Products and methods for treatment

By inhibiting ubiquitination during erythrocyte maturation, the method maintains high concentrations of target proteins or polypeptides in reticulocytes and erythrocytes, addressing the challenges of protein administration and immune response.

JP7862001B2Active Publication Date: 2026-05-19UNIV OF BRISTOL
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
UNIV OF BRISTOL
Filing Date
2020-09-21
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing methods for administering proteins or polypeptides using erythrocytes face challenges in maintaining their concentration during differentiation and maturation due to ubiquitination, leading to compromised cell integrity and frequent transplants, and can trigger immune responses.

Method used

A method to inhibit or prevent ubiquitination of target proteins or polypeptides during erythrocyte maturation by interfering with their ubiquitination sites, using genetic modifications or inhibitors, allowing for increased and sustained expression in reticulocytes and erythrocytes.

Benefits of technology

Maintains high concentrations of target proteins or polypeptides throughout erythrocyte maturation, reducing the need for frequent transplants and minimizing immune response, while ensuring cell integrity and functionality.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for producing reticulocytes containing increased levels of a target protein or polypeptide, the method comprising: (a) providing erythrocyte precursors capable of expressing the target protein or polypeptide; (b) expressing the target protein or polypeptide; and (c) maturing the erythrocyte precursors into reticulocytes, wherein the target protein or polypeptide is configured and / or inhibited to interfere with or prevent ubiquitination of the target protein or polypeptide during maturation of the erythrocyte precursors into the reticulocytes. Also provided are erythroid cells, pharmaceutical compositions and related methods of use, as well as methods for screening for proteins or polypeptides that are degraded by ubiquitination during erythrocyte precursor maturation.
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Description

[Technical Field]

[0001] The present invention relates to erythrocytes, particularly reticulocyte precursor cells, that express a protein or polypeptide in an increased level of a target protein or polypeptide that can be used therapeutically, and maintain a high concentration of said protein or polypeptide throughout differentiation. The present invention relates to methods for production, cell products, pharmaceutical compositions, and therapeutic uses. [Background technology]

[0002] A wide range of diseases are caused by defects or deficiencies in proteins or polypeptides, such as enzyme defects or deficiencies, and one approach to treating such diseases is the use of protein or polypeptide replacement therapy. For example, enzyme replacement therapy involves administering a non-defective enzyme to a patient to compensate for the loss of enzyme function or expression. Such administration can be used not only to restore the function of defective or deficient proteins and polypeptides, but also to provide entirely novel functionality to the subject. Examples include the use of exogenous proteins or polypeptides to treat conditions unrelated to defective proteins or polypeptides, such as the use of exogenous enzymes to neutralize endogenous or exogenous toxins (e.g., to remove the accumulation of certain metabolites or to neutralize nerve agents or drug overdoses).

[0003] The main challenges in protein or polypeptide administration are how to transport the protein or polypeptide and how to ensure good bioavailability without causing damage to the immune response. One well-known approach for administration is to utilize proteins or polypeptides encapsulated in red blood cells, which can be prepared, for example, by inserting the protein or polypeptide into red blood cells by hypotonic lysis. The use of red blood cell vehicles allows for the dispersion of proteins or polypeptides around the body while providing a level of protection for the enzyme from the target immune system and the body's natural degradation pathways. The enzyme thymidine phosphorylase (TP) serves as an example for further explanation. Mitochondrial nervous gastrointestinal encephalomyopathy (MNGIE) is an autosomal recessive metabolic disorder caused by mutations in the TYMP gene that encodes TP. Although erythrocytes do not normally express TP, hypotonic hemolysis and isotonic resealing can be used to encapsulate Escherichia coli in autologous erythrocytes (Ihler, GM et al., Proc Natl Acad Sci USA, 1973, 70(9), p. 2663-2666; Bourgeaux, V., et al., Drug Des Devel Ther, 2016, 10, p. 665-676). This has been successfully used clinically and provides proof of concept, achieving prolonged arrest of the clinical phenotype of MNGIE by reducing plasma nucleoside levels (Bax, BE, et al., Neurology, 2013, 81(14), p. 1269-71). While this method is performed to some extent, the methodology of embedding cells into erythrocytes using hypotonic hemolysis usually compromises the integrity of the cell membrane and the lifespan of the erythrocytes, which means that frequent transplants are necessary, and patients may also develop antibodies against bacterial enzymes (Levene, M., et al., Mol Ther Methods Clin Dev, 2018, 11, p. 1-8).

[0004] Another approach involves using genetic engineering to express necessary enzymes within the cell. While it still possesses a nucleus, mature erythrocytes lack a nucleus and therefore cannot express one or more enzymes; this means that genetic engineering and protein expression can shorten the cell's lifespan. The advantages of this approach include maintaining cell membrane integrity and providing a sufficient lifespan for erythrocytes.

[0005] The present invention relates to an improved method for maintaining a target protein or polypeptide during erythrocyte development and maturation into reticulocytes and / or erythrocytes to provide an increased concentration of the target protein or polypeptide in reticulocytes or erythrocytes. Accordingly, the method of the present invention can be used to maintain a target protein or polypeptide in reticulocytes and / or erythrocytes when the target protein or polypeptide would not be maintained beforehand through the cell maturation process. Similarly, when the target protein or polypeptide can be maintained through maturation into reticulocytes and / or erythrocytes, the method of the present invention can be used to improve the retention of the target protein or polypeptide in enucleated erythrocytes (reticulocytes and / or erythrocytes) and subsequently improve their abundance, for example, to allow for a reduction in therapeutic dose. [Overview of the project]

[0006] In a first embodiment, the present invention provides a method for producing reticulocytes containing an increased level of a target protein or polypeptide, the method comprising (a) preparing a erythrocyte precursor capable of expressing the target protein or polypeptide, (b) expressing the target protein or polypeptide, and (c) maturing the erythrocyte precursor into reticulocytes, wherein the target protein or polypeptide is configured and / or inhibited such that its ubiquitination is inhibited or prevented during the maturation of the erythrocyte precursor into reticulocytes, thereby inhibiting or preventing ubiquitination of the target protein or polypeptide.

[0007] The inventors observed that during the maturation and enucleation processes of erythrocytes, large amounts of specific proteins are removed via highly activated ubiquitination and ubiquitin-mediated degradation pathways. They also confirmed that disrupting this ubiquitination process can help maintain very high concentrations of target proteins or polypeptides throughout the enucleation process and in mature reticulocytes and subsequent erythrocytes. Specifically, the inventors attempted to prevent or inhibit ubiquitination by interfering with the target protein or polypeptide (rather than interfering with ubiquitin ligases) by constituting and / or inhibiting the target protein or polypeptide. By localizing the interference with the target protein or polypeptide, the inventors were also able to overcome the problems associated with inhibiting ubiquitinating enzymes. Ubiquitination is an essential part of the maturation process of erythrocytes (Nguyen, AT, et al., Science, 2017, 357(6350)), and therefore, overall inhibition of ubiquitination using inhibitors such as MG132 is not a desirable solution for enhancing TP levels in reticulocytes. In the presence of common ubiquitin ligase inhibitors, many non-erythrocyte proteins will be maintained during the development of reticulocytes or erythrocytes. As a result, many properties of cellular function will be disrupted, which may adversely affect important cellular properties such as lifespan and immune system compatibility. In certain cases, broad ubiquitination inhibition can lead to complete antidifferentiation and / or cell death. In contrast, the construction or inhibition using the present invention occurs against target proteins or polypeptides rather than ubiquitin ligase enzymes, and therefore, the function of ubiquitin ligase enzymes with respect to non-target proteins or polypeptides is substantially unimpaired.

[0008] By “target protein or polypeptide,” we usually refer to a target protein or target polypeptide whose increased level by the method of the present invention is maintained in enucleated erythrocytes (reticulocytes and erythrocytes). Three scenarios are grasped in the target protein or polypeptide: (1) the target protein or polypeptide contains a ubiquitination site; (2) the target protein or polypeptide is a variant of the source protein or polypeptide, the source protein or polypeptide contains a ubiquitination site, and the target protein or polypeptide contains one or more mutations in the source protein in which ubiquitination is inhibited or prevented; and / or (3) the target protein or polypeptide does not have a ubiquitination site. In scenario (1), ubiquitination can be inhibited or prevented by providing inhibition of the ubiquitination site of the target protein or polypeptide. In scenario (2), the protein or polypeptide expressed in the erythrocyte precursor has a mutation that interferes with ubiquitination. Furthermore, the importance of ubiquitination is also recognized in scenario (3), where an exogenous protein or polypeptide lacking a ubiquitination site is selected for expression.

[0009] By "enhanced levels" of a target protein or polypeptide, we usually refer to the increased levels (or concentrations) of the target protein or polypeptide in reticulocytes (or subsequent red blood cells) where ubiquitination is not inhibited or prevented. For endogenous proteins or polypeptides (naturally expressed or overexpressed) with ubiquitination sites, or for exogenous proteins or polypeptides, the level is higher in reticulocytes (or subsequent red blood cells) when ubiquitination sites are inhibited during cell maturation than when ubiquitination sites are not inhibited during cell maturation. For exogenous proteins or polypeptides containing mutations in the source protein or polypeptide where ubiquitination is inhibited or prevented, the level is increased relative to the level retained in the source protein or polypeptide. For exogenous proteins without ubiquitination sites, the level in reticulocytes (and subsequent red blood cells) is greater than zero.

[0010] "Interrupted" usually refers to a lower level of ubiquitination and subsequent protein or polypeptide deficiency through erythrocyte precursor maturation compared to the case of erythrocyte precursor maturation where the target protein or polypeptide is not constructed and / or inhibited in such a way that ubiquitination is inhibited. In other words, the likelihood of each protein or polypeptide molecule being ubiquitinated is reduced compared to the expected level of ubiquitination. This can be achieved by interfering with ubiquitination, for example, by providing an inhibitor and / or by providing a genetically modified erythrocyte precursor to inhibit ubiquitination. "Prevented" usually refers to a state where ubiquitination is not possible. For example, this can be achieved by the deletion of a ubiquitination site or by the preparation of a protein or polypeptide that does not have a ubiquitination site. For example, ubiquitination of a target protein or polypeptide can be inhibited or prevented by (i) providing inhibition of the ubiquitination site of the target protein or polypeptide during the maturation of the erythrocyte precursor to reticulocytes, if the target protein or polypeptide contains a ubiquitination site; (ii) providing an erythrocyte precursor capable of expressing a target protein or polypeptide containing a mutation in the source protein or polypeptide that hinders or prevents ubiquitination, if the target protein or polypeptide is a variant of a source protein or polypeptide containing a ubiquitination site; or (iii) providing an erythrocyte precursor capable of expressing an exogenous protein or polypeptide that does not have a ubiquitination site.

[0011] Erythrocyte precursors can suitably express target proteins or polypeptides. Our intention is that erythrocyte precursors contain genetic material that expresses target proteins or polypeptides. Therefore, the target proteins or polypeptides do not need to be inserted into cells after enucleation, and techniques such as hypotonic lysis can be avoided.

[0012] Erythrocytes (e.g., erythrocyte precursors, reticulocytes, and / or erythrocytes) may contain one or more types of target proteins or target polypeptides. In such embodiments, multiple protein components may be used, for example, to prepare a series of enzymes to catalyze a series of reactions.

[0013] If a protein or polypeptide has one or more ubiquitination sites, at least one of them is prevented from ubiquitinating. In a preferred embodiment, all ubiquitination sites are prevented from ubiquitinating.

[0014] When inhibitors are used, they are provided during the maturation of reticulocytes and / or erythrocyte precursors to erythrocytes. This means we intend that the inhibitor is provided at least part of the differentiation and maturation process, typically at least in the later stages of the maturation process. For example, the inhibitor may be added only at the end of the differentiation stage. It is preferable that the inhibitor be present during enucleation, preferably throughout the entire enucleation period. Therefore, the inhibitor may be added to the culture medium used to initiate enucleation immediately before enucleation, or at a stage in the differentiation line immediately before enucleation. In one example, the inhibitor is added at the polychromatic erythroblast stage. In other words, the inhibitor does not necessarily have to be present throughout the entire erythrocyte maturation process. For example, the inhibitor may be added only in the later stages of the maturation process, which is particularly beneficial if adding the inhibitor earlier would have detrimental effects on cell proliferation or survival.

[0015] The target protein or polypeptide may be a variant of a source protein or polypeptide containing a ubiquitination site, the variant having a mutation in the source protein or polypeptide that prevents or inhibits ubiquitination in the source protein or polypeptide. The mutation may occur in a single amino acid or a group of amino acids. The mutation may include a point mutation, an insertion, or a deletion. The mutation may occur in a sequence of amino acids, discontinuous or continuous sequences of amino acids. In one embodiment, the mutation may sterically prevent the ubiquitin ligase from delivering ubiquitin to the ubiquitination site. Alternatively, the mutation may disrupt the structure of the ubiquitination site, for example, by inhibiting the ubiquitin ligase from recognizing the ubiquitination site, so that the ubiquitinase can no longer bind ubiquitin to the ubiquitination site. The mutation may be within the ubiquitination site, in particular in the amino acid being ubiquitinated, or in other parts of the protein or polypeptide in which the ubiquitination site is still disrupted. Furthermore, this may include the deletion of a portion of the ubiquitination site, particularly the amino acid to be ubiquitinated, or the deletion of the consensus sequence of the entire ubiquitination site. In any case, alteration of the amino acid sequence is necessary to disrupt the desired activity of a protein or polypeptide.

[0016] In certain proteins or polypeptides, one or more post-translational modifications are required before the protein or polypeptide can be ubiquitinated. For example, acetylation, methylation, phosphorylation, glycosylation, and / or lipid addition may be required before ubiquitination occurs. In these cases, mutations that prevent or inhibit ubiquitination may be mutations that prevent or inhibit post-translational modifications. For example, glutamine synthase requires acetylation before ubiquitination. Therefore, disruption of the acetylation and / or ubiquitination site may be used to interrupt ubiquitination. One technique for removing the acetylation site of glutamine synthase is to remove the N-terminus by removing, for example, at least 5, 10, 15, or 20 amino acids from the N-terminus and 30 or fewer, 40 or fewer, 50 or fewer, or 60 or fewer amino acids from the N-terminus. Suppression of protein or polypeptide activity may be acceptable if the amount of protein or polypeptide remaining that allows for the maturation of erythrocytes is sufficient to compensate.

[0017] Typically, red blood cells are intended to be supplied and stored at the reticulocyte stage. Reticulocytes are also used for administration to a subject, allowing them to mature into red blood cells in the subject's body, ensuring the red blood cells have a full lifespan. Upon injection into the body, reticulocytes mature into red blood cells in approximately 1-2 days, at which point they have a full lifespan. However, the cells may already be fully matured into red blood cells before administration to the subject.

[0018] Therefore, in one embodiment, the method of the first aspect of the present invention further includes a step of maturing reticulocytes into erythrocytes. The maturation of reticulocytes into erythrocytes includes a further step of removing proteins (and further materials) so that the cells change from reticulocytes to biconcave erythrocytes. Since the ubiquitination of the target protein or polypeptide is continued (or initiated) through this further step of maturation, improved retention of the protein or polypeptide is expected.

[0019] A second aspect of the present invention provides a method for generating erythrocytes comprising a target protein or polypeptide, the method comprising steps (a) to (c) of the first aspect of the present invention, and further step (d) of generating erythrocytes, in particular reticulocytes maturing into erythrocytes, wherein the target protein or polypeptide is configured and / or inhibited such that ubiquitination is prevented or prevented, preferably by any of (i) to (iii) of the first aspect of the present invention, during maturation into erythrocytes.

[0020] In a preferred embodiment, the method for producing reticulocytes and / or erythrocytes is an in vitro method.

[0021] The target protein may include an endogenous protein, and / or the target polypeptide may include an endogenous polypeptide. Here, we usually intend an endogenous protein or polypeptide that is not artificially overexpressed. In other words, this means a protein or polypeptide that is at an endogenous concentration before the maturation of the erythrocyte precursor. The present invention can increase the level of such endogenous protein or polypeptide in reticulocytes or erythrocytes by interfering with or preventing the ubiquitination of the protein or polypeptide, which usually has a ubiquitination site, and interfering with or preventing ubiquitination is achieved using an inhibitor.

[0022] The target protein may include an overexpressed endogenous or exogenous protein, and / or the target polypeptide may include an overexpressed endogenous or exogenous polypeptide.

[0023] By "overexpressed", we typically intend an endogenous protein or polypeptide that has been artificially increased to a higher concentration in erythroid precursors prior to cell maturation and / or enucleation. Overexpression techniques are well known in the art and include the insertion of additional copies of a gene, and / or the provision or expression of appropriate transcriptional regulators. For example, one suitable technique is to use a transcriptional factor or other enhancer to increase the expression of a protein, e.g., by using CRISPR enhancers and specific guides to increase the level of expression (where the protein can be encoded by the cell's own DNA or added DNA). Suitable gene manipulation techniques are well known in the art and include the use of techniques such as CRISPR-Cas9 based editing, and gene insertion using lentiviral vectors.

[0024] Typically, gene insertion will be performed at one of the stages of differentiation prior to enucleation. For example, FIG. 7 shows an overview of the cell differentiation lineage, starting from hematopoietic stem cells and BEL-A proerythroblasts respectively, and illustrates the in vitro stages when a viral vector (such as that used for gene insertion of a lentiviral vector) is added. In particular, in the case of CD34+ cells, it is possible to add the virus at a later step, i.e., immediately prior to differentiation. The advantage of adding the virus earlier is that it can reduce the amount of virus and reagents required.

[0025] By "exogenous", we typically intend a protein or polypeptide that is not naturally expressed in erythroid precursors. This includes proteins or polypeptides that contain one or more amino acid mutations relative to an endogenous protein. This covers, for example, therapies where the erythroid precursor expresses a defective protein or polypeptide and the exogenous enzyme is a functional protein or polypeptide. Also, exogenous covers proteins or polypeptides of non-natural origin such as isoforms from other cells or species, or hybrid proteins, chimeric proteins, fusion proteins or de novo protein or polypeptide sequences. As noted above, gene manipulation techniques that can be used for the expression of exogenous proteins or polypeptides are well-known in the art.

[0026] The erythroid precursors are autologous. For example, the erythroid precursors can be removed from a subject, typically engineered to express a target protein or polypeptide, and ultimately returned to the subject. Preferably, the erythroid precursors are allogeneic and will be applied to a suitable subject with a compatible blood type.

[0027] The inhibitor can be a natural substrate or natural product of the target protein or polypeptide. This applies when the ubiquitination site is within the active site of the protein or polypeptide. This is a mechanism for preventing the degradation of the protein or polypeptide by occupying the active site and preventing degradation. Sometimes this is called "substrate masking" as the substrate suppresses access to the ubiquitination site and can be utilized to prevent degradation throughout the cell maturation process by supplying increased levels of a suitable natural substrate or natural product. Usually, the protein or polypeptide in this case can be an enzyme.

[0028] Similarly, inhibitors may be reversible inhibitors of the natural substrates or natural products of the target protein or polypeptide. Such reversible inhibitors include derivatives and analogues (i.e., chemical mimics) of the natural substrate or natural product and would not typically be replaced by the protein or polypeptide.

[0029] The erythrocyte precursor is not particularly limited, but may be any cell capable of maturing into reticulocytes and subsequently into erythrocytes. The term “erythrocyte precursor” may be used to refer to cells at different stages of differentiation along the maturation / differentiation pathway. Typically, the term “erythrocyte precursor” refers to cells that have a nucleus, i.e., cells before enucleation begins. The erythrocyte precursor may be a stem cell, hematopoietic stem cell, induced pluripotent stem cell, erythrocyte immortalized cell line, or erythroblast cell. Preferably, the erythrocyte precursor is a CD34+ cell, a CD34- cell, or a BEL-A cell.

[0030] By “enucleated erythrocytes,” we typically intend to refer to cells derived from enucleated erythrocyte precursors. Typical examples of such cells include reticulocytes or erythrocytes. Enucleated erythrocytes exhibit the erythrocyte band 3 (anion exchange transporter 1 (AE1); solute carrier family 4 member 1; SLC4A1) protein on the erythrocyte surface. In the generation of enucleated erythrocytes according to the present invention, enucleated erythrocytes may have further manipulated proteins (e.g., hemoglobin or blood group proteins), but enucleated erythrocytes can be identified by the presence of erythrocyte band 3 / AE1 and by the absence of a nucleus, etc. For example, the reticulocytes or erythrocytes of the present invention may have proteins such as manipulated hemoglobin or blood group proteins, but can be identified by the presence of erythrocyte band 3 / AE1 and by the absence of a nucleus, etc. Such cells can be further identified by the presence of an erythrocyte spectrin-based cytoskeleton.

[0031] Preferably, the target protein or polypeptide is a therapeutic protein or polypeptide. Preferably, the target protein or polypeptide is an enzyme. In certain embodiments, the target protein is thymidine phosphorylase, glutamine synthase, hexokinase, glucokinase, phenylalanine hydroxylase, alcohol dehydrogenase, catalase, glucose-6-phosphate dehydrogenase, adenosine deamylase, asparaginase, uricase, bacterial L-phenylalanine ammonia lyase, alanine aminotransferase, glutamate dehydrogenase, arginine deiminase, or arginase. Preferably, the target protein is thymidine phosphorylase, glutamine synthase, hexokinase, glucokinase, phenylalanine hydroxylase, alcohol dehydrogenase, catalase, glucose-6-phosphate dehydrogenase, adenosine deaminase, asparaginase, uricase, or bacterial L-phenylalanine ammonia lyase. More preferably, the target protein is thymidine phosphorylase.

[0032] In one example, using thymidine phosphorylase (TP), initial experiments showed that inhibition of ubiquitination using MG132 protected TP from degradation during differentiation (see Example 3). This demonstrates that inhibition of ubiquitination can be effectively used to prevent the degradation of TP. In this particular example, mutations in the ubiquitination site adversely affect the desired enzyme activity. Therefore, the effect on the desired protein activity should be considered when editing the ubiquitination site. For example, the enzyme active site can be manipulated to maintain activity while removing the ubiquitination site or other means that interfere with TP ubiquitination may be used. For example, we identified that the ubiquitination site of TP is part of the active site, and therefore its substrate, thymidine, can actually block the ubiquitination site. Based on this, we demonstrated that interference with (immature) ubiquitination sites by thymidine added to the culture medium resulted in approximately 2x higher concentrations of active TP in reticulocytes (see Example 5). Further details can be found in Meinders et al., Molecular Therapy - Methods & Clinical Development, volume 17, pages 822-830, June 12, 2020 (published after the priority date of this application), the entire contents of which are incorporated herein by reference. The ubiquitination site of thymidine phosphorylase can be inhibited by thymidine, deoxyuridine, thymine, uridine, 2-deoxyribose 1-phosphate, or derivatives or analogs thereof. Preferably, the ubiquitination site of thymidine phosphorylase is inhibited by thymidine.

[0033] Furthermore, this proof of concept provides evidence that disruption of the ubiquitination site by other means, such as appropriate manipulation of the protein sequence as described above, can produce the same result. For example, sequence analysis reveals the presence of a ubiquitination site not located within the active site. This means that substrate masking techniques would be suitable for inhibiting glutamine synthase ubiquitination. However, the detached location of the ubiquitination site from the active site means that mutations can interfere with ubiquitination without affecting activity, and that such modifications provide an enzyme that can be retained through the differentiation and enucleation of erythrocyte precursors, and further increase its level in enucleated erythrocytes.

[0034] Thus, substrate masking and mutation techniques offer alternatives that can be selected depending on whether the ubiquitination site is located within the target protein or polypeptide.

[0035] In one embodiment, if the target protein is an exogenous protein or polypeptide that does not have ubiquitination sites, it is a non-eukaryotic protein, preferably a bacterial protein or polypeptide. Such non-eukaryotic proteins and polypeptides, such as those from bacteria, typically do not have ubiquitination sites in their wild type. If the target protein or polypeptide is bacterial, it includes a wild-type bacterial amino acid sequence. As is well known in the art, when expressing bacterial proteins in human cells, specific codons encoding specific amino acids in the bacterial expression system should be converted to equivalent human codons for the expression of those specific amino acids. This can be easily done using well-known molecular biological principles. Furthermore, conversion to a bacterial amino acid sequence may be beneficial to produce specific effects, such as optimizing expression in the human expression system. If the bacterial amino acid sequence is modified, the sequence should produce the intended function without reintroducing ubiquitination sites in particular.

[0036] The inventors confirmed that bacterial uricase (a codon optimized for expression in the human expression system) was maintained at remarkably high levels throughout the enucleation process into enucleated erythrocytes. Accordingly, the inventors confirmed that a pool of proteins and polypeptides spontaneously lacking ubiquitination sites can be targeted to identify proteins and polypeptides particularly suitable for the methods of the present invention. In particular, the inventors confirmed that bacterial proteins provide a feasible pool of proteins and polypeptides that can be used in the methods of the present invention, and provide enucleated erythrocytes containing high levels of proteins or polypeptides for therapeutic use.

[0037] In one embodiment, the target protein is thymidine phosphorylase. When thymidine phosphorylase is selected as the target protein, the ubiquitination site of thymidine phosphorylase is preferably inhibited by thymidine, deoxyuridine, thymine, uridine, 2-deoxyribose 1-phosphate, or their derivatives or analogues. Preferably, the ubiquitination site of thymidine phosphorylase is inhibited by thymidine. An alternative approach may involve careful protein manipulation to interfere with the ubiquitination site without preventing enzyme activity or the expression of the bacterial form of thymidine phosphorylase, taking advantage of the fact that the bacterial enzyme lacks the ubiquitination site while catalyzing the same enzymatic reaction. When the target protein is thymidine phosphorylase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferably used in the treatment of mitochondrial nervous gastrointestinal encephalomyopathy.

[0038] In one embodiment, the target protein is glutamine synthase. We have shown that human glutamine synthase can be overexpressed using a lentivirus, and that the application of the ubiquitination inhibitor MG132 can increase glutamine synthesis levels in reticulocytes (Example 6, Figure 8). Therefore, the present invention's strategy of targeting glutamine synthase rather than ubiquitinase is expected to produce improved expression and maintenance of glutamine synthase in healthy enucleated cells. As described above, sequence analysis indicates that the ubiquitination site of glutamine synthase is not located within the active site. Therefore, expression of glutamine synthase containing mutations that interfere with or prevent ubiquitination of the source protein or polypeptide should be suitable for improving the maintenance of glutamine synthase through maturation into enucleated erythrocytes. Glutamine synthase may require acetylation before ubiquitination (Van Nguyen et al., Molecular Cell (2016) 61 (6):809-820). Therefore, interference with the acetylation and / or ubiquitination site can be used as a further technique to prevent ubiquitination. One technique for removing the acetylation site of glutamine synthase is to remove the N-terminus by, for example, removing at least 5, 10, 15, or 20 amino acids from the N-terminus, and removing 30, 40, 50, or 60 amino acids or less from the N-terminus. Alternatively, bacterial forms of glutamine synthase that do not naturally contain a ubiquitination site can be overexpressed, or they can be manipulated to not contain such a site. When the target protein is glutamine synthase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of hyperammonemia.

[0039] In one embodiment, the target protein is a hexokinase such as glucokinase. Glucokinase is a liver and pancreatic enzyme that has high K in glucose. mGlucokinase is a hexokinase isozyme and analogue for three other hexokinases. It is well known that glucokinase is regulated by ubiquitination (see, e.g., Hofmeister-Brix et al., Biochem J (2013) 456 (2): 173-184). Therefore, glucokinase is particularly suited to improving maintenance through enucleation by mutations to interfere with or prevent ubiquitination. Alternatively, bacterial forms of hexokinase or glucokinase may be overexpressed if they do not naturally contain ubiquitination sites, or they may be engineered to not contain such sites. When the target protein is hexokinase or glucokinase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of hyperglycemia.

[0040] In one embodiment, the target protein is phenylalanine hydroxylase. It is well known that recombinant phenylalanine hydroxylase is ubiquitinated (see, e.g., Doskeland and Flatmark, Biochem J. 1996 Nov 1; 319(Pt 3): 941-945). In particular, recombinant proteins were ubiquitinated by cell lysates in specific lysins. Abnormally folded proteins showed increased ubiquitination and degradation. This provides evidence that phenylalanine hydroxylase is adapted to improved maintenance through enucleation by mutations that inhibit or prevent ubiquitination. Alternatively, bacterial forms of phenylalanine hydroxylase may be overexpressed if they do not naturally contain ubiquitination sites, or they may be engineered to lack such sites. When the target protein is phenylalanine hydroxylase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in treating phenylalanine hydroxylase enzyme deficiency.

[0041] In one embodiment, the target protein is alcohol dehydrogenase. It is well known that alcohol dehydrogenase is ubiquitinated (see, e.g., Mezey et al., Biochem Biophys Res Commun, Volume 285, Issue 3, 20 July 2001, Pages 644-648). Therefore, alcohol dehydrogenase is adapted for improved maintenance through enucleation by mutations that inhibit or prevent ubiquitination. Alternatively, other alcohol dehydrogenase isoforms or bacterial types of alcohol dehydrogenase may be overexpressed if they do not naturally contain ubiquitination sites, or may be engineered to not contain such sites. When the target protein is alcohol dehydrogenase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment / detoxification of alcohol toxicity.

[0042] In one embodiment, the target protein is catalase. It is well known that catalase degradation is controlled by ubiquitination induced by tyrosine phosphorylation (see, e.g., Cao et al, Biochemistry, 2003 Sep 9, 42(35), 10348-53). Therefore, catalase is adapted to improve maintenance through enucleation by mutations that inhibit or prevent ubiquitination. Alternatively, bacterial forms of catalase may be overexpressed if they do not naturally contain ubiquitination sites, or they may be engineered to not contain such sites. When the target protein is catalase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in treating catalase deficiency and / or preventing cytotoxicity by reactive oxygen species.

[0043] In one embodiment, the target protein is glucose-6-phosphate dehydrogenase (G6PD). There is evidence of ubiquitination and degradation of G6PD in human podocytes (see, e.g., Wang et al., The FASEB Journal, 2019, 33:5, 6296-6310). Therefore, G6PD is adapted to improve maintenance through enucleation by mutations that inhibit or prevent ubiquitination. Alternatively, bacterial forms of G6PD may be overexpressed if they do not naturally contain ubiquitination sites, or they may be engineered to not contain such sites. When the target protein is G6PD, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in treating G6PD deficiency.

[0044] In one embodiment, the target protein is adenosine deaminase. As described above, sequence analysis shows that the ubiquitination site of adenosine deaminase is absent within the active site. We have shown that adenosine deaminase is maintained through enucleation into reticulocytes (Figure 9). Therefore, expression of adenosine deaminase containing mutations that interfere with or prevent ubiquitination of the source protein or polypeptide is expected to improve the maintenance of adenosine deaminase through enucleation and lead to an increase in the concentration of adenosine deaminase in enucleated erythrocytes. Alternatively, bacterial forms of adenosine deaminase that do not naturally contain a ubiquitination site may be overexpressed, or they may be engineered to not contain such a site. When the target protein is adenosine deaminase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of adenosine deaminase deficiency.

[0045] In one embodiment, the target protein is asparaginase or L-asparaginase. Sequence analysis indicates the presence of a ubiquitination site for L-asparaginase, but that it is not located within the active site. We have shown that L-asparaginase is maintained through enucleation into reticulocytes (Figure 10). Therefore, expression of L-asparaginase containing mutations that interfere with or prevent ubiquitination of the source protein or polypeptide is expected to improve the maintenance of L-asparaginase through enucleation and lead to an increase in the concentration of L-asparaginase in enucleated erythrocytes. Alternatively, bacterial forms of L-asparaginase may be overexpressed if they do not naturally contain a ubiquitination site, or they may be engineered to not contain such a site. When the target protein is L-asparaginase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of acute lymphoblastic leukemia.

[0046] In one embodiment, the target protein is uricase, preferably bacterial uricase. It is well known that the human form of uricase is non-functional. Therefore, preferably, the uricase is bacterial uricase lacking a detectable ubiquitination site, or human uricase containing mutations added to reactivate enzyme activity or remove ubiquitination, or uricase obtained from another species from which the ubiquitination site has been removed. We have confirmed that bacterial uricase (codon-optimized for expression in humans) is well expressed in erythrocyte precursor cells and well maintained through enucleation into reticulocytes (Figure 11). When the target protein is uricase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of hyperuricemia.

[0047] In one embodiment, the target protein is L-phenylalanine ammonia lyase (PAL). Bacterial PAL is well known for its therapeutic use (see Sarkissian et al, PNAS March 2, 1999 96 (5) 2339-2344) and does not naturally possess ubiquitination sites. When the target protein is PAL, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of phenylketonuria / phenylalanine hydroxylase enzyme deficiency.

[0048] In one embodiment, both aminotransferase and glutamate dehydrogenase are expressed in erythrocyte precursors and maintained through enucleated erythrocytes. In this embodiment, the target protein may be alanine aminotransferase or glutamate dehydrogenase. In this embodiment, one protein is targeted by the method of the present invention, while the other is retained through enucleation without affecting ubiquitination. In a preferred embodiment, the target protein is alanine aminotransferase, and a further target protein is glutamate dehydrogenase. This improves the expression of both proteins in erythrocyte precursors and the maintenance of both proteins through enucleated erythrocytes, which are targeted by the method of the present invention. For alanine aminotransferase, the inventors performed a site scan of the ubiquitin consensus sequence and identified ubiquitin sites in both human isoforms. Therefore, the expression of alanine aminotransferase containing mutations that inhibit or prevent ubiquitination of the source protein or polypeptide is expected to improve the maintenance of alanine aminotransferase through enucleation and to cause an increase in the concentration of alanine aminotransferase in enucleated erythrocytes. Alternatively, bacterial forms of alanine aminotransferase that do not naturally contain ubiquitination sites may be overexpressed, or they may be engineered to not contain such sites. For glutamate dehydrogenase, the inventors performed a site scan of the ubiquitin consensus sequence and identified a ubiquitination site in one of the two isoforms. Therefore, the expression of glutamate dehydrogenase containing mutations that inhibit or prevent ubiquitination of the source protein or polypeptide is expected to improve the maintenance of glutamate dehydrogenase through enucleation and to cause an increase in the concentration of glutamate dehydrogenase in enucleated erythrocytes. Alternatively, bacterial forms of glutamate dehydrogenase that do not naturally contain ubiquitination sites may be overexpressed, or they may be manipulated to lack such sites.When the target protein is alanine aminotransferase and / or a further target protein is glutamate dehydrogenase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of hyperammonemia.

[0049] In one embodiment, the target protein is arginine deiminase. The inventors performed a site scan of the ubiquitin consensus sequence and identified ubiquitin sites in three of the six isoforms. Therefore, expression of ubiquitin-tagged arginine deiminase containing mutations that interfere with or prevent ubiquitination of the source protein or polypeptide is expected to improve the maintenance of arginine deiminase through enucleation and lead to an increase in the concentration of arginine deiminase in enucleated erythrocytes. Alternatively, isoforms or bacterial forms of arginine deiminase lacking ubiquitin sites may be overexpressed if they do not naturally contain ubiquitination sites, or they may be engineered to lack such sites. When the target protein is arginine deiminase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in cancer treatment.

[0050] In one embodiment, the target protein is arginase. The inventors performed a site scan of the ubiquitin consensus sequence and identified a ubiquitin site in one isoform. Thus, expression of a ubiquitin-tagged arginase containing mutations that interfere with or prevent ubiquitination of the source protein or polypeptide is expected to improve arginase maintenance through enucleation and lead to an increase in arginase concentration in enucleated erythrocytes. Alternatively, isoforms or bacterial types of arginase lacking a ubiquitin site may be overexpressed if they do not naturally contain a ubiquitination site, or they may be engineered to lack such a site. When the target protein is arginase, enucleated erythrocytes (reticulocytes and / or erythrocytes) are preferred for use in the treatment of hyperargininemia.

[0051] In one embodiment, reticulocytes or erythrocytes are isolated reticulocytes or isolated erythrocytes. By “isolated,” we usually mean reticulocytes or erythrocytes isolated from the body of a subject or patient. In other words, reticulocytes or erythrocytes are produced in vitro. Therefore, isolated reticulocytes or isolated erythrocytes may be an isolated population of reticulocyte cells or an isolated population of erythrocyte cells, and may be in the presence of other cells or biological materials, in particular biological materials and chemical factors necessary to promote cell maturation and / or facilitate cell storage.

[0052] In a third aspect, the present invention provides erythrocytes comprising a target protein or polypeptide, wherein (i) the target protein or polypeptide comprises a ubiquitination site, and the erythrocytes further comprises an inhibitor of the ubiquitination site of the target protein or polypeptide; and / or (ii) the target protein or polypeptide is a variant of a source protein or polypeptide comprising a ubiquitination site, and the target protein or polypeptide comprises a mutation that interferes with or prevents ubiquitination of the source protein or polypeptide; and / or (iii) the target protein or polypeptide comprises an exogenous protein or polypeptide that does not have a ubiquitination site.

[0053] When we refer to "red blood cells," we usually mean red blood cell precursors, reticulocyte precursors, reticulocytes, or red blood cells, preferably reticulocytes or red blood cells, more preferably reticulocytes. In one embodiment, red blood cell is a red blood cell precursor. In another embodiment, red blood cell is an enucleated red blood cell (such as a reticulocyte or red blood cell).

[0054] If enucleated erythrocytes are produced by the method according to the present invention by interfering with or preventing the ubiquitination of a target protein or polypeptide, such erythrocytes will contain increased levels of the target protein or polypeptide compared to enucleated erythrocytes produced by the same method in all respects except that the ubiquitination of the target protein or polypeptide is not interfered.

[0055] If the inhibitor is an endogenous substance, this is intended to increase the level of the inhibitor.

[0056] In one embodiment, the target protein may include an endogenous protein, and / or the target polypeptide may include an endogenous polypeptide. In another embodiment, the target protein may include an overexpressed endogenous or exogenous protein, and / or the target polypeptide may include an overexpressed endogenous or exogenous polypeptide.

[0057] The inhibitor may be a natural substrate or natural product of the target protein or polypeptide, or a reversible inhibitor of a natural substrate or natural product of the target protein or polypeptide.

[0058] In one embodiment, the target protein is an enzyme. In a particular embodiment, the target protein is thymidine phosphorylase, glutamine synthase, hexokinase / glucokinase, phenylalanine hydroxylase, alcohol dehydrogenase, catalase, glucose-6-phosphate dehydrogenase, adenosine deamylase, L-asparaginase, uricase, bacterial L-phenylalanine ammonia lyase, alanine aminotransferase, glutamate dehydrogenase, arginine deiminase, or arginase. Preferably, the target protein is thymidine phosphorylase, glutamine synthase, hexokinase / glucokinase, phenylalanine hydroxylase, alcohol dehydrogenase, catalase, glucose-6-phosphate dehydrogenase, adenosine deaminase, L-asparaginase, uricase, or bacterial L-phenylalanine ammonia lyase. More preferably, the target protein is thymidine phosphorylase.

[0059] When the target protein is thymidine phosphorylase, the ubiquitination site of thymidine phosphorylase can be inhibited by thymidine, deoxyuridine, thymine, uridine and / or 2-deoxyribose 1-phosphate, or derivatives or analogs thereof, preferably by thymidine.

[0060] Red blood cells are isolated red blood cells.

[0061] In one embodiment, the target protein or polypeptide that does not have a ubiquitination site may be a non-eukaryotic protein, and preferably a bacterial protein.

[0062] In a fourth embodiment, the present invention provides erythrocytes that can be obtained by the method of the first or second embodiment of the present invention.

[0063] In a fifth aspect, the present invention provides a pharmaceutical composition comprising erythrocytes according to a third or fourth aspect of the present invention, and a pharmaceutically acceptable carrier, excipient and / or adjuvant. Preferably, the pharmaceutical composition comprises erythrocytes stored in an erythrocyte storage buffer further comprising an inhibitor of a target protein or polypeptide. This is applied under conditions where the target protein or polypeptide comprises a ubiquitination site, and the erythrocytes further comprising an inhibitor of the ubiquitination site of the target protein or polypeptide. Storage may be short-term storage, long-term storage, cryogenic storage, hospital storage, storage during transport, or other storage until administration to the subject.

[0064] In a sixth aspect, the present invention provides a pharmaceutical composition comprising erythrocytes containing a target protein or polypeptide including a ubiquitination site, and a pharmaceutically acceptable carrier, excipients and / or adjuvant. Typically, the inhibitor may be an exogenous inhibitor, i.e., an inhibitor added to the erythrocyte. When the inhibitor is naturally present in the erythrocyte, we usually intend an artificially increased level of the inhibitor. In a preferred embodiment, the pharmaceutical composition according to the sixth aspect of the present invention comprises erythrocytes stored in an erythrocyte storage buffer containing an inhibitor of the ubiquitination site of the target protein or polypeptide. Typically, the erythrocytes in the erythrocyte storage buffer may be stored for a short period, a long period, cryogenic storage, hospital storage, storage during transport, or other storage until administration to the subject.

[0065] In a seventh aspect, the present invention provides a pharmaceutical composition comprising erythrocytes comprising a target protein or polypeptide, wherein the target protein or polypeptide is a variant of a source protein comprising a ubiquitination site, and the target protein or polypeptide comprises a mutation that interferes with or prevents ubiquitination of the source protein or polypeptide, and the pharmaceutical composition comprises a pharmaceutically acceptable carrier, excipient and / or adjuvant.

[0066] The compositions of the present invention may comprise excipients as understood in the art, or pharmaceutically acceptable adjuvants, carriers, or filters, as well as reagents such as stabilizers, antimicrobial agents, antifreeze agents, antioxidants, free radical scavengers, solubilizers, isotonic agents, and surfactants. In preferred embodiments, the pharmaceutical composition is stored with cells at the reticulocyte stage in a suitable reticulocyte preservation medium. Suitable media are well known in the art and comprise SAGM, PAGGM, AS1, AS3, human plasma or artificial plasma solution, and physiologically administerable buffers such as phosphate-buffered saline, or mixtures thereof.

[0067] In an eighth aspect, the present invention provides erythrocytes according to a third or fourth aspect of the present invention, or pharmaceutical compositions according to a fifth, sixth, or seventh aspect of the present invention, for use in therapy. Preferably, the erythrocytes used in therapy are enucleated cells. One advantage of enucleated cells in therapy is that genetically modified material is excreted during enucleation, and therefore there is no concern about administering genetically modified material to the target.

[0068] In one embodiment, the use is in enzyme replacement therapy, organ repair, or detoxification, preferably in the treatment of mitochondrial nervous system encephalomyopathy, hyperammonemia, hyperglycemia, phenylalanine hydroxylase deficiency, alcohol toxicity / detoxification, catalase deficiency and / or prevention of cytotoxicity by reactive oxygen species, G6PD deficiency, adenosine deaminase deficiency, acute lymphoblastic leukemia, hyperuricemia, phenylketonuria / phenylalanine hydroxylase deficiency, or hyperargininemia. Preferably, the use is in the treatment of mitochondrial nervous system encephalomyopathy, hyperammonemia, hyperglycemia, phenylalanine hydroxylase deficiency, alcohol toxicity / detoxification, catalase deficiency and / or prevention of cytotoxicity by reactive oxygen species, G6PD deficiency, or hyperuricemia.

[0069] In a ninth aspect, the present invention provides the use of erythrocytes according to a third or fourth aspect of the present invention, or a pharmaceutical composition according to a fifth, sixth, or seventh aspect of the present invention, for the manufacture of a drug for therapeutic use.

[0070] In a tenth aspect, the present invention provides a method for treating a subject in need thereof, the method comprising administering a pharmaceutically effective amount of erythrocytes according to a third or fourth aspect of the present invention, or a pharmaceutically effective amount of a pharmaceutical composition according to a fifth, sixth, or seventh aspect of the present invention.

[0071] In an eleventh aspect, the present invention provides a method for screening proteins or polypeptides that are degraded by ubiquitination during the maturation of erythrocytes, the method comprising expressing a test protein in an erythrocyte precursor and (a) confirming whether the amount of test protein increases when the erythrocyte precursor is matured by inhibiting or preventing ubiquitin ligase activity compared to when the erythrocyte precursor is matured without inhibiting or preventing ubiquitin ligase activity; (b) confirming whether the test protein is labeled when a labeled ubiquitin construct is provided during the maturation of the erythrocyte precursor; or (c) confirming whether the test protein is ubiquitinated through anti-ubiquitin antibody labeling or by mass spectrometry.

[0072] Throughout the detailed description of the invention and the claims of this specification, the words “comprise” and “contain,” and their variations, such as “comprising” and “comprises,” mean “including but not limited to,” and do not exclude other components, integers, or steps. Furthermore, the singular form includes the plural form unless otherwise required in the context, and especially where the indefinite article is used, the specification is understood to intend both the singular and plural forms unless otherwise required in the context.

[0073] Preferred features of each aspect of the present invention may be treated as if they were described in combination with any of the other aspects. Within the scope of this application, various aspects, embodiments, examples and alternatives are clearly presented in the preceding paragraphs, claims and / or subsequent detailed descriptions and drawings, and in particular, their individual features may be adopted independently or in combination. That is, all embodiments and / or features of any embodiment can be combined in any way, and / or can be combined insofar as such features do not conflict with each other. [Brief explanation of the drawing]

[0074] One or more embodiments of the present invention will be described by reference to the accompanying drawings, merely as examples. [Figure 1A-H]Figure 1A shows an example of endogenous thymidine phosphorylase (TP) expression measured by flow cytometry in CD34+ stem cells isolated from donated blood, isolated reticulocytes, and isolated erythrocytes. Dark gray indicates the IgG isotype control, and light gray indicates TP expression. Figure 1B shows the quantification of the flow cytometry graph (N=3). Figure 1C shows TP activity measured by spectrophotometric assay in CD34+ stem cells isolated from donated blood, isolated reticulocytes, isolated erythrocytes, and isolated platelets as a control. Figure 1D shows an example of endogenous thymidine phosphorylase (TP) expression measured by flow cytometry in in vitro cultures at day 8 (proerythroblasts), day 12 (basophilic erythroblasts), and reticulocytes. Dark gray indicates the IgG isotype control, and light gray indicates TP expression. Figure 1E shows the quantification of the flow cytometry graph (N=3). Figure 1F shows TP activity measured in in vitro cultures at day 8 (proerythroblasts), day 12 (basophilic erythroblasts), and reticulocytes. Figure 1G shows an example of endogenous thymidine phosphorylase (TP) expression measured by flow cytometry in expanded BEL-A, differentiated (polychromatic) cells at day 6, and BEL-A-derived reticulocytes. Dark gray indicates the control IgG isotype, and light gray indicates TP expression. Figure 1H shows the quantification of the flow cytometry graph (N=3). [Figure 2A-D] Figures 2A-D show the increased expression of TP due to exogenous overexpression in cultured TP-expressing CD34+-derived erythrocyte precursors (cTP; Figure 2A) and enhanced TP-expressing BEL-A (bTP; Figure 2B), as well as the TP activity units in each cTP cell (Figure 2C) and the deformability of cTP-derived reticulocytes (Figure 2D). [Figure 3] Figure 3 shows the effect of inhibiting the degradation of TP expression in cTP cells (Figure 3A), and a 3D model showing the modeling results of human TP and the location of ubiquitination sites that may need to be mutated (Figure 3B). [Figure 4A-D]Figures 4A-D show the expression levels of mutated TP in cTP cells (Figure 4A; cTP-mut) and bTP cells (Figure 4B; bTP-mut), and the activity levels of mutated TP in cTP cells (Figure 4C; cTP-mut) and bTP cells (Figure 4D; bTP-mut). [Figure 5] Figure 5 shows the expression levels of TP in cTP cells (Figure 5A) and bTP cells (Figure 5B) in the presence of thymidine supplementation. [Figure 6] Figure 6 shows an overview of cell differentiation from hematopoietic stem cells to erythrocytes. [Figure 7] Figure 7 shows an overview of cell differentiation lines illustrating in vitro steps, starting with hematopoietic stem cells and BEL-A proerythroblasts, respectively, to which viral vectors may be added. [Figure 8] Figure 8 shows bar graphs indicating the overexpression of lentivirus-induced glutamine synthase during differentiation, as evaluated by flow cytometry in two different cultures. The bar graphs show the expression levels of glutamine synthase in the presence and absence of MG132. [Figure 9] Figure 9 shows a bar graph indicating the overexpression of lentivirus-tagged adenosine deaminase during differentiation, as evaluated by flow cytometry in two different cultures, and a Western blot showing its expression in in vitro-derived reticulocytes. [Figure 10] Figure 10 shows a bar graph indicating the overexpression of lentivirus-induced L-asparaginase (tagged with c-Myc) during differentiation, as evaluated by flow cytometry in two different cultures, and a Western blot showing expression in in vitro-derived reticulocytes. [Figure 11] Figure 11 shows a bar graph indicating the overexpression of lentivirus-induced uricase (tagged with c-Myc) during differentiation, as evaluated by flow cytometry in two different cultures, and a Western blot showing its expression in in vitro-derived reticulocytes. [Modes for carrying out the invention]

[0075] Example 1 - Expression of endogenous TP in erythrocyte precursors, reticulocytes, and erythrocytes First, we identified baseline endogenous expression and thymidine phosphorylase (TP) activity levels in isolated hematopoietic CD34+ stem cells (i.e., isolated from blood), reticulocytes from standard donors, and erythrocytes. Expression was evaluated by flow cytometry on fixed permeable cells, and TP activity was measured using a spectrophotometer-based assay, with differences in thymidine absorbance levels measured after 30 minutes at 37°C in the presence of TP. As expected, both assays confirmed low endogenous expression and TP activity in CD34+ hematopoietic stem cells and reticulocytes, and also confirmed the absence of TP expression or activity in erythrocytes (Figures 1A, 1B, and 1C). Fresh isolated platelets from peripheral blood were included as a positive control for the activity assay (1C) because these blood cells contain TP. Next, we tested endogenous TP expression and activity in erythrocytes differentiated in vitro from CD34+ hematopoietic stem cells. Previously, we reported on various stages of erythrocyte maturation in our in vitro culture system (Griffiths, RE, et al., Blood, 2012, 119(26), p. 6296-306). Here, based on these findings, we refer to their approximate differentiation stages in terms of culture days and framework. Figures 1D, 1E, and 1F show low expression of endogenous TP and low activity at day 8 (proerythroblasts) and day 12 (polychromatic erythroblasts). This also demonstrates that the expression and activity of unmodified and unselected in vitro cultured reticulocytes are comparable to those of endogenous reticulocytes isolated from donors. Next, we examined the expression of endogenous TP in the lower part of erythrocytes with the ability to culture BEL-A and reticulocytes in erythrocyte cell lines, and it was comparable to that of reticulocytes cultured in vitro (Trakarnsanga, K., et al., Nat Commun, 2017. 8: p. 14750).The advantage of using BEL-A cells is that, unlike CD34+-derived cultures which are finite and require restarting each time, they provide a sustainable resource of cells that can be genetically modified and cryopreserved so that the modifications can be maintained indefinitely (Hawksworth, J., et al., EMBO Mol Med, 2018. 10(6); Trakarnsanga, K., et al., Nat Commun, 2017. 8: p. 14750). The expanded BEL-A cells (corresponding to proerythroblasts and erythroblasts) have low endogenous TP expression (Figure 1G and 1H), and BEL-A-derived reticulocytes do not show measurable TP expression (Figure 1H), corresponding to CD34+-derived cultured reticulocytes (Figure 1E) and reticulocytes isolated in vivo (Figure 1B).

[0076] Example 2 - Exogenous overexpression of thymidine phosphorylase in in vitro CD34+ cells and BEL-A-derived cells using lentivirus Cultured erythrocyte precursor (cTP) cells expressing TP and expanded BEL-A (bTP) cells expressing TP were generated by stably introducing a lentivirus expressing human TP cDNA into the cells. Subclones were generated from the polyclonal bTP group by mechanical single-cell sorting using FACS. On day 6, cTP (proerythroblasts) and expanded bTP cells (proerythroblasts) showed a 25-fold and 45-fold increase in TP enzyme expression compared to endogenous expression, respectively, as measured by flow cytometry (Figures 2A and 2B). Activity assays were performed on approximately 8.6 × 10⁶ cells per polyclonal cTP cell. -9 The presence of active oxygen at a concentration in the unit was confirmed, which corresponds to the spontaneous endogenous expression in approximately 10 isolated platelets.

[0077] cTP cells were differentiated, and TP expression was measured on day 10 (basophilic erythroblasts), day 14 (polychromatic erythroblasts), day 16 (northochromatic erythrocytes), and in selected reticulocytes (see Figure 2A). bTP expression was measured during differentiation on day 4 (basophilic erythroblasts), day 6 (polychromatic erythroblasts), day 10 (northochromatic erythrocytes), and in reticulocytes (see Figure 2B). Expression in cTP and bTP reticulocytes was observed to increase 6 and 12-fold compared to endogenous levels, but a significant decrease was observed during final differentiation. The TP activity measured in selected cTP reticulocytes was 4.4 × 10⁶. -9 The cell count was U / Cell (see Figure 2C). The deformability of cTP-derived reticulocytes was measured using an automated rhesoscope cell analyzer (ARCA). This showed that, in terms of both size and deformability, cTP reticulocytes were equivalent to unmodified cTP control reticulocytes.

[0078] Example 3 - Thymidine phosphorylase is degraded in erythroblasts via the ubiquitin degradation pathway. Substantial deficiency of TP enzyme expression during differentiation means that TP is actively degraded during late-stage differentiation. To test whether the degradation of exogenous TP during differentiation is due to ubiquitination or lysosomal degradation, we treated cTP cells (northochromatic erythrocytes) on day 14 with the ubiquitination inhibitor MG132 or the lysosomal degradation inhibitor leupeptin (Tsubuki, S., et al., J Biochem, 1996, 119(3), p. 572-6; Hershko, A. and A. Ciechanover, Annu Rev Biochem, 1982, 51, p. 335-64). TP expression was first measured on day 14, 24 hours after incubation with either the inhibitor or a control vehicle. Leupeptin did not inhibit degradation, but inhibition of degradation was observed with the addition of MG132 (Figure 3A). This indicates that ubiquitination during differentiation is a major cause of degradation of human TP proteins.

[0079] Example 4 - Modeling of human TP and mutagenesis of ubiquitination sites Analysis of the human crystal structure of the TP dimer (2J0F.pdb) showed that the protein is composed of two homodimers, each consisting of a 6α-helix α-domain and an α / β-domain consisting of antiparallel β-sheets surrounded by an α-helix (Norman, RA, et al., Structure, 2004, 12(1), p. 75-84). These domains can be rotated 8° relative to each other for substrate binding. Binding to thymidine and phosphate causes closure for the enzyme, but in the absence of substrate, TP is in an open structure. Dynamic studies of E. coli and rabbit TP proteins showed a continuous binding mechanism, with thymidine binding first and 2-dR-1-P being detached last (Krenitsky, TA, J Biol Chem, 1968, 243(11), p. 2871-5).

[0080] Human and mouse TP proteins exhibited 81.2% identity, and sequence comparison confirmed that two well-known ubiquitination sites located at residues 115 and 221 in the mouse TP enzyme are conserved in the human TP structure. Structural testing demonstrated that both conserved lysines are essential parts of the thymidine binding site, and therefore changes to these critical residues could affect TP activity or stability because they alter the active site (Figure 3B). TP-mut was created by replacing the two lysine residues in human TP with arginine residues and removing the ubiquitination sites while maintaining the active site structure. This enzyme was expressed in both erythrocytes cultured in vitro on day 3 (cTP-mut) and expanded BEL-A cells (bTP-mut), and the cells subsequently differentiated. The achieved TP-mut expression levels corresponded to cTP and expanded bTP cells on day 6 (see Figures 4A and 4B), but TP activity was not detected in cTP-mut reticulocytes (Figure 4C). The mutations impaired enzyme activity and stability. This provides proof of concept that mutations in the ubiquitination site can be used to prevent protein degradation through the enucleation process, but must be used to ensure that the mutation does not disrupt the desired protein activity. Therefore, the enzyme activity site may require remanipulation to remove the ubiquitination site while maintaining activity, or alternative means to interfere with TP ubiquitination.

[0081] Example 5 - Degradation of thymidine phosphorylase is reduced by thymidine supplementation. Following further structural analysis of the human TP molecule, we observed that two ubiquitination sites corresponding to mouse TP would become available for ubiquitination in the absence of the substrate. Therefore, we hypothesized that supplementing the culture medium with thymidine, the substrate of the TP enzyme, would cause closure of the TP structure, inhibiting its degradation by restricting lysine access to the ubiquitination site within the active site. However, previous reports have shown that the addition of thymidine at a concentration of 1 mM could halt the cell cycle and inhibit cell proliferation in K562 cells (Anisimov, AG, et al., Izv Akad Nauk Ser Biol, 2003(3), p. 275-84; Thomas, DB and CA Lingwood, Cell, 1975, 5(1), p. 37-42). To determine whether an increased thymidine concentration in our culture medium could prevent TP degradation, we added 0.5 mM thymidine daily to the medium at the start of the differentiation point during the culture process. Although data are not shown, we observed increased cell death and inhibition of differentiation when thymidine was added early in in vitro culture, for example, on day 0 of differentiation. To avoid this, we supplemented cTP cells with 0.5 mM thymidine daily from day 14 (polychromatic erythroblast stage) and bTP cells from day 6 (polychromatic erythroblast stage), which is approximately the point at which overexpressed human TP is typically degraded. This technique doubled the abundance of TP enzyme in both cTP and bTP reticulocytes compared to cells generated using standard differentiation medium without thymidine supplementation (Figures 5A and 5B).

[0082] Example 6 - Further investigation of enzyme maintenance To investigate the extent to which exogenous enzyme expression is maintained during erythrocyte generation, four different enzymes were expressed in CD34+ hematopoietic stem cells (using lentivirus) and subsequently differentiated into reticulocytes: glutamine synthase (Figure 8), adenosine deaminase (Figure 9), L-asparaginase (Figure 10), and uricase (Figure 11). The exogenous proteins uricase (bacterial enzyme), human L-asparaginase (ASP), and human adenine deaminase (ADA) were tagged with c-Myc to facilitate the measurement of their expression during differentiation by flow cytometry and Western blotting. GAPDH was the endogenous enzyme blotted in several cases. For human glutamine synthase (GS), an antibody specific to this protein was used for the detection of its expression by flow cytometry. The bar graphs in Figures 8-11 show the expression of the specified enzymes during differentiation, as evaluated by flow cytometry in two different cultures. Western blotting shows enzyme expression in in vitro-derived reticulocytes. To investigate whether ubiquitination enhances the maintenance of the GS enzyme at the end of culture, MG132 (a ubiquitin inhibitor) was added to erythroblasts (over)expressing GS on day 15. Expression was measured by flow cytometry on day 19.

[0083] Example 7 - Further identification of enzymes suitable for the present invention The inventors performed sequence site scans on ubiquitin consensus sequences in key enzymes according to the following method. In alanine aminotransferase, the site scan for the consensus sequence reveals ubiquitin sites in both human isoforms. In glutamate dehydrogenase, the site scan reveals ubiquitin sites in one of the two enzymes. In arginine deiminase, there are six human isoforms, and the site scan identified three isoforms that possess ubiquitin consensus sites. In arginine, one of the two isoforms was identified as possessing ubiquitin consensus sites.

[0084] Materials and methods antibody Monoclonal thymidine phosphorylase antibody (Clone P-GF.44C) was used at a 1 / 10 dilution (Thermo Scientific). The secondary antibodies used were APC conjugate monoclonal anti-mouse IgG or polyclonal anti-IgG (Biolegend) or Alexa 647 anti-human (Jackson Laboratories), used at a 1:50 (v / v) ratio.

[0085] BEL-A cell culture BEL-A cells were cultured as previously described (Trakarnsanga, K., et al., Nat Commun, 2017, 8, p. 14750). In short, the cells were cultured in StemSpan SFEM (Stem Cell Technologies) expansion medium supplemented with 50 ng / mL SCF (miltenyi), 3 U / mL EPO (Roche, Welwyn Garden City, UK), 1 μM dexamethasone (Sigma-Aldrich), and 1 μg / mL doxycycline (Sigma-Aldrich) for 1-3 × 10⁶ cells. 5 Cells were maintained at cells / mL. Complete medium changes were performed every 48 hours. Differentiation was induced as previously described: 1.5 × 10 cells were added to differentiation medium (Iskoff modified Dulbecco's medium (IMDM), Source BioScience, Nottingham UK) containing 3% (v / v) AB serum (Sigma-Aldrich, Poole UK), 2 mg / ml HSA (Irvine Scientific, Newtown Mount Kennedy, Ireland), 10 μg / ml insulin (Sigma-Aldrich), 3 U / ml heparin (Sigma-Aldrich), 500 μg / ml transferrin (Sanquin Blood Supply, Netherlands), and 1 ng / mL IL-3 (R&D Systems, Abingdon UK), 10 ng / mL SCF, and 3 U / ml Epo (Roche, Welwyn Garden City, UK) supplemented with 1 μg / mL doxycycline.5 Cells were seeded at [X] cells / mL. After 2 days, the cells were reseeded at 3×10 5 / mL in fresh medium. On day 4 of differentiation, the cells were reseeded at 5×10 5 / mL in fresh medium without doxycycline. On day 6 of differentiation, the complete medium was changed and the cells were reseeded at 1×10 6 / mL. On day 8, the cells were transferred to differentiation medium (without SCF, IL-3 or doxycycline), and the complete medium was changed every 2 days until day 12 and maintained at 1×10 6 / mL.

[0086] CD34 Cell Culture As previously described (Griffiths, R.E., et al., Blood, 2012. 119(26), p. 6296-306), CD34+ hematopoietic stem cells (HSCs) were isolated from mononuclear cells of human blood donors or thawed cryopreserved cord blood units by magnetic bead separation (Miltenyi Biotech Ltd, Bisley UK) according to the manufacturer's instructions. CD34+ cells were grown at a density of 2×105 cells / ml using a basal medium consisting of IMDM (Source BioScience) containing 3% (v / v) AB serum, 2 mg / ml HSA, 10 μg / ml insulin, 3 U / ml heparin, 500 μg / ml transferrin and 3 U / ml Epo. In the first stage, 10 ng / ml of stem cell factor and 1 ng / ml of IL-3 were added thereto, and in the second stage, 10 ng / ml of SCF was added. In the final stage until day 19, only the basal medium was used. 10 μM leupeptin (Sigma-Aldrich) or 5 μM MG132 (Sigma-Aldrich) was added to the differentiating erythroblasts at 1×10 6 and treated at 37 °C under 5% CO2 for 24 hours. The cells were fixed with paraformaldehyde and analyzed by flow cytometry.

[0087] Lentiviral Transduction Human TP cDNA sequences were ordered and cloned into the XLG3 vector using Genscript (Genscript, Leiden NL). Following a previously published protocol (Satchwell et al Haematologica, 2015 100;133-142 Doi:10.3324 / haematol.2014.114538), the lysine at sites 115 and 221 of the original TP sequence was mutated to arginine, thereby preparing a TP-mut lentivirus. For transduction of BEL-A and CD34+ hematopoietic cells, 2 × 10⁶ cells were injected into 2 ml of medium in the presence of 8 μg / ml polyblen. 5 The cells were treated with the virus for 24 hours. The cells were washed three times and resuspended in fresh culture medium.

[0088] Flow cytometry and FACS In flow cytometry of undifferentiated BEL-A, 1 × 10⁻⁶ 5 Cells were fixed with 1% paraformaldehyde and 0.0075% glutaraldehyde, permeabilized with 0.1% TritonX-100, resuspended in PBSAG (PBS + 1 mg / ml BSA, 2 mg / ml glucose) + 1% BSA, and labeled with primary antibody treatment at 4°C for 30 minutes. Cells were washed with PBSAG, incubated with appropriate APC conjugate secondary antibody at 4°C for 30 minutes, washed, and data were obtained using a plate reader with MacsQuant VYB Analyser. Reticulocytes were identified by gating for Hoechst-negative cells. In FACS sorting of cells, the BDMinflux Cell Sorter was used to isolate single clones by sorting propidium iodide as the negative group in 96-well plates.

[0089] TP activity assay Cells were hydrated in 1 × 10⁶ cells in a lysis buffer (50 mM Tris-HCl, pH 7.2, 1% (w / v) Triton X-100, 2 mM phenylmethylsulfonyl fluoride (PMSF), 0.02% (v / v) 2-mercaptoethanol). 6The lysates were resuspended in cells. The lysates were centrifuged at 16000 g at 4°C for 30 minutes, and then 176 mM thymidine and 5×TP reaction buffer (0.5 M Tris-arsenate, pH 6.5) were added to the supernatant. The controls used were lysis buffer alone or lysis buffer containing purified TP protein (Sigma-Aldrich, Poole UK) at known concentrations. The reaction was incubated at 37°C for 30 minutes, and then terminated by adding 0.3 M NaOH. Absorbance was measured at 299 nm using a spectrophotometer and compared with a calibration curve for TP enzyme concentration (Marti, R., LC Lopez, and M. Hirano, Methods in Molecular Biology (Clifton, NJ), 2012. 837: p. 121-133).

[0090] Measurement of reticulocyte deformability using ARCA 1 x 10 6The reticulocytes were resuspended in 200 μl of polyvinylpyrrolidone solution (PVP, viscosity 28.1; Mechatronics Instruments, The Netherlands). The samples were assayed using ACEC (Dobbe, JGG, et al., Measurement of the distribution of red blood cell deformability using an automated rheoscope. 2002. 50(6), p. 313-325), consisting of a plate-plate optical shearing stage (model CSS450) mounted on a Linkam imaging station assembly, with temperature controlled using Linksys32 software (Linkam Scientific Instruments, Surrey, UK). The microscope is an LMPlanFL 50× with a 10.6 mm working distance objective lens (Olympus, Essex, UK) illuminated by an X-1500 stroboscope (PerkinElmer, The Netherlands) through a bandpass interference filter (CWL 420 nm, FWHM 10 nm; Edmund Optics, Poppleton, UK). Images were obtained using a uEye camera (UI-2140SE-M-GL; IDS GmbH, Obersulm, Germany). Images of at least 1000 cells were obtained for each sample and analyzed using customized ARCA software.

[0091] TP Modeling Ubiquitination sites were predicted from mUbiSiDa, a database of mammalian protein ubiquitination sites (http: / / 202.195.183.4:8000 / BroGo3_data.php?name=0016154). Details of mouse ubiquitination sites were analyzed by Wagner et al. (Mol Cell Proteomics, 2012, 11(12), p. 1578-85). Clustal Omega (DOI: 10.1093 / nar / gkz268) was used to align human and mouse sequences. Protein structures were visualized, and images were generated using UCSF Chimera software (DOI: 10.1002 / jcc.20084).

[0092] Identification of consensus sequences in ubiquitin sites Many protein sequences were targeted for ubiquitin consensus sequence searching using two sequence search programs. The first is UbPred (Radivojac, P., Vacic, V., Haynes, C., Cocklin, RR, Mohan, A., Heyen, JW, Goebl, MG, and Iakoucheva, LM Identification, Analysis and Prediction of Protein Ubiquitination Sites. Proteins: Structure, Function, and Bioinformatics. 78(2):365-380. (2010)), which is accessible online at http: / / www.ubpred.org / , and the second is PhosphoSite ("Hornbeck PV, Zhang B, Murray B, Kornhauser JM, Latham V, Skrzypek E PhosphoSitePlus, 2014: mutations, PTMs and recalibrations. Nucleic Acids Res. 2015"), which is accessible online at https: / / www.phosphosite.org / . 43:D512-20.) (The latter provides all potential post-translational sites, including acetylation and ubiquitination).

Claims

1. A method for producing reticulocytes containing increased levels of target protein, wherein the method is: (a) Prepare a erythrocyte precursor capable of expressing the target protein, (b) Expressing the target protein, (c) The process of maturing the erythrocyte precursor into reticulocytes, When the erythrocyte precursor matures into the reticulocyte, the ubiquitination of the target protein is inhibited or prevented. The aforementioned target protein is a variant of the source protein, A method wherein the source protein is a protein or polypeptide containing a ubiquitination site, and a variant of the source protein contains at least one amino acid mutation at the ubiquitination site.

2. (d) Further comprising maturing the reticulocytes into red blood cells, The method according to claim 1, wherein ubiquitination during the maturation of red blood cells is inhibited or prevented.

3. The method according to claim 1 or 2, wherein the target protein comprises an exogenous protein and / or an exogenous polypeptide.

4. The method according to any one of claims 1 to 3, wherein the erythrocyte precursor is a stem cell, a hematopoietic stem cell, an induced pluripotent stem cell, an immortalized erythrocyte cell line, or an erythroblast.

5. The method according to any one of claims 1 to 4, wherein the target protein is an enzyme.

6. The method according to any one of claims 1 to 5, wherein the target protein is thymidine phosphorylase, glutamine synthase, hexokinase / glucokinase, phenylalanine hydroxylase, alcohol dehydrogenase, catalase, glucose-6-phosphate dehydrogenase, adenosine deamylase, L-asparaginase, uricase, alanine aminotransferase, glutamate dehydrogenase, arginine deiminase, or arginase.

7. The method according to claim 2, wherein the reticulocytes or red blood cells are isolated reticulocytes or isolated red blood cells.

8. Red blood cells containing the target protein, The aforementioned target protein is a variant of the source protein, The source protein is a protein or polypeptide containing a ubiquitination site. The variant of the source protein is a erythrocyte having at least one amino acid mutation at the ubiquitination site that interferes with or prevents ubiquitination.

9. The erythrocyte cell according to claim 8, which is a erythrocyte precursor.

10. The erythrocyte according to claim 8, which is an enucleated erythrocyte.

11. The erythrocyte according to any one of claims 8 to 10, wherein the target protein comprises an exogenous protein and / or an exogenous polypeptide.

12. The erythrocyte according to any one of claims 8 to 11, wherein the target protein is an enzyme.

13. The erythrocyte according to any one of claims 8 to 12, wherein the target protein is thymidine phosphorylase, glutamine synthase, hexokinase / glucokinase, phenylalanine hydroxylase, alcohol dehydrogenase, catalase, glucose-6-phosphate dehydrogenase, adenosine deamylase, L-asparaginase, uricase, bacterial L-phenylalanine ammonia lyase, alanine aminotransferase, glutamate dehydrogenase, arginine deiminase, or arginase.

14. An isolated red blood cell, as described in any one of claims 8 to 13.

15. A pharmaceutical composition comprising erythrocytes according to any one of claims 8 to 14, and a pharmaceutically acceptable carrier, excipient and / or adjuvant.

16. The present invention comprises red blood cells containing the target protein, and a pharmaceutically acceptable carrier, excipient, and / or adjuvant. The aforementioned target protein is a variant of the source protein, The source protein is a protein or polypeptide containing a ubiquitination site. A pharmaceutical composition comprising a variant of the source protein having at least one amino acid mutation at its ubiquitination site that inhibits or prevents ubiquitination of the source protein.

17. The pharmaceutical composition according to claim 16, wherein the red blood cells are enucleated red blood cells.

18. The pharmaceutical composition according to claim 17, wherein the enucleated red blood cells are reticulocytes or red blood cells.

19. Red blood cells according to any one of claims 8 to 14, or a pharmaceutical composition according to any one of claims 15 to 18, for use in treatment.

20. The use described above is for use in enzyme replacement therapy, organ repair or detoxification, and is for use in the treatment of mitochondrial nervous system encephalomyopathy, hyperammonemia, hyperglycemia, phenylalanine hydroxylase enzyme deficiency, alcohol toxicity / detoxification, catalase deficiency and / or prevention of cytotoxicity by reactive oxygen species, G6PD deficiency, adenosine deaminase deficiency, acute lymphoblastic leukemia, hyperuricemia, phenylketonuria / phenylalanine hydroxylase enzyme deficiency, or hyperargininemia, according to claim 19.

21. Use of red blood cells according to any one of claims 8 to 14, or a pharmaceutical composition according to any one of claims 15 to 18, for the purpose of manufacturing a drug for therapeutic use.

22. For use in treating patients who require treatment, Red blood cells according to any one of claims 8 to 14, or a pharmaceutical composition according to any one of claims 15 to 18.