Differentiation of nociceptors from human pluripotent stem cells

By regulating the signaling pathways of pluripotent stem cells and using specific compounds to form nocispheres, the problems of low differentiation efficiency and high cost of nociceptor cells in existing technologies have been solved, achieving efficient and reliable nociceptor-like cell culture, which is suitable for drug discovery and regenerative medicine.

JP7838964B2Active Publication Date: 2026-04-01THE GOVERNMENT OF THE UNITED STATES OF AMERICA AS REPRESENTED BY THE SECRETARY DEPARTMENT OF HEALTH & HUMAN SERVICES
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-04-24
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing technologies for efficiently and reliably differentiating cells with nociceptor characteristics from pluripotent stem cells suffer from low efficiency, unreliability, and high cost, and often lead to confusion among different cell lineages.

Method used

By using specific compounds to regulate signaling pathways in pluripotent stem cell culture, including WNT signaling activation and TGF-β signaling inhibition, combined with Notch and EGF/VEGF/MAP kinase pathway inhibition, nocispheres are formed, enabling efficient culture of nociceptor-like cells.

Benefits of technology

It achieves efficient, reliable, and cost-effective differentiation of nociceptor-like cells, is suitable for automated production, and is applicable to fields such as drug discovery, toxicity screening, and regenerative medicine.

✦ Generated by Eureka AI based on patent content.

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Abstract

Methods for generating neural crest-like cells and nociceptor-like cells from human pluripotent stem cells are provided, along with related compositions.
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Description

[Technical Field]

[0001] Government license application ready This invention was made with government funding from the NIH Regenerative Medicine Program (NIH Common Fund) and the National Center for Advanced Translational Sciences (NCATS) of the U.S. National Institutes of Health. The U.S. Government has certain rights in this invention.

[0002] Related prior applications This application claims priority to U.S. Provisional Patent Application No. 62 / 837,891, filed on 24 April 2019, which is incorporated herein by reference in its entirety.

[0003] field The present invention relates to compositions and methods useful for culturing and differentiating pluripotent stem cells, in the fields of biochemistry, cell biology, bioengineering, drug development, and stem cell biology, as well as related fields. [Background technology]

[0004] background Pluripotency is a remarkable cellular state in which stem cells can differentiate into any cell type of the human body. Vertebrate pluripotent stem cells, such as embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), exhibit extensive self-renewal and possess the potential to differentiate into any somatic cell type. The creation of desired cell types from pluripotent stem cells holds great potential for drug discovery, disease modeling, and regenerative medicine. For example, the development of novel, non-addictive pain medications for human use, as well as for addiction research, would greatly benefit from the directional differentiation of human pluripotent stem cells (hPSCs) into relevant cells of the nervous system, such as nociceptors (also known as sensory neurons). Unfortunately, existing procedures for creating nociceptors from vertebrate pluripotent stem cells can be inefficient, unreliable, and lengthy. Furthermore, the reproducibility shown is insufficient, expensive supplements are required, and often result in a chaotic mixture of different cell lineages. Therefore, there is a need for improved methods for creating cells from vertebrate pluripotent stem cells that exhibit at least some of the characteristics of nociceptor cells. [Overview of the Initiative] [Means for solving the problem]

[0005] overview This document describes a method useful for preparing and maintaining differentiated vertebrate cells in culture that exhibit at least some characteristics of peripheral sensory neurons in vertebrates, such as nociceptor cells, and includes this method in various embodiments of the present invention. It also describes a method useful for preparing and maintaining vertebrate cells in culture that exhibit at least some characteristics of neural crest cells, and includes this method in various embodiments of the present invention. In particular, the method described herein is highly efficient, cost-effective, reproducible, scalable, and suitable for automation. The method described herein is particularly useful in drug discovery and drug development, such as the discovery and development of new pain medications; in nociceptor-related research, such as pain and addiction research; in high-throughput screening of compounds for various applications, such as drug development and toxicity screening; in disease modeling and research, such as modeling and research of hereditary and acquired neurological disorders; and in regenerative therapy, such as replacement and repair of damaged nerve cells, as well as in cell engineering and tissue engineering.

[0006] The advantages of the compositions, kits, and methods of the present invention are discussed throughout this document and illustrated in the accompanying drawings.

[0007] The terms “invention,” “the invention,” “this invention,” and “the present invention,” when used in this document, are intended to broadly refer to all the subject matter of this patent application and the following claims. Any statements containing these terms should be understood not to limit the subject matter described herein, nor to limit the meaning or scope of the following claims. The embodiments of the invention covered are defined by the claims and not by this abstract. This abstract is a high-level overview of various aspects of the invention, introducing some of the ideas described and illustrated in this document and the accompanying drawings. This abstract is not intended to identify any key or essential features of the subject matter described in the claims, nor is it intended to be used independently to determine the scope of the subject matter described in the claims. The subject matter should be understood by referring to appropriate parts of this entire specification, any or all of the drawings, and each claim. Various embodiments of the invention are described and referred to in this document. It is not intended that the scope of the invention is defined by any particular embodiment. Rather, this embodiment merely illustrates non-limiting examples of various methods, compositions, kits, systems, etc., that fall within the scope of the present invention. Some embodiments of the present invention are summarized below, but other embodiments are described and shown elsewhere in this document.

[0008] Exemplary embodiments of the present invention include a method for producing cells capable of differentiating into nociceptor-like cells in culture. Some embodiments of the present invention for producing cells capable of differentiating into nociceptor-like cells in culture include: incubating an adherent monolayer culture of vertebrate pluripotent stem cells for approximately 24 to 144 hours in a first medium containing at least one first compound capable of activating WNT signaling in an effective amount or effective concentration, and at least one second compound capable of inhibiting TGF-beta signaling in an effective concentration; dissociating the incubated cells; and dissociating the dissociated cells in an effective amount of at least one third compound capable of activating WNT signaling. Alternatively, the method includes culturing for 168 to 432 hours in a second medium containing, at an effective amount or effective concentration, at least one fourth compound capable of inhibiting TGF-beta signaling, at least one fifth compound capable of inhibiting the Notch pathway, and at least one sixth compound capable of inhibiting one or more of the EGF, VEGF, and MAP kinase signaling pathways, thereby creating one or more nocispheres containing cells capable of differentiating into nociceptor-like cells. In some embodiments, the cells capable of differentiating into nociceptor-like cells are neural crest-like cells. In some embodiments, the cells capable of differentiating into nociceptor-like cells detectably express SOX10. In some embodiments, one or more nocispheres further contain nociceptor-like cells. In some embodiments, the nociceptor-like cells detectably express BRN3A. In some embodiments of the method, the vertebrate pluripotent stem cells are induced pluripotent stem cells or embryonic pluripotent stem cells. In some embodiments, vertebrate pluripotent stem cells are human pluripotent stem cells. In some embodiments, the first medium is a standard medium, the second medium is a standard medium, and the first medium is the same as or different from the second medium. The first medium may be E6, DMEM-F12, or Knockout-DMEM / F12. The second medium may be E6, DMEM-F12, or Knockout-DMEM / F12.In some embodiments, the first and / or second culture media are not supplemented with additives that activate or inhibit the bone morphogenetic protein (BMP) protein pathway. In some embodiments, the first and / or second culture media are not supplemented with bone morphogenetic protein 4 (BMP4). In some embodiments, the at least one first compound is CHIR98014 or CHIR99021 or a combination thereof. In some embodiments, the effective concentration of CHIR98014 or CHIR99021 is 20 nM to 20 μM. In some embodiments, the at least one second compound is A83-01 or SB431542 or a combination thereof. In some embodiments, the effective concentration of A83-01 is 20 nM to 20 μM, and the effective concentration of SB431542 is 20 nM to 40 μM. In some embodiments, the at least one third compound is CHIR98014 or CHIR99021 or a combination thereof. In some embodiments, the effective concentration of CHIR98014 or CHIR99021 is 20 nM to 20 μM. In some embodiments, the at least one fourth compound is A83-01 or SB431542 or a combination thereof. In some embodiments, the effective concentration of A83-01 is 20 nM to 20 μM, and the effective concentration of SB431542 is 20 nM to 40 μM. In some embodiments, the at least one fifth compound is DBZ, DAPT, LY411575, or LY3039478 or a combination of two or more of these. In some embodiments, the effective concentration of DBZ is 20 nM to 20 μM, the effective concentration of DAPT is 5 nM to 50 μM, the effective concentration of LY411575 is 2 nM to 20 μM, and the effective concentration of LY3039478 is 2 nM to 20 μM. In some embodiments, the at least one sixth compound is PD173074 or SU5402 or a combination thereof. In some embodiments, the effective concentration of PD173074 or SU5402 is 2 nM to 20 μM. In some embodiments, the second culture medium further contains an effective amount or effective concentration of at least one seventh compound which is a CDK4 / 6 inhibitor. In some embodiments, the CDK4 / 6 inhibitor is PD0332991. In some embodiments, the effective concentration of PD0332991 is 2 nM to 20 μM.In some embodiments, the step of culturing the dissociated cells includes changing a second culture medium approximately every 12 to 36 hours. Some embodiments of the above method further include the step of dissociating one or more nocispheres, thereby creating dissociated nocisphere cells. Some embodiments of the above method further include the step of cryopreserving one or more nocispheres or dissociated nocisphere cells, which are capable of differentiating into nociceptor-like cells. In some embodiments of the above method, one or more steps of the method are performed by an automated system.

[0009] Exemplary embodiments of the present invention include: incubating an adherent monolayer culture of vertebrate pluripotent stem cells for approximately 24 to 144 hours in a first medium containing at least one first compound capable of activating WNT signaling in an effective amount or effective concentration, and at least one second compound capable of inhibiting TGF-beta signaling in an effective concentration; dissociating the incubated cells; and dissociating the cells with at least one third compound capable of activating WNT signaling in an effective amount or effective concentration, and at least one fourth compound capable of inhibiting TGF-beta signaling in an effective amount or effective concentration, which can inhibit the Notch pathway. A method for culturing nociceptor-like cells includes the steps of: culturing for 168 to 432 hours in a second medium containing one fifth compound in an effective amount or effective concentration, and at least one sixth compound capable of inhibiting one or more of the EGF, VEGF, and MAP kinase signaling pathways, thereby creating one or more nociceptor-like cells; dissociating the one or more nociceptors, thereby creating dissociated nociceptor-like cells; and growing the dissociated nociceptor-like cells in a culture state under conditions that promote differentiation of nociceptor-like cells. In some embodiments, the cells capable of differentiating into nociceptor-like cells are neural crest-like cells. In some embodiments, the cells capable of differentiating into nociceptor-like cells detectably express SOX10. In some embodiments, the nociceptors further comprise one or more nociceptors. In some embodiments, the nociceptor-like cells detectably express BRN3A. In some embodiments of the method, the vertebrate pluripotent stem cells are induced pluripotent stem cells or embryonic pluripotent stem cells. In some embodiments, the vertebrate pluripotent stem cells are human pluripotent stem cells. In some embodiments, the first medium is a standard medium, the second medium is a standard medium, and the first medium is the same as or different from the second medium. The first medium may be E6, DMEM-F12, or Knockout-DMEM / F12. The second medium may be E6, DMEM-F12, or Knockout-DMEM / F12.In some embodiments, the first and / or second culture media are not supplemented with additives that activate or inhibit the bone morphogenetic protein (BMP) protein pathway. In some embodiments, the first and / or second culture media are not supplemented with bone morphogenetic protein 4 (BMP4). In some embodiments, the at least one first compound is CHIR98014 or CHIR99021 or a combination thereof. In some embodiments, the effective concentration of CHIR98014 or CHIR99021 is 20 nM to 20 μM. In some embodiments, the at least one second compound is A83-01 or SB431542 or a combination thereof. In some embodiments, the effective concentration of A83-01 is 20 nM to 20 μM, and the effective concentration of SB431542 is 20 nM to 40 μM. In some embodiments, the at least one third compound is CHIR98014 or CHIR99021 or a combination thereof. In some embodiments, the effective concentration of CHIR98014 or CHIR99021 is 20 nM to 20 μM. In some embodiments, the at least one fourth compound is A83-01 or SB431542 or a combination thereof. In some embodiments, the effective concentration of A83-01 is 20 nM to 20 μM, and the effective concentration of SB431542 is 20 nM to 40 μM. In some embodiments, the at least one fifth compound is DBZ, DAPT, LY411575, or LY3039478 or a combination of two or more of these. In some embodiments, the effective concentration of DBZ is 20 nM to 20 μM, the effective concentration of DAPT is 5 nM to 50 μM, the effective concentration of LY411575 is 2 nM to 20 μM, and the effective concentration of LY3039478 is 2 nM to 20 μM. In some embodiments, the at least one sixth compound is PD173074 or SU5402 or a combination thereof. In some embodiments, the effective concentration of PD173074 or SU5402 is 2 nM to 20 μM. In some embodiments, the second culture medium further contains an effective amount or effective concentration of at least one seventh compound which is a CDK4 / 6 inhibitor. In some embodiments, the CDK4 / 6 inhibitor is PD0332991. In some embodiments, the effective concentration of PD0332991 is 2 nM to 20 μM.In some embodiments, the step of culturing the dissociated cells includes changing the second medium approximately every 12 to 36 hours. In some embodiments, the step of growing the dissociated nosisphere cells in culture is carried out for at least approximately 168 hours or 168 to 336 hours. In some embodiments, the conditions for promoting the differentiation of nociceptor-like cells include the presence of an N2 supplement and a B27 supplement, and may further include the presence of one or more of BDNF, GDNF, NGF, or NT-3. In some embodiments, the conditions for promoting the differentiation of nociceptor-like cells may further include the presence of at least one eighth compound capable of inhibiting the Notch pathway in an effective amount or effective concentration, at least one ninth compound capable of inhibiting one or more of EGF, VEGF, and MAP kinase signaling, or one or more of at least one ninth compound that is a CDK4 / 6 inhibitor in an effective amount or effective concentration. In some embodiments, the at least one eighth compound is DBZ, DAPT, LY411575, or LY3039478, or a combination of two or more of these. In some embodiments, the effective concentration of DBZ is 20 nM to 20 μM, the effective concentration of DAPT is 5 nM to 50 μM, the effective concentration of LY411575 is 2 nM to 20 μM, and the effective concentration of LY3039478 is 2 nM to 20 μM. In some embodiments, the at least one sixth compound is PD173074, SU5402, or a combination thereof. In some embodiments, the effective concentration of PD173074 or SU5402 is 2 nM to 20 μM. In some embodiments, the CDK4 / 6 inhibitor is PD0332991. In some embodiments, the effective concentration of PD0332991 is 2 nM to 20 μM. In some embodiments of the above method, the conditions for promoting the differentiation of nociceptor-like cells do not include supplementation with additives that activate or inhibit the bone morphogenetic protein (BMP) pathway. In some embodiments, the conditions do not include supplementation with bone morphogenetic protein 4 (BMP4).In some embodiments, conditions for promoting the differentiation of nociceptor-like cells include culturing them in DMEM / F12 medium, Neurobasal medium, or BrainPhys medium. In some embodiments of the above method, the nociceptor-like cells detectably express one or more of TUJ1, peripherin, ISL1, GGRP, TRPV1, NAV1.7, NAV1.8, NAV1.9, OPRM1, OPRMK1, OPRD1, OPRL1, or NF200. For example, nociceptor-like cells may detectably express NAV1.8, OPRM1, OPRMK1, and OPRD1. In some embodiments, the nociceptor-like cells lack dendrites that detectably express MAP2. Some embodiments of the above method further include the step of cryopreserving one or more of the cells capable of differentiating into nociceptor-like cells, or one or more of the dissociated nocisphere cells. Some embodiments of the above method include, after the step of dissociating one or more nocispheres, cryopreserving the dissociated nocisphere cells and thawing the dissociated nocisphere cells. Some embodiments of the above method include the step of cryopreserving the nociceptor-like cells. In some embodiments, one or more of the steps of cryopreserving one or more nocispheres, cryopreserving the dissociated nocisphere cells, or cryopreserving the nociceptor-like cells are carried out in a cryopreservation medium comprising chroman 1 and / or its derivatives, emricasane and / or its derivatives, trans-ISRIB, and polyamines including putrescine, spermine, and spermidine. In some embodiments, the concentrations of chroman 1 and / or its derivatives in the cryopreservation medium are approximately 4 nM to 40 μM, 10 nM to 20 μM, 20 nM to 10 μM, or 30 nM to 500 nM; emricasane and / or its derivatives are approximately 100 nM to 40 μM, 200 nM to 30 μM, or 300 nM to 20 μM; trans-ISRIB is approximately 50 nM to 6.25 μM, 100 nM to 6.25 μM, or 200 nM to 6.25 μM; and putrescine, spermine, and spermidine are each approximately 0.5 μM to 1 mM.In some embodiments of the above method, one or more steps of the method are performed by an automated system.

[0010] Exemplary embodiments of the present invention include a composition comprising at least one cultured nociceptor-like cell that detectably expresses one or more of the following: BRN3A, TUJ1, Peripherin, I1, GGRP, TRPV1, NAV1.7, NAV1.8, NAV1.9, OPRM1, OPRMK1, OPRD1, OPRL1, or NF200. In some embodiments, at least one cultured nociceptor-like cell detectably expresses NAV1.8, OPRM1, OPRK1, and OPRD1. In some embodiments, the at least one cultured nociceptor-like cell lacks a dendrite that detectably expresses MAP2. In some embodiments, the at least one cultured nociceptor-like cell is cryopreserved or is cryopreserved. In some embodiments, the at least one cultured nociceptor-like cell is cryopreserved or has been cryopreserved in a cryopreservation medium containing chroman 1 and / or its derivatives, emricasane and / or its derivatives, trans-ISRIB, and polyamines including putrescine, spermine, and spermidine. In some embodiments, in cryopreservation media, chroman 1 and / or its derivatives are present at concentrations of approximately 4 nM to approximately 40 μM, approximately 10 nM to approximately 20 μM, approximately 20 nM to approximately 10 μM, or approximately 30 nm to approximately 500 nM; emricasane and / or its derivatives at concentrations of approximately 100 nM to approximately 40 μM, approximately 200 nm to approximately 30 μM, or approximately 300 nM to approximately 20 μM; trans-ISRIB at concentrations of approximately 50 nM to approximately 6.25 μM, approximately 100 nM to approximately 6.25 μM, or approximately 200 nM to approximately 6.25 μM; and putrescine, spermine, and spermidine at concentrations of approximately 0.5 μM to 1 mM, each. Exemplary embodiments of the present invention also include cell cultures containing the above compositions. Cell cultures according to various embodiments of the present invention may further comprise a culture medium containing chroman 1 and / or its derivatives, emricasane and / or its derivatives, trans-ISRIB, and polyamines including putrescine, spermine, and spermidine.In some embodiments, the culture medium contains chroman 1 and / or its derivatives at concentrations of approximately 4 nM to 40 μM, 10 nM to 20 μM, 20 nM to 10 μM, or 30 nM to 500 nM; emricasane and / or its derivatives at concentrations of approximately 100 nM to 40 μM, 200 nM to 30 μM, or 300 nM to 20 μM; trans-ISRIB at concentrations of approximately 50 nM to 6.25 μM, 100 nM to 6.25 μM, or 200 nM to 6.25 μM; and putrescine, spermine, and spermidine at concentrations of approximately 0.5 μM to 1 mM, each. In some embodiments, the cell culture is grown from previously cryopreserved cells. In some embodiments, previously cryopreserved cells are cryopreserved in a cryopreservation medium containing chroman 1 and / or its derivatives, emricasane and / or its derivatives, trans-ISRIB, and polyamines including putrescine, spermine, and spermidine. In some embodiments, the cryopreservation medium contains chroman 1 and / or its derivatives at concentrations of approximately 4 nM to approximately 40 μM, approximately 10 nM to approximately 20 μM, approximately 20 nM to approximately 10 μM, or approximately 30 nM to approximately 500 nM; emricasane and / or its derivatives at concentrations of approximately 100 nM to approximately 40 μM, approximately 200 nM to approximately 30 μM, or approximately 300 nM to approximately 20 μM; and trans-ISRIB at concentrations of approximately 50 nM to approximately 6.25 μM, approximately 100 nM to approximately 6.25 μM, or approximately 200 nM to approximately 6.25 μM, with putrescine, spermine, and spermidine each at concentrations of approximately 0.5 μM to 1 mM.

[0011] Exemplary embodiments of the present invention include a composition comprising at least one cultured neural crest-like cell. In some embodiments, the at least one cultured neural crest-like cell can differentiate into at least one nociceptor-like cell. In some embodiments, the at least one cultured neural crest-like cell detectably expresses SOX10. Some embodiments of the above composition further include at least one cultured nociceptor-like cell that detectably expresses one or more of BRN3A, TUJ1, peripherin, GGRP, TRPV1, NAV1.7, NAV1.8, NAV1.9, OPRM1, OPRMK1, OPRD1, OPRL1, or NF200. In some embodiments, the at least one cultured nociceptor-like cell detectably expresses NAV1.8, OPRM1, OPRK1, and OPRD1. In some embodiments, the at least one cultured nociceptor-like cell lacks dendrites that detectably express MAP2. In some embodiments, the composition comprising at least one cultured neural crest-like cell is one or more nocyspheres, or comprises one or more nocyspheres. In some embodiments, the composition comprises dissociated nocysphere cells. In some embodiments, the composition comprising at least one cultured neural crest-like cell is cryopreserved or has been cryopreserved in the past. In some embodiments, the composition is cryopreserved or has been cryopreserved in a cryopreservation medium comprising chroman 1 and / or its derivatives, emricasane and / or its derivatives, trans-ISRIB, and polyamines comprising putrescine, spermine, and spermidine.In some embodiments, in cryopreservation medium, chroman 1 and / or its derivatives are present at concentrations of approximately 4 nM to approximately 40 μM, approximately 10 nM to approximately 20 μM, approximately 20 nM to approximately 10 μM, or approximately 30 nM to approximately 500 nM; emricasane and / or its derivatives at concentrations of approximately 100 nM to approximately 40 μM, approximately 200 nM to approximately 30 μM, or approximately 300 nM to approximately 20 μM; trans-ISRIB at concentrations of approximately 50 nM to approximately 6.25 μM, approximately 100 nM to approximately 6.25 μM, or approximately 200 nM to approximately 6.25 μM; and putrescine, spermine, and spermidine at concentrations of approximately 0.5 μM to 1 mM, each. Exemplary embodiments of the present invention also include cell cultures comprising the composition, each comprising at least one cultured neural crest-like cell. In some embodiments, the cell culture further comprises a culture medium containing chroman 1 and / or its derivatives, emricasane and / or its derivatives, trans-ISRIB, and polyamines including putrescine, spermine, and spermidine. In some embodiments, the culture medium contains chroman 1 and / or its derivatives at concentrations of approximately 4 nM to 40 μM, 10 nM to 20 μM, 20 nM to 10 μM, or 30 nM to 500 nM; emricasane and / or its derivatives at concentrations of approximately 100 nM to 40 μM, 200 nM to 30 μM, or 300 nM to 20 μM; trans-ISRIB at concentrations of approximately 50 nM to 6.25 μM, 100 nM to 6.25 μM, or 200 nM to 6.25 μM; and putrescine, spermine, and spermidine at concentrations of approximately 0.5 μM to 1 mM, each. In some embodiments, the cell culture is grown from previously cryopreserved cells. In some embodiments, previously cryopreserved cells are cryopreserved in a cryopreservation medium containing chroman 1 and / or its derivatives, emricasane and / or its derivatives, trans-ISRIB, and polyamines including putrescine, spermine, and spermidine.In some embodiments, the concentrations of chroman 1 and / or its derivatives in the cryopreservation medium are approximately 4 nM to 40 μM, 10 nM to 20 μM, 20 nM to 10 μM, or 30 nM to 500 nM; emricasane and / or its derivatives are approximately 100 nM to 40 μM, 200 nM to 30 μM, or 300 nM to 20 μM; trans-ISRIB is approximately 50 nM to 6.25 μM, 100 nM to 6.25 μM, or 200 nM to 6.25 μM; and putrescine, spermine, and spermidine are each approximately 0.5 μM to 1 mM. [Brief explanation of the drawing]

[0012] [Figure 1] Figure 1 is a schematic diagram of an exemplary procedure for generating nociceptor-like cells.

[0013] [Figure 2] Figure 2 shows the structure of an exemplary small molecule used in some embodiments of the present invention.

[0014] [Figure 3] Figure 3 shows representative images of plated cells taken on day 28 of culture using an exemplary procedure for generating nociceptor-like cells. The cells were immunostained immunocytochemically with the indicated combinations of antibodies specific to the following proteins: TUJ1 (also known as beta-III tubulin, a neuronal marker); BRN3A (a transcription factor typically expressed by nociceptors); Peripherin (PRPH, a peripheral neuron marker); ISL1 (a transcription factor expressed by nociceptors); CGRP (calcitonin gene-related protein, a neuropeptide typically expressed by nociceptors); TRPV1 (vanilloid receptor 1, typically expressed by nociceptors); and NAV1.7 (sodium channel, typically expressed by nociceptors). The label "Ho" indicates a Hoechst counterstain that labels the cell nucleus.

[0015] [Figure 4A]Figure 4A shows a representative image of plated cells taken on day 28 of culture by an exemplary procedure for creating nociceptor-like cells. The cells were immunocytochemically stained with specific antibodies against NF200 (neurofilament 200, a typical marker for visualizing axons) and the transcription factor BRN3A (a transcription factor typically expressed by nociceptors). Hoechst dye was used as a counterstain for visualizing cell nuclei. The merged image in the lower right corner of Figure 4A shows all the stains combined together.

[0016] [Figure 4B] Figure 4B shows a representative image of plated cells taken on day 28 of culture by an exemplary procedure for creating nociceptor-like cells. The cells were immunocytochemically stained with specific antibodies against TUJ1 and vGLUT1 (vesicular glutamate transporter 1, a marker for glutamatergic neurons), and the predicted glutamatergic neurotransmitter phenotype of the nociceptor-like cells was confirmed. Hoechst dye was used as a counterstain for visualizing cell nuclei. The merged image in the lower right corner of Figure 4B shows all the stains combined together.

[0017] [Figure 4C] Figure 4C shows a representative image of day 28 cells cultured according to an exemplary procedure for creating nociceptor-like cells. The cells were immunocytochemically stained with specific antibodies against MAP2 (microtubule-associated protein 2, a typical marker for neuron cell bodies and dendrites, which labels only the cell bodies of pseudounipolar nociceptor-like cells without dendrites similar to their in vivo counterparts) and the transcription factor BRN3A (a transcription factor typically expressed by nociceptors). Hoechst dye was used as a counterstain for visualizing cell nuclei. The merged image in the lower right corner of Figure 4C shows all the stains combined together.

[0018] [Figure 5]Figure 5 shows a bar graph depicting the quantitative characterization of plated cells on day 28 of culture according to an exemplary procedure for generating nociceptor-like cells. Two hPSC lines, hESC and iPSC, were differentiated into nociceptor-like cells. On day 28, the cells were stained for SOX10 (a marker for neural crest stem cells) and BRN3A (a marker for nociceptors), and the staining was quantified.

[0019] [Figure 6] Figure 6 shows the results of a systematic analysis of the temporal progression of gene expression from day 0 to day 28 in iPSCs subjected to an exemplary procedure for generating nociceptor-like cells.

[0020] [Figure 7] Figure 7 shows the results of time-course gene expression profiling by RNA-seq of cells differentiated according to a procedure for generating nociceptor-like cells, and a comparison of these results with those available in the ARCHS4 human tissue RNA-seq database.

[0021] [Figure 8] Figure 8 shows the results of a comprehensive analysis by RNA-seq of ion channels and receptors expressed by nociceptor-like cells.

[0022] [Figure 9] Figure 9 shows a line graph depicting the results of time-course gene expression profiling by RNA-seq of important sodium channels.

[0023] [Figure 10] Figure 10 shows a line graph depicting the results of time-course gene expression profiling by RNA-seq of opioid receptors (OPRM1, OPRK1, OPRD1) and opioid-related nociceptin receptor 1 (OPRL1) in cultures differentiating from iPSCs.

[0024] [Figure 11]Figure 11 shows the results of electrophysiological experiments (multi-electrode array) demonstrating that iPSC-derived nociceptor-like cells were stimulated by the application of DMSO, 10 μM α,β-me-ATP, 5 μM capsaicin, and 100 μM mustard oil (allyl isothiocyanate).

[0025] [Figure 12A] Figure 12A shows the results of electrophysiological experiments (multi-electrode array) demonstrating that iPSC-derived nociceptor-like cells were sensitized in response to treatment with oxaliplatin and prostaglandin E2 (PGE2).

[0026] [Figure 12B] Figure 12B is a bar graph showing the quantitative analysis of the experimental results illustrated in Figure 12A.

[0027] [Figure 13] Figure 13 shows the results of an electrophysiological experiment (multi-electrode array) demonstrating that iPSC-derived nociceptor-like cells were stimulated by the application of 10 μM α,β-me-ATP. Furthermore, the differences in the response of iPSC-derived nociceptor-like cells to specific inhibitors of the purinergic receptor P2RX3 were also tested, confirming that RO-51 was the most potent inhibitor in blocking the effects of 10 μM α,β-me-ATP.

[0028] [Figure 14A] Figure 14A shows a photograph of the CompacT SelecT® system (Sartorius) used to perform an automated, exemplary procedure for generating nociceptor-like cells.

[0029] [Figure 14B] Figure 14B shows a representative microscopic image of nociceptor-like cells produced by an exemplary automated procedure for generating nociceptor-like cells. This representative image was obtained 21 days after the start of the differentiation procedure. [Modes for carrying out the invention]

[0030] explanation The embodiments of the present invention were, at least in part, based on the findings discussed below. By manipulating specific timings in critical cellular signaling pathways using small molecule inhibitors, the inventors discovered a procedure for converting cultured human pluripotent stem cells into neural crest cell-like SOX10-expressing cells. When SOX10-expressing cells were subjected to the differentiation procedure, a homogeneous population of nociceptor-like BRN3A-expressing cells was produced in a highly reproducible manner. Extensive morphological, molecular, and electrophysiological characterization experiments confirmed the nociceptor-like characteristics of the resulting differentiated cells, such as the expression of typical nociceptor markers, such as intraneuronal and synaptic proteins, transcription factors, neuropeptides, and over 150 ion channels. Particularly important for applications in pain research and drug development, the nociceptor-like cells produced using the method discovered by the inventors expressed ion channel complexes and receptor molecules known to be present in naturally occurring nociceptors, such as NAV1.8, opioid receptors, and purinergic receptors, such as P2RX3. Previously known stem cell differentiation methods have not been able to produce cells with the above-mentioned characteristics. Using a robotic cell culture system, the inventors automated the procedure for producing nociceptor-like cells from human pluripotent stem cells. Based on the above findings, the inventors conceived a process (method) for producing cells in culture that can differentiate into vertebrate nociceptor cells, such as human nociceptor cells, which exhibit at least some of the characteristics of such cells; a process (method) for producing vertebrate neural crest cells, such as human nociceptor cells, which exhibit at least some of the characteristics of such cells, in culture; and various compositions and kits related to the above processes. The inventors also conceived various applications and uses of their processes (methods), compositions and kits, such as high-throughput applications and uses where high-quality, large-scale, standardized cells are required. In particular, the various embodiments of the present invention described herein may be used in drug discovery and drug development, toxicity screening, disease modeling and research, cell engineering and tissue engineering, cell replacement therapy, and regenerative medicine.

[0031] Terminology and Ideas Several terms and concepts are discussed below. These are intended to facilitate understanding of the various embodiments of the invention in conjunction with other parts of this document and the accompanying drawings. These terms and concepts may be further clarified and understood based on established conventions in the art of the invention and the descriptions and / or accompanying drawings found throughout this document. Several other terms may be explicitly or implicitly defined in other sections of this document and the accompanying drawings, and may be used and understood based on established conventions in the art of the invention, the descriptions and / or accompanying drawings found throughout this document. Terms that are not explicitly defined may also be defined and understood based on established conventions in the art of the invention, and may be interpreted in relation to this document and / or accompanying drawings.

[0032] As used herein, the terms “a,” “an,” and “the” may mean “one,” “one or more,” or “at least one,” unless explicitly noted otherwise.

[0033] The terms “about” or “approximately” are used herein to indicate that a value includes an error in the inherent variability of the device or method used to determine that value, or simply an allowable error in the value. For example, the term “about” may mean a variation of ±1%, ±5%, ±10%, ±15%, or ±20% of a given value.

[0034] As used herein, the terms “isolate,” “separate,” or “purify,” and related terms, are not necessarily used to indicate the removal of all substances other than the component of interest from a sample. Rather, in some embodiments, these terms are used to indicate a procedure that increases the amount of one or more components of interest compared to one or more other components present in the sample. In some embodiments, “isolate,” “separate,” or “purify” may also be used to remove or reduce the amount of one or more components from the sample. For example, the expression “isolated cells” may refer to cells that have been substantially separated or purified and are apart from other cells in a cell culture or organism.

[0035] The term “derived” and related expressions referring to cells or biological samples indicate that the cells or samples were obtained at some point in time from the stated source. For example, cells derived from an organism may be primary cells obtained directly from the individual (i.e., unmodified) or may be modified, for example, by the introduction of a recombinant vector, exposure to specific conditions, or culture or immortalization under specific conditions. In some cases, cells derived from a given source will undergo cell division and / or differentiation, so that the original cells no longer exist, but it will be understood that the maintained cells originate from the same source. The terms “derive,” “derivation,” and related terms and expressions may also be used in this document to indicate the creation of cell populations from different starting populations or starting cells or different predecessor populations or predecessor cells. For example, in the case of the differentiated nociceptor-like cell population described in this document, the starting populations are neural crest-like cells and pluripotent stem cells. Therefore, the nociceptor-like cells may be described as derived from neural crest-like cells and / or pluripotent stem cells. In another example, in the neural crest-like cell population described in this document, the starting population is one or more pluripotent stem cells. Therefore, it can be stated that the neural crest-like cells originate from one or more pluripotent stem cells.

[0036] The terms “comprising” and related terms (such as “comprise” and “comprises”) are open-ended when used in this document to describe various embodiments of the present invention, meaning that no further elements are excluded, and are synonymous with the terms “including,” “containing,” or “having.” When one embodiment of the present invention is described using the term “comprising,” it is intended that embodiments in which the term “comprising” is replaced by the terms “consisting of” or “consisting essentially of.” In other words, descriptions of embodiments of the present invention described in this document using the term “comprising” and related terms also indicate descriptions of related embodiments in which “consisting of” or “consisting essentially of” is used instead of “comprising.” The term “consisting of” excludes any elements (processes, components, etc.) not explicitly stated in this description. The term "consisting essentially of" is intended to exclude only elements not explicitly stated in this description but which do not substantially affect the fundamental and novel features of the embodiments.

[0037] The terms “culture,” “cell culture,” and related terms may be used to refer to a single cell or population of cells present outside the body of an organism. Such cells may be stem cells, primary cells isolated from an organism or obtained from a cell bank, animal or blood bank, or secondary cells derived from such sources. Secondary cells may be immortalized to form a permanent cell culture. Primary cells include any cells of an adult or fetal organism, excluding egg cells, sperm cells, and stem cells. Useful primary cells include, but are not limited to, skin cells, bone cells, blood cells, visceral cells, and connective tissue cells. Secondary cells may be derived from primary cells and may be immortalized to form a permanent in vitro cell culture.

[0038] The terms "culturing," "growing," "maintaining," "broad-culture," and "broad-culture" may be used interchangeably when referring to the culture or process of culturing cells, tissues, or organs, meaning that a single cell or group of cells (this expression includes a group or more undifferentiated or differentiated cells, embryos, embryoid bodies, tissues, or organs) is maintained outside the body (ex vivo and / or in vitro) under conditions suitable for survival, growth, differentiation, and / or conditions under which aging is avoided. In other words, cultured cells or groups of cells are viable, and culture can result in cell growth, differentiation, or division. In this context, the terms "growing" and "culturing" may be used interchangeably and may indicate the maintenance of live cells in a culture under certain conditions. Since some cells can age naturally, the above terms do not imply that all cells in a culture are viable, growing, or dividing. Cells are typically cultured in a culture medium, which may be replaced during the culture process. So-called two-dimensional (2D) cell cultures grow on flat surfaces, typically in plastic tanks, which may be coated with a substrate (e.g., vitronectin, laminin 521, Matrigel, Geltrex). Three-dimensional (3D) cultures are cultures in which living cells are allowed to grow in three dimensions or interact with their surrounding environment. 3D cultures can grow in a variety of artificial environments, for example, but not limited to, plates, flasks, bioreactors, or small capsules in which cells can grow into ellipsoids, spheres, or noctispheres. Examples of 3D culture include so-called scaffold-free and scaffold-based techniques. Scaffold-free methods include, but not limited to, the use of low-adhesion plates, hanging drop plates, micropatterned surfaces, and rotating bioreactors, magnetic levitation, and magnetic 3D bioprinting. A scaffold is a structure or material that provides structural support for cell adhesion and, in some cases, differentiation.Examples of scaffolds include solid scaffolds, sponges (e.g., cellulose sponges), protein-based scaffolds (e.g., collagen or gelatin-based scaffolds), hydrogels, nanofiber scaffolds, and synthetic polymer scaffolds (e.g., polycaprolactone or polystyrene scaffolds). Generally, the culture environment involves consideration of elements such as substrates, gas phase, culture medium, and temperature for cell proliferation, cell density, and cell contact. Cells in culture are generally maintained under conditions known to be optimal for cell proliferation. Such conditions may include, for example, a temperature of approximately 37°C and a humidified atmosphere containing approximately 5% CO2. The duration of incubation can vary widely depending on the desired results.

[0039] The terms “culture medium,” “culture medium,” “culture solution,” and “growth medium,” as well as related terms and expressions, refer to the medium that supports the survival and / or growth of cells (including single and multiple cells), tissues, organs or parts thereof, or embryonic structures (e.g., morula, blastocoel, blastocyst, or embryo). Culture media are typically isotonic and may be liquids, colloidal liquids, gels, solids, and / or semi-solids. Culture media may be configured to provide a matrix for cell adhesion or support, or to provide a separate support (e.g., a cellar surface or scaffold). Culture media may contain components for the nutritional, chemical, and structural support necessary for culturing one or more cells. A known-composition medium (or “standard medium”) is a medium in which the concentrations of all its chemical components are known. In contrast, an undefined medium may contain complex biological components that do not have a fully standardized composition, such as serum albumin or serum. A conditional medium should be understood as a medium previously used in cell culture. This includes metabolites, growth factors, and extracellular matrix proteins secreted into the medium by cultured cells that may be beneficial for subsequent use of such a conditional medium. The culture medium may be prepared in a powder form that is prepared before use, a concentrated form that is diluted before use, or a form that is used without further dilution. For example, the culture medium may be a sterile liquid supplied as a “working solution” to be used without further dilution, in which case it is the culture medium. The working solution of the culture medium may contain one or more additives in an effective amount or effective concentration. In another example, the culture medium may be a gel containing one or more additives in an effective amount. If the culture medium is prepared in a form that requires further preparation, e.g., powder or concentrate, after the medium is prepared, one or more may be added in an amount or concentration intended to be an effective amount (one or more). For example, a 2x concentrated medium may contain one or more additives in twice the effective amount (one or more) intended to be present in the final “working” form of the medium.Culture media typically contain one or more suitable nutrient sources for the growth and / or maintenance of cells intended to be supported, e.g., mammalian cells, e.g., human cells. Appropriate pH and volumetric osmolality are maintained in the culture media. Culture media may contain natural, artificial, and / or synthetic components. Examples of natural components include biological fluids (e.g., plasma, serum, lymph, or amniotic fluid) and tissue extracts (e.g., liver, spleen, tumor, leukocyte, bone marrow, or animal embryo extracts). Examples of culture media composed of artificial components ("artificial media") include MEM and DMEM. Artificial culture media may be serum-containing culture media, serum-free culture media (which may contain purified growth factors of specified quality, lipoproteins, and other components derived from serum), culture media of known composition, or protein-free culture media. Culture media may contain buffers, one or more inorganic salts, essential amino acids, one or more carbohydrates (e.g., glucose), fatty acids, lipids, vitamins, and trace elements, one or more of these. An example of a buffer is CO2 in the gas phase and CO3 in the culture. 2- / HCO 3-This is a so-called natural buffer system that is balanced with the content. Another example is a chemical buffer system, such as the use of the amphoteric ion buffer 4-(2-hydroxyethyl)-1-piperazine ethanesulfonic acid (HEPES). The culture medium may contain a pH indicator, such as phenol red, to enable pH monitoring during cell proliferation. One or more inorganic salts in the culture medium supply sodium, potassium, and calcium ions, providing osmotic balance and assisting in the regulation of cell membrane potential. Essential amino acids that cells cannot synthesize are included in the culture medium, but non-essential amino acids may also be included to improve cell proliferation and viability. Carbohydrates, such as glucose, galactose, maltose, or fructose, are included as an energy source. Proteins and peptides, such as albumin, transferrin, or fibronectin, may also be included, as may fatty acids and lipids, especially in serum-free media. Vitamins essential for cell growth and proliferation, such as B vitamins, may also be included. Examples of trace elements added to culture media, particularly serum-free media, include copper, zinc, and selenium. Examples of culture media include commercially available media such as, but are not limited to, Essential 8 Medium, CTS Essential 8 Medium, Essential 6 Medium, StemFlex Medium, CTS KnockOut SR Xeno-free Medium, KnockOut Serum Replacement, StemPro, mTeSR, mTeSRl, StemFit, Nutristem, L7 Medium, iPS-Brew, Neurobasal, or BrainPhys.

[0040] In relation to cell cultures, the term “dissociation” can refer to the process of separating cells from other cells or from a surface, such as the surface of a culture plate. For example, cells may be dissociated from an organ or tissue by mechanical or enzymatic means. In another example, cells that aggregate in vitro may be dissociated from one another. In yet another example, adherent cells are dissociated from a culture plate or other surface. Dissociation may involve disruption of the interaction between cells and the extracellular matrix (ECM) and the substrate (e.g., the culture surface), or disruption of the ECM between cells.

[0041] Stem cells are cells characterized by their ability to regenerate through mitotic cell division and their potential to differentiate into tissues or organs. Among stem cells, embryonic stem cells and somatic stem cells can be distinguished. For example, mammalian embryonic stem cells exist in the blastocyst and can become embryonic tissue, while somatic stem cells can exist in adult tissue for the purpose of tissue regeneration and repair.

[0042] The term "cell line" typically refers to a cell culture produced from a single cell of a multicellular organism. Cells in a cell line have a relatively uniform genetic structure. Some cell lines originate from stem cells. Some cell lines originate from naturally occurring cancerous cells that have undergone genetic modification (e.g., one or more mutations or the introduction of viral genes) leading to uncontrolled proliferation. Some cell lines originate from cells that have been artificially immortalized by various methods.

[0043] The term "stem cell" and related terms and expressions are used herein to refer to animal cells that are capable of long-term division and self-regeneration, are not specialized, and can become specialized cell types. Stem cells have long-term division / self-regeneration capabilities. For example, unlike muscle cells, blood cells, or nerve cells, which do not normally self-replicate, stem cells can be replicated or proliferated many times. If the resulting cells are not continuously specialized like parent stem cells, these cells can be said to have long-term self-regeneration capabilities.

[0044] When the term "self-renewal" is used in reference to cells, it refers to the ability to divide and produce at least one daughter cell that possesses the self-renewal characteristics of the parent cell, although one or more other daughter cells may be constrained to specific differentiation pathways. For example, a self-renewing hematopoietic stem cell may divide to form one daughter stem cell and another daughter cell constrained to differentiation along a myeloid or lymphoid pathway. Non-self-renewing cells can still divide and produce daughter cells, none of which possess the differentiation potential of the parent cell type, but instead produce differentiated daughter cells.

[0045] The terms “pluripotent,” “pluripotency,” and related terms and expressions indicate that animal cells or cell populations have the ability to produce offspring that, under appropriate conditions, can differentiate into cell types exhibiting collectively characteristics associated with cell lineages derived from all three germ layers (endoderm, mesoderm, and ectoderm). For example, the expression “pluripotent stem cell characteristics” refers to the characteristics of cells or cell populations that distinguish them from pluripotent stem cells or populations derived from other cells. The ability to produce offspring that, under appropriate conditions, can differentiate into cell types exhibiting collectively characteristics associated with cell lineages derived from all three germ layers (endoderm, mesoderm, and ectoderm) is a characteristic of pluripotent stem cells. The morphological structure of cells and the expression or absence of specific combinations of molecular markers are also characteristics of pluripotent stem cells. Examples of pluripotent stem cells (PSCs) include embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs). Embryonic stem cells (ESCs) are derived from embryos and, under appropriate conditions, may remain undifferentiated (unspecialized) in culture. Embryonic stem cell lines are ESC lines cultured under conditions that allow them to proliferate without differentiation for several months to several years. Under other conditions, for example, if the cells are allowed to clump together and form an embryoid body, these cells will spontaneously begin to differentiate.

[0046] Adult stem cells, sometimes referred to as somatic stem cells, are stem cells found in the differentiated cells of tissues or organs in an organism, and can differentiate to produce specialized cells for part or all of the tissue or organ. Somatic stem cells can grow in culture. When differentiated into specialized cells, they typically produce intermediate cells called "precursor" or "progenitor" cells. Somatic stem cells and progenitor cells may be described as "pluripotent" or "minorpotent" depending on their degree of differentiation potential. Examples of somatic stem cells include: hematopoietic stem cells that give rise to all types of blood cells (red blood cells, B lymphocytes, T lymphocytes, natural killer cells, neutrophils, basophils, eosinophils, monocytes, and macrophages); mesenchymal stem cells, including bone marrow stromal stem cells and skeletal stem cells, that can give rise to osteocytes (osteoblasts and osteocytes), chondrocytes (chondrocytes), adipocytes (adipocytes), and stromal cells that support blood formation; neural stem cells that can give rise to nerve cells (neurons), astrocytes, and oligodendrocytes; endometrial stem cells of the gastrointestinal lining that can give rise to absorptive cells, goblet cells, Paneth cells, and enteroendocrine cells; cutaneous stem cells that are present in the basal layer of the epidermis (and can give rise to keratinocytes), and cutaneous stem cells that are present in the hair follicle base (and can give rise to both hair follicles and epidermis). Tissue-specific progenitor cells are cells that lack the potential for self-regeneration and are constrained to differentiate into cells of a specific organ or tissue. Some specific types of somatic stem cells can differentiate into cell types found in organs or tissues other than those predicted from their somatic stem cell origin. This phenomenon is called "transdifferentiation."

[0047] The term "neural crest cells" (singular: "neural crest cell") refers to specific cells at the boundary between the neural plate and the non-neuronal ectoderm, which are transiently present during early embryonic development. These can be considered multipotent stem cells. Neural crest cells give rise to most of the peripheral nervous system, including nociceptors, as well as various non-neuronal cell types and tissues, such as smooth muscle cells, skin pigment cells, craniofacial bones, cartilage, and connective tissue. Neural crest cells are transient during development, occurring before the body plan of somatic cells is established. Therefore, they are generally not considered somatic stem cells.

[0048] The term “induced pluripotent stem cells” (iPSCs) refers to pluripotent stem cells artificially induced from non-pluripotent cells. For example, human iPSCs are artificially induced from human non-pluripotent cells. iPSCs can be induced by introducing the products of a specific set of pluripotency-related genes or “reprogramming factors” into a given cell type, and / or by exposing non-pluripotent cells to specific conditions.

[0049] The term "non-pluripotent cells" refers to mammalian cells that are not pluripotent. Examples of such cells include differentiated cells, somatic stem cells, and progenitor cells. Some non-pluripotent cells retain some degree of differentiation ability, such as somatic stem cells and progenitor cells.

[0050] "Cell differentiation potential" refers to a cell's ability to differentiate into other cell types. Cells can be described as pluripotent, multipotent (which can differentiate into some, but not all, cell types, such as umbilical cord blood stem cells and mesenchymal stem cells), or minimally pluripotent (which has the ability to differentiate into a few cell types, such as lymphoid or vascular cells). Current understanding suggests that differentiation potential exists on a continuum. Therefore, the boundaries between cell divisions based on differentiation potential can be fluid and not necessarily limited.

[0051] The term “progenitor cell” or “precursor cell,” as used herein, refers to a cell that can typically differentiate to form one or more types of cells. A “precursor cell” or “precursor cell” can be any cell in a cell differentiation pathway that can differentiate into a more mature cell. A progenitor cell may be a primary cell taken from an organism, a cell grown in culture, or a cell derived from a stem cell. A progenitor cell may be an early offspring or a pluripotent stem cell or pluripotent cell itself. Alternatively, a progenitor cell may be a partial polypotent cell or a reversibly differentiated cell. The term “precursor cell population” refers to a group of cells that can develop into a more mature or differentiated cell type. A precursor cell population may include pluripotent cells, stem cell lineage-limited cells (cells that can develop into fewer than one lineage, or, for example, cells that can develop into only neuronal lineage cells), and reversibly stem cell lineage-limited cells. Therefore, the term “progenitor cell” or “precursor cell” may be a “pluripotent cell” or “polypotent cell.”

[0052] Differentiation is the process by which less specialized cells become more specialized cell types. For example, the early stages of development in multicellular animals are characterized by the rapid proliferation of embryonic cells, which then differentiate, resulting in many specialized cell types that make up the tissues and organs of the multicellular animal. As cells differentiate, their proliferation rate usually decreases. Some types of differentiated cells never divide again, but many differentiated cells can resume proliferation when replacement is needed for cells lost as a result of injury or cell death. Some cells continue to divide throughout their lives in adult multicellular animals, replacing cells with cells that have a high turnover rate. Examples of differentiated cells include, but are not limited to, cells derived from tissues selected from bone marrow, skin, skeletal muscle, adipose tissue, and peripheral blood. Exemplary differentiated cell types include, but are not limited to, fibroblasts, hepatocytes, myoblasts, neurons, osteoblasts, osteoclasts, and lymphocytes.

[0053] The expression “modified cell” and related terms and expressions encompass any cell derived from or induced from a cell that has been artificially modified in any way compared to the original or derived cell. Modified cells may be made from primary cells, secondary cells, stem cells, cultured cells, and / or other modified cells. Modifications include, but are not limited to, genetic modification or genetic modification operations, in which case modified cells may be referred to as “genetically modified” or “genetically modified.” Genetic modification can be carried out by various methods that result in the incorporation of foreign or heterologous nucleic acids into the target cell. Examples of such methods include transduction by viruses or viral vectors, or transfection of isolated nucleic acids into cells through transient pores in the cell membrane. Other modifications include exposing source cells to biological and non-biological molecules or factors or culture conditions. Examples of modified cells include iPSCs, genetically modified cells, for example, those used for gene therapy, and gene-edited cells, for example, those modified using CRISPR / Cas9, TALEN, or ZFN.

[0054] The term "tanks" refers to containers, dishes, plates, flasks, bottles, cell culture tubes, bioreactors, etc., that can be used to culture, maintain, or grow cells, cell groups, tissues, or organs ex vivo or in vitro. Suitable tanks include, for example, multiwell plates, wells of multiwell plates, dishes, tubes, flasks, bottles, and reactors.

[0055] The term "stabilize" and related terms and expressions used in reference to cells (e.g., "stabilize cells") refer to reducing negative cellular responses, such as cell death or aging. For example, stem cells and other cells may die in response to cell passage, dissociation, isolation, freezing, and / or thawing. In other words, the above conditions can reduce the viability of cells. Embodiments of the compositions, methods, and kits described herein can mitigate the reduction in cell viability and improve cell survival, and this may be referred to as cell stabilization.

[0056] The terms “spheroid,” “sphere,” or “nosissphere,” as used herein, and related terms and expressions may be used to refer to self-assembling suspension cells of undifferentiated and / or differentiated cells, which can be grown in suspension in low-adhesion plates, spinner flasks, or other vessels.

[0057] As used herein, “marker” refers to any molecule that can be observed or detected. For example, markers may include, but are not limited to, nucleic acids, such as transcripts of specific genes, polypeptide products of genes, polypeptides that are non-gene products, glycoproteins, carbohydrates, glycolipids, lipids, lipoproteins, or small molecules (e.g., molecules with a molecular weight of less than 10,000 AMU).

[0058] In relation to observable markers of cell development or differentiation, “expression” refers to the production of a gene product (which may be nucleic acid, e.g., RNA or protein) and the level or amount of gene product production. Therefore, examining the expression of a particular marker indicates detecting either the relative or absolute amount of the marker being expressed, or simply detecting the presence or absence of the marker. For most of the markers described herein, the symbols shown were created and / or approved by the Human Genome Nomenclature Committee of HUGO, the European Institute for Bioinformatics.

[0059] The term "cryopreservation" and related terms and expressions are used to indicate the process(s) by which cells, cell populations, or cell cultures are preserved by cooling to below freezing point, as well as the result of such process(s).

[0060] method Various methods (processes) are envisioned and included in the embodiments of the present invention. Among them, the methods according to the embodiments of the present invention are methods for producing cells or cell cultures containing such cells that have at least some specified characteristics. Such methods may also be referred to as “method for producing cells,” “method for producing cell cultures,” “method for creating,” “method for culturing,” “method for differentiating,” “differentiation method,” “differentiation process,” and other related terms and phrases, which may be used interchangeably in reference to methods for producing cells or cell cultures. One example of such a method is a method for producing or creating pluripotent cells that can further differentiate into cells exhibiting at least some characteristics of nociceptor cells. Pluripotent cells produced by such a method exhibit at least some characteristics of neural crest cells, such as the expression of SOX10. Therefore, such pluripotent cells may be referred to as “cells exhibiting at least some characteristics of neural crest cells,” “neural crest-like cells,” “cells similar to neural crest cells,” and other related terms and expressions. Cells exhibiting at least some characteristics of neural crest cells will be discussed further in this document along with those characteristics. Another example of a method according to the embodiments of the present invention is a method for producing or creating cells that exhibit at least some characteristics of nociceptor cells, such as the expression of one or more ion channels, receptors, etc. Cells exhibiting at least some characteristics of nociceptor cells, produced according to embodiments of the methods of the present invention, may also be referred to as “nociceptor-like cells,” “cells resembling nociceptors,” and other related terms and expressions. Cells exhibiting at least some characteristics of nociceptor cells, along with those characteristics, will be discussed further in this document. Methods according to the above embodiments and other embodiments of the present invention relating to the production of cells are carried out in a culture state and may also be referred to as “methods of culturing” or “culturing.” Such methods typically proceed from poorly differentiated cells with high differentiation potential (e.g., pluripotent cells, progenitor cells, multipotent or pluripotent cells) as a starting material or intermediate product, and proceed to more differentiated cells with low differentiation potential (e.g., multipotent cells, progenitor cells, pluripotent or differentiated cells) as an intermediate and / or final product.Therefore, the method can be referred to as a "method for differentiating cells" even if the final product is not fully differentiated cells or contains such cells.

[0061] In some exemplary embodiments, the method uses pluripotent stem cells (PSCs) as a starting material. Such PSCs may be vertebrate PSCs, e.g., mammalian PSCs or human PSCs (hPSCs). The PSCs used in the methods according to embodiments of the present invention may be isolated from natural sources or may be artificially induced PSCs, e.g., artificial PSCs (iPSCs). Accordingly, the method may be referred to as a “method for differentiating PSCs,” e.g., a method for differentiating hPSCs, a method for differentiating PSCs, etc. The PSCs may be maintained and expanded in culture in a specified medium, e.g., but not limited to E8, E8 Flex, StemFlex, StemPro, mTeSR, mTeSRl, StemFit, Nutristem, L7 Medium, or iPS-Brew, for example, in a monolayer culture system or a suitable 3D culture system (e.g., one using microcarriers). The maintenance and / or expansion culture of the PSCs described above may be carried out as part of the methods according to embodiments of the present invention, or separately from such methods. In other words, the methods for preparing cells according to embodiments of the present invention are not limited by the steps or processes used to obtain PSCs for use in further steps, unless explicitly stated otherwise. For example, if PSCs are described as simply starting materials or “prepared” without further limitation, it is not intended that the processes used to obtain, culture, expand, or grow the PSCs are incorporated into the method. PSCs may be prepared in the form of a monolayer culture exhibiting a typical PSC morphological structure, such as marked nucleoli and / or a high nucleo-cytoplasmic ratio, colony-like cell proliferation, and expression of pluripotency-related markers, such as, but not limited to, OCT3 / 4, NANOG, SSEA-4, TRA-1-60, TRA-1-81, and / or alkaline phosphatase. In another example, PSCs may be prepared in the form of a 3D culture or attached to a microcarrier.

[0062] Methods for preparing cells according to embodiments of the present invention may include the step of incubating vertebrate PSCs (which may be ESCs or iPSCs), such as human PSCs, in a prescribed medium. The PSCs to be incubated may be in the form of adherent monolayer cultures, which can be prepared with a confluence of >90% at the start of the method for preparing cells according to embodiments of the present invention. Non-limiting examples of prescribed media suitable for incubating PSCs are E6, DMEM / F12, and DMEM / KnockOut. The standard medium contains at least one compound (WNT activator) capable of activating WNT signaling in an effective amount or concentration, for example, CHIR98014 at 20 nM to 20 μM or 100 nM to 10 μM (1 μM in one example) or CHIR99021 at 20 nM to 20 μM or 100 nM to 10 μM (1 μM in one example), and at least one compound capable of inhibiting TGF-beta signaling in an effective amount or concentration, for example, A83-01 at 20 nM to 20 μM or 100 nM to 10 μM (2 μM in one example) or SB431542 at 20 nM to 40 μM or 100 nM to 40 μM (2 μM in one example). It will be understood that one or both of the compounds that can activate WNT signaling and / or inhibit TGF-beta signaling may be small molecules, peptide molecules, or protein molecules (these may be extracted from natural sources, chemically synthesized, biochemically synthesized, or recombinantly produced; for example, recombinant proteins WNT3A, WNT5A, etc. may be used to activate WNT signaling). The incubation period for the monolayer culture of PSCs is approximately 24 to approximately 144 hours, approximately 48 to approximately 112 hours, approximately 64 to approximately 80 hours, or approximately 72 hours (e.g., 72 hours ± 7.2 hours). In some embodiments of the method, additives that activate or inhibit the bone morphogenetic protein (BMP) protein pathway, such as bone morphogenetic protein 4 (BMP4), are not used in the culture medium for incubating the PSCs.In other words, the culture medium used to incubate the PSCs is free of or substantially free of exogenous additives that activate or inhibit the bone morphogenetic protein (BMP) pathway, such as bone morphogenetic protein 4 (BMP4), BMP2, and small molecule inhibitors of the BMP pathway, such as dolsomorphine or LDN193181.

[0063] Following the incubation process described above, differentiating PSCs in the monolayer culture (since differentiation is ongoing and not yet complete, it is appropriate to describe the cells at this point as differentiating PSCs) are dissociated, for example, by enzymatic dissociation. Enzymatic dissociation can be performed by removing the incubation medium from the plate, adding a buffer, e.g., PBS, and an enzymatic dissociation reagent, e.g., Accutase, TrypLE, or Trypsin, available from Thermo Fisher Scientific, to the plate, incubating the cells with the buffer and dissociation reagent under appropriate conditions, and recovering the resulting single cells by centrifugation, sedimentation, filtration, or other appropriate method. The dissociated cells are transferred to similar or equivalent uncoated or ultra-low-adhesion cells or flasks using a so-called "1:1 transfer" procedure. For example, cells dissociated from a 6-well plate can be transferred to a similar 6-well ultra-low-adhesion plate. In another example, cells from coated flasks, e.g., T75 or T175 flasks (Corning), can be transferred to the same number of uncoated or ultra-low-adhesion T75 or T175 flasks. After transfer, the cells are cultured under conditions that lead to the formation of nosispheres. Nosispheres are aggregates of self-assembling, suspended cells in the process of differentiation, and at least a portion of them are neural crest-like (as discussed elsewhere in this document), which, when subjected to the methods and steps further described in this document, result in nociceptor-like cells.

[0064] In one example, the culture conditions leading to the formation of nocyspheres include at least the following: at least one compound (WNT activator) capable of activating WNT signaling in an effective amount or concentration, e.g., CHIR98014 at 20 nM to 20 μM or 100 nM to 10 μM (1 μM in one example) or CHIR99021 at 20 nM to 20 μM or 100 nM to 10 μM (1 μM in one example); at least one compound capable of inhibiting TGF-beta signaling in an effective amount or concentration, e.g., A83-01 at 20 nM to 20 μM or 100 nM to 10 μM (2 μM in one example) or SB431542 at 20 nM to 40 μM or 100 nM to 40 μM (2 μM in one example); at least one compound that is a Notch pathway inhibitor in an effective amount or concentration, e.g. Gamma-secretase inhibitors DBZ in concentrations of 20nM to 20μM or 100nM to 10μM (1μM in one example), DAPT in concentrations of 5nM to 50μM or 100nM to 50μM (1μM in one example), LY411575 in concentrations of 2nM to 20μM or 100nM to 10μM (1μM in one example), or LY3039478 in concentrations of 2nM to 20μM or 100nM to 10μM (1μM in one example), and Incubation in a standard medium, such as E6, DMEM / F12, or Knockout DMEM, supplemented with an effective amount or concentration of at least one compound that is an FGFR / VEGFR / MAP kinase pathway inhibitor, for example, 2nM to 20 μM or 2nM to 5 μM (25 nM in one example) of PD173074 or 2nM to 20 μM or 2nM to 10 μM (25 nM in one example) of SU5402, is performed.It will be understood that one or more compounds that can activate WNT signaling, inhibit TGF-beta signaling, are Notch pathway inhibitors, or are FGFR / VEGFR / MAP kinase pathway inhibitors may be any combination of small molecules, peptides, or proteins (all of which may be extracted from natural sources, chemically synthesized, biochemically synthesized, or recombinantly produced; for example, recombinant proteins WNT3A, WNT5A, etc. may be used to activate WNT signaling). In some embodiments, the standard medium may be further supplemented with a CDK 4 / 6 inhibitor, such as PD0332991 or any other small molecule, protein, or peptide (all of which may be chemically synthesized, biochemically synthesized, or recombinantly produced), used at concentrations of approximately 2 nM to approximately 20 μM, for example, 1 μM. In some embodiments of the method, compounds that activate or inhibit the bone morphogenetic protein (BMP) protein pathway, such as bone morphogenetic protein 4 (BMP4), or small molecule inhibitors of the BMP protein pathway, such as dolsomorphine or LDN193189, are not used (or are absent) in the culture medium for culturing PSCs to form nosispheres. During nosisphere formation, the medium containing the additives may be replaced approximately every 12–36 hours, for example, every 24 hours. The culture leading to nosisphere formation is carried out for approximately 168–432 hours, for example, approximately 168 hours, approximately 192 hours, approximately 216 hours, approximately 240 hours, approximately 264 hours, approximately 288 hours, approximately 312 hours, approximately 336 hours, approximately 360 hours, approximately 384 hours, approximately 408 hours, or approximately 432 hours. In one example, the culture is carried out for 258–260 hours. The above conditions for the formation of nosthyspheres are illustrative, and it should be understood that other conditions may be used to create and maintain viable floating nosthyspheres.Nocyspheres may contain varying proportions of neural crest-like cells (which may be characterized by SOX10 expression) and nociceptor-like cells (which may be characterized by BRN3A expression). For example, a nocysphere may contain approximately 50%, 60%, 70%, 80%, 90%, or more than 90% neural crest-like cells. In another example, a nocysphere may contain approximately 50%, 40%, 30%, 20%, 10%, or less than 10% nociceptor-like cells.

[0065] After the nocythia formation process, the nocythia are dissociated, for example, by enzymatic dissociation. The dissociated nocythia cells are then cultured in a monolayer culture. The nocythia may be cryopreserved before or after dissociation and before culturing in a monolayer culture. Culturing in a monolayer culture can be carried out for a period encompassing several days to several months. For example, cells may be cultured for at least approximately 24 hours (1 day), approximately 24 hours (1 day), at least approximately 48 hours (2 days), approximately 48 hours (2 days), at least approximately 72 hours (3 days), approximately 72 hours (3 days), at least approximately 96 hours (4 days), approximately 96 hours (4 days), at least approximately 120 hours (5 days), 120 hours (5 days), at least approximately 144 hours (6 days), 144 hours (6 days), at least approximately 168 hours (7 days), 168 hours (7 days), at least Cells can be cultured for approximately 192 hours (8 days), 192 hours (8 days), at least approximately 216 hours (9 days), 216 hours (9 days), at least approximately 240 hours (10 days), 240 hours (10 days), at least approximately 264 hours (11 days), 264 hours (11 days), at least approximately 288 hours (12 days), 288 hours (12 days), at least approximately 312 hours (13 days), 312 hours (13 days), at least approximately 336 hours (14 days), 336 hours (14 days), etc. Culture in the form of a monolayer culture can be terminated when the cultured cells are harvested. The cultured cells can be cryopreserved, used for various purposes as exemplified elsewhere in this document, or used for further culture. In one example, culture is carried out for approximately 168–336 hours. For example, the dissociated nocythiae cells may be cultured in a suitable medium, such as DMEM / F12, supplemented with appropriate supplements or combinations of supplements. In one example, a combination of N2 supplement and B27 supplement may be used. In another example, a combination of N2 supplement and B27 supplement (without vitamin A) may be used. In yet another example, a combination of N2 supplement, B27 supplement (without vitamin A), BDNF, GDNF, NGF, and NT-3 may be used.In a further example, any of the above supplement combinations may be used in combination with a CDK 4 / 6 inhibitor, such as PD0332991 used at concentrations of approximately 2 nM to approximately 20 μM, e.g., 1 μM, or any other small molecule, protein, or peptide (which may be chemically, biochemically, or recombinantly produced). In some embodiments, the supplement may be: at least one compound that is an effective amount or effective concentration of Notch pathway inhibitor, e.g., a gamma-secretase inhibitor DBZ at 20 nM to 20 μM or 100 nM to 10 μM (e.g., 1 μM), DAPT at 5 nM to 50 μM or 100 nM to 50 μM (e.g., 1 μM), LY411575 at 2 nM to 20 μM or 100 nM to 10 μM (e.g., 1 μM), or LY411575 at 2 nM to 20 μM or 100 The material comprises one or more of the following compounds: LY3039478 in nM to 10 μM (1 μM in one example), at least one compound that is an effective amount or effective concentration of an FGFR / VEGFR / MAP kinase pathway inhibitor, for example, PD173074 in 2 nM to 20 μM or 2 nM to 5 μM (25 nM in one example) or SU5402 in 2 nM to 20 μM or 2 nM to 10 μM (25 nM in one example), and at least one compound that is an effective concentration of a CDK4 / 6 inhibitor, for example (such as if) PD0332991 used at a concentration of approximately 2 nM to approximately 20 μM, for example, 1 μM. It will be understood that one of more of the compounds that are Notch pathway inhibitors, FGFR / VEGFR / MAP kinase pathway inhibitors, or CDK4 / 6 inhibitors can be any combination of small molecules, peptide molecules, or protein molecules (which may be extracted from natural sources, chemically synthesized, biochemically synthesized, or recombinantly produced).By culturing dissociated nosyspheric cells in a monolayer culture, a culture is generated containing cells that exhibit at least some characteristics of native neural crest cells, such as neural crest-like cells expressing SOX10, and nociceptor-like cells that exhibit at least some characteristics of naturally occurring nociceptors, such as BRN3A expression. In other words, both SOX10-positive neural crest-like cells and BRN3A-positive nociceptor-like cells can be created and coexist in a culture of dissociated nosyspheric cells. For example, at the start of culturing dissociated nosyspheric cells, the culture may contain a mixture of SOX10-expressing cells and BRN3A-expressing cells in various proportions, and this proportion may change during the culturing process. In one example, a culture of dissociated nocysphere cells at the start of a culture may contain approximately 50%, 60%, 70%, 80%, 90%, or more than 90% SOX-10 expressing cells. In another example, a culture of dissociated nocysphere cells at the start of a culture may contain approximately 50%, 40%, 30%, 20%, 10%, or less than 10% BRN3A expressing cells. The above proportions may change as the culture changes due to the differentiation of neural crest-like cells into nociceptor-like cells. As one example, at the start of a culture, a culture of dissociated nocysphere cells may contain approximately 60% SOX10 expressing cells and approximately 40% BRN3A expressing cells, but after 14 days, the same culture may contain approximately 80% SOX10 expressing cells and approximately 20% BRN3A expressing cells.

[0066] Cells exhibiting at least some characteristics of neural crest cells (neural crest-like cells) that can differentiate into cells exhibiting at least some characteristics of nociceptor cells (nociceptor-like cells), as well as mixtures of neural crest-like cells and nociceptor-like cells (e.g., prepared in the nocysphere formation step or by culturing dissociated nocysphere cells), may be the final products of some, but not all, of the methods according to the embodiments of the present invention. Neural crest-like cells or mixtures of neural crest-like cells and nociceptor-like cells may be intermediates in some of the methods according to the embodiments of the present invention, and may also be starting materials in some other methods according to the embodiments of the present invention. Neural crest-like cells or mixtures of neural crest-like cells and nociceptor-like cells may be prepared for cryopreservation and cryopreserved. Method steps related to cryopreservation may be incorporated into the cell preparation methods according to the embodiments of the present invention. Some of the methods and compositions related to cryopreservation are further described in the "Cryopreservation" section of this application, but it should be understood that the descriptions in that section are not limiting, and that other compositions and methods may also be used for cryopreservation. In some embodiments of the methods according to the present invention, neural crest-like cells or mixtures of neural crest-like cells and nociceptor-like cells may be cultured to increase their number. For example, cryopreserved cells may be thawed and cultured in mitogenic factors, such as fibroblast growth factor 2 (FGF-2) and epidermal growth factor (EGF). In one example, for further differentiation and maturation, neural crest-like cells or mixtures of neural crest-like cells and nociceptor-like cells may be cultured on a coated plate (e.g., a plate coated with Geltrex, Matrigel, or Laminin) using DMEM / F12 supplemented with N2 supplement, B27 supplement (without vitamin A), BDNF, GDNF, NGF, NT-3, and 1 μM of PD0332991.

[0067] Cells exhibiting at least some characteristics of neural crest cells can differentiate, under appropriate conditions, into cells exhibiting at least some characteristics of nociceptor cells. Methods for producing cells exhibiting at least some characteristics of nociceptor cells (nociceptor-like cells) in culture are included in embodiments of the present invention. Neural crest-like cells, or cultures containing such cells, may be starting materials or intermediates for such methods. In one example, cells containing cells exhibiting at least some characteristics of neural crest cells (neural crest-like cells) are cultured under conditions that induce differentiation into cells exhibiting at least some characteristics of nociceptor cells (nociceptor-like cells). Thus, one embodiment of a method based on the above example may include the step of growing the cultured neural crest-like cells in an appropriate medium for an appropriate period of time. The above growing step may also be referred to by “maturation,” “differentiation,” “incubation,” or other relevant terms and expressions, which do not imply further limitations unless expressly stated. Incubation may be carried out in a monolayer cell culture state, but other types of cultures may also be used, for example, 3D organoids or bioprinted tissues may be used to obtain dorsal root ganglia to mimic in vivo biological structures. Methods according to various embodiments of the present invention may include a step of establishing a pre-differentiation culture, for example, a step of plating neural crest-like cells onto a plate for incubation. The plate used for monolayer cell culture may be any suitable type, one example being a coated cell culture plate, for example, but not limited to laminin-coated plates (Corning BioCoat) or CellBIND (Corning). The culture medium used for incubation may be any suitable type, one non-limited example being DMEM / F12, Neurobasal (Thermo Fisher Scientific) or BrainPhys (Stem Cell Technologies). The medium may be supplemented with one or more supplements in an effective amount or effective concentration useful to support the differentiation of cultured cells into cells exhibiting neuronal characteristics.Examples of such supplements include: commercially available supplements, such as N2 supplements (a 100-fold diluted solution supplied by Thermo Fisher Scientific) or B27 supplements without vitamin A (a 50-fold diluted solution supplied by Thermo Fisher Scientific); biomolecules, such as growth factors, such as brain-derived neurotrophic factor (BDNF), glial-derived neurotrophic factor (GDNF), nerve growth factor (NGF), neurotrophin-3 (NT-3), midkine, or pleiotrophin; or small molecules, such as forskolin and cyclic adenosine monophosphate. Culturing may be carried out under specific conditions, for example, under 5% hypoxia to mimic in vivo oxygen content.

[0068] It will be understood that various events or developments can occur in the culture of neural crest-like cells. For example, neural crest-like cells may differentiate into nociceptor-like cells or other cell types. Also, neural crest-like cells may continue to proliferate without further differentiation. Such events may occur simultaneously, such as some neural crest-like cells differentiating in culture while others continue to proliferate without further differentiation. Various additives may be used, as desired, to promote some of these events and to suppress others. For example, when culturing neural crest-like cells to increase their number, for example after cryopreservation, it is desirable to suppress differentiation and / or promote proliferation of neural crest-like cells. In another example, when culturing neural crest-like cells to differentiate into nociceptor-like cells or other cell types, it is desirable to promote differentiation and suppress proliferation. In some embodiments, various compounds may be added to the culture medium at various points during the differentiation process to promote the differentiation of neural crest-like cells. Such inhibitors can be used in various combinations, for example: a CDK4 / 6 inhibitor, e.g., PD0332991 in concentrations of 2nM to 20μM or 100nM to 10μM (1μM in one example), may be added to the culture medium to promote differentiation; an FGF / VEGF / MAP kinase pathway inhibitor, e.g., PD0332991 in concentrations of 2nM to 20μM or 2nM to 5μM (25nM in one example). These include SU5402 at 173974 or 2nM-20μM or 2nM-10μM (500nM in one example) (inhibitory agents of the Notch pathway, such as the gamma-secretase inhibitor DBZ at 20nM-20μM or 100nM-10μM (1μM in one example), DAPT at 5nM-50μM or 100nM-50μM (1μM in one example), LY411575 at 2nM-20μM or 100nM-10μM (1μM in one example), or LY3039478 at 2nM-20μM or 100nM-10μM (1μM in one example). In some embodiments, the culture medium may be supplemented with mitogenic factors, such as fibroblast growth factor 2 (FGF-2) and epidermal growth factor (EGF), to achieve preferential proliferation (of its own differentiation) of neural crest-like cells.

[0069] The efficiency of the methods described herein can be adjusted by modifying certain specific parameters, including, but not limited to, cell proliferation conditions, additive concentrations, and the timing of the steps. The methods described herein may result in conversions of highly differentiated, poorly differentiated cells (e.g., pluripotent cells, progenitor cells, compound pluripotent cells, or oligopluripotent cells) to less differentiated, more differentiated cells (e.g., compound pluripotent cells, progenitor cells, oligopluripotent cells, or differentiated cells) of approximately 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or higher than 95%. Examples of conversion steps that may feature the above degrees of efficiency include conversion of PSCs to neural crest-like cells, conversion of neural crest-like cells to nociceptor-like cells, or conversion of PSCs to nociceptor-like cells. In one example, starting with 1 million PSCs, it is possible to obtain a mixture of 2 to 2.5 million SOX10-positive neural crest-like cells and BRN3A-positive nociceptor-like cells by day 14. On day 28, the total cell number may remain constant, but if proliferation is suppressed and maturation is promoted, the proportion of differentiated nociceptor-like cells will increase.

[0070] automation Automated methods of cell culture are included in the embodiments of the present invention. Systems for performing, or partially performing, the automated methods of the present invention are also included in the embodiments of the present invention. Systems according to the embodiments of the present invention may include various stations and / or components, an example of which is described below. As used herein, the term “station” is broadly defined and includes any suitable device or assembly, complex or collection of devices or components suitable for performing the methods according to the embodiments of the present invention. Stations do not need to be integrally connected or installed in any particular manner. Systems according to the embodiments of the present invention may include any suitable arrangement of stations. For example, stations do not even need to be in the same room. However, in some embodiments, stations are connected to each other within an integrated unit.

[0071] Automated cell culture methods and systems for carrying out various methods according to embodiments of the present invention can be used to optimize the conditions of various method steps and / or to scale up the production of cells produced by the method, such as neural crest-like cells and / or nociceptor-like cells. Generally, automated methods and systems according to embodiments of the present invention minimize the human intervention required during cell culture procedures, such as cell material supply, passaging, or harvesting. In addition to increasing the freedom of the experimental operator, the automated methods and systems of this disclosure enable these procedures to be carried out in a reliable and reproducible manner. For example, a system for carrying out various methods according to embodiments of the present invention may include a robotic or automated cell culture station, one example being CompacT SelecT (登録商標) This is the (Sartorius, Wilmington, DE) system. The automated cell culture system can grow, expand, and differentiate cells by performing the methods according to the embodiments of the present invention. The automated cell culture system may also be able to perform one or more steps required for cell cryopreservation. The automated cell culture system may perform one or more cell culture processes, such as, but not limited to, seeding into cell culture flasks or plates, maintaining cell cultures in cell culture flasks or plates, harvesting cells, pooling cells harvested from flasks or plates, diluting cells for subculturing platings, performing cell counting, and performing cell viability assays. An automated cell culture system may include various stations, for example, but are not limited to: a station for incubating cells, which is exemplified by an automated flask incubator that maintains a controlled environment (e.g., controlled temperature, controlled gas composition and / or maintenance of a sterile environment); a station for handling flasks and other cell culture equipment, such as pipettes, which may be exemplified by a robotic arm or other type of robotic handler; a station for dispensing reagents, such as a robotic low-volume dispenser; and so on.

[0072] An automated cell culture system may include various computer components. An embodiment of the automated cell culture system or a part of the system may be controlled by a computer. For example, an automated cell culture system may include a computer-based station for generating reports. An automated cell culture system may include a computer-based station or component for data analysis. An automated cell culture system may include a computer, processor, electronic memory, software instructions, etc. An automated cell culture system may include software instructions for one or more of the following: operation of the cell culture flask or plate system, workflow optimization, auditing and / or tracking. For example, an automated cell culture system may include an application software program for executing a programmed protocol in a robotic liquid handling system. The software program may be run on an external device (e.g., a portable computer, e.g., a tablet computer or smartphone) in communication with a control device built into the robotic liquid handling system; in some embodiments, the software program may coordinate the control of the robotic liquid handling system and, if present, the control of an external robotic system to perform at least some steps of the methods according to embodiments of the present invention. A software program can be programmed to alert the user, for example, using sound, light, vibration, email alerts, or text alerts, when intervention is required due to a fault / error or procedure termination.

[0073] Computer-based calculations and tools The methods described herein may involve computer-based calculations and tools. The tools may, conveniently, be provided in the form of computer programs executable by a conventionally designed general-purpose computer system (which may sometimes be referred to as the “host computer”). The host computer may be configured to have many different hardware components and may be manufactured in many dimensions and styles (e.g., desktop PCs, laptops, tablet PCs, handheld computers, servers, workstations, mainframes). Standard components may include, for example, a monitor, keyboard, disk drive, CD and / or DVD drive. If the host computer is connected to a network, the connection may be provided by any suitable transmission medium (e.g., wired, optical, and / or wireless) and any suitable communication protocol (e.g., TCP / IP); the host computer may include suitable networking hardware (e.g., modem, Ethernet card, WiFi card). The host computer may run any variety of operating systems, such as UNIX®, Linux®, Microsoft Windows®, MacOS®, or any other operating system.

[0074] Computer code for implementing aspects of the present invention can be written in various languages, such as Perl, C, C++, Java, JavaScript, VBScript, AWK, or any other scripting or programming language that is executable on a host computer or can be compiled to run on a host computer. Alternatively, the code may be written in a low-level language such as assembly language or machine language, or processed in a distributed manner.

[0075] The host computer system conveniently provides an interface that allows the user to control the operation of the tool. In the embodiments described herein, the software tool is executed as a script (e.g., using Perl), and its execution can be initiated by the user via a standard command-line interface of an operating system, such as Linux® or UNIX®. The commands may be adapted to the operating system as appropriate. In other embodiments, a graphical user interface may be provided, allowing the user to control the operation using a pointing device. Therefore, the present invention is not limited to any particular user interface.

[0076] Scripts or programs incorporating various features of the present invention can be coded on various computer-readable media for storage and / or transmission. Examples of suitable media include magnetic disks or magnetic tapes, optical storage media such as compact discs (CDs) or DVDs (digital versatile discs), flash memory, and carrier signals adapted for transmission over wired, optical, and / or wireless networks to various protocols, such as the Internet.

[0077] additives Various additives may be used in the cell preparation methods and related compositions and kits according to embodiments of the present invention. Some additives and / or additive components are discussed below for clarity. It will be understood that other additives and / or additive components not discussed below may also be used. In relation to embodiments of the present invention, individual components or combinations of components may be referred to by the singular or plural "additive," "supplement," "active agent," or other related terms, respectively. Various formulations of additives are envisioned. For example, an additive may be formulated to contain one or more active agents in an amount sufficient to deliver an effective concentration or effective amount of each active agent when added to a culture medium. In relation to embodiments of the present invention, the effective concentration or effective amount is the concentration or amount in which the one or more active agents induce a desired effect on cells exposed to the composition, such as, but not limited to, improved viability, cell stabilization, improved proliferation, reduced cell death, reduced aging, improved growth, and improved differentiation. Additives are typically formulated to be easily incorporated into culture media. For example, an additive for a culture medium may be provided in a powder form that is easily soluble in an aqueous culture medium, either as a tablet or a capsule. In another example, the additive may be provided as a concentrate or suspension to be added to the culture medium.

[0078] N-2 supplement is a serum-free supplement with a known composition, based on Bottenstein, J.E., Culture in the Neurosciences, edited by Bottenstein, J.E., and Harvey, AL, pp. 3-43, Plenum Press: New York and London (1985).

[0079] The B-27 supplement is an optimized serum-free supplement, as described, for example, in Brewer et al. Journal of Neuroscience Research 35:567-76, 1993.

[0080] Brain-derived neurotrophic factor (BDNF) is a neurotrophic factor known to be able to signal via the high-affinity cell surface receptor GP145 / TrkB. Human BDNF is expressed as the C-terminal portion of a 247-amino acid polypeptide precursor, which also contains an 18-amino acid signal sequence and a 110-amino acid propeptide. When used as an additive, BDNF can be provided as recombinant human BDNF, for example, prepared as a 27.0 kDa homodimer of two 119-amino acid subunits linked by a strong non-covalent interaction. The effective concentration of BDNF may be 1–100 ng / ml.

[0081] Glial-derived neurotrophic factor (GDNF) is a member of the cysteine-knot superfamily of growth factors and is a glycosylated disulfide-linked homodimeric protein with a molecular weight of approximately 15 kDa. GDNF is known to signal via a multicomponent receptor system composed of RET and one of the four GFRα (α1-α4) receptors. When used as an additive, GDNF may be supplied as recombinant human GDNF. The effective concentration of GDNF may be 1-100 ng / ml.

[0082] Nerve growth factor (NGF), also known as NFG-β, is a well-characterized neurotrophic protein that plays a crucial role in the development of sympathetic neurons and some sensory neurons in the peripheral nervous system. When used as an additive, GDNF can be supplied as recombinant human NGF. The effective concentration of NGF may be 1 to 100 ng / ml.

[0083] Neurotrophin-3 (NT-3) is a member of the neurotrophin family. The NT-3 cDNA encodes a 257-amino acid precursor protein containing a signal peptide and proprotein that cleave to produce mature NT-3 with 119 amino acid residues. Bioactive NT-3 is thought to be a non-covalent homodimer. NT-3 has identical amino acid sequences with complete cross-reactivity in humans, mice, and pigs. NT-3 is important for the development and maintenance of neuronal populations. The effective concentration of NT-3 can be 1–100 ng / ml.

[0084] The term "Chroman-1" refers to (3S)-N-{2-[2-(dimethylamino)ethoxy]-4-(1H-pyrazol-4-yl)phenyl}-6-methoxy-3,4-dihydro-2H-1-benzopyran-3-carboxamide, whose structure is shown in Figure 1. Chroman-related compounds or derivatives are structurally related compounds (chroman-partially containing ROCK inhibitors), examples of which are described in Chen et al. "Chroman-3-amides as potent Rho kinase inhibitors" Bioorganic and Medicinal Chemistry Letters 18:6406-6409 (2008) and LoGrasso et al. "Rho Kinase (ROCK) Inhibitors and Their Application to Inflammatory Disorders" Current Topics in Medicinal Chemistry 9:704-723 (2009). Chroman 1, its derivatives, or related compounds can be supplied as salts or in solution.The effective concentrations of Chroman 1 (or its active derivatives or related compounds) are approximately 4 nM to 80 μM, 10 nM to 20 μM, 20 nM to 10 μM, or 30 nm to 500 nM, for example, approximately 4 nm, 5 nM, 30 nM, 55 nM, 80 nM, 105 nM, 130 nM, 155 nM, 180 nM, 205 nM, 230 nM, 255 nM, 280 nM, 305 nM, 330 nM, 355 nM, 380 nM, 405 nM, 430 nM, 455 nM, 480 nM, 500 nM, 525 nM, 550 nM, 575 nM, 600 nM, 625 nM, 650 nM, 675 nM, 700 nM, 72 5nM, 750nM, 775nM, 800nM, 825nM, 850nM, 875nM, 900nM, 925nM, 950nM, 975nM, 1 μM, 2 μM, 3 μM, 4 μM, 5 μM, 6 μM, 7 μM, 8 μM, 9 μM, 10 μM, 11 μM, 12 μM, 13 μM, 14 μM, 15 μM, 1 It may be 6 μM, 17 μM, 18 μM, 19 μM, 20 μM, 21 μM, 22 μM, 23 μM, 24 μM, 25 μM, 26 μM, 27 μM, 28 μM, 29 μM, 30 μM, 31 μM, 32 μM, 33 μM, 34 μM, 35 μM, 36 μM, 37 μM, 38 μM, 39 μM, or 40 μM.

[0085] The term "emricasane" refers to 3-(2-(2-tert-butylphenylaminooxalyl)aminopropionylamino)-4-oxo-5-(2,3,5,6-tetrafluorophenoxy)pentanoic acid, whose structure is shown in Figure 1. Emricasane-related compounds or derivatives are structurally related compounds (e.g., Q-VD-OPh hydrate), one example of which is described in Linton el al. "First-in-Class Pan Caspase Inhibitor Developed for the Treatment of Liver Disease" J Med. Chem. 48:6779-6782, (2005). Emricasane, its derivatives, or related compounds can be supplied as salts or in solution. The effective concentrations of Emricasane (or its active derivatives or related compounds) are approximately 5 nM to 100 μM, approximately 200 nM to 30 μM, and approximately 300 nM to 20 μM, for example, approximately 100 nM, 150 nM, 200 nM, 250 nM, 300 nM, 350 nM, 400 nM, 450 nM, 500 nM, 550 nM, 600 nM, 650 nM, 700 nM, 750 nM, 800 nM, 850 nM, 1 μM, 1.5 μM, 2 μM, 2.5 μM, 3 μM, 3 It may be 0.5 μM, 4 μM, 4.5 μM, 5 μM, 5.5 μM, 6 μM, 6.5 μM, 7 μM, 7.5 μM, 8 μM, 8.5 μM, 9 μM, 9.5 μM, 10 μM, 10.5 μM, 11 μM, 11.5 μM, 12 μM, 12.5 μM, 13 μM, 13.5 μM, 14 μM, 14.5 μM, 15 μM, 15.5 μM, 16 μM, 16.5 μM, 17 μM, 17.5 μM, 18 μM, 18.5 μM, 19 μM, 19.5 μM, or 20 μM.

[0086] The term "trans-ISRIB" can be used interchangeably with the terms "ISRIB" or "ISRIB (trans-isomer)," and refers to N,N'-((1r,4r)-cyclohexane-1,4-diyl)bis(2-(4-chlorophenoxy)acetamide), whose structure is shown in Figure 2. As described in Sidrauski el al. "Pharmacological brake-release of mRNA translation enhances cognitive memory" eLIFE 2:e00498 (2013), trans-ISRIB is cis-ISRIB (IC 50 It has 100 times higher efficacy than (IC = 600nM) 50 (=5nM), suggesting stereospecific interactions with cellular targets. trans-ISRIB can be supplied as a salt or in solution. Effective concentrations of trans-ISRIB are approximately 5nM to 50μM, approximately 100nM to 6.25μM, or approximately 200nM to 6.25μM, e.g., approximately 50nM, 100nM, 150nM, 200nM, 250nM, 300nM, 350nM, 400nM, 450nM, 500nM, 550nM, 600nM, 650nM, 700nM, 750nM. It may be M, 800 nM, 850 nM, 1 μM, 1.25 μM, 1.5 μM, 1.75 μM, 2 μM, 2.25 μM, 2.5 μM, 2.75 μM, 3 μM, 3.25 μM, 3.5 μM, 3.75 μM, 4 μM, 4.25 μM, 4.5 μM, 4.75 μM, 5 μM, 5.25 μM, 5.5 μM, 5.75 μM, 6 μM, or 6.25 μM.

[0087] As used herein, the term "polyamine" refers to one or more of the polycations putrescine, spermidine, and spermine, which are known to interact with negatively charged macromolecules such as DNA, RNA, and proteins. The effective concentration of spermine is approximately 0.5 μM to 1 mM, for example, approximately 0.5 μM, 20.5 μM, 40.5 μM, 60.5 μM, 80.5 μM, 100.5 μM, 120.5 μM, 140.5 μM, 160.5 μM, 180.5 μM, 200.5 μM, 220.5 μM, 240.5 μM, 260.5 μM, 280.5 μM, 300.5 μM, 320.5 μM, 340.5 μM, 360.5 μM, 380.5 μM, 400.5 μM, 420.5 μM, 440.5 μM, 460.5 μM, 480 It may be 0.5 μM, 500.5 μM, 520.5 μM, 540.5 μM, 560.5 μM, 580.5 μM, 600.5 μM, 620.5 μM, 640.5 μM, 660.5 μM, 680.5 μM, 700.5 μM, 720.5 μM, 740.5 μM, 760.5 μM, 780.5 μM, 800.5 μM, 820.5 μM, 840.5 μM, 860.5 μM, 880.5 μM, 900.5 μM, 920.5 μM, 940.5 μM, 960.5 μM, 980.5 μM, or 1 mM. The effective concentration of spermidine is approximately 0.5 μM to 1 mM, for example, approximately 0.5 μM, 20.5 μM, 40.5 μM, 60.5 μM, 80.5 μM, 100.5 μM, 120.5 μM, 140.5 μM, 160.5 μM, 180.5 μM, 200.5 μM, 220.5 μM, 240.5 μM, 260.5 μM, 280.5 μM, 300.5 μM, 320.5 μM, 340.5 μM, 360.5 μM, 380.5 μM, 400.5 μM, 420.5 μM, 440.5 μM, 460.5 μM, 4 It may be 80.5 μM, 500.5 μM, 520.5 μM, 540.5 μM, 560.5 μM, 580.5 μM, 600.5 μM, 620.5 μM, 640.5 μM, 660.5 μM, 680.5 μM, 700.5 μM, 720.5 μM, 740.5 μM, 760.5 μM, 780.5 μM, 800.5 μM, 820.5 μM, 840.5 μM, 860.5 μM, 880.5 μM, 900.5 μM, 920.5 μM, 940.5 μM, 960.5 μM, 980.5 μM, or 1 mM.The effective concentration of putrescine can be approximately 0.1 μM to 2 mM.

[0088] The term "CHIR98014" refers to the structure shown in Figure 2. 6 This represents -[2-[[4-(2,4-dichlorophenyl)-5-(1H-imidazol-1-yl)-2-pyrimidinyl]amino]ethyl]-3-nitro-2,6-pyridinediamine. The effective concentration of CHIR98014 may be approximately 20 nM to 20 μM.

[0089] The term "CHIR99021" refers to 6-[[2-[[4-(2,4-dichlorophenyl)-5-(5-methyl-1H-imidazol-2-yl)-2-pyrimidinyl]amino]ethyl]amino]-3-pyridinecarbonitride, whose structure is shown in Figure 2. The effective concentration of CHIR98014 may be approximately 20 nM to 20 μM.

[0090] The term "A83-01" refers to 3-(6-methyl-2-pyridinyl)-N-phenyl-4-(4-quinolinyl)-1H-pyrazole-1-carbothioamide, whose structure is shown in Figure 2. The effective concentration of A83-01 may be approximately 20 nM to 20 μM.

[0091] The term DBZ stands for N-[(1S)-2-[[(7S)-6,7-dihydro-5-methyl-6-oxo-5H-dibenz[b,d]azepine-7-yl]amino]-1-methyl-2-oxoethyl]-3,5-difluorobenzeneacetamide, also known as dibenzazepine, and its structure is shown in Figure 2. The effective concentration of DBZ can be approximately 2 nM to 20 μM.

[0092] The term DAPT refers to (2,S)-N-[(3,5-difluorophenyl)acetyl]-L-alanyl-2-phenyl]glycine 1,1-dimethylethyl ester, and its structure is shown in Figure 2. The effective concentration of DAPT can be approximately 5 nM to 50 μM.

[0093] The term LY411575 refers to (S)-(+)-α-amino-4-carboxy-2-methylbenzeneacetic acid, and its structure is shown in Figure 2. The effective concentration of LY411575 can be approximately 2 nM to 20 μM.

[0094] The term LY3039478 represents 4,4,4-trifluoro-N-[(2S)-1-[[(7S)-5-(2-hydroxyethyl)-6-oxo-7H-pyrido[2,3-d][3]benzazepine-7-yl]amino]-1-oxopropan-2-yl]butanamide, and its structure is shown in Figure 2. The effective concentration of LY3039478 can be approximately 2 nM to 20 μM.

[0095] The term PD173074 refers to N-[2-[[4-(diethylamino)butyl]amino-6-(3,5-dimethoxyphenyl)pyrido[2,3-d]pyrimidine-7-yl]-N'-(1,1-dimethylethyl)urea, whose structure is shown in Figure 2. The effective concentration of PD173074 can be approximately 2 nM to 20 μM.

[0096] The term SU5402 refers to 2-[(1,2-dihydro-2-oxo-3H-indol-3-ylidene)methyl]-4-methyl-1H-pyrrole-3-propanoic acid, whose structure is shown in Figure 2. The effective concentration of SU5402 can be approximately 2 nM to 20 μM.

[0097] The term PD0332991 refers to 6-acetyl-8-cyclopentyl-5-methyl-2-[[5-(1-piperazinyl)-2-pyridinyl]amino]pyrido[2,3-d]pyrimidine-7(8H)-one-isethionate, also known as PD0332991-isethionate or palbociclib, and its structure is shown in Figure 2. The effective concentration of PD0332991 can be approximately 2 nM to 20 μM.

[0098] Cells, compositions, and kits Some embodiments of the cell preparation methods described herein involve, as a starting material or intermediate, pluripotent or precursor cells, or a population of pluripotent or precursor cells, or cells that, when cultured under appropriate conditions, can selectively (and possibly reversibly) develop into a specific cell lineage. As used herein, the term “population” refers to a cell culture of one or more cells having the same distinctive features. The term “cell lineage” refers to cell types at all developmental stages, from the earliest precursor cells to fully mature cells (specialized cells). An example of a precursor cell population that may be involved in the cell preparation methods described herein is a culture of pluripotent stem cells (PSCs), which may be cultured embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs). Some embodiments of the cell preparation methods described herein involve human PSCs (hPSCs) or a population thereof as a starting material for inducing neural crest-like cells and nociceptor-like cells. It will be understood that some embodiments of the cell preparation methods described herein may involve modified PSCs, such as hPSCs. Examples of PSCs that can be used in the methods according to various embodiments of the present invention include various ESCs (e.g., WiCell's WA01, WA09, WA14) and iPSC strains (LiPSC-GR1.1, NCRM-1, NCRM-2, NCRM-5, all available from the National Institutes of Health (USA)).

[0099] Another example of a precursor cell population that may be involved in the cell production methods described in this document is a population of neural crest-like cells, which can be produced from PSCs according to some embodiments of the methods described in this document. Neural crest-like cells are cells that exhibit at least some characteristics of neural crest cells present during vertebrate embryonic development, as discussed in this document. During vertebrate embryonic development, neural crest cells originate in the most dorsal region of the neural tube. Neural crest cells migrate extensively, giving rise to a large number of differentiated cell types, such as neurons and glial cells of the sensory nervous system, sympathetic and parasympathetic nervous systems, epinephrine-producing (medullary) cells of the adrenal gland, and many pigment-containing cells of the epidermis and skeletal and connective tissue components of the head. As is now understood, the fate of neural crest cells depends largely on where they migrate and settle. A single neural crest cell can differentiate into several arbitrary different cell types depending on its location within the embryo. Therefore, naturally occurring neural crest cells are considered pluripotent or multipotent as a population, but it is currently unclear whether individual naturally occurring neural crest cells remain pluripotent after leaving the neural crest or are limited to a specific lineage. Naturally occurring neural crest cells are characterized by the expression of so-called "specifiers," which are a collection of genes including Slug / Snail, FoxD3, Sox10, Sox9, AP-2, and c-Myc. As is currently understood, neural crest determinants turn on the expression of effector genes that control migration and multipotency. Examples of effector genes include Rho GTPases, cadherins, Mitf, P0, Cx32, Trp, and cKit. Neural crest-like cells according to some embodiments of the present invention express at least one naturally occurring neural crest cell marker, SOX10. Neural crest-like cells according to some embodiments of the present invention may express one or more other naturally occurring neural crest cell markers, such as SOX10, PAX3, NEUROG1, TFAP2A, and TFAP2B. Neural crest-like cells have the ability to differentiate into nociceptor-like cells under appropriate culture conditions. Compositions and kits containing neural crest-like cells expressing SOX10 and capable of differentiating into peripheral sensory neuron-like cells, such as nociceptor-like cells, are included in some embodiments of the present invention.

[0100] As discussed throughout this document, some embodiments of the methods of the present invention involve creating nociceptor-like cells or populations thereof. Nociceptor-like cells are, as discussed in this document, cells that exhibit some characteristics of naturally occurring nociceptor cells or sensory neurons having cell terminals that initiate pain sensation. Nociceptors are specialized sensory neurons of the peripheral nervous system that send signals to the spinal cord and brain in response to damaging stimuli (mechanical, thermal, or chemical). The cell bodies of nociceptors are located within the dorsal root ganglia and are described as pseudounipolar neurons due to their branched axons (the peripheral processes become free nerve terminals, and the central processes form glutamatergic synaptic junctions with neurons in the spinal cord). The nociceptor-like cells involved in the methods of the embodiments of the present invention express at least one marker of naturally occurring nociceptor cells, BRN3A. Furthermore, nociceptor-like cells involved in the methods according to the embodiments of the present invention may also express one or more of the other markers expressed by naturally occurring nociceptors, such as ISL1, PRPH, DRGX, SLC17A6, or the ion channels and receptors discussed below. Naturally occurring nociceptors are glutamatergic neurons that express vesicular glutamate transporter 1 (vGLUT1; Figure 4B). Nociceptor-like cells involved in the methods according to the embodiments of the present invention may express one or more of the other markers found in naturally occurring nociceptors: NAV1.7, NAV1.8, NAV1.9, OPRM1 (mu-opioid receptor), OPRK1 (kappa-opioid receptor), OPRD1 (delta-opioid receptor), OPRL1 (opioid-related nociceptin receptor 1), or may show upmodulation of such expression. Naturally occurring nociceptors are pseudounipolar cells with branched axons that protrude peripherally and centrally. Unlike many other neuronal cells, nociceptors do not develop dendrites in vivo. Therefore, nociceptor-like cells involved in the methods according to the embodiments of the present invention may also be characterized by the absence of dendrites expressing the detectable dendritic marker MAP2 and / or by the dendrite deficiency shown by ultrastructural analysis (e.g., using electron microscopy).Compositions and kits comprising nociceptor-like cells characterized by the presence (e.g., the presence of one or more of the markers ISL1, PRPH, DRGX, SLC17A6, vGLUT1, NAV1.7, NAV1.8, NAV1.9, OPRM1, OPRK1, OPRD1, or OPRL1) and / or absence (e.g., the absence of MAP2-positive dendrites) are included in embodiments of the present invention. The presence or absence of a marker, when applied to embodiments of the present invention, means the detectable presence or absence of such marker when detected by an applicable method for detecting such marker, and may also mean a certain degree of detectable or undetectable level of such marker. In other words, presence may mean presence above a certain degree of detectable level, while absence may mean absence below a certain degree of detectable level, and does not necessarily mean zero detectable level. Furthermore, it will be understood that nociceptor-like cells may comprise a range of different cells, and the level of detectable presence or absence of markers may vary.

[0101] The compositions according to embodiments of the present invention comprise in vitro or ex vivo compositions comprising at least one neural crest-like cell or at least one nociceptor-like cell. The cells included in such compositions may be vertebrate cells (meaning cells originating from vertebrate PSCs), for example mammalian cells (meaning cells arising from mammalian PSCs), or human cells (meaning cells arising from mammalian PSCs). The cells included in such compositions may be modified cells. The compositions may comprise multiple cells of the same or different types. For example, the multiple cells may comprise one or more of pluripotent stem cells, multipotent stem cells, progenitor cells, differentiated cells, and modified cells. The multiple mammalian cells may comprise multiple cells, cell cultures, cell aggregates, ellipsoids, or tissues. At least one or more cells may be cryopreserved and thawed after cryopreservation. It will be understood that some compositions according to embodiments of the present invention may further comprise a culture medium, one or more additives, a vessel containing the culture medium, for example a culture flask, a culture dish, a tube, or a reactor, and may also comprise a support or scaffold for the cells.

[0102] Using the methods described herein, compositions comprising various mixtures of pluripotent stem cells and other compound pluripotent or differentiated cells can be prepared. Such compositions are included in the embodiments of the present invention. In some embodiments, a composition comprising at least about 5 compound pluripotent or differentiated cells for about 95 pluripotent cells can be prepared. In other embodiments, a composition comprising at least about 95 compound pluripotent or differentiated cells for about 5 pluripotent cells can be prepared. Furthermore, compositions comprising compound pluripotent or differentiated cells in other ratios to pluripotent cells are conceivable. For example, a composition is envisioned that includes at least one compound pluripotent or differentiated cell for approximately 1,000,000 pluripotent cells, at least one compound pluripotent or differentiated cell for approximately 100,000 pluripotent cells, at least one compound pluripotent or differentiated cell for approximately 10,000 pluripotent cells, at least one compound pluripotent or differentiated cell for approximately 1,000 pluripotent cells, at least one compound pluripotent or differentiated cell for approximately 500 pluripotent cells, at least one compound pluripotent or differentiated cell for approximately 100 pluripotent cells, at least one compound pluripotent or differentiated cell for approximately 10 pluripotent cells, at least one compound pluripotent or differentiated cell for approximately 5 pluripotent cells and up to approximately 1 pluripotent cell, and at least 1,000,000 compound pluripotent or differentiated cells for approximately 1 pluripotent cell. Some embodiments of the composition may be cell cultures or cell populations containing at least about 5% to at least about 99% of pluripotent or differentiated cells. In some embodiments, the cell culture or cell population contains mammalian cells. In preferred embodiments, the cell culture or cell population contains human cells. For example, some specific embodiments relate to cell cultures containing human cells, wherein at least about 5% to at least about 99% of the human cells are pluripotent or differentiated cells.Other embodiments relate to cell cultures comprising human cells wherein at least about 5%, at least about 10%, at least about 15%, at least about 20%, at least about 25%, at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, at least about 99%, or more than 99% of the human cells are pluripotent or differentiated cells.

[0103] The progression of pluripotent cells to further differentiated cells (e.g., progression from PSCs to neural crest-like cells, or progression of neural crest-like cells to nociceptor-like cells) can be monitored by detecting markers characteristic of specific cell types. Furthermore, the identification of cell types relevant to various embodiments of the present invention can also be performed by detecting markers characteristic of specific cell types. For example, the expression of a particular marker can be detected. The expression of a particular marker can be investigated by detecting the presence or absence of the marker in cells, cell cultures, or cell populations. Alternatively, the expression of a particular marker can be investigated by measuring the level at which the marker is present intracellularly, in cell cultures, or in cell populations. In some embodiments of the present invention, the expression of a marker characteristic of neural crest-like cells, such as SOX10, can be investigated. In some embodiments, the expression of one or more markers characteristic of nociceptor-like cells, such as BRN3A, TUJ1 (beta-III-tubulin), peripherin, ISL1, GGRP, TRPV1, NAV1.7, NAV1.8, NAV1.9, OPRM1, OPRMK1, PRD1, OPRL1, or NF200, may be examined. Quantitative, qualitative, or semi-quantitative methods may be used to measure marker expression. For example, marker expression may be detected and / or quantified by nucleic acid detection methods, such as PCR-based detection or RNA detection (e.g., real-time reverse transcriptase PCR), RNA sequencing (RNA-seq), or nucleic acid array-based RNA detection. In another example, immunochemical tests may be used to detect and / or quantify marker proteins. For example, the expression of a marker gene product may be detected using antibodies specific to the marker gene product of interest, such as Western blotting, immunocytochemical characterization, or flow cytometry analysis. Various marker detection techniques may be used in combination to effectively and accurately characterize and identify cell types, as well as to investigate both the quantity and relative proportion of such markers within the subject cell type.The expression of a particular marker can be investigated by measuring the level of the marker present in cells of a cell culture or cell population compared to a standardized or normalized control marker. Identification and characterization of cells, cell cultures, or cell populations may be based on the expression of a particular marker, or on differences in the expression levels and patterns of one or more markers (e.g., the presence or absence, high or low expression of one or more markers). Furthermore, a particular marker may exhibit transient expression if it is highly expressed during one or more stages of the processes described in this document and low during other stages (one or more).

[0104] Embodiments of the present invention include kits for culturing cells, tissues, or organs. A kit is a set of components comprising at least some components for culturing cells, which may include single cells and cell populations. A kit may include one or more additives discussed in the corresponding sections of this document. A kit may further include: a culture medium configured to support at least one cell in vitro or ex vivo, or one or more culture medium components; a vessel for holding the culture medium; a culture vessel, e.g., a flask, dish, plate (e.g., a multiwell plater) or reactor; or one or more supports or scaffolds for culturing cells or tissues. A kit may include one or more mammalian cells, e.g., human cells. The cells included in the kit may include one or more of the following: PSCs (e.g., embryonic stem cells and / or induced pluripotent stem cells), neural crest-like cells, or nociceptor-like cells. One or more cells may be supplied in frozen form or in unchilled form (which may be thawed form).

[0105] Cryopreservation Methods, compositions, and kits involving cryopreservation, such as processes, tools, and / or compositions related to cryopreservation, thawing, and culturing previously cryopreserved cells, cell populations, or cell cultures, are included in embodiments of the present invention. Some compositions related to such preservation may include cryopreservation media used for the cryopreservation of cells or cell populations described herein, such as neural crest-like cells and nociceptor-like cells. Some compositions may include cryopreservation media and one or more cells described herein. For example, a composition in one embodiment may include one or more neural crest-like cells and cryopreservation media. In another example, a composition may include one or more nociceptor-like cells and cryopreservation media. The cryopreservation medium may be a liquid medium in which the cells are found in the state before and / or during freezing. Examples of cryopreservation media include PSC Cryopreservation Kit (Thermo Fisher Scientific), FreezIS (Irving Scientific), NutriFreez (Biological Industries USA), CryoStor, HypoThermosol, mFreSR, mFreSR-S, and STEMdiff Neural Progenitor Freezing Medium (all manufactured by Stem Cell Technologies). Cryopreservation media may contain one or more cryoprotective agents, which are compounds that protect cells from freezing damage. Cryoprotective agents may be permeable or impermeable. A suitable example of a permeable cryoprotective agent that can penetrate the cell membrane is dimethyl sulfoxide (DMSO). Examples of suitable impermeable cryoprotective agents include sucrose, glycerol, dextran, trehalose, Percoll, polyethylene glycol, polyvinylpyrrolidone, serum albumin, Ficoll, maltose, and polyvinyl alcohol (PVA). Cryopreservation media may further contain one or more additives listed in the "Additives" section of this document. For example, the cryopreservation medium may contain one or more of the following in effective combination: chroman-1 or its derivatives, emricasane or its derivatives, trans-ISRIB, or polyamines.The combination of all four of the above additives can be referred to as "CEPT".

[0106] Methods involving the cryopreservation of cells, cell populations, or cell cultures are included in various embodiments of the present invention. Such methods may include the step of contacting another cell, such as a neural crest-like cell or a nociceptor-like cell, with the cryopreservation medium. This may involve adding the cryopreservation medium to one or more cells, or vice versa, and mixing the cells with the medium. In some embodiments, 0.5 mL to 5 mL of cryopreservation medium per million cells, for example, about 1 mL per million cells, may be added. However, in some specific embodiments, it is envisioned that larger or smaller amounts of cryopreservation medium may be used. In some embodiments, the cryopreservation medium may be added to the cells in a stepwise increasing concentration, thereby reducing the risk of osmotic shock to the cells associated with a single-step addition. The temperature of the cryopreservation medium when added to the cells may be in the range of about 15°C to about 40°C. For example, the temperature of the cryopreservation medium added to the cells may be about 37°C. The contact step of the method may result in the suspension of cells in the cryopreservation medium, which may be referred to as a “mixture”. The cells before the contact step or the cell suspension after the contact step may be provided in a container or tank. The container may have a volume of 1 mL to 50 mL, for example, it may be a 15 mL tube.

[0107] A method involving the cryopreservation of cells may include the step of freezing a composition comprising another cell, such as neural crest-like cells or nociceptor-like cells, and a cryopreservation medium, thereby obtaining a frozen or cryopreserved composition. The mixture of cells and cryopreservation medium may be equilibrated before freezing. During equilibration, water may be removed from the cells and replaced with a medium containing a cryoprotective agent that enters the cells after incubation with the cryopreservation medium. The equilibration time is limited so as to avoid damage to the cells. For example, the mixture may be equilibrated for 10 seconds to 5 minutes, 20 seconds to 1.5 minutes, or 30 seconds to 1 minute. Before freezing, the mixture may be transferred to a freezing container or tank, or it may remain in the same container in which the mixture already exists. Water may be removed from the cells and replaced with a medium containing a cryoprotective agent that enters the cells after incubation with the cryopreservation medium. Containers used for freezing typically provide a stack of tubes, ensuring that constant-rate cooling is achieved by placing the container in a freezer.

[0108] Freezing results in cells in an extremely low-temperature or cryopreserved state (which may be simply described as “frozen”), where these cells can be maintained for a period of several days, weeks, months, or years to be restored when needed. When needed, the cryopreserved cells are restored and thawed. Thus, methods involving cryopreservation may include the step of thawing the cryopreserved composition, more specifically, under conditions that maintain the viability of the cells. For example, a container containing cryopreserved cells may be thawed in a water bath at a temperature of 42°C or lower, e.g., 10°C to 40°C, e.g., about 37°C. To improve the viability of the cells after thawing, a thawing rate of about 10°C to about 40°C / min, e.g., about 20°C to about 40°C / min, e.g., about 30°C / min may be used.

[0109] The methods and / or process steps described herein may result in good viability of cryopreserved cells after thawing. As used herein, the term “viability” refers to the number of living cells based on the presence of DNA and intact cell membrane systems. Viability may be measured by various tests, such as the trypan blue internalization test, or by measuring the uptake of propidium iodide. The viability of cells thawed after cryopreservation, such as thawed neural crest-like cells or thawed nociceptor cells, may be at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95%. The amount of necrosis and apoptosis exhibited by such cells after thawing may be limited. In certain embodiments, necrosis and / or apoptosis is observed in less than 25% of cells, more specifically less than 15%, and most specifically less than 10%. The methods described herein can further ensure that neural crest-like cells retain their ability to differentiate into nociceptor-like cells. Cryopreserved cells can be used for further culture, differentiation (in the case of neural crest-like cells), and therapeutic purposes, such as regenerative medicine or other uses, after thawing.

[0110] The following embodiments serve to illustrate further examples of the present invention, but at the same time do not constitute any limitation of the present invention. Rather, it will be obvious to those skilled in the art that, after reading the description herein, various embodiments, modifications thereof, and means to equivalents that can be suggested without departing from the spirit of the invention will be apparent. [Examples]

[0111] Example 1 Differentiation of human pluripotent stem cells into peripheral sensory neuron-like cells, such as nociceptor-like cells. Human pluripotent stem cells (hPSCs), such as embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), were maintained and expanded in E8 standard medium. Human ESC lines were purchased from WiCell (Madison, Wisconsin), and iPSCs were created at the NIH. hPSCs were grown as adherent monolayer cultures. At the start of the differentiation procedure, E8 standard medium was replaced with E6 medium containing two small molecule compounds: CHIR98014 (Selleckchem) - a compound that can activate WNT signaling - at a final concentration of 1 μM in the medium; and A83-01 (Tocris) - a compound that can inhibit TGF-beta signaling - at a final concentration of 2 μM in the medium. The day of the first medium change was referred to as "Day 0". Three days (approximately 72 hours) after the medium change, cells were enzymatically dissociated to initiate nocysphere formation and plated in ultra-low adhesion plates. During the nocysphere formation phase, cells were cultured in E6 medium containing 1 μM CHIR98014 and 2 μM A83-01, in addition to 1 μM DBZ (gamma-secretase inhibitor, Tocris) and 25 nM PD173074 (FGFR / VEGFR inhibitor, Tocris). The E6 medium containing all of the above compounds was changed approximately every 24 hours during the nocysphere formation phase, and this continued until day 14 after the first medium change. In other words, nocysphere proliferation occurred between day 3 and day 14 after the first medium change (day 0), i.e., for 11 days or approximately 244 hours. On day 14 after the first medium change (or approximately 336 hours after the first medium change), the formed nocyspheres were enzymatically dissociated using the following process. Nocyspheres were collected from culture plates by centrifugation using a 37 μm reversible cell strainer (Stem Cell Technologies), or simply by sedimentation in a 15 mL or 50 mL conical tube for 5 minutes. The collected nocyspheres were washed with phosphate-buffered saline (PBS) and dissociated by incubation in TrypLE reagent (Thermo Fisher Scientific) at 37°C for 10 minutes with steady shaking at 300 RPM.After dissociation, the cells were collected by centrifugation at 300g for 3 minutes, and the supernatant containing the TrypLE reagent was discarded. The dissociated cells were either cryopreserved or plated. The dissociated cells were cryopreserved in DMEM / F12 medium (Thermo Fisher Scientific) supplemented with 10% DMSO (dimethyl sulfoxide) at a concentration of 5 to 10 million cells / mL / tube using CoolCell® Cell Freezing Containers (Biocision), or plated onto coated cell culture plates for further maturation. An exemplary cryopreservation procedure is described in Example 6. To plate the dissociated cells, the culture medium was replaced with DMEM / F12 medium (Thermo Fisher Scientific) supplemented with the following supplements: N2 supplement (100x dilution, Thermo Fisher Scientific); B27 supplement (vitamin A-free) (50x dilution, Thermo Fisher Scientific); each at 25 ng / mL of the following growth factors: BDNF (brain-derived neurotrophic factor, R&D Systems), GDNF (glial neurotrophic factor, R&D Systems), NGF (nerve growth factor, R&D Systems), NT-3 (neurotrophin-3, R&D Systems); and 1 μM PD0332991 (CDK4 / 6 inhibitor, Tocris). The plated dissociated nocysphere cells were cultured for up to 8 weeks, with the culture medium changed every 2-3 days. The differentiation procedure described above is schematically illustrated in Figure 1, and the small molecule compounds used are illustrated in Figure 2. [Examples]

[0112] Example 2 Immunocytochemical characterization of nociceptor-like cells derived from hPSCs Cells prepared according to the procedure described in Example 1 showed highly efficient differentiation into nociceptor-like cells, as illustrated by the figures discussed below. Figures 3 and 4 show representative images of plated cells taken on day 28 of culture. Figure 5 shows quantitative characterization of plated cells on day 28 of culture. Immunocytochemical characterization of the hPSC-derived culture confirmed the differentiation of hPSCs into nociceptor-like cells expressing typical neuronal markers.

[0113] The cells shown in Figure 3 were stained with combinations of antibodies (both monoclonal and polyclonal) specific to the following proteins: TUJ1 (neuron marker); BRN3A (transcription factor typically expressed by nociceptors); Peripherin (PRPH, peripheral neuron marker); ISL1 (transcription factor expressed by nociceptors); CGRP (calcitonin gene-related protein, neuropeptide typically expressed by nociceptors); TRPV1 (vanilloid receptor 1, typically expressed by nociceptors); and NAV1.7 (sodium channel, typically expressed by nociceptors). The label "Ho" indicates Hoechst counterstain, a dye commonly used for visualizing stained nuclei. Images included in Figure 4 show individual immunostaining with NF200 (green), BRN3A (red), and Hoechst dye (blue). The cells shown in Figure 4A were stained with monoclonal and polyclonal antibodies specific to NF200 (neurofilament 200, a typical marker for visualizing the cell body and axon of neurons) and the specific transcription factor BRN3A. Cell nuclei were visualized using Hoechst counterstaining. The merged image in the lower right corner of Figure 4A shows all immunostaining combined. The image in Figure 4A shows that a highly pure culture of nociceptor-like cells co-expressing NF200 and BRN3A was prepared using the procedure described in Example 1. The cells shown in Figure 4B were stained with monoclonal and polyclonal antibodies specific to the neuronal marker TUJ1 (green), vesicular glutamate transporter 1 (vGLUT1; red), which is typically expressed by glutamatergic nociceptors, and Hoechst (blue). The cells shown in Figure 4C were stained with monoclonal and polyclonal antibodies specific to MAP2 (a marker for neuronal cell bodies and dendrites; green), BRN3A (red), and Hoechst dye (blue).Insufficient staining of neurites by MAP2 indicated the absence of dendrites, which is consistent with the proper biological structure of nociceptors as pseudounipolar neurons, unlike other neurons (e.g., cortical neurons which develop complex dendritic trees), having branched axons that protrude peripherally and spinally but lack dendrites. To create Figure 5, two hPSC lines, ESCs and iPSCs, were differentiated into nociceptor-like cells according to the procedure described in Example 1. 28 days (approximately 672 hours) after the first medium change, the cells were stained for SOX10 (a marker for neural crest stem cells) and BRN3A (a marker for nociceptors). The stains were quantified using ImageJ software (National Institutes of Health). This quantification showed that the levels of the above markers were consistent with the presence of SOX10-expressing neural crest-like cells and BRN3A-positive nociceptor-like cells. Furthermore, combining the staining and quantitative results discussed above, it was also shown that the culture prepared by the procedure described in Example 1 contained only neural crest-like cells and nociceptor-like cells. [Examples]

[0114] Example 3 Time-series gene expression profiling The cultures prepared according to the procedure described in Example 1 were characterized by time-course gene expression profiling by RNA-seq analysis, as illustrated by the figures discussed below. Time-course RNA-seq analysis of iPSC-derived cultures confirmed the differentiation of iPSCs into nociceptor-like cells expressing typical neuronal markers, such as transcription factors, neuropeptides, and ion channels. Figure 6 shows the results of a systematic analysis of the temporal progression of gene expression from day 0 to day 28 of the procedure described in Example 1, demonstrating the stepwise and controlled differentiation of iPSCs into ectoderm-like, neural crest-like, and nociceptor-like cells. Genes indicating non-neuronal cell lineages, such as endoderm and mesoderm, were not present in the differentiated cultures, thus demonstrating highly efficient differentiation. Figure 7 shows the results of time-course gene expression profiling by RNA-seq of differentiation into nociceptors, and the ARCHS available online from the Icahn School of Medicine Mount Sinai Bioinformatics Center (New York, New York, USA). 4 This document compares the results with those available in the human tissue RNA-seq database (Lachmann et al. “Massive mining of publicly available RNA-seq data from human and mouse” Nature Communications 9:1366 (2018)). For gene ontology analysis, the web-based tool EnrichR (available online from the Icahn School of Medicine at Mount Sinai) was used to compare the top 200 genes that were upregulated in cultures at each test time point, and ARCHS 4The data was compared with that observed in [previous data]. The top five enriched categories at each time point were plotted. Figure 8 shows the results of a comprehensive RNA-seq analysis of ion channels expressed by nociceptor-like cells prepared by the procedure described in Example 1. Notably, 152 ion channel genes, including NAV1.8 and opioid receptors, were expressed by nociceptor-like cells on day 28 of this procedure. Such comprehensive ion channel expression by cultured nociceptor-like cells derived from stem cells had not been obtained to date.

[0115] Figures 9 and 10 show the results of time-course gene expression profiling by RNA-seq in nociceptor-like cells prepared by the procedure described in Example 1. The X-axis of each line graph in Figures 9 and 10 plots the day number in the procedure as described in Example 1. The Y-axis of each line graph in Figures 9 and 10 plots the value of fragment / kilobase transcript / million map reads (FPKM). The FPKM value indicates the relative expression level of the transcript in RNA-seq analysis. Figure 9 shows the results of time-course gene expression profiling by RNA-seq of important sodium channels in nociceptor-like cells prepared by the procedure described in Example 1. This sodium channel profiling demonstrated upregulation of the NAV1.7, NAV1.8, and NAV1.9 genes during cell differentiation. Expression of these three critical sodium channels has not been obtained in previously available procedures for generating cultured nociceptor-like cells from stem cells. Figure 10 shows the results of time-course gene expression profiling by RNA-seq analysis of opioid receptors in cultures differentiated from iPSCs according to the procedure described in Example 1. The results of opioid receptor profiling showed that important opioid receptors (OPRM1-mu opioid receptor; OPRK1-kappa opioid receptor; OPRD1-delta opioid receptor) and opioid-related nociceptin receptor 1 (OPRL1) are expressed and regulated in cultured cells during the procedure described in Example 1. [Examples]

[0116] Example 4 Functional analysis of nociceptor-like cells derived from iPSCs Functional analysis of nociceptors derived from iPSCs was performed according to the procedure described in Example 1. A multi-electrode array was used for electrophysiological characterization experiments. Figure 11 shows the results of electrophysiological experiments (multi-electrode array using Maestro Pro, Axion Biosystems) demonstrating that iPSC-derived nociceptor-like cells were stimulated by specific ligands. As illustrated in Figure 11, the application of 10 μM α,β-me-ATP, 5 μM capsaicin (a known activator of the vanilloid receptor TRPV1, a thermosensitive cation channel on the nociceptor terminal), and 100 μM mustard oil (allyl isothiocyanate; a plant-derived stimulant widely used to activate transient receptor potential (TRP) family receptors and induce pain and inflammation in pain research) induced a specific response by increasing the frequency of action potential firing.

[0117] Figures 12A and 12B show the results of electrophysiological experiments (multi-electrode array using Maestro Pro, Axion Biosystems) demonstrating that iPSC-derived nociceptor-like cells were sensitized in response to treatment with oxaliplatin and prostaglandin E2 (PGE2). Oxaliplatin is a widely used chemotherapeutic agent, but it can damage sensory neurons in the peripheral nervous system and cause peripheral neuropathy. PGE2 is used to create models of inflammatory pain. On day 28 of the procedure described in Example 1, iPSC-derived nociceptor-like cells were recorded at 37°C for 10 minutes for baseline recording, and then pretreated with 0.1% DMSO, 50 μM oxaliplatin, or 1 μM PGE2 at 37°C for 15 minutes. The temperature was then increased to 40°C to stimulate the cells, and recording was performed for another 10 minutes. The above experiments demonstrated that iPSC-derived nociceptor-like cells are sensitized in response to treatment with oxaliplatin and PGE2, proving their usefulness as an in vitro model for studying chemotherapy-induced or inflammation-induced pathological changes that lead to pain.

[0118] Figure 13 shows the results of an electrophysiological experiment (multi-electrode array using Maestro Pro, Axion Biosystems) demonstrating that iPSC-derived nociceptor-like cells were stimulated by applying 10 μM of α,β-me-ATP, a known agonist of the P2RX3 purine receptor. On day 28 of the procedure described in Example 1, iPSC-derived nociceptor-like cells were pretreated with 0.1% DMSO or 10 μM of each known antagonist of the purine receptor P2RX3 at 37°C for 30 minutes. The cells were then stimulated with 10 μM of α,β-me-ATP and recorded using a multi-electrode array. This recording showed a difference in response indicating that RO-51 is the most potent inhibitor of the P2RX3 receptor. The above results demonstrate that iPSC-derived nociceptor-like cells are useful as an in vitro model for drug discovery and drug testing. [Examples]

[0119] Example 5 Automated procedure The procedure described in Example 1 was used as a basis for an automated procedure by using the CompacT SelecT (登録商標) system (Sartorius, Wilmington, USA). A highly efficient, standardized, and expandable generation of nociceptor-like cells from iPSCs was performed using this automated procedure. FIG. 14B shows a representative microscopic image of nociceptor-like cells generated by automated differentiation on day 21 after the start of the automated procedure. The image shown in FIG. 14B shows nociceptor-like cells forming a dense neurite network.

Example

[0120] Example 6 Cryopreservation On day 14, the nocospheres created according to the procedure described in Example 1 were collected from the culture flask using a 37 μm reversible cell strainer (Stem Cell Technologies), washed with PBS, and dissociated by incubating at 37° C. for 10 minutes at 300 RPM under constant shaking in TrypLE reagent (Thermo Fisher Scientific). After the dissociated cells were collected by centrifugation at 300 g for 3 minutes (discard the supernatant containing TrypLE), the collected cells were resuspended at 5 million to 10 million cells / mL / tube in DMEM / F12 medium (Thermo Fisher Scientific) supplemented with 10% DMSO and cryopreserved using CoolCell® Cell Freezing Containers (Biocision) or other appropriate cryopreservation methods. A small molecule cocktail may be included in the cryopreservation medium to improve the survival of the cells after cryopreservation. The small molecule cocktail may contain 50 nM chroman 1, 5 μM emricasan, polyamines (40 ng / mL putrescine, 4.5 ng / mL spermidine, 8 ng / mL spermine), and 0.7 μM Trans-ISRIB. The concentrations shown are the final concentrations in the cryopreservation medium.

Claims

1. Incubating an adherent monolayer culture of vertebrate pluripotent stem cells for approximately 24 to 144 hours in a first medium containing at least one first compound capable of activating WNT signaling in an effective amount or effective concentration, and at least one second compound capable of inhibiting TGF-beta signaling in an effective amount or effective concentration; Dissociating the incubated cells; and, The dissociated cells are cultured for 168 to 432 hours in a second medium containing at least one third compound capable of activating WNT signaling in an effective amount or effective concentration, at least one fourth compound capable of inhibiting TGF-beta signaling in an effective amount or effective concentration, at least one fifth compound capable of inhibiting the Notch pathway in an effective amount or effective concentration, and at least one sixth compound capable of inhibiting one or more of EGF, VEGF, and MAP kinase signaling, thereby creating one or more nosyspheres containing cells capable of differentiating into nociceptor-like cells. A method for producing cells that can differentiate into nociceptor-like cells in a cultured state using a scaffold-free method, including, i) The cells that can differentiate into nociceptor-like cells are neural crest-like cells, ii) The cells that can differentiate into nociceptor-like cells express SOX10 in a detectable manner, iii) The one or more nocispheres further comprise the nociceptor-like cells, iv) The nociceptor-like cells express BRN3A in a detectable manner, v) The pluripotent stem cells of the vertebrate are induced pluripotent stem cells or embryonic pluripotent stem cells, and / or vi) The one or more steps described above are performed by an automated system, and further here a) The first compound is CHIR98014, where the effective concentration of CHIR98014 is 1 μM. b) The second compound is A83-01, where the effective concentration of A83-01 is 2 μM. c) The third compound is CHIR98014, where the effective concentration of CHIR98014 is 1 μM. d) The fourth compound is A83-01, where the effective concentration of A83-01 is 2 μM. e) The fifth compound is DBZ, where the effective concentration of DBZ is 1 μM, and f) The sixth compound is PD173074, where the effective concentration of PD173074 is 25 nM. The aforementioned method.

2. i) The first medium is a standard medium, the second medium is a standard medium, and the first medium is the same as or different from the second medium. ii) The first culture medium is E6, DMEM-F12, or Knockout-DMEM / F12, iii) The second culture medium is E6, DMEM-F12, or Knockout-DMEM / F12, iv) The first medium and / or the second medium are not supplemented with additives that activate or inhibit the bone morphogenetic protein (BMP) protein pathway, and / or v) The method according to claim 1, wherein the first culture medium and / or the second culture medium are not supplemented with bone morphogenetic protein 4 (BMP4).

3. The method according to claim 1 or 2, wherein the second culture medium further comprises in an effective amount or effective concentration of a seventh compound, which is the CDK4 / 6 inhibitor PD0332991, where the effective concentration of PD0332991 is 1 μM.

4. The method according to any one of claims 1 to 3, wherein the culture of the dissociated cells comprises replacing the second culture medium approximately every 12 to 36 hours.

5. i) further comprising dissociating one or more nocispheres to create dissociated nocisphere cells, and / or ii) The method according to any one of claims 1 to 4, further comprising cryopreserving one or more of the cells capable of differentiating into nociceptor-like cells, one or more nocispheres or dissociated nocisphere cells.

6. Performing the method described in claim 5; and The dissociated nosisphere cells are cultured and grown under conditions that promote differentiation of the nociceptor-like cells, wherein the growth is carried out for at least approximately 168 hours or 168 to 336 hours. A method for culturing nociceptor-like cells, including [specific cells].

7. i) The above conditions include the presence of N2 supplement and B27 supplement, ii) The above condition includes the presence of one or more of BDNF, GF, NGF, or NT-3, iii) The conditions include the presence of at least one eighth compound capable of inhibiting the Notch pathway in an effective amount or effective concentration, at least one ninth compound capable of inhibiting one or more of EGF, VEGF, and MAP kinase signaling pathways, or one or more of at least one ninth compound that is a CDK4 / 6 inhibitor in an effective amount or effective concentration, iv) The conditions described above do not include the supplementation of additives that activate or inhibit the bone morphogenetic protein (BMP) pathway. v) The conditions described above do not include supplementation with bone morphogenetic protein 4 (BMP4), and / or vi) The conditions include culturing in DMEM / F12 medium, Neurobasal medium or BrainPhys medium, Furthermore, here a) The eighth compound is DBZ, where the effective concentration of DBZ is 1 μM, and b) The method according to claim 6, wherein the ninth compound is PD173074, and the effective concentration of PD173074 is 25 nM.

8. i) The nociceptor-like cells detectably express one or more of the following: TUJ1, peripherin, ISL1, GGRP, TRPV1, NAV1.7, NAV1.8, NAV1.9, OPRM1, OPRMK1, OPRD1, OPRL1, or NF200. ii) The nociceptor-like cells detectably express NAV1.8, OPRM1, OPRMK1 and OPRD1, and / or iii) The method according to claim 6 or 7, wherein the nociceptor-like cells lack dendrites that detectably express MAP2.

9. i) further comprising culturing the dissociated cells, then freezing one or more nosyspheres, and thawing the one or more frozen nosyspheres, ii) After dissociating one or more nocispheres, further comprising cryopreserving the dissociated nocisphere cells and thawing the dissociated nocisphere cells, and / or iii) Further comprising cryopreserving the nociceptor-like cells, here One or more of the above-mentioned cryopreservation of one or more nocispheres, cryopreservation of dissociated nocisphere cells, or cryopreservation of nociceptor-like cells is carried out in a cryopreservation medium comprising chroman 1, emricasan, trans-ISRIB, and polyamines including putrescine, spermine, and spermidine. Furthermore, here a) Chroman 1 and / or its derivatives are concentrated at concentrations of 4 nM to 40 μM, 10 nM to 20 μM, 20 nM to 10 μM, or 30 nM to 500 nM. b) Emricasane and / or its derivatives are present in concentrations of 100 nM to 40 μM, 200 nM to 30 μM, and 300 nM to 20 μM. c) trans-ISRIB is concentrated at a concentration of 50 nM to 6.25 μM, 100 nM to 6.25 μM, or 200 nM to 6.25 μM, and d) The method according to any one of claims 1 to 8, wherein putrescine, spermine, and spermidine are each at a concentration of 0.5 μM to 1 mM.

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