Compositions and methods for cell culture
By employing caspase-3 inhibitors and polyamines, the challenges of culturing pluripotent stem cells are addressed, resulting in improved cell survival, reduced apoptosis, and enhanced reproducibility of cell differentiation protocols.
Patent Information
- Application Number
- JP2025020820
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2018-10-11
- Filing Date
- 2025-02-12
- Publication Date
- 2025-05-09
AI Technical Summary
Current methods for culturing pluripotent stem cells are labor-intensive, prone to human error, and difficult to replicate, leading to challenges in maintaining cell viability and undifferentiated state, especially during enzymatic dissociation, cryopreservation, and low cell density conditions.
The use of specific small compounds, including caspase-3 inhibitors such as Chroman1, Emricasan, trans-ISRIB, and polyamines, either alone or in combination, to improve the survival of pluripotent stem cells in culture by reducing apoptosis and enhancing cell culture outcomes.
These compounds significantly improve cell survival, reduce cell death, and enhance the reproducibility of cell differentiation protocols, allowing for more economical and scalable cell culture processes suitable for preclinical and clinical applications.
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Figure 2025072608000001_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to the fields of biochemistry, cell biology, bioengineering, stem cell biology, regenerative medicine, and related fields, and relates to compositions and methods useful for the culture of mammalian cells, including, but not limited to, pluripotent stem cells, tissues and organs. [Background technology]
[0002] Pluripotency is a remarkable cellular state that allows stem cells to differentiate into any cell type in the human body. The advent of pluripotent stem cells, especially induced pluripotent stem cell (iPSC) technology, has great potential for drug discovery, disease modeling, and regenerative medicine. iPSC technology involves reprogramming non-pluripotent cells into pluripotent cells, thereby enabling the artificial generation of pluripotent cells from any individual. The resulting iPSCs are attractive for therapeutic and research purposes, as they can be generated from donor cells with the desired genetic and / or immunological background. To fully exploit the therapeutic and research potential of iPSCs, their cell culture conditions require chemically defined media and well-characterized reagents. iPSC culture conditions should also be adaptable to large-scale preclinical and clinical applications. Some examples of such applications are cell replacement therapy, gene therapy, and genome editing.
[0003] Since the establishment of the first embryonic stem cell (ESC) lines, it has been known that pluripotent stem cells are highly sensitive to cell dissociation and routine passaging. Compared to other types of cell culture, the culture of pluripotent stem cells requires special attention to the culture conditions in order to maintain a reasonably high cell viability over long periods of time and to maintain the undifferentiated state of the pluripotent stem cells. Human pluripotent stem cells are particularly sensitive to cell culture conditions, especially at the very low cell densities required for enzymatic dissociation of cells into single cells and clonal analysis, or in single cell per well conditions. Currently available options for single cell cloning are unsuccessful and labor intensive. Improving the outcome of single cell cloning is important for various applications, such as genome editing of iPSCs for preclinical research and clinical applications, e.g., correcting genetic defects by personalized cell therapy, introducing genetic mutations for disease modeling, or introducing transgenes to create reporter cell lines for drug discovery.
[0004] Several compounds have been used as cell media supplements in an attempt to improve the outcome of stem cell culture. For example, a Rho-associated protein kinase (ROCK) inhibitor named Y-27632 improves the survival of pluripotent stem cells in culture. Although several other compounds such as blebbistatin, thiazovivin, pyrintegrin and pinacidil are also used, Y-27632 is still the most widely used reagent in the stem cell field. Various cell passaging methods such as mechanical passaging using special tools, enzymatic passaging using non-trypsin proteases, and enzyme-free passaging using ethylenediaminetetraacetic acid (EDTA) have been developed with the aim of reducing cellular stress during cell culture. Despite many developments in the field, problems arising during the culture of pluripotent stem cells remain unsolved. Pluripotent stem cell culture has remained challenging, labor-intensive, prone to human error and difficult to reproduce. Improved processes and compositions for the culture of pluripotent stem cells are needed, but such processes and compositions can also be adapted to improve the culture of other mammalian cells, tissues and organs. For example, many widely used cancer cell lines are maintained in culture for many years, acquiring genetic changes over time, and these cell lines may not faithfully represent cancer cell biology in vivo. At the same time, establishing cell lines from primary tumors can be a difficult challenge due to poor cell survival in vitro. Summary of the Invention [Problem to be solved by the invention]
[0005] Thus, there is a need for improved processes and compositions for establishing new cancer cell lines from primary tumors. [Means for solving the problem]
[0006] Described herein and included in the embodiments of the invention are methods, compositions and kits useful for the growth and maintenance of mammalian cells, tissues and / or organs in culture. Pluripotent stem cells are highly sensitive to cell culture conditions, undergoing apoptosis during enzymatic cell dissociation, routine passaging with or without cryopreservation / thawing, and when urged to differentiate in 2D and 3D culture. The inventors have discovered that certain small compounds, among them caspase-3 inhibitors such as Chroman1, Emricasan, trans-ISRIB and polyamines, and / or combinations of such compounds, significantly improve the survival of pluripotent stem cells in culture. In connection with this discovery, the inventors have devised compositions, kits and methods described herein, which can be used to improve the results of culture of not only pluripotent stem cells, but also various other mammalian cells, tissues or organs. Thus, various embodiments of the methods described herein utilize compositions and / or kits devised by the inventors for the culture of mammalian cells (including, but not limited to, pluripotent stem cells), tissues and / or organs. Among other things, the compositions, kits and methods described herein enable the development of economical culture processes, the establishment of cost-effective new cell lines, the scalability of cell culture for drug and / or toxicology screening, the robustness and standardization of cell expansion culture, the significant improvement in the reproducibility of cell differentiation protocols, and the improvement of applications involving cell culture, such as gene therapy and genome editing for personalized medicine. Advantages of the compositions, kits and methods of the present invention are described throughout this document and illustrated in the accompanying drawings.
[0007] As used herein, the terms "the invention", "this invention" and "the present invention" are intended to broadly refer to the subject matter of this patent application and all of the claims that follow. Statements containing these terms should be understood not to limit the subject matter described herein or to limit the meaning or scope of the claims that follow. The subject embodiments of the present invention are defined by the claims, not this summary. This summary is a high level overview of various aspects of the invention, introducing some of the concepts described and illustrated in this document and the accompanying drawings. This summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used in isolation to determine the scope of the claimed subject matter. The subject matter should be understood with reference to appropriate portions of the entire specification, any or all figures, and each claim. This document describes and references various embodiments of the present invention. No particular embodiment is intended to define the scope of the invention. Rather, the embodiments merely provide non-limiting examples of various methods, compositions, kits, systems, and the like that are included within the scope of at least the present invention. Some embodiments of the invention are summarized below, while other embodiments are described and illustrated elsewhere in this document.
[0008] Exemplary embodiments of the invention include compositions comprising chroman 1 and / or a derivative thereof, and one or more caspase-3 inhibitors, such as emricasan and / or a derivative thereof. The compositions may further comprise one or both of trans-ISRIB and a polyamine. Composition embodiments may be formulated to provide a concentration of chroman 1 and / or a derivative thereof, when incorporated into a medium, of about 4 nM to about 80 μM, about 4 nM to about 40 μM, about 10 nM to about 20 μM, about 20 nM to about 10 μM, or about 30 nM to about 500 nM. Composition embodiments may be formulated to provide a concentration of emricasan and / or a derivative thereof, when incorporated into a medium, of about 100 nM to about 80 μM, about 100 nM to about 40 μM, about 200 nM to about 30 μM, or about 300 nM to about 20 μM. Composition embodiments may be formulated to provide a concentration of trans-ISRIB of about 50 nM to about 80 μM, about 50 nM to about 6.25 μM, about 100 nM to about 6.25 μM, or about 200 nM to about 6.25 μM when incorporated into a medium. Composition embodiments may include polyamines including one or more of spermine, spermidine, and putrescine, and such embodiments may be formulated to provide a concentration of polyamines of about 0.5 μM to 1 mM when incorporated into a medium. Composition embodiments may include polyamines including one or more of spermine, spermidine, and putrescine, and such embodiments may be formulated to provide a concentration of spermine of about 0.5 nM to 1 mM when incorporated into a medium, and / or a concentration of spermidine of about 0.5 nM to 1 mM when incorporated into a medium.
[0009] Exemplary embodiments of the invention include media, such as culture media compositions, that include components configured to support at least one mammalian cell in vitro or ex vivo and chroman 1 and / or a derivative thereof. For example, embodiments of the media compositions may include chroman 1 and / or a derivative thereof at an effective concentration of about 4 nM to 80 μM, 4 nM to 40 μM, 10 nM to 20 μM, 20 nM to 10 μM, or 30 nM to 500 nM, where the effective concentration of chroman 1 and / or a derivative thereof is the concentration of chroman 1 and / or a derivative thereof in the working medium used without further dilution. Embodiments of the media compositions may further include emricasan and / or a derivative thereof. For example, embodiments of the medium composition may include emricasan at an effective concentration of about 100 nM to 80 μM, 100 nM to 40 μM, 200 nM to 300 μM, 300 nM to 20 μM, where the effective concentration of emricasan and / or its derivatives is the concentration of emricasan and / or its derivatives in the working medium used without further dilution. Embodiments of the medium composition may further include trans-ISRIB. For example, embodiments of the medium composition may include trans-ISRIB at an effective concentration of about 50 nM to 80 μM, 50 nM to 6.25 μM, 100 nM to 6.25 μM, or 200 nM to 6.25 μM, where the effective concentration of trans-ISRIB is the concentration of trans-ISRIB in the working medium used without further dilution. Embodiments of the medium composition may further include polyamines, including one or more of spermine, spermidine, and putrescine. Such medium composition embodiments may include spermine at an effective concentration of about 0.5 nM to 1 mM, spermidine at an effective concentration of about 0.5 nM to 1 mM, and putrescine at an effective concentration of about 0.5 nM to 1 mM, the effective concentrations of each of spermine, spermidine and / or putrescine being the concentrations in the working medium used without further dilution. In embodiments of the medium composition, the components configured to support at least one mammalian cell in vitro or ex vivo may include one or more of buffers, inorganic salts, essential amino acids, carbohydrates, fatty acids, lipids, vitamins, trace elements. Embodiments of the medium composition include liquid or solid culture medium concentrates formulated to be dissolved before use. Embodiments of the medium composition also include media, such as culture media, formulated to be used without further dilution. Embodiments of the medium composition include liquid, semi-solid, solid media. Embodiments of the medium composition include defined media and non-defined media. Embodiments of the medium composition may be configured for the culture or storage of one or more of embryonic stem cells, non-embryonic stem cells, pluripotent stem cells, induced pluripotent stem cells, multipotent stem cells, adult stem cells, progenitor cells, differentiated cells, isolated primary cells, secondary cells, immortalized cells, cell line cells, germ cells, somatic cells, modified cells (including genetically modified cells), human cells or cells of human origin. Embodiments of the media composition may be configured for the culture or storage of one or more of cells, cell cultures, tissue cultures, tissues, organs, organ parts, blastoderm, embryoid bodies, or embryos.
[0010] Exemplary embodiments of the invention include kits that include a composition according to embodiments of the invention and a medium, such as a culture medium component, configured to support at least one mammalian cell in vitro or ex vivo. In some exemplary embodiments, such kits may further include one or more of a culture vessel, support, or scaffold for the growth of at least one mammalian cell in vitro or ex vivo. In some exemplary embodiments, such kits may further include one or more of a vessel and other components for the storage of at least one mammalian cell in vitro or ex vivo.
[0011] Exemplary embodiments of the present invention also include compositions comprising at least one mammalian cell and a medium composition according to one or more of the embodiments of the present invention. The at least one mammalian cell included in such embodiments may be one or more of embryonic stem cells, non-embryonic stem cells, pluripotent stem cells, induced pluripotent stem cells, multipotent stem cells, adult stem cells, progenitor cells, differentiated cells, isolated primary cells, secondary cells, immortalized cells, cell line cells, germ cells, somatic cells, or modified cells (including genetically modified cells). The at least one mammalian cell may also be one or more of a plurality of cells, cell cultures, tissue cultures, tissues, organs, organ parts, blastoderm, embryoid bodies, or embryos. The at least one mammalian cell may be a human cell and / or a cell of human origin. The at least one mammalian cell may be thawed. Multiple embodiments of such compositions may include a container comprising a medium. Embodiments of such compositions may include a solid support and / or a scaffold for the at least one mammalian cell.
[0012] Exemplary embodiments of the present invention also include various methods. For example, included in embodiments of the present invention is a method of preparing a medium according to one or more of the embodiments of the present invention. In another example, included in embodiments of the present invention is a method of culturing at least one mammalian cell, comprising incubating at least one mammalian cell in a medium according to one or more of the embodiments of the present invention, in vitro or ex vivo. In another example, included in embodiments of the present invention is a method of obtaining a clonal population of mammalian cells, comprising incubating dissociated mammalian cells in a culture medium according to one or more of the embodiments of the present invention until a colony of cells is established from the dissociated mammalian cells. In yet another example, included in embodiments of the present invention is a method of obtaining embryoid bodies, comprising incubating one or more mammalian cells in a culture medium according to one or more of the embodiments of the present invention until the embryoid bodies are established. In yet another example, included in embodiments of the present invention is a method of growing at least a portion of an organ in vitro or ex vivo, comprising incubating one or more mammalian cells in a culture medium according to one or more of the embodiments of the present invention until the organ is established. In the above methods, the culture medium according to one or more of the embodiments of the present invention can be a liquid, semi-solid, or solid medium. Culture medium can be defined medium or non-defined medium.Also included in the embodiment of the present invention is the method of maintaining or preserving at least part of a cell, a plurality of cells, tissue, embryoid body, embryo, organoid or organ in vitro or ex vivo, comprising incubating at least part of a cell, a plurality of cells, tissue, embryoid body, embryo, organoid or organ in the medium according to one or more of the embodiments of the present invention.The above-mentioned method of maintaining or preserving is carried out at various temperatures, including subzero temperatures (as carried out for cryopreservation).The above method can be performed on one or more of embryonic stem cells, non-embryonic stem cells, pluripotent stem cells, induced pluripotent stem cells, multipotent stem cells, adult stem cells, progenitor cells, differentiated cells, isolated primary cells, secondary cells, immortalized cells, cell line cells, germ cells, somatic cells or modified cells (including genetically modified cells), human cells or cells of human origin, as appropriate. The above method of culturing, growing, maintaining or storing live cells can be performed on one or more of a plurality of cells, cell cultures, tissue cultures, tissues, organs, organ parts, blastoderms, embryoid bodies or embryos, as appropriate. The above method can be performed on thawed cells, cell cultures, tissue cultures, tissues, organs, organ parts, blastoderms, embryoid bodies or embryos. [Brief description of the drawings]
[0013] [Figure 1] Diagram showing the structure of a small molecule. [Diagram 2] Schematic diagram of the procedure used for quantitative high-throughput screening (qHTS). [Diagram 3] Scatter plot of maximum viability achieved by the screened compounds (plotted on the X-axis). Viability values plotted on the Y-axis were normalized based on the viability achieved at 10 μM Y-27632 (considered as 100%). [Figure 4] Figure 1 shows a line graph of the dose-response curves of selected ROCK inhibitors Chroman 1, Fasudil HCL, Thiazovivin and Y-27632. The molar concentration of the selected ROCK inhibitor is plotted on the X-axis (logarithmic scale). Each concentration was tested in quadruplicate, and data was normalized with respect to the average CellTiterGlo™ (CTG) reading obtained from 10 μM Y-27632. Thus, the normalized data is plotted on the Y-axis. [Diagram 5] FIG. 1 shows a bar graph illustrating the comparison of the effects of Y-27632 and Chroman 1 on survival (reduction in the number of propidium iodide positive dead cells) of dissociated H9 cells seeded on vitronectin-coated 6-well plates. [Figure 6]Line graph showing the half maximal inhibitory concentration (IC50) of Y-27632 determined in kinase assays against ROCK1 and ROCK2 using a HotSpot kinase assay performed by Reaction Biology Corporation (Malvern, PA). [Figure 7] Line graph showing the half maximal inhibitory concentration (IC50) of chroman 1 determined in kinase assays against ROCK1 and ROCK2 using a HotSpot kinase assay performed by Reaction Biology Corporation (Malvern, PA). [Figure 8] FIG. 1 shows a table summarizing the inhibitory activity of 10 μM Y-27632 and 50 nM chroman 1. [Figure 9] FIG. 1 shows the results of combinatorial matrix screening of the combination of chroman 1 and the caspase inhibitor emricasan, and the combination of chroman 1 and (-)-blebbistatin. [Figure 10] Figure 1 shows a bar graph demonstrating improved cell survival when Chroman 1 and Emricasan are combined. Viable H9 cells were quantified 24 hours after plating (100,000 cells / cm2) using the CellTiter-Glo® assay. [Figure 11] Phase contrast microscopy images (IncuCyte Zoom™ Live Cell Analysis, Sartorius, DE) of a time-lapse experiment monitoring cell behavior over 24 hours. [Figure 12] FIG. 11 is a bar graph depicting evaluation of hits from primary screens of dissociated stem cells at low cell density. [Figure 13] Bar graph of plating efficiency and colony size of H9 cells upon treatment with different small molecules and small molecule combinations. [Figure 14]Representative microscopic images of colonies obtained with Y-27632 and CEPT quantified in Figure 14. Whole-well images (6-well plates) were taken with calcein green (0.5 μg / mL; obtained from Thermo Fisher Scientific). [Figure 15] FIG. 1 shows a bar graph summarizing the results of single cell cloning experiments performed using H9 cells plated as 1 cell / well conditions (96 well plates). [Figure 16] Representative microscopy images showing the superiority of CEPT on embryoid body formation. The images shown are representative phase contrast images of embryoid bodies from H9 cells. The images were taken 24 hours after cell plating (20,000 cells / cm2). [Figure 17] Scatter plot showing quantification of the diameter of single embryoid bodies formed from cells treated with either Y-27632 or CEPT. To generate single embryoid bodies, H9 cells were dissociated with Accutase and plated at 5,000 cells / well in AggreWell plates (StemCell Technologies, Cat. No.: 34825). For diameter quantification, images were taken 24 hours after plating. [Figure 18] Representative images showing that CEPT improves cerebral organoid formation compared to Y-27632. [Figure 19] FIG. 1 shows a bar graph illustrating improved thawing of cryopreserved pluripotent stem cells (H9). [Figure 20] Diagram showing bar graphs demonstrating CEPT-improved thawing of various iPSC-derived differentiated cells (with the exception of iPSC-derived astrocytes generated by NCATS scientists, all other cell types are commercially available from Fujifilm Cellular Dynamics International). [Figure 21]FIG. 1 shows the results of electrophysiological characterization of iPSC-derived cardiomyocytes (commercially available from Fujifilm Cellular Dynamics International) 5 days after thawing using a multielectrode array (Axion Biosystems). [Figure 22] Diagram showing representative microscopy images demonstrating CEPT protection of dissociated cells from multiple stress mechanisms. Scale bars shown are 10 μm. Upper panel: Confocal microscopy analysis of Lamin B1-GFP iPSC reporter lines (Allen Institute for Cell Science, Seattle, WA), showing dramatic morphological differences in nuclear shape during cell passaging (30 min after plating). Middle panel: OCT4 expressing cells were immunoreactive for γH2AX when exposed to 0.0001% v / v DMSO and Y-27632 (arrowheads), but not when treated with CEPT (3 h after plating). Lower panel: Dramatic cytoskeletal differences during cell passaging (3 h after plating) as measured by immunocytochemistry for actin and myosin. Stressed cells showed blebbing in the presence of 0.0001% v / v DMSO (white arrowheads) or prominent formation of actin stress fibers at the colony edges when exposed to Y-27632 (white arrowheads). [Diagram 23] FIG. 1 shows representative Western blot images characterizing hESCs(H9) treated with Y-27632 or CEPT. [Figure 24] FIG. 1 shows representative Western blot images characterizing hESCs(H9) treated with Y-27632 or CEPT. [Diagram 25] Representative images showing the results of a puromycin pulse-chase experiment in hESC(H9), demonstrating that protein synthesis, which was strongly impaired during cell passaging, was rescued by CEPT (3 hours after passaging). [Figure 26]FIG. 1 shows a bar graph demonstrating that glutathione levels were significantly higher in hESCs (H9) passaged with CEPT compared to DMSO and Y-27632 (3 hours after plating). [Figure 27] FIG. 1 shows experimental results demonstrating that CEPT improved genome editing efficiency. [Figure 28] FIG. 1 shows a bar graph comparing the viability of human pluripotent stem cells in the presence of various agents and CEPT. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] The embodiments of the present invention are envisioned at least in part based on the findings discussed below. By using combinatorial chemical screening and subsequent experimental analysis, the inventors unexpectedly found that the ROCK inhibitor Chroman 1 was significantly more potent and more specific than the commonly used Y-27632 and other known ROCK inhibitors such as blebbistatin, thiazovivin, pinacidil, and fasudil, improving the survival rate of human pluripotent stem cells (hPSCs) in culture. The inventors also found that emricasan and the emricasan-related compound Q-VD-OPh further improved the survival of hPSCs in culture when used in combination with Chroman 1. At the same time, emricasan alone was not sufficient to improve cell survival. The combination of Chroman 1 and emricasan (or Q-VD-OPh) unexpectedly showed a beneficial synergistic effect on improving cell culture results. The useful and advantageous properties of Chroman 1, used alone or in combination with Emricasan, were demonstrated during routine cell culture of PSCs over many passages, showing that the normal karyotype and developmental potential of PSCs was not compromised. Chroman 1 or the combination of Chroman 1 and Emricasan also dramatically and unexpectedly improved cell survival when cryopreserved human PSCs were thawed. Furthermore, superior cell survival during embryoid body formation was achieved in the presence of Chroman 1 or the combination of Chroman 1 and Emricasan. The significant and advantageous effects of Chroman 1 or the combination of Chroman 1 and Emricasan were demonstrated when floating embryoid bodies were generated in either bulk culture or one embryoid body per well conditions. hPSCs in the presence of Chroman 1 or the combination of Chroman 1 and Emricasan underwent minimal cell death and produced higher quality embryoid bodies compared to those grown in Y-27632. The inventors also found that additional compounds and cell culture conditions led to further improvements in cell survival in stringent single-cell cloning experiments. For example, the use of trans-ISRIB and / or polyamines together with chroman 1 or a combination of chroman 1 and emricasan improved cell survival during single-cell cloning.In addition, the inventors have discovered that in some embodiments, emricasan can be substituted with other caspase-3 inhibitors.
[0015] Based on the experimental studies summarized above, it has been envisaged that each compound or various combinations of compounds described in the "small molecules" section of this document (which may be referred to as active agents depending on the context) are useful for improving the survival of mammalian cells in culture and other related processes. Accordingly, various compositions and related processes and kits have been envisaged by the inventors. In one non-limiting example, the inventors envisage active agents and related processes and kits that are useful and advantageous for the culture of mammalian cells, including but not limited to PSCs such as hPSCs, which may be used in various research and clinical applications, such as cell reprogramming protocols, establishment of new iPSC lines, and genome editing using various methods, such as, for example, methods using CRISPR / Cas9, transcription activator-like effector nucleases (TALENs) or zinc finger nucleases (ZFNs). In another non-limiting example, the inventors contemplated active agents and associated processes and kits useful for the culture of differentiated cells, such as, but not limited to, commercially available neurons, hepatocytes, cardiomyocytes, or immunoresponsive T cells associated with chimeric antigen receptor (CAR) T cell therapy. In yet another non-limiting example, the inventors contemplated active agents and associated processes and kits for the establishment of new cell lines, such as, but not limited to, new cell lines from freshly isolated primary cells, cell lines of modified cells (e.g., genetically modified CAR T cells useful for immunotherapy), and cell lines of cancer cells useful for research applications.
[0016] The various compositions and methods described herein may be useful for, but are not limited to, establishing new cell lines from primary cells, including cancer and non-cancer cell lines, reprogramming and establishing new iPSCs, improving the culture of non-stem cells and stem cells (such as ESCs, iPSCs, neural stem cells, hematopoietic stem cells, mesenchymal stem cells, and adult stem cells, including stem cells derived from other organs, or artificially modified cells), improving the cryopreservation and thawing of cells, improving the growth and / or differentiation of cells in two-dimensional and three-dimensional cultures (e.g., neurospheres or organoids), improving organ and tissue preservation (such as, but not limited to, ex vivo organ and tissue preservation prior to transplantation), and improving genome editing and clonal selection of cultured cells in various research and clinical techniques.
[0017] Terms and Concepts Some terms and concepts are explained below. They are intended to facilitate understanding of various embodiments of the present invention in conjunction with the remainder of this document and the accompanying drawings. These terms and concepts may become more clear and understood based on accepted practices in the field of the present invention and the descriptions provided throughout this document and / or the accompanying drawings. Some 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 accepted practices in the field of the present invention and the descriptions provided throughout this document and / or the accompanying drawings. Terms that are not explicitly defined may also be defined and understood based on accepted practices in the field of the present invention and may be interpreted within the context of this document and / or the accompanying drawings.
[0018] As used herein, the terms "a," "an," and "the" refer to "one," "one or more," or "at least one," unless otherwise specified. The term "about" is used herein to indicate that a value includes the inherent variation of error of the device, method used to determine the value, or the variation that exists between study subjects. For example, the term "about" can mean a variation of ±1%, ±5%, ±10%, ±15%, or ±20% from a given value.
[0019] As used herein, the terms "isolation," "separation," or "purification" and related terms are not necessarily used to refer to the removal of all substances other than the component of interest from a sample. Instead, in some embodiments, the terms are used to refer to a procedure that enriches the amount of one or more components of interest relative to one or more other components present in the sample. In some embodiments, "isolation," "separation," or "purification" can be used to remove or reduce the amount of one or more components from a sample. For example, the phrase "isolated cells" can refer to cells that have been substantially separated or purified from other cells of a cell culture or organism.
[0020] The phrase "derived from" and related phrases referring to cells or biological samples refer to cells or samples obtained from the stated source at some point in time. For example, cells derived from an organism may represent primary cells obtained directly from an individual (i.e., unmodified), or may be modified, for example, by introduction of a recombinant vector, by exposure to or culture under certain conditions, or by immortalization. In some cases, cells derived from a given source will undergo cell division and / or differentiation such that the original cell no longer exists, but secondary cells will be understood to be derived from the same source.
[0021] The terms "culture," "cell culture," and related terms may be used to refer to cells or cell populations outside of an organism. These 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 for long-lived cell culture.
[0022] Primary cells include any cell of an adult or fetal organism other than egg cells, sperm cells, and stem cells. Examples of primary cells include, but are not limited to, skin cells, bone cells, blood cells, cells of internal organs, and cells of connective tissue. Secondary cells can be derived from primary cells and immortalized for long-lived in vitro cell culture.
[0023] When referring to the culture or culture process of cells, tissues or organs, the terms "culture", "culturing", "grow", "growing", "maintain", "maintaining", "expand", "expanding" and the like may be used interchangeably to mean that a cell or a group of cells (the scope of this expression includes a group of undifferentiated or differentiated cells or a plurality of undifferentiated or differentiated cells, embryos, embryoid bodies, tissues, or organs) is maintained outside the body (ex vivo and / or in vitro) under suitable conditions to avoid survival, proliferation, differentiation and / or senescence. In other words, the cell or group of cells being cultured is viable and the culture may lead to cell proliferation, differentiation, or division. The above terms do not imply that all cells in the culture survive, proliferate, or divide, as some cells naturally undergo senescence. Cells are usually cultured in a medium, which may be changed during the course of the culture. So-called two-dimensional (2D) cell cultures are usually grown on flat surfaces in plastic containers that may be coated with substrates (e.g., vitronectin, laminin 521, matrigel). Three-dimensional (3D) cultures are cultures in which biological cells can grow or interact with their surroundings in all three dimensions. 3D cultures can be grown in a variety of artificial environments, such as, but not limited to, plates, flasks, bioreactors or small capsules, in which cells can grow into spheroids. 3D cultures include so-called scaffold-free and scaffold-based techniques. Scaffold-free methods employ, but are not limited to, the use of low-attachment plates, hanging drop plates, micropatterned surfaces, and rotating bioreactors, magnetic levitation and magnetic 3D bioprinting. A scaffold is a structure or material that provides mechanical support for cell attachment and, in some cases, differentiation. Scaffolds include solid scaffolds, sponges (such as cellulose sponges), protein-based scaffolds (such as collagen or gelatin-based scaffolds), hydrogels, nanofibrous scaffolds, synthetic polymer scaffolds (e.g., polycaprolactone scaffolds or polystyrene scaffolds).The culture environment generally includes consideration of factors such as substrate for cell growth, cell density, and cell contact, gas phase, medium, and temperature. Cells in culture are generally maintained under conditions known to be optimal for cell growth. Such conditions may include, for example, a temperature of approximately 37° C. and a humid atmosphere containing approximately 5% CO2. The duration of incubation may vary widely depending on the desired outcome.
[0024] The terms "medium", "culture medium", "culture fluid", "growth medium" and related terms and phrases refer to a medium that supports the survival and / or growth of cells (including single cells and multiple cells), tissues, organs, or parts thereof or embryonic structures (such as, but not limited to, morula, blastocyst, or embryo). The term "medium" encompasses various types of media, including, but not limited to, media used for cell, tissue, or organ culture, and media used for storage of cells, tissues, and organs. For example, the term "medium" encompasses media used for cell growth and / or differentiation, media used for growth of cells, tissues, organoids, organs, or embryos, and media used for storage of cells, tissues, organoids, organs, or embryos, including cryopreservation and storage of cells, tissues, or organs ex vivo prior to transplantation. Media are typically isotonic and may be liquid, colloidal liquid, gel, solid, and / or semi-solid. Media may be configured to provide a matrix for cell attachment or support, or a separate support (such as a culture vessel surface or scaffold) may be provided. A medium may contain nutritional, chemical, and structural support components necessary for the culture of a cell or cells. A chemically defined medium (or "defined medium") is a medium in which the concentrations of all of its chemical components are known. In contrast, a non-defined medium may contain complex biological components, such as serum albumin or serum, whose composition is not completely defined. A conditioned medium is understood to be a previously used medium from cultured cells. It contains metabolites, growth factors, and extracellular matrix proteins secreted into the culture medium by the cultured cells, which may be beneficial for the subsequent use of such a conditioned medium.
[0025] The expression "single cell cloning" describes a process that allows the generation of monoclonal cell lines from a polyclonal pool of cells. Single cell cloning usually involves the isolation of individual cells by various approaches such as single cell sorting, isolation in cloning cylinders or limiting dilution. The cells thus isolated are then expanded in culture.
[0026] In the context of cell culture, the term "dissociating" can refer to the process of isolating cells from other cells or from a surface, such as a culture plate surface. For example, cells can be dissociated from an organ or tissue by mechanical or enzymatic methods. In another example, cells that have aggregated in vitro can be dissociated from each other. In yet another example, adherent cells are dissociated from a culture plate or other surface. Dissociation can include disruption of the extracellular matrix (ECM) and interactions of cells with a substrate (e.g., a culture surface), or disruption of the ECM between cells.
[0027] "Stem cells" are cells that are characterized by the ability of self-renewal through somatic cell division and the possibility of differentiation 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 blastocysts and can give rise to embryonic tissues, whereas somatic stem cells can exist in adult tissues for tissue regeneration and repair.
[0028] The term "cell line" refers to a cell culture usually made from a single cell of a multicellular organism. The cells of a cell line have a relatively uniform genetic makeup. Some cell lines are derived from stem cells. Some cell lines are derived from naturally occurring cancer cells that have undergone genetic modification (such as one or more mutations or the introduction of a viral gene) that has led to uncontrolled proliferation. Some cell lines are derived from cells that have been artificially immortalized by various methods.
[0029] The term "self-renewal," when used in reference to a cell, describes the ability to divide and generate at least one daughter cell that has the self-renewal characteristics of the parent cell, but one or more of the other daughter cells may be committed to a particular differentiation pathway. For example, a self-renewing hematopoietic stem cell may divide and form one daughter cell and another daughter cell that is committed to differentiation in the myeloid or lymphatic pathway. A non-self-renewing cell can still undergo cell division to produce daughter cells, but will not have either of the differentiation potentials of the parent cell type and will instead produce a differentiated daughter cell.
[0030] The term "pluripotent", "pluripotency" and related terms and phrases refer to an animal cell or cell population that has the ability to give rise to progeny that can differentiate under appropriate conditions into cell types that collectively demonstrate characteristics associated with cell lineages from all three germ layers (endoderm, mesoderm, ectoderm). For example, the phrase "characteristics of pluripotent stem cells" refers to characteristics of a cell or cell population that distinguishes a pluripotent stem cell or population from other cells. The ability to give rise to progeny that can differentiate under appropriate conditions into cell types that collectively demonstrate characteristics associated with cell lineages from all three germ layers (endoderm, mesoderm, ectoderm) is a characteristic of pluripotent stem cells. Cell morphology and expression and non-expression of certain combinations of molecular markers are also characteristic of pluripotent stem cells. Pluripotent stem cells (PSCs) include embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs).
[0031] The term "stem cell" and related terms and expressions are used herein to refer to animal cells that can divide and replicate themselves for long periods of time, are not differentiated, and can give rise to differentiated cell types. Stem cells can divide and replicate themselves for long periods of time. Unlike, for example, muscle cells, blood cells, or nerve cells, which do not normally replicate themselves, stem cells can replicate or grow many times. If the resulting cell remains undifferentiated like the parent stem cell, it is said to be capable of long-term self-renewal.
[0032] Embryonic stem cells (ESCs) are derived from embryos and, under appropriate conditions, they remain undifferentiated (undifferentiated) in culture. Embryonic stem cell lines are lines of ESCs cultured under conditions that allow them to grow for months to years without differentiating. Under other conditions, for example, when the cells are clumped together to form embryoid bodies, they begin to differentiate spontaneously.
[0033] "Embryoid bodies" are rounded collections of cells that can arise from stem cells cultured in suspension. Embryoid bodies contain cell types derived from all three germ layers. "Adult stem cells", which may also be named "somatic stem cells", are stem cells found among differentiated cells in a tissue or organ in an organism, and can differentiate to give rise to some or all of the differentiated cell types in the tissue or organ. Somatic stem cells can be propagated in culture. When differentiating into differentiated cells, somatic stem cells usually give rise to intermediate cells called "precursor" or "progenitor" cells. Somatic stem cells and progenitor cells can be described as "multipotent" or "oligopotent" depending on their degree of differentiation potential. Some examples of somatic stem cells are: hematopoietic stem cells, including bone marrow stromal stem cells and skeletal stem cells, which 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, which can give rise to cells of bone (osteoblasts and osteocytes), cells of cartilage (chondrocytes), fat cells (adipocytes), and stromal cells that support blood formation; neural stem cells, which can give rise to nerve cells (neurons), astrocytes, and oligodendrocytes; epithelial stem cells from the lining of the digestive tract, which can give rise to absorptive cells, goblet cells, Paneth cells, and enteroendocrine cells; skin stem cells, which arise in the basal layer of the epidermis (and can give rise to keratinocytes) and at the base of hair follicles (and can give rise to both hair follicles and epidermis). Tissue-specific progenitor cells are cells that lack the self-renewal capacity for differentiation into cells of a particular organ or tissue. A somatic stem cell type can differentiate into cell types found in organs or tissues not expected from the origin of the somatic stem cell. This phenomenon is called "transdifferentiation."
[0034] The expression "induced pluripotent stem cells" (iPSCs) refers to pluripotent stem cells that have been artificially induced into non-pluripotent cells. For example, human iPSCs are artificially derived from human non-pluripotent cells. iPSCs can be obtained by introducing the products of a specific set of pluripotency-associated genes, i.e. "reprogramming factors", into a given cell type and / or by exposing non-pluripotent cells to specific conditions.
[0035] The term "non-pluripotent cells" refers to mammalian cells that are not pluripotent cells. Examples of such cells include differentiated cells, somatic stem cells, and progenitor cells. Some non-pluripotent cells maintain some degree of differentiation potential, and some examples are somatic stem cells and progenitor cells.
[0036] "Cell potential" describes the ability of a cell to differentiate into other cell types. Cells can be designated as pluripotent, multipotent (can differentiate into some but not all cell types, e.g., umbilical cord blood stem cells and mesenchymal stem cells) or oligopotent (having the ability to differentiate into a few cell types, e.g., lymphoid or hemangioblast cells). In current understanding, potential exists on a continuum. Thus, the boundaries between cell categories based on potential can be fluid and are not necessarily limiting.
[0037] The term "progenitor cells" refers to cells that are early descendants of stem cells. They can usually differentiate to form cells of one or more types of cells, but are non-pluripotent. In other words, they are limited as to the types of cells they can become. Progenitor cells can be primary cells obtained from an organism, cells grown in culture, or cells derived from stem cells.
[0038] "Differentiation" is the process by which less specialized cells become more specialized cell types. For example, early development of a multicellular animal is characterized by rapid proliferation of embryonic cells that subsequently differentiate to give rise to the many differentiated types of cells that make up the tissues and organs of the multicellular animal. Once a cell differentiates, its proliferation rate usually decreases. Some types of differentiated cells never divide again, but many differentiated cells can resume proliferation as needed to replace cells lost as a result of injury or cell death. Some cells divide continuously throughout life, replacing cells that have a high turnover rate in adult multicellular animals. Examples of differentiated cells include, but are not limited to, cells 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.
[0039] Cancer cells are cells capable of uncontrolled proliferation, which can lead to the formation of solid tumors in an organism or to the mass leakage of blood. Cancer cells are usually formed when genes involved in cell culture division are altered, for example, by mutation or viral infection. Such alterations can be induced naturally or artificially. In culture, cancer cells can be used to generate cell cultures. For example, immortalized cell lines can be created by isolating cells from naturally occurring or induced cancers. Some examples of such immortalized cell lines are human HeLa cells obtained from cervical cancer, and mouse Raw264.7 cells, which were selected for their ability to divide after mutagenesis.
[0040] The expression "modified cells" and related terms and expressions encompass all cells that are derived or are derived from cells that have been artificially modified by any method, compared to the original cells or cells from which they are derived. Modified cells can be made from primary cells, secondary cells, stem cells, cultured cells and / or other modified cells. Modification includes, but is not limited to, genetic modification or genetic engineering, in which case the modified cells are referred to as "genetically modified" or "genetically engineered". Genetic modification can be achieved by a variety of methods that result in the incorporation of foreign or heterologous nucleic acid into the modified cells. Some examples of such methods are transduction with a virus or viral vector, or transfection of isolated nucleic acid through transient pores in the cell membrane. Other modifications include exposing the original cells to biological and non-biological molecules or factors, or culture conditions. Some examples of modified cells are genetically modified cells, including iPSCs, those used in gene therapy (one example is genetically modified immune system cells, T cells modified for CAR T cell therapy, etc.; another example is gene edited cells, cells modified using CRISPR / Cas9, TALEN or ZFN, etc.).
[0041] The term "vessel" refers to a container, dish, plate, flask, bottle, cell culture tube, bioreactor, etc., which may be used for the cultivation, maintenance or propagation of cells, tissues or organs ex vivo or in vitro. Suitable vessels include, for example, multi-well plates, wells of multi-well plates, dishes, tubes, flasks, bottles and reactors.
[0042] The term "stabilize" and related terms and phrases (e.g., "stabilize cells") used in relation to cells refers to the reduction of negative cell responses, such as cell death or senescence. For example, stem cells and other cells may die in response to dissociation, isolation, freezing and / or thawing. In other words, the above conditions may reduce cell viability. Several embodiments of the compositions, methods and kits described therein may reduce the reduction in cell viability and improve cell survival, which may be described as cell stabilization.
[0043] small molecule 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 having the structure shown in Figure 1. Chroman-related compounds or derivatives are structurally related compounds (chroman moiety-containing ROCK inhibitors), some 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 and its derivatives or related compounds can be provided as salts or in solution.
[0044] The term "caspase inhibitor" refers to a small molecule that acts by binding reversibly or irreversibly to the active site of caspases. They are available as pan-caspase inhibitors or caspase-specific inhibitors. In some embodiments of the present invention, the caspase inhibitor is a caspase-3 inhibitor. Exemplary caspase-3 inhibitors are emricasan, Z-VAD-FMK (benzyloxycarbonyl-Val-Ala-Asp(OMe)-fluoromethylketone), Z-DQMD-FMK (Z-Asp(OMe)-Gln-Met-Asp(OMe)-fluoromethylketone), Z-DEVD-FMK (benzyloxycarbonyl-Asp(OMe)-Glu(OMe)-Val-Asp(OMe)-fluoromethylketone) or Ac-DEVD-CHO (N-acetyl-Asp-Glu-Val-Asp aldehyde).
[0045] The term "emricasan" refers to 3-(2-(2-tert-butylphenylaminooxalyl)aminopropionylamino)-4-oxo-5-(2,3,5,6-tetrafluorophenoxy)pentanoic acid having the structure shown in Figure 1. Emricasan-related compounds or derivatives are structurally related compounds (such as Q-VD-OPh hydrate), some of which are described in Linton et al., "First-in-Class Pan Caspase Inhibitor Developed for the Treatment of Liver Disease," J. Med. Chem. 48:6779-6782, (2005). Emricasan, its derivatives or related compounds may be provided as a salt or in solution.
[0046] The term "trans-ISRIB," which may be used interchangeably with the term "ISRIB" or "ISRIB (trans isomer)," refers to N,N'-((1r,4r)-cyclohexane-1,4-diyl)bis(2-(4-chlorophenoxy)acetamide), having the structure shown in Figure 1. As described in Sidrauski et al., "Pharmacological brake-release of mRNA translation enhances cognitive memory," eLIFE 2:e00498 (2013), cis-ISRIB (IC 50 = 600 nM) was 100 times more potent than trans-ISRIB (IC 50 = 5 nM), suggesting a stereospecific interaction with cellular targets. Trans-ISRIB can be supplied as a salt or in solution.
[0047] The term "polyamine," as used herein, refers to one or more of the polycations putrescine, spermidine, and spermine, which are polycations having the structures shown in FIG. 1, which are known to interact with negatively charged macromolecules such as DNA, RNA, and proteins.
[0048] When used in this document to describe various embodiments of the present invention, the term "comprising" and related terms (such as "comprise", "comprises") are open-ended and mean that they do not exclude additional elements and are synonymous with the terms "including", "containing" or "having". When an embodiment of the present invention is described using the term "comprising", it is intended to include embodiments in which the term "comprising" is replaced with the term "consisting of" or "consisting essentially of". In other words, a description of an embodiment of the present invention described in this document using the term "comprising" and related terms also provides a description of the related embodiment using "consisting of" or "consisting essentially of" instead of "comprising". The term "consisting of" excludes any element (step, ingredient, etc.) not specified in the description. The term "consisting essentially of" is intended to exclude only elements not specified herein that do not materially affect the basic and novel characteristics of the present invention.
[0049] composition In some embodiments, the present invention provides compositions that can be used in the culture of various types of mammalian cells. The compositions can include a ROCK inhibitor (a compound that inhibits the activity of Rho kinase (ROCK)). For example, a composition according to an embodiment of the present invention can include chroman 1 or a related molecule as described in the "Small Molecules" section of this document. In another example, a composition according to an embodiment of the present invention can include chroman 1. The composition can further include a caspase inhibitor (a compound that inhibits the activity of one or more cytoplasmic aspartic acid-specific cysteine proteases involved in the initiation and execution of apoptosis). The caspase inhibitor can be emricasan or a related molecule, or any caspase inhibitor, as described in the "Small Molecules" section of this document. An example of an embodiment of a composition includes a ROCK inhibitor and a caspase inhibitor. Some other examples are a composition including chroman 1 or a related molecule and emricasan, a composition including chroman 1 and emricasan or a related molecule, a composition including chroman 1 and emricasan, a composition including a ROCK inhibitor and emricasan or a related molecule, or a composition including a ROCK inhibitor and emricasan. In addition to a ROCK inhibitor (such as chroman 1 or a related molecule), or in addition to a ROCK inhibitor and a caspase inhibitor (such as emricasan or a related molecule), the compositions according to embodiments of the invention may further include one or both of trans-ISRIB and a polyamine. In the context of embodiments of the invention, as noted above, each of these components separately or the combination of components may be referred to as an "active agent" or "active agents."
[0050] Various formulations of the composition according to the embodiment of the present invention are envisioned. For example, some embodiments of the composition according to the embodiment of the present invention may be formulated as a medium, additive, such as, for example, culture medium, and contain one or more active agents in an amount sufficient to provide an effective concentration or amount of each active agent when added to culture medium. In the context of the embodiment of the present invention, an effective concentration or amount is the concentration or amount of one or more active agents that elicits a desired effect on the cells to which the composition is exposed, such as, for example, but not limited to, improved survival (viability), cell stabilization, improved proliferation, reduced cell death, reduced senescence, improved proliferation, improved differentiation, etc.
[0051] For example, a composition according to one or more embodiments of the present invention, when incorporated into a medium, such as a culture medium, may have a potent agonist activity of about 4 nM to about 80 μM, about 10 nM to about 20 μM, about 20 nM to about 10 μM, or about 30 nM to about 500 nM, such as about 4 nM, 5 nM, 30 nM, 55 nM, 80 nM, 105 nM, 130 nM, 155 nM, 180 nM, 205 nM, 230 nM, 240 nM, 250 nM, 260 nM, 270 nM, 280 nM, 290 nM, 300 nM, 310 nM, 320 nM, 330 nM, 340 nM, 350 nM, 36 M, 255nM, 280nM, 305nM, 330nM, 355nM, 380nM, 405nM, 430nM, 455nM, 480nM, 500nM, 525nM, 550 nM, 575nM, 600nM, 625nM, 650nM, 675nM, 700nM, 725nM, 750nM, 775nM, 800nM, 825nM, 850nM, 875 nM, 900nM, 925nM, 950nM, 975nM, 1μM, 2μM, 3μM, 4μM, 5μM, 6μM, 7μM, 8μM, 9μM, 10μM, 11μM, 12μM , 13μM, 14μM, 15μM, 16μM, 17μM, 18μM, 19μM, 20μM, 21μM, 22μM, 23μM, 24μM, 25μM, 26μM, 27μM, 28 The compound may be formulated to provide a concentration of chroman 1 (or an active derivative or related compound thereof), such as 29 μM, 30 μM, 31 μM, 32 μM, 33 μM, 34 μM, 35 μM, 36 μM, 37 μM, 38 μM, 39 μM, 40 μM, 45 μM, 45 μM, 50 μM, 55 μM, 60 μM, 65 μM, 70 μM, 75 μM or 80 μM.In another example, the compositions according to embodiments of the present invention, when incorporated into a medium such as a culture medium, have a concentration of about 5 nM to about 100 μM, about 5 nM to about 80 μM, about 200 nM to about 30 μM, about 300 nM to about 20 μM, for example, about 100 nM, 150 nM, 200 nM, 250 nM, 300 nM, 350 nM, 400 nM, 450 nM, 500 nM, 550 nM, M, 600nM, 650nM, 700nM, 750nM, 800nM, 850nM, 1μM, 1.5μM, 2μM, 2.5μM, 3μM, 3.5μM, 4μM, 4.5μM, 5μM, 5.5μM, 6μM, 6.5μM, 7μM, 7.5μM, 8μM, 8.5μM, 9μM, 9.5μM, 10μM, 10.5μM, 11μM, 11.5μM, 12μM , 12.5μM, 13μM, 13.5μM, 14μM, 14.5μM, 15μM, 15.5μM, 16μM, 16.5μM, 17μM, 17.5μM, 18μM, 18.5 μM, 19 μM, 19.5 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 The compound may be formulated to provide a concentration of emricasan (or an active derivative or related compound thereof), such as 100 μM, 33 μM, 34 μM, 35 μM, 36 μM, 37 μM, 38 μM, 39 μM, 40 μM, 45 μM, 45 μM, 50 μM, 55 μM, 60 μM, 65 μM, 70 μM, 75 μM, 80 μM, 85 μM, 90 μM, 95 μM or 100 μM.In another example, the compositions according to embodiments of the present invention, when incorporated into a medium, such as a culture medium, have a concentration of about 5 nM to about 80 μM, about 5 nM to about 50 μM, about 100 nM to about 6.25 μM, or about 200 nM to about 6.25 μM, for example, about 50 nM, 100 nM, 150 nM, 200 nM, 250 nM, 300 nM, 350 nM, 400 nM, 450 nM, 500 nM, 550 nM, 600 nM, 700 nM, 800 nM, 900 nM, 100 nM, 110 nM, 120 nM, 130 nM, 140 nM, 150 nM, 160 nM, 170 nM, 180 nM, 190 nM, 200 nM, 250 nM, 20 ...250 nM, 300 nM, 350 nM, 400 nM, 450 nM, 500 nM, 550 nM, 500 nM, 550 nM, 600nM, 650nM, 700nM, 750nM, 800nM, 850nM, 1μM, 1.25μM, 1.5μM, 1.75μM, 2μM, 2.25μM, 2.5μM, 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, 6.25 μM , 6.5μM, 7μM, 7.5μM, 8μM, 8.5μM, 9μM, 9.5μM, 10μM, 10.5μM, 11μM, 11.5μM, 12μM, 12.5μM, 13μM, 13.5μM , 14μM, 14.5μM, 15μM, 15.5μM, 16μM, 16.5μM, 17μM, 17.5μM, 18μM, 18.5μM, 19μM, 19.5μM, 20μM, 21μM, 2 It can be formulated to provide a concentration of trans-ISRIB of 2 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, 40 μM, 45 μM, 45 μM, 50 μM, 55 μM, 60 μM, 65 μM, 70 μM, 75 μM or 80 μM.In yet another example, compositions according to embodiments of the invention, when incorporated into a medium, such as a culture medium, have a concentration of from about 0.5 nM to 1 mM, for example, about 0.5 nM, 20.5 nM, 40.5 nM, 60.5 nM, 80.5 nM, 100.5 nM, 120.5 nM, 140.5 nM, 160.5 nM, 180.5 nM, 200.5 nM, 220.5 nM, 240.5 nM, 260.5 nM, 280.5 nM, 290.5 nM, 300.5 nM, 310.5 nM, 320.5 nM, 330.5 nM, 340.5 nM, 350.5 nM, 360.5 nM, 370.5 nM, 380.5 nM, 390.5 nM, 400.5 nM, 410.5 nM, 420.5 nM, 430.5 nM, 440.5 nM, 450.5 nM, 460.5 nM, 470.5 nM, 480.5 nM, 490.5 nM, 500.5 nM, 510.5 nM, 520.5 nM, 530.5 nM, 540.5 nM, 550.5 nM, 560.5 nM, 570.5 nM, 580.5 nM, 590.5 nM, 600.5 nM, 610.5 nM, 620.5 nM, 630.5 nM, 640.5 nM, 650.5 nM, 66 0.5nM, 300.5nM, 320.5nM, 340.5nM, 360.5nM, 380.5nM, 400.5nM, 420.5nM, 440.5nM, 460.5nM, 480.5nM, 0.5μM, 20.5μM, 40.5μM, 60.5μM, 80.5μM, 100.5μM, 120.5μM, 140.5μM, 160.5μM, 180.5μM, 200.5μM, 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 .5μM, 460.5μM, 480.5μM, 500.5μM, 520.5μM, 540.5μM, 560.5μM, 580.5μM, 600.5μM, 620.5μM, 640.5μM, 66 It may be formulated to include polyamines to provide a concentration of spermine of 0.5 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.In yet another example, compositions according to embodiments of the invention, when incorporated into a medium, such as a culture medium, have a concentration of from about 0.5 μM to 1 mM, for example, approximately 0.5 nM, 20.5 nM, 40.5 nM, 60.5 nM, 80.5 nM, 100.5 nM, 120.5 nM, 140.5 nM, 160.5 nM, 180.5 nM, 200.5 nM, 220.5 nM, 240.5 nM, 260.5 nM, 280.5nM, 300.5nM, 320.5nM, 340.5nM, 360.5nM, 380.5nM, 400.5nM, 420.5nM, 440.5nM, 460.5nM, 480.5nM , 0.5μM, 20.5μM, 40.5μM, 60.5μM, 80.5μM, 100.5μM, 120.5μM, 140.5μM, 160.5μM, 180.5μM, 200.5μM, 220. 5μM, 240.5μM, 260.5μM, 280.5μM, 300.5μM, 320.5μM, 340.5μM, 360.5μM, 380.5μM, 400.5μM, 420.5μM, 440 .5μM, 460.5μM, 480.5μM, 500.5μM, 520.5μM, 540.5μM, 560.5μM, 580.5μM, 600.5μM, 620.5μM, 640.5μM, 66 It may be formulated with polyamines to provide spermidine at concentrations of 0.5 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.In yet another example, compositions according to embodiments of the invention, when incorporated into a medium, such as a culture medium, have a concentration of from about 0.5 μM to 1 mM, for example, approximately 0.5 nM, 20.5 nM, 40.5 nM, 60.5 nM, 80.5 nM, 100.5 nM, 120.5 nM, 140.5 nM, 160.5 nM, 180.5 nM, 200.5 nM, 220.5 nM, 240.5 nM, 260.5 nM, 280.5nM, 300.5nM, 320.5nM, 340.5nM, 360.5nM, 380.5nM, 400.5nM, 420.5nM, 440.5nM, 460.5nM, 480.5nM , 0.5μM, 20.5μM, 40.5μM, 60.5μM, 80.5μM, 100.5μM, 120.5μM, 140.5μM, 160.5μM, 180.5μM, 200.5μM, 220. 5μM, 240.5μM, 260.5μM, 280.5μM, 300.5μM, 320.5μM, 340.5μM, 360.5μM, 380.5μM, 400.5μM, 420.5μM, 440 .5μM, 460.5μM, 480.5μM, 500.5μM, 520.5μM, 540.5μM, 560.5μM, 580.5μM, 600.5μM, 620.5μM, 640.5μM, 66 It may be formulated to include a polyamine to provide a putrescine concentration of 0.5 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.
[0052] In addition to one or more active agents, media additives, such as culture media additives according to embodiments of the present invention, may include other components, such as, but not limited to, DMEM / F12, ascorbic acid, insulin, selenium, transferrin, NaHCO3, fibroblast growth factor 2 (FGF-2), transforming growth factor beta (TGF-β), etc. Media additives according to embodiments of the present invention are formulated so that they can be easily incorporated into a medium, such as a culture medium. For example, media additives according to embodiments of the present invention may be provided in a powder form that is easily dissolved in an aqueous culture medium, as a tablet, or as a capsule. In another example, media additives according to embodiments of the present invention may be provided as a concentrated solution or as a suspension that is added to a medium, such as a culture medium.
[0053] Some other embodiments of the composition according to the present invention may be formulated as a medium, such as a medium that includes the above-mentioned active agent and additionally components configured to support at least one mammalian cell in vitro or ex vivo. Several embodiments of the medium, such as a culture medium, may include a ROCK inhibitor (a compound that inhibits the activity of Rho kinase (ROCK)). For example, a medium, such as a culture medium according to the present invention may include chroman 1 or a related molecule as described in the "Small Molecules" section of this document. In another example, a medium, such as a culture medium according to the present invention may include chroman 1. A medium, such as a culture medium, may further include a caspase inhibitor. The caspase inhibitor may be emricasan or a related molecule or any other caspase inhibitor as described in the "Small Molecules" section of this document. One example of an embodiment of a medium includes a ROCK inhibitor and a caspase inhibitor. Some other examples are medium comprising chroman 1 or a related molecule and emricasan, medium comprising chroman 1 and emricasan or a related molecule, medium comprising chroman 1 and emricasan, medium comprising a ROCK inhibitor and emricasan or a related molecule, or medium comprising a ROCK inhibitor and emricasan. In addition to a ROCK inhibitor (such as chroman 1 or a related molecule), or in addition to a ROCK inhibitor and a caspase inhibitor (such as emricasan or a related molecule), media according to embodiments of the invention may further comprise one or both of trans-ISRIB and a polyamine.
[0054] In a prepared form, a medium, such as a culture medium according to an embodiment of the invention, comprises an effective concentration or amount of one or more active ingredients. For example, a medium according to one or more embodiments of the invention may comprise an effective concentration or amount of one or more active ingredients, such as about 4 nM to about 80 μM, about 10 nM to about 20 μM, about 20 nM to about 10 μM, or about 30 nM to about 500 nM, such as about 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, 30 nM, 35 nM, 36 nM, 37 nM, 38 nM, 39 nM, 40 nM, 41 nM, 42 nM, 43 nM, 44 nM, 45 nM, 46 nM, 47 nM, 48 nM, 49 nM, 50 nM, 51 nM, 52 nM, 53 nM, 54 nM, 55 nM, 56 nM, 57 nM, 58 nM, 59 nM, 60 nM, 61 nM, 62 nM, 63 nM, 64 nM, 65 nM, 66 nM, 67 nM, 68 nM, 69 nM, 70 nM, 71 nM, 72 nM, 73 nM, 74 nM, 75 nM, 76 nM, 77 nM, 78 nM, 79 nM, 80 nM, 80 nM, 81 nM, 82 nM, 83 M, 305nM, 330nM, 355nM, 380nM, 405nM, 430nM, 455nM, 480nM, 500nM, 525nM, 550nM, 575nM, 600nM, 625nM, 650nM, 675nM, 700nM, 725nM, 750nM, 775nM, 800nM, 825nM, 850nM, 875nM, 90 0nM, 925nM, 950nM, 975nM, 1μM, 2μM, 3μM, 4μM, 5μM, 6μM, 7μM, 8μM, 9μM, 10μM, 11μM, 12μM, 1 3μM, 14μM, 15μM, 16μM, 17μM, 18μM, 19μM, 20μM, 21μM, 22μM, 23μM, 24μM, 25μM, 26μM, 27μM, Chroman 1 (or an active derivative or related compound thereof) may be included at a concentration such as 28 μM, 29 μM, 30 μM, 31 μM, 32 μM, 33 μM, 34 μM, 35 μM, 36 μM, 37 μM, 38 μM, 39 μM, 40 μM, 45 μM, 45 μM, 50 μM, 55 μM, 60 μM, 65 μM, 70 μM, 75 μM or 80 μM. In another example, the medium according to one or more embodiments of the present invention may have a concentration of about 5 nM to about 100 μM, about 5 nM to about 80 μM, about 200 nM to about 30 μM, about 300 nM to about 20 μM, for example, about 100 nM, 150 nM, 200 nM, 250 nM, 300 nM, 350 nM, 400 nM, 450 nM, 500 nM, 550 nM, 600 nM, 6 50nM, 700nM, 750nM, 800nM, 850nM, 1μM, 1.5μM, 2μM, 2.5μM, 3μM, 3.5μM, 4μM, 4.5μM, 5μM, 5. 5μM, 6μM, 6.5μM, 7μM, 7.5μM, 8μM, 8.5μM, 9μM, 9.5μM, 10μM, 10.5μM, 11μM, 11.5μM, 12μM, 12 .5μM, 13μM, 13.5μM, 14μM, 14.5μM, 15μM, 15.5μM, 16μM, 16.5μM, 17μM, 17.5μM, 18μM, 18.5 μM, 19 μM, 19.5 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, Emricasan (or an active derivative or related compound thereof) may be included at a concentration such as 32 μM, 33 μM, 34 μM, 35 μM, 36 μM, 37 μM, 38 μM, 39 μM, 40 μM, 45 μM, 45 μM, 50 μM, 55 μM, 60 μM, 65 μM, 70 μM, 75 μM, 80 μM, 85 μM, 90 μM, 95 μM or 100 μM. In another example, the medium according to one or more embodiments of the present invention may contain a concentration of about 5 nM to about 80 μM, about 5 nM to about 50 μM, about 100 nM to about 6.25 μM, or about 200 nM to about 6.25 μM, for example, about 50 nM, 100 nM, 150 nM, 200 nM, 250 nM, 300 nM, 350 nM, 400 nM, 450 nM, 500 nM, 550 nM, 600 nM, 650nM, 700nM, 750nM, 800nM, 850nM, 1μM, 1.25μM, 1.5μM, 1.75μM, 2μM, 2.25μM, 2.5μM, 2.75μM, 3μM , 3.25μM, 3.5μM, 3.75μM, 4μM, 4.25μM, 4.5μM, 4.75μM, 5μM, 5.25μM, 5.5μM, 5.75μM, 6μM, 6.25μM, 6. 5μM, 7μM, 7.5μM, 8μM, 8.5μM, 9μM, 9.5μM, 10μM, 10.5μM, 11μM, 11.5μM, 12μM, 12.5μM, 13μM, 13.5μM , 14μM, 14.5μM, 15μM, 15.5μM, 16μM, 16.5μM, 17μM, 17.5μM, 18μM, 18.5μM, 19μM, 19.5μM, 20μM, 21μM The antibody may contain trans-ISRIB at a concentration of 30 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, 40 μM, 45 μM, 45 μM, 50 μM, 55 μM, 60 μM, 65 μM, 70 μM, 75 μM or 80 μM. In yet another example, the medium according to one or more embodiments of the present invention may contain a concentration of from about 0.5 nM to 1 mM, e.g., about 0.5 nM, 20.5 nM, 40.5 nM, 60.5 nM, 80.5 nM, 100.5 nM, 120.5 nM, 140.5 nM, 160.5 nM, 180.5 nM, 200.5 nM, 220.5 nM, 240.5 nM, 260.5 nM, 280.5 nM, 300. 5nM, 320.5nM, 340.5nM, 360.5nM, 380.5nM, 400.5nM, 420.5nM, 440.5nM, 460.5nM, 480.5nM, 0.5μM, 20 .5μM, 40.5μM, 60.5μM, 80.5μM, 100.5μM, 120.5μM, 140.5μM, 160.5μM, 180.5μM, 200.5μM, 220.5μM, 240 .5μM, 260.5μM, 280.5μM, 300.5μM, 320.5μM, 340.5μM, 360.5μM, 380.5μM, 400.5μM, 420.5μM, 440.5μM , 460.5μM, 480.5μM, 500.5μM, 520.5μM, 540.5μM, 560.5μM, 580.5μM, 600.5μM, 620.5μM, 640.5μM, 660 Polyamines may be included to result in a concentration of spermine in the medium of 0.5 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. In yet another example, the medium according to one or more embodiments of the present invention may comprise a concentration of about 0.5 nM to 1 mM, such as approximately 0.5 nM, 20.5 nM, 40.5 nM, 60.5 nM, 80.5 nM, 100.5 nM, 120.5 nM, 140.5 nM, 160.5 nM, 180.5 nM, 200.5 nM, 220.5 nM, 240.5 nM, 260.5 nM, 280.5 nM, 300.5 nM, 320.5 nM, 340.5 nM, 360.5 nM, 380.5 nM, 390.5 nM, 400.5 nM, 410.5 nM, 420.5 nM, 430.5 nM, 440.5 nM, 450.5 nM, 460.5 nM, 470.5 nM, 480.5 nM, 490.5 nM, 500.5 nM, 510.5 nM, 520.5 nM, 530.5 nM, 540.5 nM, 550.5 nM, 560.5 nM, 570.5 nM, 580.5 nM, 590.5 nM, 600.5 nM, 610.5 nM, 620.5 nM, 630.5 nM, 640.5 nM, 650.5 nM, 660.5 nM, 670.5 nM, 680.5 nM, 690.5 nM, 700.5 nM, 710.5 nM, 72 0.5nM, 320.5nM, 340.5nM, 360.5nM, 380.5nM, 400.5nM, 420.5nM, 440.5nM, 460.5nM, 480.5nM, 0.5μM, 20.5μM, 40.5μM, 60.5μM, 80.5μM, 100.5μM, 120.5μM, 140.5μM, 160.5μM, 180.5μM, 200.5μM, 220.5μM, 2 40.5μM, 260.5μM, 280.5μM, 300.5μM, 320.5μM, 340.5μM, 360.5μM, 380.5μM, 400.5μM, 420.5μM, 440.5 μM, 460.5 μM, 480.5 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, 66 Polyamines may be included to result in a spermidine concentration in the medium of 0.5 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 M or 1 mM. In yet another example, the medium according to one or more embodiments of the present invention may comprise a concentration of about 0.5 nM to 1 mM, such as approximately 0.5 nM, 20.5 nM, 40.5 nM, 60.5 nM, 80.5 nM, 100.5 nM, 120.5 nM, 140.5 nM, 160.5 nM, 180.5 nM, 200.5 nM, 220.5 nM, 240.5 nM, 260.5 nM, 280.5 nM, 300.5 nM, 320.5 nM, 340.5 nM, 360.5 nM, 380.5 nM, 390.5 nM, 400.5 nM, 410.5 nM, 420.5 nM, 430.5 nM, 440.5 nM, 450.5 nM, 460.5 nM, 470.5 nM, 480.5 nM, 490.5 nM, 500.5 nM, 510.5 nM, 520.5 nM, 530.5 nM, 540.5 nM, 550.5 nM, 560.5 nM, 570.5 nM, 580.5 nM, 590.5 nM, 600.5 nM, 610.5 nM, 620.5 nM, 630.5 nM, 640.5 nM, 650.5 nM, 660.5 nM, 670.5 nM, 680.5 nM, 690.5 nM, 700.5 nM, 710.5 nM, 72 0.5nM, 320.5nM, 340.5nM, 360.5nM, 380.5nM, 400.5nM, 420.5nM, 440.5nM, 460.5nM, 480.5nM, 0.5μM, 20.5μM, 40.5μM, 60.5μM, 80.5μM, 100.5μM, 120.5μM, 140.5μM, 160.5μM, 180.5μM, 200.5μM, 220.5μM, 2 40.5μM, 260.5μM, 280.5μM, 300.5μM, 320.5μM, 340.5μM, 360.5μM, 380.5μM, 400.5μM, 420.5μM, 440.5 μM, 460.5 μM, 480.5 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, 66 Polyamines may be included to result in a putrescine concentration in the medium of 0.5 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.
[0055] It should be understood that media according to embodiments of the invention may be provided in a powder form that is prepared before use, in a concentrated form that is diluted before use, or in a form that is used without further dilution. The above effective amounts refer to its prepared "working" form that can be used without dilution. For example, media according to embodiments of the invention may be a sterile liquid provided as a "working liquid" that is used without dilution, in which case the media contains an effective amount of one or more active agents as described above. In another non-limiting example, the media may be a gel that contains an effective amount of one or more active agents. Media according to embodiments of the invention may be a liquid (including true solutions, suspensions and emulsions), a semi-solid or a solid such as a gel. When media according to embodiments of the invention are provided in a form that requires further preparation, such as a powder or concentrate, the one or more active agents are included in an amount or concentration intended to provide a suitable effective amount after the media is prepared. For example, a 2x concentrated media may contain twice the effective amount of one or more active agents intended to be included in the final "working" form of the media.
[0056] In addition to the effective amount of one or more active agents described above, the medium according to the embodiment of the present invention includes components configured to support at least one mammalian cell in vitro or ex vivo.Variations of the medium are contemplated that can support various types of mammalian cells, such as embryonic cells, non-embryonic stem cells, pluripotent stem cells, induced pluripotent stem cells, multipotent stem cells, adult stem cells, progenitor cells, differentiated cells, isolated primary cells, secondary cells, immortalized cells, cell line cells, germ cells, somatic cells, modified cells, etc. Variations of the medium are contemplated that can support single cells, multiple cells, cell cultures, cell aggregates, tissue cultures, tissues, organs, blastoderm, embryoid bodies, or embryos, including human embryos and non-human embryos.
[0057] A medium, such as a culture medium according to an embodiment of the present invention, comprises one or more suitable nutrient sources for the growth and / or maintenance of mammalian cells and maintains a suitable pH and osmolality. A medium may comprise natural, artificial and / or synthetic components. Examples of natural components are biological fluids (such as plasma, serum, lymph or amniotic fluid), tissue extracts (such as extracts of liver, spleen, tumor, white blood cells, bone marrow or animal embryos). Examples of culture media comprising artificial components ("artificial media") are MEM and DMEM. An artificial culture medium may be a serum-containing culture medium, a serum-free culture medium (which may contain defined amounts of purified growth factors, lipoproteins and other components provided by serum), a chemically defined medium or a protein-free culture medium. A medium, such as a culture medium, may comprise one or more buffers, one or more inorganic salts, essential amino acids, one or more carbohydrates such as glucose, fatty acids, lipids, vitamins, trace elements. An example of a buffer is a culture medium that is used to store the culture medium's CO3 in a gaseous form. 2- / HCO3 -The so-called natural buffer systems balance the content of phosphate buffers. Another example is a chemical buffer system, such as those using 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid (HEPES), a zwitterionic buffer. The medium may contain a pH indicator, such as phenol red, which allows for pH monitoring during cell growth. Inorganic salts or salts in the medium provide sodium, potassium, calcium ions, provide osmotic balance, and aid in the control of cell membrane potential. Essential amino acids that cells cannot synthesize are included in the medium, but non-essential amino acids may also be included to improve cell growth and viability. Carbohydrates, such as glucose, galactose, maltose, or fructose, are included as energy sources. Proteins and peptides, such as albumin, transferrin, or fibronectin, as well as fatty acids and lipids, may also be included, particularly in serum-free media. Vitamins, such as B vitamins, essential for cell growth and proliferation, may also be included. Examples of trace elements added to media, particularly serum-free media, are copper, zinc, and selenium. Some example medium embodiments are based on commercially available media containing an effective amount of one or more active agents described herein, such as, but 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, mTeSR1, StemFit, Nutristem, Neurobasal or BrainPhys.
[0058] The composition according to the embodiment of the present invention includes an in vitro or ex vivo composition comprising a medium according to an embodiment of the present invention and at least one mammalian cell. The at least one mammalian cell of such an embodiment can be one mammalian cell or multiple mammalian cells of the same or different types. For example, the mammalian cell can be an embryonic cell, a non-embryonic stem cell, a pluripotent stem cell, an induced pluripotent stem cell, a multipotent stem cell, an adult stem cell, a progenitor cell, a differentiated cell, an isolated primary cell, a secondary cell, an immortalized cell, a cell line cell, a germ cell, a somatic cell, or a modified cell. The multiple mammalian cells can be multi-cells, cell cultures, cell aggregates, tissue cultures, tissues, organs, blastoderm, embryoid bodies, or embryos, including human embryos and non-human embryos. The at least one mammalian cell can be thawed. It is understood that some of the embodiments of the present invention comprising a medium and at least one mammalian cell can further comprise a container comprising the medium, such as a bag, a flask such as a culture flask, a dish such as a culture dish, a tube, or a reactor. It is understood that some of the embodiments of the present invention comprising a culture medium and at least one mammalian cell may further comprise a support or scaffold for the cells. Some non-limiting examples of the embodiments of the present invention comprising a culture medium and at least one mammalian cell are E8 Essential medium and at least one pluripotent stem cell, mTeSR medium and at least one pluripotent stem cell, StemPro and at least one pluripotent stem cell, E6 Essential medium and at least one embryoid body, Neurobasal and at least one neuron, BrainPhys and at least one neuron.
[0059] kit A kit for culturing, maintaining and / or preserving cells, tissues or organs is included in the embodiments of the present invention. A kit is a set of components that includes at least some components for culturing, maintaining or preserving cells (including single cells and cell groups), tissues or organs. Such a kit includes one or more active agents described in the "small molecules" section of this document. The kit may further include one or more of the following: a medium configured to support at least one mammalian cell in vitro or ex vivo, one or more culture medium components; a container for holding the medium; a culture vessel such as a flask, dish, plate (including a multi-well plate) or a reactor; a support or scaffold for cell, tissue or organ culture. The kit may include one or more mammalian cells. The mammalian cell or cells included in the kit may be one or more of embryonic cells, non-embryonic stem cells, pluripotent stem cells, induced pluripotent stem cells, multipotent stem cells, adult stem cells, progenitor cells, differentiated cells, isolated primary cells, secondary cells, immortalized cells, cell line cells, germ cells, somatic cells or modified cells. The one or more mammalian cells may be provided in frozen or non-frozen form. Examples of other components that may be included in the kits may include modulators of biological signaling pathways, including small molecules (e.g., CHIR99021 for WNT pathway activation) or recombinant proteins (e.g., WNT3A, sonic hedgehog, bone morphogenetic protein, or activin A). Some kits may include one or more of the compositions described in the "Compositions" section of this document.
[0060] For example, the kit may include a medium as described in the "Compositions" section of this document, a container for cell culture, and optionally one or more mammalian cells suitable for culture in the medium included in the kit. The kit may include a culture medium as described in the "Compositions" section of this document, a container for cell culture, at least one scaffold support, and optionally one or more animal cells suitable for culture in the culture medium included in the kit. One example is a kit including Essential 8 Medium, one or more active agents according to embodiments of the present invention (which may be included in the culture medium or may be provided as separate kit components that are added to the culture medium before use), and cell culture plates or flasks of various sizes coated with vitronectin, laminin 521, or Matrigel. In another example, the kit may include a medium as described in the "Compositions" section of this document, and a container for maintaining or storing cells, cell groups, tissues, embryos, organs, or organ parts in the medium.
[0061] Uses and Methods Various uses and methods (processes) of the compositions and kits described throughout this document are contemplated and included in the embodiments of the present invention. For example, the compounds described in the "small molecules" section of this document, also referred to as "active agents", and various combinations thereof, can be advantageously used in methods of culturing, maintaining, or storing animal cells, including, but not limited to, stem cells (e.g., embryonic stem cells, non-embryonic stem cells, pluripotent stem cells, induced pluripotent stem cells, multipotent stem cells, and adult stem cells), progenitor cells, differentiated cells, isolated primary cells, secondary cells, immortalized cells, cell line cells, germ cells, cells, and various types of modified cells (including iPSCs and genetically modified or engineered cells). Methods of culturing, maintaining, or storing mammalian cells according to embodiments of the present invention include, but are not limited to, methods of one or more of cell growth, cell proliferation, cell differentiation, cell dedifferentiation, induction of differentiation potential (including pluripotency) in cells, single cell cloning (culturing), cryopreservation, and maintenance of cells in culture. Ex vivo preservation of cells, cell groups, tissues, organ parts, organs or embryos is included in the method according to the embodiment of the present invention. The mammalian cell culture method according to the embodiment of the present invention may use a single cell or a plurality of cells as one or more of starting material, process intermediates or end products. The plurality of mammalian cells may be a plurality of cells (e.g., suspension of dissociated cells or suspension cell culture), cell culture (such as adherent or non-adherent cell culture), aggregated cells, tissue culture, tissue (including artificially engineered cultured tissue), organ, blastoderm, embryoid body, or embryo, including human embryo and non-human embryo. The above-listed categories of cells and a plurality of cells may overlap. The embodiments of the method of the present invention may lead to improved results as measured by appropriate endpoints (e.g., cell survival, cell differentiation or dedifferentiation, cell proliferation, etc.) of culture of both non-stem cells and stem cells (such as ESC, iPSC, neural stem cells, hematopoietic stem cells, adult stem cells including mesenchymal stem cells and stem cells derived from other organs, or artificially modified stem cells).
[0062] Various uses and applications of the method according to the embodiment of the present invention are envisioned. In one example, the method according to the embodiment of the present invention can be incorporated into the process of cell reprogramming, including the process for making iPSCs and establishing iPSC clones. In another example, the method according to the embodiment of the present invention can be incorporated into the process of establishing new cell lines, including cell lines derived from primary cells, including cancer cells and non-cancer cells, and hybridoma cell lines. The mammalian cells cultured according to the method of the present invention can be thawed before culturing or frozen during culturing. Thus, some embodiments of the method of the present invention can include a thawing step, a freezing step, or both. Thus, some embodiments of the method of the present invention can be incorporated into the process of cell cryopreservation and / or thawing. In another example, the method of the present invention can be incorporated into the process of cell growth, proliferation and / or differentiation in two-dimensional and three-dimensional culture in vitro and ex vivo, including the process used for culturing, growing and / or manipulating tissues, organoids and organs. In yet another example, the method embodiment of the present invention can be incorporated into in vitro and / or ex vivo processes, i.e., cell or cell group preservation and / or maintenance, including processes used for in vitro and / or ex vivo cell, tissue, organoid, embryo, organ part or organoid maintenance and preservation. In some examples, in vitro and / or ex vivo preservation or preservation methods are used before transplantation of cells, tissue, organoid, embryo, organ part or organoid into a host. In another example, the method embodiment of the present invention can be incorporated into the process of genetic modification, such as genome editing of mammalian cells. In another example, the method embodiment of the present invention can be incorporated into the process for clonal selection of mammalian cells, including the process and procedure called single cell cloning. The method according to the embodiment of the present invention can be advantageously used to improve the results of single cell cloning in various processes, such as genome editing of iPSC for preclinical research and clinical application.Some examples of such applications are correcting genetic defects by personalized cell therapy, introducing genetic mutations for disease modeling, or introducing transgenes to create reporter cell lines for drug discovery. In another example, embodiments of the method of the present invention can be integrated into the process of generating embryoid bodies from mammalian cells.
[0063] Methods according to embodiments of the invention can be used, inter alia, to efficiently generate new iPSC lines from somatic cells (such as skin fibroblasts or blood cells), to grow, expand and / or differentiate iPSCs or embryonic stem cells, to efficiently utilize different cell types differentiated from iPSCs and / or embryonic stem cells (such as neurons, astrocytes, oligodendrocytes, retinal pigment epithelium, hepatocytes, cardiomyocytes or pancreatic beta cells capable of producing insulin), and / or to establish new tumor cell lines from patient samples. Methods according to embodiments of the invention can use a wide range of media commonly used for mammalian cell culture.
[0064] Also included in the embodiments of the present invention are methods of making, obtaining, or preparing culture media containing various combinations of compounds described in the "Small Molecules" section of this document, which may be referred to as "active agents." Such methods may include one or more steps of combining one or more active agents according to embodiments of the present invention with one or more components of the culture media.
[0065] system Systems for carrying out the methods of the present invention are included in the embodiments of the present invention. These systems include various stations and / or components. As used herein, the term "station" is broadly defined to include any suitable device or assembly, collection or assemblage of devices or components suitable for carrying out the methods according to the embodiments of the present invention. The stations need not be integrally connected or arranged with each other in any particular way. The systems according to the embodiments of the present invention may include stations in any suitable arrangement with respect to each other. For example, the stations need not even be in the same room. However, in some embodiments, the stations are integral units connected with each other.
[0066] For example, an embodiment of the system may include a station for robotic or automated cell culture, such as CompacT SelecT™ (Sartorius, Wilmington, DE), capable of growing, expanding, and differentiating iPSCs or embryonic stem cells or cancer cell lines. An embodiment of the system may include a station for generating reports. An embodiment of the system may include a station or components for data analysis. An embodiment of the system may include a computer, a processor, electronic memory, software instructions, etc. An embodiment of the system, or portions of an embodiment of the system, may be controlled by a computer.
[0067] Computer-Based Calculations and Tools The methods described herein may include computer-based calculations and tools. The tools may advantageously be provided in the form of computer programs executable by a general-purpose computer system of conventional design (which may be referred to as a "host computer"). The host computer may be configured with many different hardware components and may be made in many sizes and styles (e.g., desktop PC, laptop, tablet PC, handheld computer, server, workstation, mainframe). Standard components such as a monitor, keyboard, disk drive, CD drive and / or DVD drive may be included. If the host computer is connected to a network, the connection may be provided via any suitable transport medium (e.g., wired, optical and / or wireless media) 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 implement any of a variety of operating systems, including UNIX, Linux, Microsoft Windows, MacOS, or any other operating system.
[0068] Computer code for implementing aspects of the invention can be written in a variety of languages, including PERL, C, C++, Java, JavaScript, VBScript, AWK, or any other scripting or programming language that is executable on a host computer or that can be compiled to run on a host computer. The code may also be written or distributed in a lower level language, such as assembly language or machine language.
[0069] The host computer system advantageously provides an interface through which the user controls the operation of the tool. In the examples described herein, the software tool is implemented as a script (e.g., using PERL), the execution of which can be initiated by the user from a standard command line interface of an operating system such as Linux or UNIX. The commands can be adapted to the operating system as required. In other embodiments, a graphical user interface may be provided, and the user can control the operation using a pointing device. The invention is therefore not limited to any particular user interface.
[0070] Scripts or programs incorporating various features of the present invention may be encoded on a variety of computer-readable media for storage and / or transmission. Examples of suitable media include magnetic disks or tapes, optical recording media such as compact disks (CDs) or digital versatile disks (DVDs), flash memory, and carrier signals adapted for transmission over wired, optical, and / or wireless networks conforming to various protocols, including the Internet.
[0071] advantage The compositions, kits and methods described herein provide several significant improvements over previously known compositions, kits and methods. One of the advantages is the unexpected differentiation potential and specificity of chroman 1 when used as a ROCK kinase inhibitor. Another advantage is the unexpected synergistic effect of chroman 1 and the caspase inhibitor emricasan or its derivative Q-VD-OPh on cell culture outcomes including cell survival during routine cell culture, cell expansion culture with normal karyotype maintenance, culture of thawed cryopreserved cells, and cell differentiation of monolayer culture, embryoid body, neurosphere or organoid. Another advantage is the unexpected superior effect of the combination of chroman 1, emricasan, trans-ISRIB and polyamines on cell culture outcomes, especially during cell sorting, single cell cloning, cell reprogramming, cryopreservation and cell thawing. The above unexpected advantages of the active agents according to the embodiments of the present invention allow them to be beneficially used in various processes and methods used in cell, tissue and organ culture. For example, dosing of cultures can be performed at low concentrations of one or more active agents, thus leading to, among other things, significant economic savings. In another example, the compositions, methods and kits described herein achieve significantly improved results of long-term cell line expansion in culture, minimizing off-target effects of cell culture additives on the cellular machinery of cultured cells. Profiling of the inhibitory activity of chroman 1 against a set of human protein kinases demonstrated the superior properties of the compound as a culture medium additive compared to currently used additives such as Y-27632, thiazovivin, pyrintegrain and Revitacell® (Thermo Fisher Scientific, Frederick, MD) and CloneR® (StemCell Technologies, Vancouver, Canada). The compositions, kits and methods described herein also achieve greatly improved results of single cell cloning.
[0072] The following examples serve to further explain the present invention, but at the same time do not constitute the limitation of the present invention.On the contrary, it should be clearly understood that the means may be various embodiments, modifications and equivalents that may suggest themselves to a person skilled in the art after reading the description herein, without departing from the scope of the present invention.
[0073] Example 1 Quantitative high-throughput screening of compounds that promote survival of human pluripotent stem cells after single-cell dissociation A quantitative high-throughput screen (qHTS) was performed to identify compounds that promote embryonic stem cell survival after single-cell dissociation. A schematic of the qHTS procedure is shown in Figure 2. H9 cells (official name WA09, WiCell, Wisconsin) were enzymatically dissociated with Accutase (Thermo Fisher Scientific) and distributed into 1536-well plates coated with recombinant vitronectin and containing 15,333 small molecule compounds at various concentrations. Small molecule compounds were sourced from small molecule libraries including the NCATS Pharmacologically Active Chemical Toolbox (NPACT), NCATS Pharmaceutical Collection (NPC), Mechanism Interrogation PlatE (MIPE), and commercial libraries Tocriscreen®Plus from Tocris (Minneapolis, MN) and LOPAC1280® from Sigma-Aldrich (St. Louis, MI). Dimethyl sulfoxide (DMSO; final concentration 0.4%) and 10 μM Y-27632 were used in the screen as negative and positive controls, respectively. Twenty-four hours after seeding, cell viability was assessed with the CellTiter-Glo® Luminescent Cell Viability Assay (Promega Corporation, Madison, WI), which measures intracellular adenosine triphosphate (ATP) levels as a surrogate for viable cells. The qHTS procedure was adapted from Inglese et al. (2006) "Quantitative high-throughput screening: A titration-based approach that "Efficiently identifies biological activities in large chemical libraries," Proc. Natl. Acad. Sci. USA 103(31):11473-11478 (2006).
[0074] Figure 3 is a scatter plot of the maximum viability achieved by the screened compounds (plotted on the X-axis). All compounds screened were pre-plated at the given concentrations. To generate the scatter plot in Figure 3, the survival values were normalized based on the survival rate obtained with 10 μM Y-27632 (as 100%) and plotted on the Y-axis. The different types of dots in the scatter plot represent compounds in dose curve classes 1.1, 1.2, 2.1, and 2.2, as indicated. The dots labeled ">20%" represent compounds that led to a maximum survival rate greater than the 20% cutoff, but were not classified in curve classes 1.1, 1.2, 2.1, or 2.2. The threshold set at 20% survival identified 128 active compounds, listed in Table 1. The classification of curves is explained in Huang et al., "Chemical genomics profiling of environmental chemical modulation of human nuclear receptors," Environ. Health. Perspect. 119(8):1142-1148 (2011), particularly in the "qHTS Data Analysis" section and Table 3 in "Supplementary Materials."
[0075] FIG. 4 shows line graphs of dose-response curves of selected active compounds known to inhibit ROCK, such as Chroman 1, Fasudil HCL, Thiazovivin and Y-27632. The direct comparison shown in FIG. 4 shows the superiority of Chroman 1 compared to three other ROCK inhibitors previously used in the stem cell field. The molar concentrations of the selected ROCK inhibitors are plotted on the X-axis (logarithmic scale). Each concentration was tested in quadruplicate experiments, and the data was normalized with respect to the average CellTiterGlo™ (CTG) reading obtained from 10 μM Y-27632. The normalized data is thus plotted on the Y-axis. The dose-response experiments clearly demonstrated that Chroman 1 is more potent than Y-27632, Thiazovivin or Fasudil.
[0076] Figure 5 shows a direct comparison of the effect of 10 μM Y-27632 and 50 nM Chroman 1 on cell survival (higher number of propidium iodide positive dead cells). H9 cells were dissociated with 0.5 mM ethylenediaminetetraacetic acid (EDTA) or Accutase (enzymatic dissociation) according to standard procedures and plated on vitronectin-coated 6-well plates. Digital phase contrast and fluorescence microscopy images were taken 12 hours after plating the cells (data not shown). To generate the fluorescence microscopy images, live cells were stained with Calcein (0.5 μg / mL; Thermo Fisher Scientific, Cat. No.: C34852) and dead cells were stained with propidium iodide (PI; 500 nM; Thermo Fisher Scientific, Cat. No.: P3566). For quantitative analysis, cells were counted on an automated cell counter (Cellometer The cells were counted using an Auto2000 (Nexcelom). The results of PI staining are shown in the bar graph shown in the right panel of Figure 5. The above experiments demonstrated that Y-27632 treatment led to a greater number of dead cells than Chroman 1 treatment.
[0077] Example 2 Chroman 1 is a more potent and specific ROCK inhibitor than Y-27632 Experimental studies have been conducted to demonstrate that Chroman 1 is a more potent and specific ROCK inhibitor than Y-27632. The median inhibitory concentrations (IC 50 ) was determined in kinase assays against the primary targets ROCK1 and ROCK2 using a HotSpot kinase assay performed by Reaction Biology Corporation (Malvern, PA). The results are illustrated by the line graphs shown in Figure 6 (Y-27632) and Figure 7 (Chroman 1). Chroman 1 was determined to be a more potent ROCK inhibitor than Y-27632.
[0078] The results of the kinase profiling experiments are shown in Figure 8. Y-27632 and Chroman 1 kinase profiling was performed by testing their inhibitory activity against human kinases using a HotSpot kinase assay provided by Reaction Biology Corporation. Y-27632 was tested at 10 μM and Chroman 1 was tested at 50 nM. The phylogenetic tree of human kinases was derived from protein sequence alignment of multiple human kinase domains (Manning et al., "The protein kinase complement of the human genome," Science 298:1912-1934 (2002)) and generated based on a neighbor-joining phylogenetic tree by ClustalW software. Kinase profiling revealed higher specificity of Chroman 1 based on less off-target inhibition in all human kinases tested. Values less than 10% of the original activity are considered to represent significant inhibitor activity (based on Anastassiadis et al. "Comprehensive assay of kinase catalytic activity reveals features of kinase inhibitor selectivity" Nat. Biotechnol. 29, 1039-1045 (2011)). ROCK1 and ROCK2 were identified as the primary targets of both Y-27632 and chroman-1. Y-27632 was shown to have several off-targets, including PKCeta (also known as PKCη or PRKCH), PKCepsilon (also known as PKCε or PRKCE), PKCdelta (also known as PKCδ or PRKCD), PKN1, PKN2 and PRKX.
[0079] Example 3 Combinatorial matrix screening and improved cell survival with Chroman-1 and Emricasan Combinatorial matrix screening was performed to identify compounds with synergistic effects on cell survival. Focusing on compounds with different mechanisms of action, 29 compounds were selected for combinatorial matrix screening, resulting in 812 sets of 10 × 10 checkerboard matrix experiments (data not shown), four of which are shown in Figure 9. Compound concentrations for combinatorial matrix screening were determined based on slope and potency (AC) values derived from single-agent qHTS dose-response curves. 50) to ensure that the matrix screen covered a wide range of biological effects in the cell viability assay. The cell viability achieved by 10 μM Y-27632 used alone was set as the reference for 100% cell viability and was used to normalize all cell viability values. The combinatorial matrix screen identified the caspase inhibitor emricasan and its derivative Q-VD-Oph as synergistic with chroman 1. Figure 9 shows the results of the combinatorial matrix screen of the combination of chroman 1 with the caspase inhibitor emricasan and the combination of chroman 1 with (-)-blebbistatin. Blebbistatin is an inhibitor of non-muscle myosin II ATPase and was included to demonstrate the difference between the synergistic compound pair (chroman 1 and emricasan) and the non-synergistic compound pair (chroman 1 and blebbistatin). The top two matrices in Figure 9 show actual cell viability data normalized to the viability achieved with 10 μM Y-27632 (considered as 100%). The numbers in the 10x10 matrices indicate the maximum viability achieved with the indicated combination or single agent. The maximum viability achieved with each pair of compounds is represented by the maximum number in each 10x10 matrix, an example of which is shown in Figure 9. The bottom two matrices show synergy matrices calculated using the highest-single agent (HSA) model. HAS synergy evaluates the survival-promoting effect of the combination of compounds compared to the single agents alone, which was calculated as the difference between the cell viability out of the combination and the viability from the best single agent at each concentration tested. Synergy is defined as the difference between the maximum response of the combination and the single agents (synergy = combination max(single agent A, single agent B)).
[0080] FIG. 10 shows improved cell viability when Chroman 1 and Emricasan are combined. The CellTiter-Glo® assay was used to quantitate viable H9 cells 24 hours after plating (100,000 cells / cm). 2). Figure 11 shows phase contrast microscopy images of a time-lapse experiment monitoring cell behavior for 24 hours (IncuCyte Zoom™ Live Cell Analysis, Sartorius, DE). To obtain the images, dissociated single-cell H9 cells were plated on vitronectin-coated plates in the presence of the indicated compounds (C+E represents a combination of 50 nM chroman 1 and 5 μM emricasan) and monitored over time. 20 minutes after plating in the presence of emricasan, cell stress was already evident, ultimately leading to dead cells at 24 hours. In contrast, chroman 1 (an inhibitor of cell contractility) showed cell adhesion already at 20 minutes after plating when used alone or in combination with emricasan. The above experiments demonstrated that the combination of chroman 1 and emricasan is essential for maximum efficiency of cell adhesion and survival. The experimental results shown in Figure 11 demonstrated that emricasan can inhibit the activation of caspase 3 but does not prevent cell shrinkage, ultimately leading to cell death. Thus, the presence of the caspase inhibitor emricasan alone was not sufficient to improve cell viability beyond 24 hours. In the absence of ROCK kinase inhibition using chroman 1, cells continued to shrink, did not adhere to the coated substrate, and ultimately underwent cell death.
[0081] Example 4 Improved cell viability following treatment with a combination of Chroman-1 and Emricasan after routine passaging and thawing of cryopreserved cells The experimental studies described below demonstrated improved cell viability for cells treated with a combination of Chroman 1 and Emricasan. In one set of experiments, H9 cells were dissociated into single cells and cultured at 100,000 cells / cm. 2Cells were seeded on vitronectin-coated plates at 100°C for 24 h. Caspase 3 / 7 green detection reagent was used to continuously monitor caspase activation and apoptosis over time by microscopic imaging (IncuCyte Zoom®, data not shown). The majority of cells underwent apoptosis in the presence of 0.0001% v / v DMSO. Although the addition of 10 μM Y-27632 was effective, the use of 50 nM chroman 1 further improved cell viability. The combined use of 50 nM chroman 1 and 5 μM emricasan maximized the effect on cell viability. Viable cells were counted 24 h after seeding using the CellTiter-Glo® assay (CTG) (data not shown). Experimental studies with dissociated H9 cells as described above showed that the combination of chroman 1 and emricasan led to superior cell viability compared to the positive control Y-27362 or chroman 1 used alone.
[0082] In another set of experiments, frozen H9 cells were thawed and cultured at 100,000 cells / cm. 2 Cells were seeded onto vitronectin-coated plates at 100°C for 1 h. As in the above study of dissociated cells, caspase activation and apoptosis were monitored over time using Caspase 3 / 7 green detection reagent (data not shown). Viable cells were counted 24 h after seeding using a CTG assay. Studies of thawed cells showed that the combination of 50 nM chroman 1 and 5 M emricasan led to superior cell viability compared to the positive control 10 μM Y-27362 or chroman 1 used alone.
[0083] To demonstrate that chroman 1 alone or in combination with emricasan can be safely used for long-term cell culture, long-term passaging (40 passages) of H9 cells was performed. At each passage, cells were treated with 50 nM chroman 1, or a combination of 50 nM chroman 1 and 5 μM emricasan for 24 h. Pluripotent cells maintained normal karyotype. Immunocytochemical analysis using specific antibodies demonstrated that long-term expanded cultured H9 cells expressed typical pluripotency-related genes (OCT4, NANOG) and were capable of differentiation into different lineages. To detect lineage markers, immunocytochemistry was performed using cell type-specific markers and images were generated using a fluorescent microscope (data not shown). The lineage markers used were PAX6 for ectoderm, Brachyury for mesoderm and SOX17 for endoderm.
[0084] Example 5 Improved cell differentiation in the presence of Chroman-1 and Emricasan Embryoid body formation assays demonstrated improved cell differentiation in the presence of Chroman 1 and Emricasan. In one set of experiments, H9 cells were dissociated with Accutase. After counting the cells to ensure equal numbers of cells were used for the different conditions tested, the cells were plated in ultra-low attachment 6-well plates in the presence of 0.0001% v / v DMSO (negative control), 10 μM Y-27632 (positive control), 50 nM Chroman 1, 5 μM Emricasan, or a combination of 50 nM Chroman 1 and 5 μM Emricasan. Embryoid body (EB) formation was examined 24 hours after cell seeding. Microscopic examination of the plates showed that the combination of Chroman 1 and Emricasan dramatically improved EB formation and reduced the number of dead cells and debris compared to DMSO, Y-27632, and Chroman 1 (data not shown).
[0085] In a different experimental approach (data not shown), a defined number of H9 cells were plated in AggreWell™ plates (StemCell Technologies, Vancouver, Canada) to generate a single EB per well. Embryoid body (EB) formation was examined 24 hours after cell seeding. Dead cells surrounded EBs treated with 10 μM Y-27632, whereas the amount of dead cells was significantly less after 50 nM chroman 1 treatment. Exposure to 5 μM emricasan alone did not lead to proper cell aggregation and EB formation. Importantly, the combination of 50 nM chroman 1 and 5 μM emricasan generated high-quality EBs with barely detectable dead cells.
[0086] Accutase-dissociated pluripotent stem cells (WA09, also called H9 cells, obtained from WiCell, Madison, WI) were seeded onto AggreWell™ plates (StemCell Technologies, Vancouver, Canada) and allowed to generate EBs. Brightfield images were taken 24 hours after seeding. Comparison of EB diameters under different treatment conditions (data not shown) demonstrated that the use of 50 nM chroman 1 and 5 μM emricasan consistently generated larger EBs compared to either 50 nM chroman 1 alone or 10 μM Y-27632.
[0087] Accutase-dissociated H9 cells were seeded in 96-well plates (ultra-low attachment) to generate EBs. After 24 hours, calcein (green stain, live cells) and PI (red stain, dead cells) were added to the cell culture medium to visualize live and dead cells in the wells. Quantification of live cells by CTG measurement confirmed that the combination of 50 nM chroman-1 and 5 μM emricasan resulted in the highest cell viability in all tested conditions. CTG measurement (ATP levels) (data not shown).
[0088] Example 6 Improved multi-lineage differentiation of pluripotent cells Improved multi-lineage differentiation of pluripotent cells in the presence of 50 nM Chroman1 and 5 μM Emricasan was experimentally demonstrated (data not shown). Accutase-dissociated pluripotent stem cells (H9 from WiCell) were seeded into 96-well ultra-low attachment plates, EBs were generated, and cultured in Essential 6 Medium (Thermo-Fisher Scientific, Frederick, MD) to induce spontaneous differentiation. For individually grown EBs 7 days after seeding, mRNA expression of ectodermal marker PAX6, mesodermal marker Brachyury, and endodermal marker Sox17 was quantified using qPCR. Actin mRNA expression was used to normalize for variations in cell number between EBs. All lineage-specific markers were expressed at higher levels when a combination of 50 nM Chroman1 and 5 μM Emricasan (Chroman1+Emri) was used.
[0089] The EB formation assay is a widely used approach aimed at measuring pluripotency by demonstrating differentiation into ectoderm, mesoderm and endoderm. Analysis and quantification of individually grown EBs showed that the combined use of chroman 1 and emricasan substantially increased the percentage of EBs expressing all three markers of multi-lineage differentiation (PAX6, Brachyury, SOX17) (data not shown). This finding indicates that the use of chroman 1 and emricasan increased the robustness of the EB formation assay and reduced the inherent systematic error due to cell death. Thus, the combined use of chroman 1 and emricasan improves the EB formation assay and helps standardize the analysis of the true differentiation potential of pluripotent cell lines.
[0090] Example 7 Identification of trans-ISRIB and polyamines as additional cell survival promoting factors To extend and maximize the use of chroman 1 and emricasan for low cell seeding density conditions and single cell cloning, the inventors developed another combinatorial screening strategy. Experimental studies were conducted to identify trans-ISRIB and polyamines as additional cell survival promoters. An assay was developed to screen for compounds that can overcome the cell stress associated with low cell seeding density. This experiment aimed to define the detection limit and signal strength of the CTG assay to detect a single cell per well. H9 cells (obtained from WiCell) were used. The results of the experiment showed that the cell stress associated with low seeding density was evident when less than 50 cells were seeded in each well of a 1536-well plate (data shown here).
[0091] A seeding density of 10 cells per well was used to screen for additional compounds with potential synergy with Chroman 1 and Emricasan. Table 2 shows the compounds tested and their concentrations. Compounds were all tested in the presence of 50 nM Chroman 1 and 5 μM Emricasan. Figure 12 shows the evaluation of compounds initially identified by qHTS in a 6-well format, demonstrating the cell survival-promoting effect of trans-ISRIB in combination with 50 nM Chroman 1 and 5 μM Emricasan. Dissociated stem cells were plated in vitronectin-coated 1536-well plates at the density per well shown on the X-axis. All plates were prepared in duplicate. One set of plates was read with CTG immediately after dispensing (r1) and the other set was read 24 hours later (r2). CTG fold change, plotted on the Y-axis, was calculated as the ratio of r2 to r1 (r2 / r1) to reflect cell survival and proliferation within 24 hours. The Y-axis shows the ratio of improved cell viability as measured by cell confluency compared to Chroman 1 and Emricasan used as baseline. The X-axis shows the compounds in combination with Chroman 1 and Emricasan. The middle line within the box is the median cell proliferation. The upper and lower hinges of the box represent the 75% and 25% points, while the upper and lower whiskers extend from the box hinge to a maximum or minimum value not exceeding 1.5 times the distance between the 25% and 75% points.
[0092] Experiments were performed evaluating the "hits" obtained from the primary screen. Pluripotent stem cells (H9 cells obtained from WiCell) were dissociated using TrypLE (Thermo-Fisher) and cultured at 25 cells / cm. 2 The combination of 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 (this combination is referred to by the abbreviation "CEPT") produced the highest number of colonies when compared to other conditions tested in these experiments (data shown here).
[0093] FIG. 13 shows different small molecules and combinations of small molecules shown as follows: (CEPT-50 nM chroman 1, 5 μM emricasan, polyamines (40 ng / mL putrescine, 4.5 ng / mL spermidine, 8 ng / mL spermine), 0.7 μM trans-ISRIB, C+E-50 nM chroman 1, 5 μM emricasan); CET-50 nM Figure 14 shows the plating efficiency and colony size of H9 cells treated with Chroman 1, 5 μM Emricasan, 0.7 μM trans-ISRIB; CEP-50 nM Chroman 1, 5 μM Emricasan, polyamines (40 ng / mL putrescine, 4.5 ng / mL spermidine, 8 ng / mL spermine, Y-27632-10 μM). Figure 14 shows representative microscopic images of colonies obtained with Y-27632 and CEPT. Such microscopic images were quantitatively analyzed to generate data plotted in a bar graph as shown in Figure 13. Images of whole wells (6-well plates) were taken with calcein green (0.5 μg / mL; Thermo Fisher Scientific, Cat. No.: C34852).
[0094] 25 cells / cm in StemFlex medium 2 A systematic comparison of small molecule combinations and their effects on colony number and colony size of hESCs plated on vitronectin at 10 μM was performed. Quantification of plating efficiency and median colony size was performed 6 days after plating. The combination of CET, CEP, and CEPT was shown to have superior effects on both plating efficiency and median colony size when compared to Y-27632 and C+E. Figure 15 shows the results of a true single-cell cloning experiment performed using H9 cells plated as 1 cell / well condition (96-well plate). Treatment with CEPT generated significantly more clones than treatment with Y-27632 at 10 μM.
[0095] The above experiments demonstrated that trans-ISRIB and polyamines, when added to the combination of chroman 1 and emricasan, had reproducible effects and further improved cell viability.
[0096] Example 8 Beneficial effects of CEPT Various experiments have been performed that demonstrate the beneficial effects of CEPT on the survival of hPSCs in culture and during various associated processes such as embryoid body and organoid formation, tissue differentiation, etc. Representative experiments are described below and the results are shown in Figures 16-28.
[0097] Figure 16 shows the superiority of CEPT on the results of embryoid body formation from H9 cells. Figure 16 shows representative phase contrast microscopy images of embryoid bodies formed from H9 cells grown in media containing different supplements as follows: CEPT-50 nM chroman 1, 5 μM emricasan, polyamines (40 ng / mL putrescine, 4.5 ng / mL spermidine, 8 ng / mL spermine), 0.7 μM trans-ISRIB, C+E-50 nM chroman 1, 5 μM emricasan; chroman 1-50 nM chroman 1, emricasan-5 μM emricasan, trans-IIRIB-0.7 μM trans-ISRIB; polyamines-40 ng / mL putrescine, 4.5 ng / mL spermidine and 8 ng / mL spermine, Y-27632-10 μM. The above notations and concentrations are also used in all experiments described below. The image shows the results after cell plating (20,000 cells / cm 2 ) at 24 hours. Figure 17 shows a scatter plot showing quantification of the diameter of single embryoid bodies formed from cells treated with either Y-27632 or CEPT. To generate single embryoid bodies, H9 cells were dissociated with Accutase and plated at 5,000 cells / well in AggreWell™ plates (StemCell Technologies, Cat. No.: 34825). Images were taken 24 hours after plating.
[0098] Figure 18 shows representative images showing that CEPT improves cerebral organoid formation compared to Y-27632. Cerebral organoids were generated by using a kit obtained from StemCell Technologies (Vancouver, Canada) and iPSCs (LiPSC GR1.1) treated with Y-27632 or CEPT for only the first 24 hours. At day 30, organoids were fixed, sectioned, and processed for histology and hematoxylin and eosin staining. The results of histological staining are shown in the upper panel. The dark areas in cerebral organoids indicate nervous system tissue. The organoid size depends on the treatment with Y-27632 or CEPT, which is evident at day 60. The lower panel shows the organoid measurement at day 60.
[0099] FIG. 19 is a bar graph showing improved thawing of cryopreserved pluripotent stem cells (H9). Cells were thawed and plated in E8 medium in the presence of 0.0001% v / v DMSO, Y-27632 or CEPT. Viable cells were quantified using the CellTiter Glo® assay 24 hours after thawing. FIG. 20 is a bar graph showing CEPT-improved thawing of various iPSC-derived differentiated cells (all commercially available from Fujifilm Cellular Dynamics International, Madison, Wisconsin). Fujifilm Cellular Frozen vials of iPSC-derived human cardiomyocytes obtained from Cellular Dynamics International, hepatocytes obtained from Fujifilm Cellular Dynamics, in-house differentiated astrocytes, and motor neurons obtained from Fujifilm Cellular Dynamics International were thawed and treated with 0.0001% v / v DMSO, Y-27632, and CEPT for 24 hours. Cell survival was quantified using the CellTiter Glo assay. Data plotted are mean ± sd (n = 3 wells per group), *P < 0.05, **P < 0.005, ***P < 0.001, one-way ANOVA.
[0100] Figure 21 shows the results of electrophysiological characterization of iPSC-derived cardiomyocytes 5 days after thawing using a multi-electrode array (Axion Biosystems, Atlanta, GA). 24 h of CEPT treatment was sufficient for recovery from thawing and improvement of functional activity of cardiomyocytes. Data in the middle panel of Figure 21 represent the mean ± sd (n = 6 wells in each group), **P = 0.0029, ***P = 0.0001, one-way ANOVA. Data in the right panel of Figure 21 represent the mean ± sd (n = 6 wells in each group), *P = 0.0165, ***P = 0.0005, one-way ANOVA.
[0101] FIG. 22 shows representative microscopy images showing CEPT protection of dissociated cells from multiple stress mechanisms. Scale bar shown is 10 μM. The upper panel shows confocal microscopy analysis of a Lamin B1-GFP iPSC reporter line (Allen Institute for Cell Science, Seattle, WA) showing dramatic morphological differences in nuclear shape during cell passaging (30 min after plating). The middle panel shows that cells expressing OCT4 are immunoreactive for γH2AX when exposed to 0.0001% v / v DMSO and Y-27632 (arrowheads), but not when treated with CEPT (3 hr after plating). The lower panel shows dramatic cytoskeletal differences during cell passaging (3 hr after plating) as measured by immunocytochemistry for actin and myosin. Stressed cells showed prominent formation of actin stress fibers at the colony edges when blebbed in the presence of 0.0001% v / v DMSO (white arrowheads) or exposed to Y-27632 (white arrowheads).
[0102] Figure 23 shows representative Western blot images characterizing hESCs (H9) treated with Y-27632 or CEPT. Several membrane-associated proteins (TJP1, CDH1, ANXA1, PXN) were expressed at high levels after CEPT treatment (24 hours after plating). GAPDH was used as a loading control and housekeeping protein control.
[0103] Figure 24 shows representative Western blot images characterizing hESCs (H9) treated with Y-27632 or CEPT. A strong stress response was observed in cells treated with 0.0001% v / v DMSO or Y-27632 (3 hours after passage). Similar to the control group (no passage), the absence of γH2AX (a marker of DNA damage) and ATF4 (a master regulator of the cellular stress response) was observed in CEPT-treated cells. High levels of phosphorylated CHK2 at threonine 68 were observed, indicating cell cycle arrest. CEPT treatment showed significantly less phosphorylated eIF2A at serine 51, while the total expression level of eIF2A remained unaffected. High levels of p-eIF2A (S51) occurring in the presence of 0.0001% v / v DMSO or Y-27632 indicated cellular stress and arrest of protein synthesis.
[0104] Figure 25 shows representative images showing the results of a puromycin pulse-chase experiment of hESC(H9), demonstrating that protein synthesis, which is strongly impaired during cell passaging, is rescued by CEPT (3 h after passaging). GAPDH was used as a loading control and housekeeping protein control. To monitor protein synthesis, cells were allowed to adhere for 2 h and then pulsed with 1 μM puromycin for 1 h. Cells were harvested and processed for Western blotting using an antibody against puromycin (1:50; Sigma-Aldrich, MABE343).
[0105] Figure 26 shows a bar graph demonstrating that glutathione levels are significantly higher in hESCs (H9) passaged in CEPT compared to 0.0001% v / v DMSO and Y-27632 (3 hours after plating). Glutathione is an important intracellular antioxidant, and low levels of glutathione indicate oxidative stress.
[0106] FIG. 27 shows that CEPT improved genome editing efficiency. Reporter iPSC lines were generated by CRISPR / Cas9 knock-in according to the method described in Schwinn et al., "CRISPR-mediated tagging of endogenous proteins with a luminescent peptide," ACS Chemical Biology 13:467-474 (2018). A luminescent peptide was introduced into the OCT4 gene of iPSC lines, and the signal was detected using the Nano-Glo® HiBiT detection system (Promega, Madison, Wisconsin). CEPT treatment during gene editing led to increased gene editing efficiency compared to Y-27632 treatment. The images in the upper panel show the luminescence intensity measured 24 hours after transfection of iPSCs with Cas9 and guide RNA. The scatter plot in the lower panel shows the quantification of the luminescence signal. Controls included "non-edited iPSCs" and "reagent only."
[0107] Figure 28 shows a bar graph comparing human pluripotent stem cell survival in the presence of various reagents and CEPT. Human embryonic stem cell lines (WA01, WA09, HUES53) and iPSCs (LiPSC-GR1.1) were dissociated with Accutase (Thermo Fisher Scientific) and equal numbers of cells were plated in vitronectin-coated 384-well plates in E8 medium. Cell viability was quantified 24 hours after plating using the CellTiter Glo® assay. Despite well-known cell line-to-cell line variability, in all cases CEPT was shown to be superior to Y-27632 and the commercial reagents CloneR™ (StemCell Technologies), RevitaCell™ (Thermo Fisher Scientific) and StemBoost™ Reprogramming Cocktail SMC4 (BioVision).
[0108] All patents, patent applications, publications, and abstracts cited above are incorporated herein by reference in their entirety. Various embodiments of the present invention have been described to achieve various objects of the present invention. It should be recognized that these embodiments are merely illustrative of the principles of the present invention. Many modifications and adaptations will be readily apparent to those skilled in the art without departing from the spirit and scope of the present invention, as defined in the following claims. [Appendix 1] A composition comprising Chroman 1 and / or its derivatives and Emricasan and / or its derivatives. [Appendix 2] The composition described in Appendix 1, further comprising one or both of trans-ISRIB and a polyamine. [Appendix 3] The composition described in Appendix 1 or 2, wherein the composition is formulated to provide a concentration of chroman 1 and / or its derivative of about 4 nM to about 80 μM, 4 nM to about 40 μM, about 10 nM to about 20 μM, about 20 nM to about 10 μM, or about 30 nM to about 500 nM when incorporated into a culture medium. [Appendix 4] The composition according to any one of Appendices 1 to 3, which is formulated so as to provide emricasan and / or its derivatives at a concentration of about 100 nM to about 80 μM, about 100 nM to about 40 μM, about 200 nM to about 30 μM, or about 300 nM to about 20 μM when incorporated into a culture medium. [Appendix 5] The composition according to any one of Appendices 2 to 4, wherein the composition is formulated so as to provide a trans-ISRIB concentration of about 50 nM to about 80 μM, about 50 nM to about 40 μM, about 50 nM to about 20 μM, about 50 nM to about 10 μM, about 50 nM to about 6.25 μM, about 100 nM to about 6.25 μM, or about 200 nM to about 6.25 μM when incorporated into a culture medium. [Appendix 6] The composition according to any one of Appendices 2 to 4, wherein the composition comprises a polyamine including spermine and spermidine, and the composition is formulated to provide a spermine concentration of about 0.5 nM to 1 mM and / or a spermidine concentration of about 0.5 nM to 1 mM when incorporated into a culture medium. [Appendix 7] The composition of Appendices 6, wherein the polyamine further comprises putrescine, and the composition is formulated to provide a putrescine concentration of about 0.5 nM to 1 mM when incorporated into the medium. [Appendix 8] A medium composition comprising components configured to support at least one mammalian cell in vitro or ex vivo and chroman 1 and / or a derivative thereof. [Appendix 9] The medium composition described in Appendix 8, comprising chroman 1 and / or its derivatives at an effective concentration of about 4 nM to 80 μM, 4 nM to 40 μM, 10 nM to 20 μM, 20 nM to 10 μM or 30 nM to 500 nM, wherein the effective concentration of chroman 1 and / or its derivatives is the concentration of chroman 1 and / or its derivatives in the working medium used without further dilution. [Appendix 10] The medium composition according to Appendix 8 or 9, further comprising emricasan and / or a derivative thereof. [Appendix 11] The medium composition according to any one of Appendices 8 to 10, comprising emricasan at an effective concentration of about 100 nM to 80 μM, 100 nM to 40 μM, 200 nM to 300 μM, or 300 nM to 20 μM, wherein the effective concentration of emricasan and / or the derivatives thereof is the concentration of emricasan and / or the derivatives in the working medium used without further dilution. [Appendix 12] The medium composition according to any one of Appendices 8 to 11, further comprising trans-ISRIB. [Appendix 13] The medium composition according to any one of Appendices 8 to 12, comprising trans-ISRIB at an effective concentration of about 50 nM to about 80 μM, about 50 nM to about 40 μM, about 50 nM to about 20 μM, about 50 nM to about 10 μM, about 50 nM to 6.25 μM, 100 nM to 6.25 μM, or 200 nM to 6.25 μM, wherein the effective concentration of trans-ISRIB is the concentration of trans-ISRIB in the working medium used without further dilution. [Appendix 14] The medium composition according to any one of Appendices 8 to 13, further comprising a polyamine including spermine and spermidine. [Appendix 15] The medium composition according to any one of Appendices 8 to 14, wherein the medium composition comprises spermine at an effective concentration of about 0.5 nM to 1 mM, and / or spermidine at an effective concentration of about 0.5 nM to 1 mM, each of the effective concentrations of spermine and spermidine being concentrations in a working medium used without further dilution. [Appendix 16] The medium according to appendix 14 or 15, further comprising putrescine as a polyamine. [Appendix 17] The medium according to Appendix 16, wherein the medium composition comprises an effective concentration of putrescine of about 0.5 nM to 1 mM, the effective concentration of putrescine being the concentration in the working medium used without further dilution. [Appendix 18] The medium composition according to any one of Appendices 8 to 17, wherein the components configured to support the at least one mammalian cell in vitro or ex vivo include one or more buffers, inorganic salts, essential amino acids, carbohydrates, fatty acids, lipids, vitamins, and trace elements. [Appendix 19] The medium composition according to any one of Appendices 8 to 18, wherein the medium composition is a liquid or solid medium concentrate formulated to be dissolved prior to use. [Appendix 20] The medium composition according to any one of Appendices 8 to 18, wherein the medium composition is a medium formulated to be used without further dilution. [Appendix 21] The medium composition according to any one of Appendices 8 to 18, wherein the medium composition is liquid, semi-solid, or solid. [Appendix 22] The medium composition according to any one of Appendices 8 to 21, wherein the medium composition is a defined medium composition or a non-defined medium composition. [Appendix 23] The medium composition according to any one of Appendices 8 to 22, wherein the at least one mammalian cell is an embryonic stem cell, a non-embryonic stem cell, a pluripotent stem cell, an induced pluripotent stem cell, a multipotent stem cell, an adult stem cell, a progenitor cell, a differentiated cell, an isolated primary cell, a secondary cell, an immortalized cell, a cell line cell, a germ cell, a somatic cell, or a modified cell. [Appendix 24] The medium composition according to any one of Appendices 8 to 23, wherein the at least one mammalian cell is a plurality of cells, cell cultures, tissue cultures, tissues, organs, organ parts, blastoderm, embryoid bodies, or embryos. [Appendix 25] The medium composition according to any one of Appendices 8 to 24, wherein the at least one mammalian cell is a human cell or a cell of human origin. [Appendix 26] A kit comprising the composition of any one of appendices 1 to 7 and media components configured to support at least one mammalian cell in vitro or ex vivo. [Appendix 27] The kit of Appendices 26, further comprising at least one of a culture vessel, support or scaffold for the growth of at least one mammalian cell in vitro or ex vivo. [Appendix 28] A kit comprising the medium composition according to any one of appendices 8 to 25, at least one culture vessel, and a support or scaffold for the growth of said at least one mammalian cell in vitro or ex vivo. [Appendix 29] A composition comprising at least one mammalian cell and the medium according to any one of Appendices 8 to 25. [Appendix 30] The composition of Appendices 29, wherein the medium is liquid, semi-solid or solid. [Appendix 31] The composition according to Appendices 29 or 30, wherein the medium is a defined medium or a non-defined medium. [Appendix 32] The composition according to any one of Appendices 29 to 31, wherein the at least one mammalian cell is an embryonic stem cell, a non-embryonic stem cell, a pluripotent stem cell, an induced pluripotent stem cell, a multipotent stem cell, an adult stem cell, a progenitor cell, a differentiated cell, an isolated primary cell, a secondary cell, an immortalized cell, a cell line cell, a germ cell, a somatic cell, or a modified cell. [Appendix 33] The composition of any one of Appendices 29 to 32, wherein the at least one mammalian cell is a plurality of cells, cell cultures, tissue cultures, tissues, organs, organ parts, blastoderm, embryoid bodies or embryos. [Appendix 34] The composition according to any one of Appendices 29 to 33, wherein the at least one mammalian cell is a human cell or a cell of human origin. [Appendix 35] The composition according to any one of Appendices 29 to 34, further comprising a container containing the medium. [Appendix 36] The composition described in any one of Appendices 29 to 35, further comprising a solid support or scaffold for the at least one mammalian cell. [Appendix 37] The composition according to any one of Appendices 29 to 36, wherein the at least one mammalian cell is thawed. [Appendix 38] A method of preparing a medium comprising combining one or more components of the medium with the composition described in any one of Appendices 1 to 6. [Appendix 39] A method for culturing at least one mammalian cell, comprising incubating the at least one mammalian cell in vitro or ex vivo in the medium described in Appendices 20. [Appendix 40] The method of Appendices 39, wherein the incubating is carried out at least until a cell or tissue culture is established. [Appendix 41] A method for obtaining a clonal population of mammalian cells, comprising incubating dissociated mammalian cells in the medium described in Appendix 20 until colonies of cells are established from the dissociated mammalian cells. [Appendix 42] A method for obtaining embryoid bodies, comprising incubating one or more mammalian cells in the medium described in Appendix 20 until embryoid bodies are established. [Appendix 43] A method of growing at least a portion of an organ in vitro or ex vivo, comprising incubating one or more mammalian cells in the medium described in Appendices 20 until at least a portion of the organ is established. [Appendix 44] The method according to any one of Appendices 39 to 43, wherein the medium is liquid, semi-solid or solid. [Appendix 45] The method according to any one of Appendices 39 to 44, wherein the medium is a defined medium or a non-defined medium. [Appendix 46] The method according to any one of Appendices 39 to 45, wherein the at least one mammalian cell is an embryonic stem cell, a non-embryonic stem cell, a pluripotent stem cell, an induced pluripotent stem cell, a multipotent stem cell, an adult stem cell, a progenitor cell, a differentiated cell, an isolated primary cell, a secondary cell, an immortalized cell, a cell line cell, a germ cell, a somatic cell, or a modified cell. [Appendix 47] The method of any one of Appendices 39 to 45, wherein the at least one mammalian cell is a plurality of cells, cell cultures, tissue cultures, tissues, organs, organ parts, blastoderm, embryoid bodies or embryos. [Appendix 48] The method according to any one of Appendices 39 to 47, wherein the at least one mammalian cell is human or of human origin. [Appendix 49] The method according to any one of Appendices 39 to 48, wherein the at least one mammalian cell is thawed. [Appendix 50] The method according to any one of Appendices 39 to 49, wherein the incubating is carried out in a vessel containing the medium. [Appendix 51] The method of Appendices 49, wherein the container comprises a solid support and / or scaffold for the at least one mammalian cell. [Appendix 52] A method for maintaining or preserving at least one mammalian cell, comprising incubating at least one mammalian cell in vitro or ex vivo in the medium described in Appendices 20. [Appendix 53] The method of Appendices 52, wherein the at least one mammalian cell is an embryonic stem cell, a non-embryonic stem cell, a pluripotent stem cell, an induced pluripotent stem cell, a multipotent stem cell, an adult stem cell, a progenitor cell, a differentiated cell, an isolated primary cell, a secondary cell, an immortalized cell, a cell line cell, a germ cell, a somatic cell, a modified cell, a plurality of cells, a cell culture, a tissue culture, a tissue, an organ, an organ part, a blastoderm, an embryoid body, or an embryo. [Appendix 54] The method of Appendices 52 or 53, wherein the at least one mammalian cell is human or of human origin. [Appendix 55] The method according to any one of Appendices 52 to 54, wherein the at least one mammalian cell is thawed. [Appendix 56] The method according to any one of Appendices 52 to 54, wherein the at least one mammalian cell is frozen.
[0109]
Table 1-1
Table 1-2
Table 1-3
Table 1-4
Table 1-5
Table 1-6
Table 1-7
Table 1-8
Table 1-9
Table 1-10
Table 1-11
Table 1-12
Table 2-1
Table 2-2
Claims
1. Chroman 1 and A medium composition comprising either or both of Emricasan and Q-VD-OPh, a derivative of Emricasan.
2. 2. The medium composition of claim 1, further comprising one or both of trans-ISRIB and a polyamine.
3. 3. The medium composition of claim 2, wherein the medium composition is formulated to provide a concentration of trans-ISRIB of 50 nM to 80 μM when incorporated into the medium.
4. 3. The medium composition of claim 2, wherein the polyamines include spermine and spermidine, and the medium composition is formulated to provide a spermine concentration of 0.5 nM to 1 mM and / or a spermidine concentration of 0.5 nM to 1 mM when incorporated into the medium.
5. 5. The medium composition of claim 4, wherein the polyamine further comprises putrescine, and the medium composition is formulated to provide a concentration of 0.5 nM to 1 mM putrescine when incorporated into the medium.
6. The medium composition of any one of claims 1 to 5, wherein the medium composition is formulated to provide a concentration of chroman 1 of between 4 nM and 80 μM when incorporated into a medium.
7. The medium composition of any one of claims 1 to 6, wherein the medium composition is formulated to provide a concentration of emricasan and / or Q-VD-OPh of 100 nM to 80 μM when incorporated into a medium.
8. A media composition comprising components configured to support at least one mammalian cell in vitro or ex vivo, chroman 1, and one or both of emricasan and Q-VD-OPh, a derivative of emricasan.
9. The medium composition of claim 8, further comprising trans-ISRIB.
10. 10. The medium composition of claim 9, comprising trans-ISRIB at an effective concentration of 50 nM to 80 μM, said effective concentration of trans-ISRIB being the concentration of trans-ISRIB in the working medium used without further dilution.
11. The medium composition according to any one of claims 8 to 10, further comprising polyamines including spermine and spermidine.
12. 12. The medium composition of claim 11, wherein the medium composition comprises spermine at an effective concentration of 0.5 nM to 1 mM, and / or spermidine at an effective concentration of 0.5 nM to 1 mM, the effective concentrations of each of spermine and spermidine being concentrations in a working medium used without further dilution.
13. The medium composition according to claim 11 or 12, wherein the polyamine further comprises putrescine.
14. 14. The medium composition of claim 13, wherein said medium composition comprises an effective concentration of putrescine of 0.5 nM to 1 mM, said effective concentration of putrescine being the concentration in the working medium used without further dilution.
15. 15. The medium composition of any one of claims 8 to 14, comprising an effective concentration of chroman 1 of 4 nM to 80 μM, said effective concentration of chroman 1 being the concentration of chroman 1 in the working medium used without further dilution.
16. 16. The medium composition according to any one of claims 8 to 15, comprising emricasan and / or Q-VD-OPh at an effective concentration of 100 nM to 80 μM, said effective concentration of emricasan and / or Q-VD-OPh being the concentration of emricasan and / or Q-VD-OPh in the working medium used without further dilution.
17. 17. The medium composition of any one of claims 8 to 16, wherein the components configured to support the at least one mammalian cell in vitro or ex vivo comprise one or more of buffers, inorganic salts, essential amino acids, carbohydrates, fatty acids, lipids, vitamins, and trace elements.
18. A kit comprising the medium composition of any one of claims 1 to 7 and medium components configured to support at least one mammalian cell in vitro or ex vivo.
19. 20. The kit of claim 18, further comprising at least one of a culture vessel, support or scaffold for the growth of said at least one mammalian cell in vitro or ex vivo.
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