precursor cells first begin to differentiate), up to 90 to 100 days later, preferably 150 to 160 days later. From the viewpoint of increasing the proportion of cone photoreceptor precursors and not decreasing the proportion of rod photoreceptor precursors, it is preferable to add a substance acting on the thyroid hormone signaling pathway during the period from the differentiation stage when ganglion cells first begin to differentiate, i.e., immediately after the appearance of ganglion cells (or the differentiation stage when photoreceptor precursors first begin to differentiate), to the differentiation stage when the appearance rate of cone photoreceptor precursors reaches a maximum. More specifically, this period includes 30 to 50 days, preferably 30 to 40 days, after the differentiation stage when ganglion cells first begin to differentiate (or the differentiation stage when photoreceptor precursors first begin to differentiate). Furthermore, the obtained retinal tissue can be continuously cultured in the presence of a substance acting on the thyroid hormone signaling pathway until it is used (for example, transplanted into a recipient). More specifically, this includes the period from the differentiation stage at which ganglion cells first begin to differentiate, i.e., immediately after the appearance of ganglion cells (or the differentiation stage at which photoreceptor precursor cells first begin to differentiate), to the stage at which retinal tissue containing photoreceptor precursor cells and / or photoreceptors can be transplanted into a recipient. In other words, culturing in the presence of a substance acting on the thyroid hormone signaling pathway until the final stage of producing a cell aggregate for transplantation is also a preferred embodiment. For example, retinal tissue at a "differentiation stage immediately after the appearance of ganglion cells" includes retinal tissue corresponding to about 27 to 40 days, preferably 28 to 37 days, and more preferably 28 to 33 days after the initiation of suspension culture when produced by the method described in the above-mentioned raw material production methods 1 to 4. When produced by the method described in the above-mentioned raw material production methods 5 to 7, examples of the retinal tissue include retinal tissue corresponding to about 33 to 45 days, preferably about 33 to 42 days, and more preferably 33 to 38 days after the initiation of suspension culture (corresponding to about 11 to 23 days, preferably 11 to 20 days, and more preferably 11 to 16 days after the initiation of culture in a serum-free medium or serum medium not containing a substance acting on the Wnt signaling pathway). For example, retinal tissue at the "differentiation stage when photoreceptor precursor cells first begin to differentiate" includes retinal tissue corresponding to about 30 to 45 days, preferably about 30 to 40 days, after the initiation of suspension culture when produced by the method described in the above-mentioned raw material production methods 1 to 4. When produced by the method described in any of the above-mentioned raw material production methods 5 to 7, includes retinal tissue corresponding to about 35 to 45 days, preferably about 35 to 42 days, after the initiation of suspension culture (corresponding to about 13 to 23 days, preferably 13 to 20 days, after the initiation of culture in a serum-free medium or serum medium not containing a substance acting on the Wnt signaling pathway).
[0099] Furthermore, in aggregates containing retinal tissue formed by the differentiation-inhibiting method of the present invention, the timing of outer plexiform layer formation, i.e., the timing of expression of outer plexiform layer markers, can be determined by measuring and comparing the presence or absence or level of PSD95 gene expression in the aggregates before and after culture after completion of suspension culture, as described above, using standard genetic engineering or biochemical techniques. Specifically, frozen sections of "aggregates containing retinal tissue" before and after culture are immunostained with an antibody against PSD95 protein, and the formation of an outer plexiform layer can be determined when a PSD95 protein-positive area is observed on the basement membrane side of the photoreceptor layer (external nuclear layer). Furthermore, the presence of Müller cells in aggregates containing retinal tissue formed by the differentiation-inhibiting method of the present invention can be determined by confirming, for example, the presence of CRALBP-positive cells and / or CRABP-positive cells.
[0100] Furthermore, one preferred embodiment of the present invention is a method for suppressing differentiation of bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells, by culturing retinal tissue that contains neural retinal progenitor cells and is at any stage of differentiation from the stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitors reaches its peak in a medium containing a substance that acts on the thyroid hormone signaling pathway, such as T3, in the neural retinal tissue at the stage at which the appearance rate of cone photoreceptor progenitors reaches its peak, thereby increasing the proportion of cone photoreceptor progenitor cells so that CRX-positive cells and CRX-positive and TRβ2-positive cone photoreceptor progenitor cells account for at least about 22% and at least about 11%, respectively, of the total number of cells contained in the retinal tissue. Furthermore, in a preferred embodiment of the present invention, retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from immediately after the appearance of ganglion cells to when the appearance rate of cone photoreceptor progenitors reaches its peak is cultured in a medium containing a substance acting on the thyroid hormone signaling pathway, such as T3, and a dorsalizing signaling substance, such as BMP or Cyclopamine-KAAD, thereby increasing the proportion of cone photoreceptor progenitor cells and suppressing differentiation of bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells in the neural retinal tissue at the stage when the appearance rate of cone photoreceptor progenitors reaches its peak, so that CRX-positive photoreceptor progenitor cells and CRX-positive and TRβ2-positive cone photoreceptor progenitor cells account for at least about 29% and at least about 15%, respectively, of the total number of cells contained in the retinal tissue.
[0101] In another preferred embodiment of the present invention, retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitors reaches its maximum is cultured in a medium containing a substance acting on the thyroid hormone signaling pathway, such as T3, thereby increasing the proportion of cone photoreceptor progenitor cells and suppressing the differentiation of bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells in retinal tissue that has differentiated to the extent that cells positive for Müller cell markers, such as CRABP and CRALBP, are observed, so that CRX-positive photoreceptor progenitor cells and CRX-positive, RXR-γ-positive, and NRL-negative cone photoreceptor progenitor cells account for at least about 53% and at least about 44%, respectively, of the total number of cells contained in the retinal tissue. In a preferred embodiment of the present invention, retinal tissue containing neural retinal progenitor cells and at any stage of differentiation from immediately after the appearance of ganglion cells to when the appearance rate of cone photoreceptor progenitors reaches its maximum is cultured in a medium containing a substance acting on the thyroid hormone signaling pathway, such as T3, and a dorsalizing signaling substance, such as BMP or Cyclopamine-KAAD, thereby increasing the proportion of cone photoreceptor progenitor cells and suppressing the differentiation of bipolar cells, amacrine cells, ganglion cells, and / or horizontal cells in retinal tissue at a stage of differentiation where cells positive for Müller cell markers, such as CRABP and CRALBP, are observed, so that CRX-positive photoreceptor progenitor cells or CRX-positive, RXR-γ-positive, and NRL-negative cone photoreceptor progenitor cells each account for approximately 50% or more of the total number of cells contained in the retinal tissue.
[0102] Furthermore, in the method of the present invention for inhibiting differentiation of ganglion cells, amacrine cells, horizontal cells, and / or bipolar cells, culturing in a medium containing T3, a substance acting on the thyroid hormone signaling pathway, and / or Cyclopamine-KAAD, a dorsalizing signaling substance, can further reduce the proportion of PAX6-positive, CHX10-negative cells without changing the proportion of strongly CHX10-positive, PAX6-negative cells (see, for example, Example 8).When culturing in a medium containing both a dorsalizing signaling substance and a substance acting on the thyroid hormone signaling pathway, the order in which these substances are added to the culture medium is not particularly limited and does not matter.
[0103] The retinal tissue and neural retinal tissue in the differentiation-inhibiting method of the present invention include retinal tissue and neural retinal tissue derived from stem cells. Here, the stem cells include the above-mentioned pluripotent stem cells or stem cells derived from the retina in vivo. The pluripotent stem cells are preferably ES cells or induced pluripotent stem cells (iPS cells).
[0104] 5. Addition of Dorsalization Signaling Substances In the methods of the present invention for inhibiting differentiation of ganglion cells and the like (items [1] to
[12] above and item 4 above) and methods for producing neural retinal tissue (items
[13] to
[26] above and item 6 below) (hereinafter collectively referred to as the methods of the present invention), culturing in a medium containing a dorsalizing signaling substance, regardless of whether or not a substance acting on the thyroid hormone signaling pathway is added, can promote the emergence of cone photoreceptor precursors and increase the proportion of photoreceptor precursors and / or cone photoreceptor precursors compared to when a dorsalizing signaling substance is not added. In other words, compared to a method in which the substance acting on the thyroid hormone signaling pathway is used alone, culturing in a medium containing a dorsalizing signaling substance in combination with a substance acting on the thyroid hormone signaling pathway can further increase the proportion of cone photoreceptor precursors among photoreceptor precursors in retinal tissue and reduce the proportion of at least one of bipolar cells, amacrine cells, ganglion cells, horizontal cells, and their precursors, or the total number of these cells. The method, timing, and duration of addition of the dorsalizing signal transduction substance are described below. The method, timing, and duration of addition of the dorsalizing signal transduction substance can be determined independently of whether or not a substance acting on the thyroid hormone signal transduction pathway is added, and the method, timing, and duration of addition. By culturing retinal tissue from the early developmental stage to the stage where the appearance rate of cone photoreceptor precursors is maximized in a medium containing a dorsalization signaling substance at a concentration sufficient to suppress the expression of ventral markers, it is possible to increase the proportion of photoreceptor precursors contained in the retinal tissue and cone photoreceptor precursors among photoreceptors. The concentration of the dorsalization signaling substance is preferably sufficient to not induce the expression of the most dorsal markers. Specific examples of the "ventral marker" include VAX2, COUP-TF I, and ALDH1A3.
[0105] The "most dorsal marker" refers to a marker expressed in cells present in the most dorsal region of retinal tissue during development, and can also be considered a marker whose expression is increased by excessive or relatively strong dorsalizing signals. Specific examples of the most dorsal marker in retinal tissue include RPE65, MITF, and COUP-TF II, which are expressed in cells differentiated into retinal pigment epithelium or its precursor cells by excessive dorsalizing signals, and preferably COUP-TF II, which is expressed in neural retinal tissue by relatively strong dorsalizing signals. Here, the "concentration sufficient to suppress the expression of ventral markers" can be easily determined by those skilled in the art. For example, using techniques such as immunostaining using antibodies against the ventral markers, regions in retinal tissue at any stage from the stage at which photoreceptor precursor cells first appear to the stage at which the rate of appearance of cone photoreceptor precursor cells is maximized, for example, at the stage at which the rate of appearance of cone photoreceptor precursor cells is maximized, where the expression of the ventral markers is observed compared to when the dorsalizing signaling substance is not added, can be analyzed using image analysis software such as ImageJ. The concentration of the dorsalizing signaling substance that increases the region where the expression is suppressed can be determined as the appropriate concentration for increasing the proportion of cone photoreceptor precursor cells. That is, the concentration of the dorsalizing signaling substance to be added can be determined so that the region in which the expression of the ventral markers is observed in neural retinal tissue containing photoreceptor precursor cells and / or photoreceptors is 50% or less, preferably 20% or less, more preferably 1% or less, and even more preferably 0.01% or less. Alternatively, retinal tissue that has been ventralized by a ventralizing signaling substance, a BMP signaling pathway inhibitor, and in which ventral markers such as ALDH1A3 are highly expressed can be used as an indicator, and the concentration of the dorsalizing signaling substance to be added can be determined so that the gene expression level of ALDH1A3 is 50% or less, preferably 20% or less, and more preferably 5% or less compared to this.
[0106] Furthermore, a "concentration that does not induce the most dorsal marker" can be determined appropriately by one skilled in the art. For example, using a technique such as immunostaining using an antibody against the most dorsal marker, the region in which expression of the most dorsal marker is observed in retinal tissue at the stage where the appearance rate of cone photoreceptor precursor cells is at its maximum can be analyzed using image analysis software such as ImageJ, and the concentration of the dorsalizing signal transduction substance can be determined appropriately so that the region in which induced expression of the most dorsal marker is not observed (here, "no induced expression" means that the expression level is 1 / 5 or less, preferably 1 / 10 or less, and more preferably 1 / 50 or less of the expression level in the most dorsal neural retinal tissue in the living body) accounts for 50% or more, preferably 80% or more, more preferably 90% or more, and even more preferably 99% or more of the neural retinal tissue.
[0107] One embodiment is a method for increasing the proportion of photoreceptor precursors contained in retinal tissue and cone photoreceptor precursors among photoreceptors, which method includes a step of culturing retinal tissue from the early developmental stage to the stage at which the appearance rate of cone photoreceptor precursors is maximized in a medium containing a dorsalization signaling substance at a concentration sufficient to promote the expression of dorsal markers. Those skilled in the art can easily determine the "concentration sufficient to promote expression of dorsal markers." For example, it can be easily determined by analyzing the expression levels of the proteins or genes (mRNA) of the dorsal markers. Specifically, various concentrations of dorsalization signaling substances are added to the medium, and the concentration at which the dorsal expression level or gene expression level is highest can be determined by immunostaining or quantitative PCR. For example, the concentration of the dorsalization signaling substance may be determined so that it is at a concentration at which the expression of CYP26A1 and / or CYP26C1 is most strongly induced. Specifically, the concentration is such that the expression level of CYP26A1 is at least 1.2-fold, preferably at least 1.5-fold, and more preferably at least 2-fold higher than in retinal tissue ventrally transformed with the above-mentioned BMP signaling pathway inhibitor and in which CYP26A1 expression has been suppressed. However, when determining the concentration of the dorsalization signaling substance based on the expression level of CYP26A1 and / or CYP26C1, it is preferable to determine the concentration using a medium substantially free of retinoic acids, since retinoic acids such as all-trans retinoic acid and 9-cis retinoic acid excessively induce the expression of these genes regardless of the degree of dorsalization, making it difficult to determine the concentration of the dorsalization signaling substance.
[0108] On the other hand, in the case of ALDH1A1, ALDH1A1 is weakly expressed in the CYP26A1-positive region, but its expression level increases continuously as it approaches the dorsal side. That is, ALDH1A1 is a marker that is more highly expressed in the COUP-TF II-positive region, which is the most dorsal region of the neural retina tissue, than in the CYP26A1- or CYP26C1-positive region. Therefore, it is desirable that ALDH1A1 expression is not too high. Specifically, at the stage where the appearance rate of cone photoreceptor progenitors is at its maximum, the frequency of ALDH1A1-positive cells is approximately 1% or less. That is, it is desirable to adjust the concentration of the dorsalization signaling substance so that ALDH1A1 expression is sufficiently low at that stage. Here, the "concentration at which ALDH1A1 expression is sufficiently low" can be determined by those skilled in the art. For example, retinal tissue at the stage where the incidence of cone photoreceptor precursor cells is at its maximum can be analyzed using a commonly performed immunostaining technique, such as an antibody against ALDH1A1, and image analysis software, such as ImageJ, to determine the ALDH1A1-expressing region, which accounts for 50% or less, preferably 20% or less, more preferably 10% or less, and even more preferably 1% or less of the neural retinal tissue in the retinal tissue. Alternatively, the gene expression level in such retinal tissue can be measured by quantitative PCR or other methods. Specifically, the addition of BMP4 at a relatively high concentration, for example, 0.45 nM to 1.35 nM, induces excessive ALDH1A1 expression. Therefore, the ALDH1A1 expression level can be determined to be 30%, more preferably 15%, and even more preferably 10% or less compared to when differentiation is induced with the addition of 1.35 nM BMP4.
[0109] In one embodiment of the present invention, examples of a "dorsalizing signal transduction substance at a concentration sufficient to suppress the expression of ventral markers without inducing the expression of the most dorsal marker" include a dorsalizing signal transduction substance at a concentration that suppresses the ratio of OC2-expressing cells to the total number of cells in the neural retina at a stage when the incidence of cone photoreceptor precursors relative to the total number of cells in the retina is at its maximum by about 20% to 70%, preferably about 30% to 70%, and more preferably about 50% to 65% compared to the case without the dorsalizing signal transduction substance, or by about 30% to 60%, preferably about 40% to 50% compared to the case with the addition of the BMP signal transduction pathway inhibitor. Alternatively, examples of a dorsalizing signal transduction substance at a concentration that suppresses the expression of OC2 protein in OC2-positive cells by an average of about 20% to 70%, preferably about 30% to 70%, and more preferably about 30% to 40% compared to the case without the dorsalizing signal transduction substance and / or the case with the BMP signal transduction pathway inhibitor. Here, the proportion of OC2-positive cells in neural retinal tissue can be determined by performing immunostaining or the like using an anti-OC2 antibody, DAPI, or the like, which is routinely performed by those skilled in the art, measuring the number of OC2-positive cells, the number of DAPI-positive cells, or the like, and identifying the proportion of OC2-positive cells in neural retinal tissue. The expression level of OC2 protein can be determined by performing immunostaining or the like using an anti-OC2 antibody, DAPI, or the like, which is routinely performed by those skilled in the art, and analyzing the area stained with the anti-OC2 antibody using image analysis software such as ImageJ, thereby identifying the signal intensity of OC2-positive cells. Alternatively, the proportion of OC2-positive cells in neural retinal tissue and / or the expression level of OC2 protein in OC2-positive cells can be determined by routine flow cytometry analysis using an antibody against OC2 protein. Furthermore, when a substance acting on the thyroid hormone signaling pathway is added to the medium, the number of OC2-positive cells increases while the average expression level of OC2 protein decreases. Therefore, when determining the concentration of a dorsalizing signaling substance, it is recommended to determine it in advance using a medium that does not contain a substance acting on the thyroid hormone signaling pathway. On the other hand, when determining the concentration of dorsalization signaling substances using ALDH1A1, ALDH1A3, COUP-TFI, COUP-TF II, etc. as indicators, substances acting on the thyroid hormone signaling pathway may be added to the culture medium. However, because the effects of substances acting on the thyroid hormone signaling pathway on ventralization and dorsalization are unknown, it is preferable to determine the concentration of the dorsalization signaling substance in advance using a culture medium that does not contain substances acting on the thyroid hormone signaling pathway. Furthermore, those skilled in the art can identify the "stage at which photoreceptor progenitor cells first appear" by immunostaining with a photoreceptor progenitor marker and / or a cone photoreceptor progenitor marker, nuclear staining with DAPI, or the like. Specifically, for example, retinal tissue undergoing differentiation is fixed with paraformaldehyde or the like, and then frozen sections are prepared. The frozen sections are stained with, for example, a CRX antibody, a TRβ2 antibody, an RXR-γ antibody, or the like, and simultaneously cell nuclei are stained with DAPI or the like, and the stage at which photoreceptor progenitor cells and / or cone photoreceptor progenitor cells first appear in the retinal tissue can be identified.
[0110] Furthermore, the above-mentioned "stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum" can be identified by a person skilled in the art using immunostaining with a photoreceptor progenitor marker and / or a cone photoreceptor progenitor marker and nuclear staining with DAPI, or the like. Specifically, for example, retinal tissue undergoing differentiation is collected at regular intervals (e.g., 1-20 days) (e.g., 40, 50, 60, 70, and 80 days after the start of culture), fixed with paraformaldehyde, and then frozen sections are prepared. The frozen sections are stained with, for example, CRX, TRβ2, or RXR-γ antibodies, and cell nuclei are simultaneously stained with DAPI or other antibodies. The proportion of cone photoreceptor progenitor cells (i.e., cells expressing CRX and RXR-γ, or CRX and TRβ2) relative to the total number of cells contained in the neural retina is then determined. The proportion of cone photoreceptor progenitor marker-positive cells relative to the total number of cells, i.e., the appearance rate, is determined at multiple time points. The period with the highest proportion of cone photoreceptor progenitor marker-positive cells can be identified as the "stage at which the appearance rate of cone photoreceptor progenitor cells is at its maximum." Alternatively, BrdU, EdU, or the like, which is incorporated into cells in the cell proliferation phase (here, retinal progenitor cells or neural retinal progenitor cells with the ability to proliferate), can be added to the culture medium for a specific period (e.g., 1 to 7 days), and the proportion of cells that have incorporated BrdU or EdU, etc., that have differentiated into cells expressing the above-mentioned cone photoreceptor progenitor markers can be measured by immunostaining or other methods well known to those skilled in the art. From these proportions, the period when the proportion of cone photoreceptor progenitor cells is highest can be determined, thereby identifying the "stage at which the proportion of cone photoreceptor progenitor cells is maximized." Specifically, for example, BrdU or EdU can be added to a culture medium for culturing retinal tissue at any differentiation stage for one day, and the retinal tissue recovered the next day can be used to measure the proportion of CRX and RXR-γ positive cells or the proportion of CRX and TRβ2 positive cells among BrdU- or EdU-positive cells. The day on which BrdU or EdU is added, when the proportion in the neural retinal tissue is highest, can be identified as the "stage at which the appearance rate of cone photoreceptor precursor cells is at its maximum." Specifically, the "stage at which the appearance rate of cone photoreceptor precursor cells reaches a maximum" corresponds to 30 to 50 days, preferably 30 to 40 days, after the appearance of cone photoreceptor precursor cells is observed.
[0111] In the method of the present invention, the step of culturing in a medium containing a dorsalization signaling substance may be carried out at any time between the "early developmental stage" and the "stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum," and there are no limitations on the timing or duration of the start of the step as long as it is within this period. The step is preferably started within about 40 days of the early developmental stage, more preferably within 20 days, and even more preferably at the early developmental stage.
[0112] The medium used to culture retinal tissue at an early stage of development in the presence of a dorsalization signaling substance is not particularly limited, as long as it does not contain a substance that inhibits the effect of the dorsalization signaling substance in an amount sufficient to inhibit said effect. Commercially available cell culture media to which additives have been added as needed can be used. Preferably, the medium is one that can maintain the continuous epithelial structure of the retinal tissue. Specific examples of media that can be used include media supplemented with Wnt2b, Neurobasal medium, and media containing Neurobasal medium, and Neurobasal medium supplemented with Wnt2b is also acceptable. Alternatively, a medium for maintaining continuous epithelial tissue, as described below, can be used.
[0113] The medium may or may not contain retinoids (e.g., retinoic acid or a derivative thereof), and in one embodiment, it may contain 9-cis retinoic acid. A more preferred embodiment is a medium that is substantially free of retinoids, preferably retinoids that are biosynthesized by ALDH1A3 and inhibit the differentiation of cone photoreceptor precursor cells. Specific examples of retinoids that are biosynthesized by ALDH1A3 and inhibit the differentiation of cone photoreceptor precursor cells include all-trans retinoic acid (also known as atRA).
[0114] The concentration of the dorsalizing signal transduction substance contained in the medium may be a concentration that activates the BMP signal transduction pathway to a degree that does not inhibit the emergence of cone photoreceptor precursor cells. The concentration of the dorsalizing signal transduction substance that does not inhibit the emergence of cone photoreceptor precursor cells can be appropriately determined based on factors such as the proportion of cone photoreceptor precursor cells that appear in the neural retinal tissue. Specifically, the concentration should be set so that, 30 to 50 days, preferably 30 to 40 days after the initial emergence of photoreceptor precursor cells, an average of 10% or more, preferably 13% or more, and more preferably 16% or more of the total number of cells in the neural retinal tissue become photoreceptor precursor cells. Specifically, when a substance acting on the BMP signal transduction pathway, particularly BMP4, is used as the dorsalizing signal transduction substance, BMP4 is preferably used at a concentration of 0.01 nM to 0.90 nM, more preferably 0.05 nM to 0.45 nM. The concentration of the dorsalization signaling substance contained in the medium may be a concentration that activates the Wnt signaling pathway to an extent that does not induce the appearance of retinal pigment epithelial cells, specifically, a concentration of 0.01 nM to 0.90 nM, preferably 0.05 nM to 0.45 nM, that activates the Wnt signaling pathway to an extent equivalent to that of BMP4. When the medium is substantially free of exogenous retinoids such as 9-cis retinoic acid, the dorsalization signaling substance contained in the medium is preferably 0.05 nM to 0.15 nM, more preferably 0.1 nM to 0.15 nM BMP4. Alternatively, a substance acting on the Wnt signaling pathway may be applied at a concentration that exerts the same BMP signaling pathway activation effect as BMP4, preferably 0.05 nM to 0.15 nM, more preferably 0.1 nM to 0.15 nM. When the medium contains a retinoid such as 9-cis retinoic acid, the dorsalization signaling substance contained in the medium is preferably 0.15 nM to 0.90 nM, more preferably 0.15 nM to 0.45 nM BMP4. Alternatively, the substance acting on the Wnt signaling pathway may be applied at a concentration that exerts the same BMP signal activation effect as BMP4, preferably 0.15 nM to 0.90 nM, more preferably 0.15 nM to 0.45 nM.
[0115] Furthermore, dorsalization signaling substances include SHH signaling pathway inhibitors that inhibit ventralization signaling. Examples of SHH signaling pathway inhibitors include SHH receptor antagonists, SHH dominant negatives, antibodies against SHH signaling pathway agonists, and soluble SHH receptors. Specific examples of SHH signaling pathway inhibitors include GANT58, GANT61, Jervine, SANT-1, veratramine, cyclopamine, and cyclopamine-KAAD (GENES & DEVELOPMENT 16:2743-2748). A preferred example of an SHH signaling pathway inhibitor is cyclopamine-KAAD. The concentration of cyclopamine-KAAD contained in the medium is specifically 0.01 μM to 5 μM, and more preferably 0.2 μM to 1 μM. Furthermore, the dorsalization signaling substance may be a combination of the above-mentioned substance acting on the BMP signaling pathway, the above-mentioned substance acting on the Wnt signaling pathway, and / or the above-mentioned SHH signaling pathway inhibitor that inhibits ventralization signaling. When the above-mentioned SHH signaling pathway inhibitor that inhibits ventralization signaling is used as the dorsalization signaling substance, it is preferably used in combination with the above-mentioned substance acting on the BMP signaling pathway and / or the above-mentioned substance acting on the Wnt signaling pathway to prepare retinal tissue containing a higher proportion of cone photoreceptor precursor cells.
[0116] The period of culture in a medium containing a dorsalizing signal transduction substance should be such that the effect of the dorsalizing signal transduction substance continues until the time when rod photoreceptor precursor cells appear when cultured in the absence of the dorsalizing signal transduction substance, and can be set appropriately to typically 4 days or more, preferably 20 days or more, and more preferably 70 days or more. Specifically, the culture can be performed for, for example, 50 to 170 days. More specifically, the culture can be performed for 70 to 100 days, but from the viewpoint of suppressing the appearance of rod photoreceptor precursor cells, a longer period of addition is preferable. Furthermore, cone photoreceptor progenitor cells can be matured into L cone photoreceptors, M cone photoreceptors, and S cone photoreceptors. Preferably, cone photoreceptor progenitor cells can be cultured in the presence of a dorsalizing signal transduction substance to obtain neural retinal tissue rich in L cone photoreceptors and M cone photoreceptors. In this case, it is more preferable to differentiate into L cone photoreceptors and M cone photoreceptors in combination with a substance acting on the thyroid hormone signaling pathway, and it is preferable to differentiate into S cone photoreceptors in a medium substantially free of a substance acting on the thyroid hormone signaling pathway. It is even more preferable to differentiate into S cone photoreceptors in a serum-free medium. Furthermore, to induce selective differentiation into L-cone photoreceptors or M-cone photoreceptors, a BMP4 signal transduction substance is preferably used as the dorsalization signal transduction substance, and is added to the culture medium at a final concentration of 0.01 nM to 100 nM, preferably 0.05 nM to 10 nM, and more preferably 0.1 nM to 1.5 nM. When T3 is used as the substance acting on the thyroid hormone signal transduction pathway, it may be used at a concentration of 0.01 nM to 100 nM, preferably 0.5 nM to 10 nM, and more preferably 2 nM to 10 nM. When T4 is used as the substance acting on the thyroid hormone signal transduction pathway, it may be used at a concentration of T4 that exhibits the same effect as T3. The period of culture in which the dorsalization signal transduction substance and the substance acting on the thyroid hormone signal transduction pathway are combined is not particularly limited, but is usually 50 days or more, preferably 70 days or more, more preferably 100 days or more, and even more preferably 150 days or more. Regarding the timing of initiating culture with a dorsalizing signal transduction substance and a substance acting on the thyroid hormone signaling pathway in combination, the culture is preferably initiated 100 days or more, preferably 150 days or more, after the initial appearance of photoreceptor precursor cells, and the culture is continued until usually 250 days, preferably 300 days, more preferably 400 days or more after the initial appearance of photoreceptor precursor cells. Furthermore, to mature cone photoreceptor precursor cells into L-cone photoreceptors or M-cone photoreceptors, it is preferable to co-culture them with retinal pigment epithelium, or to use a conditioned medium (condition medium) obtained after culturing retinal pigment epithelium. Conversely, photoreceptor precursor cells (cone photoreceptor precursor cells or cone photoreceptors, rod photoreceptor precursor cells or rod photoreceptors) in retinal tissue can be maintained in a state in which they do not differentiate into L cone photoreceptors, M cone photoreceptors, and / or S cone photoreceptors, do not express or produce molecules necessary for light responses, such as visual pigments, and do not reach final maturation. Since photoreceptor precursor cells are known to connect to bipolar cells as they mature, this can suppress the connection between photoreceptor precursor cells and bipolar cells in the transplanted retinal tissue, thereby increasing the connection efficiency between photoreceptor precursor cells in the prepared retinal tissue and bipolar cells of the recipient when the retinal tissue is transplanted. Specifically, a state in which they do not reach final maturation can be maintained by culturing them in a medium that does not contain glutamate, more preferably a medium that does not contain glutamate or aspartate, and even more preferably a medium that does not contain neurotransmitters such as glutamate or aspartate. Even more preferably, the cells can be maintained in a state not reaching final maturation by culturing them in a medium containing serum, specifically a medium containing 5% or more, preferably 10% or more, of serum. More specifically, such a medium includes a medium for maintaining continuous epithelial tissue, which will be described later. The serum used here is not particularly limited, but a specific example is fetal bovine serum (FBS). In other words, a method for suppressing the final maturation of photoreceptor progenitor cells, which includes a step of culturing retinal tissue containing photoreceptor progenitor cells in a medium that does not contain neurotransmitters and contains serum, also falls within the scope of the present invention.
[0117] Alternatively, the above-mentioned substance acting on the Wnt signaling pathway can be used as the dorsalization signaling substance. In this case, specifically, the following steps (1) and (2) may be repeated: (1) adding the substance acting on the Wnt signaling pathway to a medium and culturing for 1 to 5 days, preferably 1 to 3 days; (2) The cells are cultured for 1 to 15 days, 1 to 10 days, preferably 1 to 7 days or 5 to 10 days in a medium that is substantially free of the above-mentioned substance acting on the Wnt signaling pathway, thereby allowing the intensity of the Wnt signal to be adjusted.
[0118] 6. Method for producing neural retinal tissue In one aspect of the present invention, a method for producing ... (1) A step of culturing retinal tissue at an early stage of development in a culture medium to obtain retinal tissue that contains neural retinal progenitor cells and is at any stage of differentiation from the differentiation stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum; (2) A method for producing mature neural retinal tissue or neural retinal tissue that can be matured into mature neural retinal tissue, comprising the step of culturing the retinal tissue obtained in step (1) in a medium containing a substance acting on the thyroid hormone signaling pathway. Another aspect of the present invention is a method for producing mature neural retinal tissue or neural retinal tissue that can be matured into mature neural retinal tissue, wherein the medium in step (1) and / or the medium in at least a part of step (2) contains a dorsalization signaling substance at a concentration sufficient to suppress the expression of ventral markers. That is, the method comprises the following steps: (1) A step of culturing retinal tissue at an early stage of development in a culture medium to obtain retinal tissue that contains neural retinal progenitor cells and is at any stage of differentiation from the differentiation stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum; (2) A method for producing mature neural retinal tissue or neural retinal tissue that can mature into mature neural retinal tissue, which includes a step of culturing the retinal tissue obtained in step (1) in a medium containing a substance that acts on the thyroid hormone signaling pathway, wherein the medium in step (1) and / or the medium in at least a part of step (2) is a medium containing a dorsalizing signaling substance at a concentration sufficient to suppress the expression of ventral markers. The following is an explanation.
[0119] In step (1) above, the method for producing "retinal tissue at an early stage of development" is as described in section 2 above. Furthermore, the step of obtaining "retinal tissue containing neural retinal progenitor cells and at a differentiation stage immediately after the appearance of ganglion cells" in step (1), or "retinal tissue at a differentiation stage from that differentiation stage until the appearance rate of cone photoreceptor progenitor cells reaches a maximum" is as described in section 3 above. A specific embodiment of the step of culturing in a medium containing a substance acting on the thyroid hormone signaling pathway in step (2) above is as described in section 4 above. The concentration, addition method, timing, and duration of the "dorsalization signaling substance at a concentration sufficient to suppress the expression of ventral markers" in steps (1) and / or (2) above are as described in 5. above.
[0120] "Mature neural retinal tissue" refers to neural retinal tissue that contains cone photoreceptor precursor cells and / or cone photoreceptors, rod photoreceptor precursor cells and / or rod photoreceptors, ganglion cells, amacrine cells, horizontal cells, bipolar cells, and Muller cells, and forms a layered structure. In one embodiment, mature neural retinal tissue that can be prepared by the methods described herein has the following characteristics: (i) Contains Müller cells; (ii) the proportion of bipolar cells (specifically, PAX6-negative and strongly CHX10-positive cells), ganglion cells, amacrine cells, and horizontal cells (specifically, PAX6-positive and CHX10-negative cells) to the total number of cells is 30% or less, preferably 25% or less, more preferably 20% or less, and even more preferably 14% or less; (iii) the ratio of ganglion cells, amacrine cells, and horizontal cells (specifically, PAX6-positive and CHX10-negative cells) to the total number of cells is 30% or less, preferably 20% or less, more preferably 15% or less, and even more preferably 10% or less; (iv) bipolar cells (specifically, PAX6-negative and strongly CHX10-positive cells) are 10% or less, preferably 5% or less, of the total number of cells; and (v) the proportion of CRX-positive photoreceptor precursors and photoreceptors in the total cell population is 40% or more, preferably 50% or more, more preferably 53% or more, more preferably 57% or more, and even more preferably 66% or more; (vi) the ratio of cone photoreceptor precursors and cone photoreceptors to photoreceptor precursors and photoreceptors is 70% or more; (vii) The presence of ectopic photoreceptor precursor cells or photoreceptors in the region corresponding to the basement membrane side of the external nuclear layer; (viii) containing CRABP or CRALBP-positive cells; and (ix) the number of RXR-γ-positive and NRL-negative cells among CRX-positive cells is 32% or more, preferably 40% or more, more preferably 54% or more, and even more preferably 57%; Examples include neural retinal tissue having "Neural retinal tissue that can mature into mature neural retinal tissue" is not limited to any particular neural retinal tissue, as long as it can be cultured under appropriate conditions to differentiate and mature cells into the same proportions and structure as those constituting the "mature neural retinal tissue." The phrase "at least a part of step (2)" when adding a dorsalization signaling substance refers to any period included in step (2), and there is no limitation on the length of the period. The period may be continuous or intermittent. Specifically, the cells can be cultured in a medium containing a dorsalization signal transduction substance for the entire period of step (1), a portion of step (2), the entire period of step (2), the entire period of step (1) and a portion of step (2), or the entire period of step (1) and the entire period of step (2).
[0121] In step (1), the appearance of neural retinal progenitor cells can be detected using well-known markers such as RX, PAX6, and CHX10, and the number of days required for step (1) can be set appropriately. For example, when pluripotent stem cells are used as a raw material to form aggregates containing retinal tissue by suspension culture using the methods described in the above-mentioned raw material production methods 1 to 4, this corresponds to 12 to 18 days, specifically, for example, 15 to 18 days, after the start of suspension culture. Furthermore, when pluripotent stem cells are used as a raw material and aggregates containing retinal tissue are formed by suspension culture using the methods described in raw material production methods 5, 6, and / or 7 above, this corresponds to days 22 to 30, specifically, for example, days 22 to 25 (corresponding to about days 0 to 8, specifically days 0 to 3, from the start of culture in serum-free medium or serum medium not containing a substance acting on the Wnt signaling pathway). The appearance of ganglion cells can be detected using well-known markers such as BRN, and the number of days required for step (1) can be set appropriately. For example, when pluripotent stem cells are used as a raw material to form aggregates containing retinal tissue by suspension culture using the methods described in the above-mentioned raw material production methods 1 to 4, the stage at which ganglion cells appear, i.e., the differentiation stage immediately after the appearance of ganglion cells, corresponds to 27 to 40 days, preferably 28 to 37 days, and more preferably 28 to 33 days after the start of suspension culture. For example, when pluripotent stem cells are used as a raw material and suspension cultured to form aggregates containing retinal tissue using the methods described in raw material production methods 5, 6, and / or 7, this corresponds specifically to 33 to 45 days, preferably about 33 to 42 days, and more preferably 33 to 38 days, after the start of suspension culture (corresponding to about 11 to 23 days, preferably 11 to 20 days, and more preferably 11 to 16 days, after the start of culture in serum-free medium or serum medium not containing a substance acting on the Wnt signaling pathway). Furthermore, the differentiation stage immediately after the appearance of ganglion cells refers to a stage in which, after the appearance of ganglion cells, the proportion of neural retinal progenitor cells detected using well-known markers such as RX, PAX6, and CHX10 is 30% or more of the total number of cells, preferably 50% or more, more preferably 70% or more, even more preferably 80% or more, even more preferably 90% or more, and particularly preferably 99% or more, and the proportion of ganglion cells positive for ganglion cell markers (preferably BRN3 positive) is 40% or less of the total number of cells, preferably 20% or less, 10% or less, 5% or less, more preferably 1% or less, even more preferably 0.1% or less, and even more preferably 0.01% or less, or a differentiation stage within about 10 days, preferably within about 5 days, more preferably within 1 day, and even more preferably within 1 hour after the appearance of ganglion cells.
[0122] In one embodiment of the present invention, when T3 is used as the substance acting on the thyroid hormone signaling pathway in step (2), it can be added to the medium at a concentration ranging from 0.1 nM to 1000 nM, preferably 1 to 500 nM, more preferably 10 to 100 nM, even more preferably 30 to 90 nM, and even more preferably around 60 nM. Specifically, the concentration of the substance acting on the thyroid hormone signaling pathway may be a concentration that exhibits thyroid hormone signaling enhancing activity equivalent to a T3 concentration of 0.1 to 1000 nM, preferably 1 to 500 nM, more preferably 10 to 100 nM, even more preferably 30 to 90 nM, and even more preferably around 60 nM. The thyroid hormone signaling enhancing activity referred to here can be appropriately set, for example, as a concentration that suppresses the differentiation of bipolar cells, amacrine cells, ganglion cells, or horizontal cells, as described above, but does not suppress the differentiation of photoreceptor precursor cells. Specifically, for example, in neural retinal tissue at a late differentiation stage where Müller cells have appeared (e.g., when retinal tissue produced by the methods described in the above-mentioned Raw Material Production Methods 1-3, 4, and 5-7 is used as the raw material, this corresponds to approximately 180-200 days after the initiation of suspension culture), the concentration of the substance acting on the thyroid hormone signaling pathway can be set so that the proportion of PAX6-negative / strongly CHX10-positive cells is 8% or less, preferably 6% or less, and more preferably 5% or less. Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway can be set so that the proportion of PAX6-positive / CHX10-negative cells is 30% or less, preferably 20% or less, more preferably 15% or less, and even more preferably 10% or less. Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway can be set so that the proportion of photoreceptors (or photoreceptor precursor cells) is 40% or more, preferably 45% or more, more preferably 50% or more, and even more preferably 57% or more, or 66% or more.
[0123] Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway may be determined to be at a level at which ectopic photoreceptor precursor cells appearing closer to the basement membrane than the neuroblastic layer (NBL) are observed in retinal tissue at a differentiation stage where the appearance rate of cone photoreceptor precursor cells (e.g., CRX-positive and TRβ2-positive cells, or CRX-positive and RXR-γ-positive cells) is at its maximum (i.e., a differentiation stage corresponding to 30 to 50 days, preferably 30 to 40 days, after the appearance of cone photoreceptor precursor cells is observed, or, for example, a differentiation stage corresponding to about 60 to 70 days after the initiation of suspension culture when retinal tissue produced by the methods described in Raw Material Production Methods 1 to 4 is used as the raw material, or about 65 to 75 days after the initiation of suspension culture when retinal tissue produced by the methods described in Raw Material Production Methods 5 to 7 is used as the raw material), and at which the proportion of photoreceptor precursor cells appearing on the apical surface including the neuroblastic layer (NBL) is approximately constant, preferably comparable, to the proportion of ectopic photoreceptor precursor cells appearing closer to the basement membrane than the NBL. Specifically, the concentration of the substance acting on the thyroid hormone signaling pathway is set so that the ratio per area of photoreceptor precursor cells contained on the basal membrane side of the NBL and the apical side including the NBL is approximately 10:1 to 1:10, preferably 2:1 to 1:2, and more preferably 10:7 to 7:10. Alternatively, the concentration of the substance acting on the thyroid hormone signaling pathway to be added may be set so that the proportion of photoreceptor precursor cells, which are CRX-positive cells, is 11% or more, preferably 15% or more, more preferably 20% or more, even more preferably 25% or more, and even more preferably 30% or more of all cells contained in the neural retinal tissue. Alternatively, the concentration may be set so that the proportion of CRX-positive and TRβ2-positive cells is 7% or more, preferably 10% or more, more preferably 11% or more, even more preferably 15% or more, and even more preferably 16% or more, 20% or more of all cells contained in the neural retinal tissue.
[0124] In one embodiment of the present invention, the medium in step (1) and / or at least a portion of the medium in step (2) may contain a dorsalization signaling substance to an extent that suppresses the expression of ventral markers. When a dorsalization signaling substance is contained, the order of adding the substance acting on the thyroid hormone signaling pathway and the dorsalization signaling substance to the medium in steps (1) and (2) above may be simultaneous or in any order. In step (1) and / or step (2), culturing in a medium containing a dorsalizing signal transduction substance can further increase the proportion of cone photoreceptor progenitors among the photoreceptor progenitors contained in the retinal tissue, compared to a method in which a substance acting on the thyroid hormone signaling pathway is used alone. That is, this step reduces the proportion of PAX6-negative / strongly CHX10-positive cells and PAX6-positive / CHX10-negative cells, i.e., bipolar cells, and any of amacrine cells, ganglion cells, and horizontal cells, and simultaneously produces retinal tissue in which the proportion of photoreceptor progenitors among the cells contained in the retinal tissue, particularly the proportion of cone photoreceptor progenitors among the photoreceptor progenitors, is further increased. Furthermore, this process allows the formation of ectopic photoreceptor cell layers (photoreceptor precursor cell layers) in the cell layers of the retinal tissue on the basement membrane side, such as the inner nuclear layer containing bipolar cells and amacrine cells, and the ganglion cell layer containing ganglion cells, and further increases the proportion of cone photoreceptor precursor cells among the photoreceptor precursor cells contained therein. The retinal tissue produced in this way has a higher proportion of cone photoreceptor progenitor cells, and when transplanted, the physical distance between the recipient's bipolar cells and the photoreceptor progenitor cells contained in the transplanted retinal tissue is shorter, making it more suitable for transplantation into the macula or central part of the macula. In step (1), the dorsalization signal transduction substance may be added throughout the process or at any time during the process, but preferably, at least step (1) is cultured in a medium containing the dorsalization signal transduction substance. Furthermore, when a dorsalization signaling substance is added in step (2), the cells are cultured in a medium containing the dorsalization signaling substance more preferably for at least a part of step (2), and even more preferably for the entire period of step (2). Specifically, the timing for starting culture in a medium containing a dorsalization signaling substance can be any period between the "early developmental stage" and the "stage at which the emergence rate of cone photoreceptor precursor cells reaches its maximum," and is not particularly limited. However, it is preferable to start culture within approximately 40 days from the early developmental stage, more preferably within 20 days, and even more preferably at the early developmental stage. The "stage at which the appearance rate of cone photoreceptor precursor cells is maximized" may be identified by adding a substance acting on the thyroid hormone signaling pathway to the culture medium. However, because the appearance rate of cone photoreceptor precursor cells increases with the addition of a substance acting on the thyroid hormone signaling pathway, making it difficult to identify the stage, it is preferable to culture the cells without adding a substance acting on the thyroid hormone signaling pathway or a dorsalizing signaling substance to the culture medium and identify the stage in advance.
[0125] The period of culture in the presence of a substance acting on the thyroid hormone signaling pathway, or a substance acting on the thyroid hormone signaling pathway and a dorsalizing signaling substance, may be set appropriately so that the effects of the substance acting on the thyroid hormone signaling pathway, or the substance acting on the thyroid hormone signaling pathway and a dorsalizing signaling substance, continue until the aforementioned "differentiation stage at which the rate of appearance of cone photoreceptor precursor cells is maximized," preferably until the time when rod photoreceptor precursor cells appear when cultured in the absence of the substance acting on the thyroid hormone signaling pathway and / or the dorsalizing signaling substance. The period of culture can be set appropriately so that the effects of the substance acting on the thyroid hormone signaling pathway, or the substance acting on the thyroid hormone signaling pathway and a dorsalizing signaling substance, continue until the time when rod photoreceptor precursor cells appear when cultured in the absence of the substance acting on the thyroid hormone signaling pathway and / or the dorsalizing signaling substance, typically at least 20 days, preferably at least 40 days, more preferably at least 70 days, and the period of culture for the dorsalizing signaling substance is typically at least 4 days, preferably at least 20 days, more preferably at least 40 days, or at least 70 days. Specifically, for example, the substance acting on the thyroid hormone signaling pathway is continued for preferably 20 to 40 days (corresponding to the period up to the differentiation stage at which the appearance rate of cone photoreceptor precursors reaches a maximum), more preferably 40 to 70 days (corresponding to the stage at which rod photoreceptor precursors appear), even more preferably 70 to 100 days, and even more preferably throughout the entire period from the initial appearance of ganglion cells through step (2). For example, the dorsalizing signaling substance is continued for at least 4 days from the early developmental stage, preferably 20 to 50 days (corresponding to the period up to the differentiation stage at which the appearance rate of cone photoreceptor precursors reaches a maximum), more preferably 50 to 70 days, even more preferably 70 to 80 days (corresponding to the stage at which rod photoreceptor precursors appear), and even more preferably throughout the entire period from the early developmental stage through step (2). Alternatively, the period of culturing in the presence of a thyroid hormone signaling pathway agonist, or a thyroid hormone signaling pathway agonist and a dorsalizing signaling agent, may be continued until the neural retinal tissue is to be used for a particular purpose (e.g., transplantation). Another embodiment of the present invention is the above-mentioned production method, in which the culture medium during at least part of step (2) contains a substance acting on the thyroid hormone signaling pathway, or a substance acting on the thyroid hormone signaling pathway and a dorsalizing signaling substance, and the obtained retinal tissue is neural retinal tissue at a differentiation stage in which Müller cells have appeared. The concentrations of the substance acting on the thyroid hormone signaling pathway, or the substance acting on the thyroid hormone signaling pathway and the dorsalizing signaling substance, required to advance differentiation to the differentiation stage at which Muller cells appear and to prepare the above-mentioned neural retinal tissue, as well as the period of culture in a medium containing these substances, can be determined appropriately by those skilled in the art based on the descriptions in 4. and 5. above. One embodiment of the above-mentioned neural retinal tissue is described below. The PAX6-positive / CHX10-negative cells in the retinal tissue are 30% or less, preferably 20% or less, more preferably 15% or less, and even more preferably 10% or less. The PAX6-negative / strongly CHX10-positive cells in the retinal tissue are 10% or less, preferably 5% or less. The total of the PAX6-positive / CHX10-negative cells and the PAX6-negative / strongly CHX10-positive cells in the retinal tissue is 30% or less, preferably 20% or less, and more preferably 14% or less. Furthermore, the proportion of photoreceptor precursor cells that are CRX-positive cells in the retinal tissue is 40% or more, preferably 50% or more, more preferably 57% or more, and even more preferably 66% or more. Alternatively, the number of RXR-γ-positive and NRL-negative cells among the CRX-positive cells in the retinal tissue at the differentiation stage is 32% or more, preferably 40% or more, more preferably 54% or more, and even more preferably 57% or more. In one embodiment, the retinal tissue is characterized by having ectopic photoreceptor precursor cells and / or photoreceptors. Here, ectopic photoreceptor precursor cells and / or photoreceptors refer to photoreceptor precursor cells and / or photoreceptors present in a cell layer other than the photoreceptor layer (or outer nuclear layer) among the cell layers constituting the retina. In the retinal tissue, the proportion of photoreceptor precursor cells present in the ectopic photoreceptor layer (also referred to as the photoreceptor precursor layer) is specifically 10% or more, preferably 15% or more, more preferably 20% or more, and even more preferably 25% or more of the total number of cells present in the neural retinal tissue. Furthermore, the proportion of the ectopic photoreceptor precursor cells to the photoreceptor precursor cells present in the outer nuclear layer is 30% or more, preferably 40% or more, more preferably 50% or more, and even more preferably 60% or more. For details on culturing in a medium containing a dorsalization signaling substance, see 5 above.
[0126] 6-1. Method for producing neural retinal tissue that can be matured into mature neural retinal tissue One embodiment of the present invention is a production method as described above, in which the culture medium in step (2) contains a substance active in the thyroid hormone signaling pathway, or a substance active in the thyroid hormone signaling pathway and a dorsalizing signaling substance, and the neural retinal tissue that can mature into mature neural retinal tissue obtained in step (2) is neural retinal tissue at a differentiation stage at which the appearance rate of cone photoreceptor progenitor cells is maximized. The concentrations of the substance acting on the thyroid hormone signaling pathway, or the substance acting on the thyroid hormone signaling pathway and the dorsalizing signaling substance, required to prepare the neural retinal tissue by progressing differentiation to the differentiation stage at which the appearance rate of cone photoreceptor precursor cells reaches a maximum, as well as the period of culture in a medium containing these substances, can be determined appropriately by one skilled in the art based on the descriptions in 4. and 5. above. One embodiment of the neural retinal tissue is described below. The proportion of photoreceptor precursor cells that are CRX-positive cells in the retinal tissue is 11% or more, preferably 15% or more, more preferably 20% or more, even more preferably 25% or more, and even more preferably 30% or more. Alternatively, the proportion of cone photoreceptor precursor cells that are CRX-positive and TRβ2-positive cells in the retinal tissue at the differentiation stage is 7% or more, preferably 10% or more, more preferably 11% or more, even more preferably 15% or more, and even more preferably 16% or more, 20% or more. In one embodiment, the CRX-positive cells and / or CRX-positive and TRβ2-positive cells in the retinal tissue preferably comprise ectopic photoreceptor precursor cells that appear on the basement membrane side of the neuroblastic layer (NBL). The ratio of photoreceptor precursor cells that appear on the apical surface side including the neuroblastic layer (NBL) to the ectopic photoreceptor precursor cells that appear on the basement membrane side of the NBL is approximately constant, more preferably approximately the same. Specifically, the ratio of the ratio of photoreceptor precursor cells contained on the basement membrane side of the NBL to the apical surface side including the NBL per area is 10:1 to 1:10, preferably 2:1 to 1:2, and more preferably 10:7 to 7:10. In one aspect, the proportion of OTX2-positive cells expressing the OTX2 gene, which is said to be necessary for the differentiation of photoreceptor precursor cells, in the retinal tissue is 13% or more, preferably 20% or more, more preferably 24% or more, even more preferably 29% or more, and even more preferably 30% or more. Furthermore, in one aspect, regardless of whether or not a dorsalizing signal transduction substance is added, the addition of a substance acting on the thyroid hormone signal transduction pathway increases the proportion of OC2 expressed in cone photoreceptor progenitor cells to the total number of cells in the retinal tissue to 30 to 50%, preferably 35 to 45%, and more preferably 39 to 43%, which is an increase compared to when a substance acting on the thyroid hormone signal transduction pathway is not added. The neural retinal tissue can be produced by the above steps (1) and (2), and can be produced by culturing the tissue for 30 to 50 days, preferably 30 to 40 days, throughout all steps after the appearance of cone photoreceptor precursor cells is observed. In one embodiment of the present invention, a medium containing a "dorsalizing signal transduction substance at a concentration sufficient to suppress the expression of ventral markers" is preferably used throughout the entire period of steps (1) and (2), and a medium containing a substance acting on the thyroid hormone signaling pathway is used throughout the entire period of step (2). The timing of initiating culture in the presence of the dorsalizing signal transduction substance or the substance acting on the thyroid hormone signaling pathway is preferably at an early stage of development or immediately after the appearance of ganglion cells, as described in 4. or 5. above. Furthermore, the neural retinal tissue corresponds to an aggregate obtained, for example, on about 60 to 70 days, preferably about 65 days, after the initiation of suspension culture when retinal tissue in the early stages of development is produced using the methods described in Raw Material Production Methods 1 to 4, or on about 65 to 75 days, preferably about 70 days, after the initiation of suspension culture when retinal tissue produced using the methods described in Raw Material Production Methods 5 to 7 is used (i.e., retinal tissue at a stage when the proportion of cone photoreceptor precursor cells appearing in the neural retinal tissue is at its maximum).
[0127] Another embodiment of the present invention is the above-mentioned production method, in which the culture medium during at least a portion of step (2) (specifically, 40 to 70 days, preferably 70 to 100 days) contains a substance acting on the thyroid hormone signaling pathway, or a substance acting on the thyroid hormone signaling pathway and a dorsalizing signaling substance, and the obtained retinal tissue is neural retinal tissue at a differentiation stage where rod photoreceptor precursor cells begin to appear (or a differentiation stage where bipolar cells begin to appear). The concentration of the thyroid hormone signaling pathway active substance, or the thyroid hormone signaling pathway active substance and the dorsalizing signaling substance, required to prepare the neural retinal tissue by progressing differentiation to the differentiation stage at which rod photoreceptor precursor cells begin to appear (or the differentiation stage at which bipolar cells begin to appear), and the period of culture in a medium containing these substances can be determined appropriately by a person skilled in the art based on the descriptions in 4. and 5. above. One embodiment of the neural retinal tissue is described below. The neural retinal tissue is characterized by a higher proportion of photoreceptor precursor cells and / or cone photoreceptor precursor cells at the stage when rod photoreceptor precursor cells begin to appear (or the stage when bipolar cells begin to appear) than in vivo neural retinal tissue or retinal tissue produced in the absence of a substance acting on the thyroid hormone signaling pathway. That is, in the neural retinal tissue, CRX-positive cells account for 20% or more of the total number of cells, preferably 25% or more, more preferably 30% or more, even more preferably 40% or more, and even more preferably 50% or more. Furthermore, in the neural retinal tissue at this differentiation stage, an average of 2 cells, preferably 3 cells or more, and more preferably 4 cells or more are photoreceptor precursor cells (CRX-positive cells) along a line perpendicular to the tangent to the apical surface. Furthermore, these neural retinal tissues preferably contain ectopic photoreceptor precursor cells closer to the basement membrane than the neuroblastic layer (NBL). Here, a person skilled in the art can determine the stage at which rod photoreceptor progenitor cells begin to appear (or the stage at which bipolar cells begin to appear) by identifying the stage at which NRL-positive and CRX-positive cells (or strongly CHX10-positive and PAX6-negative cells), which are rod photoreceptor progenitor cell markers (or bipolar cell markers), begin to appear using a conventional technique such as immunostaining. Specifically, the stage at which bipolar cells (or rod photoreceptor progenitor cells) begin to appear is a differentiation stage within 20 days, preferably within 15 days, more preferably within 10 days, and even more preferably within 5 days after the appearance of bipolar cells (or rod photoreceptor progenitor cells), which includes neural retinal progenitor cells at a stage of differentiating into bipolar cells (or rod photoreceptor progenitor cells). Whether neural retinal progenitor cells are at the stage of differentiating into bipolar cells (or rod photoreceptor progenitor cells) can be determined by adding BrdU, EdU, or the like, which are taken up by neural retinal cells, which are proliferating cells in retinal tissue, to the culture medium and then identifying using antibodies whether cells that have taken up BrdU or EdU express a marker for bipolar cells (or rod photoreceptor progenitor cells). For example, if retinal tissue is analyzed immediately after adding BrdU to the medium for a certain period of time (e.g., one day from day 90, 91, 92, 93, or 94 to day 110 after the start of suspension culture), and cells that are BrdU-positive and positive for bipolar cell (or rod photoreceptor progenitor cell) markers are observed, the period during which BrdU was added (or the day in the case of one day) can be identified as a stage containing neural retinal tissue at the stage of differentiating into bipolar cells (or rod photoreceptor progenitor cells). Alternatively, the differentiation stage may be identified as the stage at which bipolar cell (or rod photoreceptor progenitor cell) marker-positive cells and BLIMP1-positive cells, which are known to be transiently expressed in photoreceptor progenitor cells, are detected. In this case, since a substance acting on the thyroid hormone signaling pathway has the effect of suppressing the appearance of rod photoreceptor progenitor cells, it is preferable to identify the differentiation stage in advance using a medium that does not contain a substance acting on the thyroid hormone signaling pathway. The neural retinal tissue can be produced by the above steps (1) and (2), and can be produced by culturing the tissue throughout all steps for 55 to 80 days, preferably 55 to 70 days, after the appearance of cone photoreceptor precursor cells is observed. In one embodiment of the present invention, a medium containing a "dorsalizing signal transduction substance at a concentration sufficient to suppress the expression of ventral markers" is used throughout the entire period of steps (1) and (2), and a medium containing a substance acting on the thyroid hormone signaling pathway is used throughout the entire period of step (2). The timing of initiating culture in the presence of the dorsalizing signal transduction substance or the substance acting on the thyroid hormone signaling pathway is immediately after the appearance of ganglion cells, preferably from an early developmental stage, as described in 4. or 5. above. For example, when retinal tissue at an early stage of development is produced by the above-mentioned raw material production methods 1 to 4, the neural retinal tissue corresponds to an aggregate obtained 85 to 100 days, preferably about 95 days, after the initiation of suspension culture.When produced by the above-mentioned raw material production methods 5 to 7, the neural retinal tissue corresponds to an aggregate obtained 90 to 105 days, preferably about 100 days, after the initiation of suspension culture (i.e., retinal tissue at a stage when bipolar cells (or rod photoreceptor precursor cells) begin to appear).
[0128] As one embodiment of the present invention, specifically, the method comprises the steps of: (1') a step of producing retinal tissue at an early stage of development by the method described in raw material production methods 1 to 7; (2') culturing the retinal tissue at the early stage of development formed in step (1') to obtain retinal tissue containing neural retinal progeni...
Claims
1. Neural retinal tissue in which the percentage of CRX-positive cells is 10% or more of the total number of cells, the percentage of CRX-positive and TRβ2-positive cells is 7% or more of the total number of cells, and further containing ectopic CRX-positive cells that appear on the basement membrane side of the neuroblastic layer.
2. The following features (1) to (3): (1) The content of CRX-positive cells is 20% or more; and (2) The percentage of CRX-positive and TRβ2-positive cells is 10% or more of the total cell number; and (3) Contains ectopic CRX-positive cells that appear on the basement membrane side of the neuroblastic layer; The neural retinal tissue of claim 1, comprising:
3. The neural retinal tissue of claim 1 or 2, further comprising: a cell number per a certain area of ectopic photoreceptor precursor cells and photoreceptors on the basement membrane side of the neuroblastic layer (NBL) that is 1 / 10 to 10 times the cell number of photoreceptor precursor cells and photoreceptors in the apical region including the NBL.
4. A pharmaceutical composition for transplantation comprising the neural retinal tissue according to any one of claims 1 to 3, or a retinal tissue fragment excised from said neural retinal tissue.
5. A therapeutic or preventive agent for a disease causing decreased vision or visual field defect, comprising the neural retinal tissue according to any one of claims 1 to 3 or a retinal tissue fragment cut from said neural retinal tissue.
6. A therapeutic or preventive agent for a disease caused by damage to retinal tissue, comprising the neural retinal tissue according to any one of claims 1 to 3 or a retinal tissue fragment excised from said neural retinal tissue.
7. (1) A process of culturing pluripotent stem cell-derived retinal tissue at an early stage of development in a medium to obtain retinal tissue that contains neural retinal progenitor cells and is at any stage of differentiation from the differentiation stage immediately after the appearance of ganglion cells to the stage at which the appearance rate of cone photoreceptor progenitor cells reaches its maximum; and (2) culturing the retinal tissue obtained in step (1) in a medium containing a substance acting on the thyroid hormone signaling pathway; The method for producing neural retinal tissue according to any one of claims 1 to 3, comprising:
8. The method of claim 7, wherein the thyroid hormone signaling pathway active substance is triiodothyronine.
9. 9. The method of claim 8, wherein the concentration of triiodothyronine is 1 to 100 nM.