Stem cell-culturing method

Compounds with specific structural formulas stabilize embryonic stem cells by reducing their response to environmental changes and enhancing survival, addressing the challenges of cell death and suboptimal culture conditions in existing technologies.

JP2025186426APending Publication Date: 2025-12-23THE SCRIPPS RES INST
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Patent Information

Application Number
JP2025155869
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2008-12-03
Filing Date
2025-09-19
Publication Date
2025-12-23

AI Technical Summary

Technical Problem

Existing technologies have not effectively addressed the challenge of establishing chemically defined, feeder-free culture conditions for embryonic stem cells, resulting in suboptimal cell performance and extensive cell death during passaging, and the underlying molecular mechanisms for cell survival during trypsin-induced dissociation remain unclear.

Method used

The development of compounds with specific structural formulas, including substituted or unsubstituted cycloalkyl, heterocycloalkyl, aryl, or heteroaryl rings, which stabilize cells by reducing their response to environmental changes, such as dissociation or thawing, and enhance cell survival by maintaining E-cadherin stabilization and activating protein kinase C.

Benefits of technology

These compounds significantly enhance cell survival and stability, maintaining pluripotency and reducing cell death during environmental changes, thereby supporting robust cell culture conditions for embryonic stem cells.

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Abstract

To provide compounds that prevent differentiation of cells and promote cell survival, including but not limited to, when the cells are isolated or are otherwise outside their normal medium or tissue milieu, in relation to compounds for stabilizing cells and their method of use.SOLUTION: Two classes of small molecular compounds shown in the selected drawing, by somewhat different mechanisms, both are useful as prophylactic and therapeutic compounds for a number of different disease indications, including but not limited to, cancer, tissue damage, and stroke.SELECTED DRAWING: Figure 1A
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 61 / 200,808, filed December 3, 2008, which is incorporated herein in its entirety for all purposes. [Background technology]

[0002] Background of the Invention Embryonic stem cells (ESCs) are pluripotent cells with the capacity to self-renew indefinitely and differentiate into all cell types of the body (Thomson, JA et al., Science 282 (5391):1145-1147 (1998); Thomson, JA and Odorico, JS, Trends Biotechnol 18 (2):53-57 (2000)). This capability offers hope that ESCs may one day be used to replace lost and damaged cells and to provide therapeutic approaches beyond the reach of conventional drugs. However, to fully realize the clinical potential of hESCs, robust culture conditions that are chemically defined, feeder-free, and animal-derived product-free must be established. Although several chemically defined media have been reported (Yao, S. et al., Proc Natl Acad Sci USA 103 (18):6907-6912 (2006) (Non-Patent Document 3); Lu, J. et al., Proc Natl Acad Sci USA 103 (15):5688-5693 (2006) (Non-Patent Document 4); Ludwig, TE et al., Nat Biotechnol 24 (2):185-187 (2006) (Non-Patent Document 5)), most of them are still unsatisfactory because the performance of cells in these media is suboptimal. In particular, under these conditions, they cause extensive cell death when cells are passaged to single cells by trypsin.Numerous signaling pathways that mediate hESC self-renewal are known, including FGF, TGF-β, Wnt, and others (James, D. et al., Development 132 (6):1273-1282 (2005) (Non-Patent Document 6); Xu, RH et al., Nat Methods 2 (3):185-190 (2005) (Non-Patent Document 7); Beattie, GM et al., Stem Cells 23 (4):489-495 (2005) (Non-Patent Document 8); Greber B., Lehrach, H., and Adjaye, J., Stem Cells 25 (2):455-464 (2007) (Non-Patent Document 9); Sato, N. et al., Nat Med 10 (1):55-63 (2004) (Non-Patent Document 10)). However, none of them appear to play a role as survival factors in this process, and the molecular mechanism remains unclear. [Prior art documents] [Non-patent literature]

[0003] [Non-Patent Document 1] Thomson, JA et al., Science 282 (5391):1145-1147 (1998) [Non-patent document 2] Thomson, JA and Odorico, JS, Trends Biotechnol 18 (2):53-57 (2000) [Non-patent document 3] Yao, S. et al., Proc Natl Acad Sci USA 103 (18):6907-6912 (2006) [Non-patent document 4] Lu, J. et al., Proc Natl Acad Sci USA 103 (15): 5688-5693 (2006) [Non-patent document 5] Ludwig, TE et al., Nat Biotechnol 24 (2):185-187 (2006) [Non-patent document 6] James, D. et al., Development 132 (6):1273-1282 (2005) [Non-Patent Document 7] Xu, RH et al., Nat Methods 2 (3):185-190 (2005) [Non-patent document 8] Beattie, GM et al., Stem Cells 23 (4):489-495 (2005) [Non-Patent Document 9] Greber B., Lehrach, H., and Adjaye, J., Stem Cells 25 (2):455-464 (2007) [Non-Patent Document 10] Sato, N. et al., Nat Med 10 (1):55-63 (2004)( Summary of the Invention

[0004] Brief Summary of the Invention The present invention provides compounds having the formula: TIFF2025186426000002.tif32128 formula, Ring A is a substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; Ring B is a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl; L 1 -C(O)-NR 2 - or -C(O)-NR 2 - and; L 2 is a bond, substituted or unsubstituted alkylene, or substituted or unsubstituted heteroalkylene; and R 1and R 2 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

[0005] In some embodiments, ring A is substituted or unsubstituted aryl.

[0006] In some embodiments, ring A is substituted or unsubstituted phenyl.

[0007] In some embodiments, Ring B is a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl.

[0008] In some embodiments, ring B is a substituted or unsubstituted heteroaryl.

[0009] In some embodiments, Ring B is substituted or unsubstituted pyrazolyl, substituted or unsubstituted furanyl, substituted or unsubstituted imidazolyl, substituted or unsubstituted isoxazolyl, substituted or unsubstituted oxadiazolyl, substituted or unsubstituted oxazolyl, substituted or unsubstituted pyrrolyl, substituted or unsubstituted pyridyl, substituted or unsubstituted pyrimidyl, substituted or unsubstituted pyridazinyl, substituted or unsubstituted thiazolyl, substituted or unsubstituted triazolyl, substituted or unsubstituted thienyl, substituted or unsubstituted dihydrothieno-pyrazolyl, substituted or unsubstituted thianaphthe substituted or unsubstituted benzoyl, substituted or unsubstituted carbazolyl, substituted or unsubstituted benzothienyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted indolyl, substituted or unsubstituted quinolinyl, substituted or unsubstituted benzotriazolyl, substituted or unsubstituted benzothiazolyl, substituted or unsubstituted benzoxazolyl, substituted or unsubstituted benzimidazolyl, substituted or unsubstituted isoquinolinyl, substituted or unsubstituted isoindolyl, substituted or unsubstituted acridinyl, substituted or unsubstituted benzoisazolyl, or substituted or unsubstituted dimethylhydantoin.

[0010] In one embodiment, L 2 is a substituted or unsubstituted C1-C 10 It is alkyl.

[0011] In one embodiment, L 2 is unsubstituted C1-C 10 It is alkyl.

[0012] In one embodiment, L 2 is methylene.

[0013] In some embodiments, ring A is substituted or unsubstituted aryl; ring B is substituted or unsubstituted heteroaryl; and R 1 is hydrogen; and L 2 is unsubstituted C1-C 10 It is alkyl.

[0014] In some embodiments, R2 is hydrogen.

[0015] In some embodiments, R 1 is hydrogen or unsubstituted C1-C 10 It is alkyl.

[0016] In some embodiments, R 1 is hydrogen.

[0017] In some embodiments, the compound has the formula: TIFF2025186426000003.tif32135In the formula, y is an integer from 0 to 3; z is an integer from 0 to 5; and X is -N=, -CH=, or -CR=. 5 = R 3 , R 4 , and R 5 are independently CN, S(O)nR 6 , N.R. 7 R 8 , C(O)R 9 , N.R. 10 -C(O)R 11 , N.R. 12 -C(O)-OR 13 , -C(O)NR 14 R 15 , -NR 16 S(O)2R 17 , -OR 18 , -S(O)NR 19 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where n is an integer from 0 to 2, and where if z is greater than 1, then two R 3 The moieties may be joined together to form a substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; and R 6 , R 7 , R 8 , R 9 , R 10 , R11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , and R 19 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

[0018] In one embodiment, L 2 is a substituted or unsubstituted C1-C 10 It is alkyl.

[0019] In one embodiment, L 2 is unsubstituted C1-C 10 It is alkyl.

[0020] In one embodiment, L 2 is methylene.

[0021] In some embodiments, X is -N= or -CH=.

[0022] In some embodiments, z is 2 and two R 3 The moieties are linked together to form a substituted or unsubstituted heterocycloalkyl.

[0023] In some embodiments, z is 1.

[0024] In some embodiments, y is 0 or 1.

[0025] In some embodiments, R 3 HA-OR 18 and R 18 is hydrogen or unsubstituted C1-C 10 It is alkyl.

[0026] In one embodiment, L 2is methylene; X is -N= or -CH=; R 1 is hydrogen; and y and z are 0.

[0027] In some embodiments, the compound has the formula: TIFF2025186426000004.tif143128

[0028] The present invention also provides compounds having the formula: TIFF2025186426000005.tif30128 formula, Ring D is a substituted or unsubstituted aryl or a substituted or unsubstituted heteroaryl; L 3 is —C(O)NH— or —S(O)2—NH—; R 20 is substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; R 21 is -NR 22 R 23 -OR 24 and; R 22 and R 23 are independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, or are joined together to form a substituted or unsubstituted heterocycloalkyl or substituted or unsubstituted heteroaryl; R 24is a substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, or is joined together to form a substituted or unsubstituted cycloalkyl of a substituted or unsubstituted heterocycloalkyl.

[0029] In some embodiments, ring D is substituted or unsubstituted phenyl.

[0030] In some embodiments, R 20 is substituted or unsubstituted alkyl or substituted or unsubstituted cycloalkyl.

[0031] In some embodiments, R 20 is a substituted or unsubstituted C 1 -C 10 alkyl, or substituted or unsubstituted 3- to 7-membered cycloalkyl.

[0032] In some embodiments, R 20 is a substituted or unsubstituted C 1 -C 5 alkyl, or substituted or unsubstituted 3- to 6-membered cycloalkyl.

[0033] In some embodiments, R 20 is the unsubstituted C 1 -C 5 alkyl, or unsubstituted 3- to 6-membered cycloalkyl.

[0034] In some embodiments, R 22 is hydrogen; and R 23 is a substituted or unsubstituted cycloalkyl, a substituted or unsubstituted heterocycloalkyl, a substituted or unsubstituted aryl, or a substituted or unsubstituted heteroaryl.

[0035] In some embodiments, R 22 is hydrogen; and R 23is a substituted or unsubstituted substituted or unsubstituted aryl.

[0036] In some embodiments, R 22 and R 23 are linked together to form a substituted or unsubstituted heterocycloalkyl, or a substituted or unsubstituted heteroaryl.

[0037] In some embodiments, R 22 and R 23 are linked together to form a substituted or unsubstituted pyrrolyl, a substituted or unsubstituted isoindolinyl, a substituted or unsubstituted piperidinyl, or a substituted or unsubstituted tetrahydroquinolinyl.

[0038] In some embodiments, the compound has the formula: TIFF2025186426000006.tif52128 where w is an integer from 0 to 1; q is an integer from 0 to 7; R 25 , R 26 , R 27 , and R 28 are independently -CN, -NR 29 R 30 , -C(O)R 31 , -NR 32 -C(O)R 33 , -NR 34 -C(O)-OR 35 , -C(O)NR 36 R 37 , -NR 38 S(O)2R 39 , -OR 40 , -S(O)NR 41 , -S(O) v NR 42 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where v is an integer from 0 to 2; R 29 , R 30 , R 31 , R 32 , R33 , R 34 , R 35 , R 36 , R 37 , R 38 , R 39 , R 40 , R 41 , and R 42 are independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where R 25 and R 26 , or R 26 and R 27 may be linked to form a substituted or unsubstituted cycloalkyl, a substituted or unsubstituted heterocycloalkyl, a substituted or unsubstituted aryl, or a substituted or unsubstituted heteroaryl.

[0039] In some embodiments, R 28 HA-OR 40 where R 40 is hydrogen or unsubstituted C1-C 10 It is alkyl.

[0040] In some embodiments, R 40 is hydrogen or unsubstituted C1-C5 alkyl.

[0041] In some embodiments, the compound has the formula: TIFF2025186426000007.tif46128

[0042] In some embodiments, R 20 is unsubstituted C1~C 10 It is alkyl.

[0043] In some embodiments, R 28 HA-OR 40 where R 40 is hydrogen or unsubstituted C1-C 10C1-C substituted with alkyl or substituted or unsubstituted C3-C6 cycloalkyl 10 It is alkyl.

[0044] In some embodiments, q is 1.

[0045] In some embodiments, the compound has the formula: TIFF2025186426000008.tif43128

[0046] In some embodiments, the compound has the formula: TIFF2025186426000009.tif232121TIFF2025186426000010.tif36128

[0047] The present invention also provides a method for stabilizing isolated cells in vitro, in some embodiments, the method comprising contacting animal cells with a compound of Formula I or III in an amount sufficient to stabilize the cells.

[0048] In some embodiments, the method further comprises altering the state or environment of the cell in the presence of a compound, wherein the altering in the absence of the compound results in a change in cellular programming of the cell. In some embodiments, the altering comprises at least one of thawing the cell and dissociating the cell from other cells.

[0049] In some embodiments, the cells are adherent. In some embodiments, the cells are in suspension.

[0050] In some embodiments, the method further comprises determining a trait of the cell.

[0051] In some embodiments, the method includes isolating cells from an animal. In some embodiments, the animal is a human. In some embodiments, the animal is a non-human animal.

[0052] In some embodiments, the compound is a compound of Formula I. In some embodiments, the compound is a compound of Formula III.

[0053] The present invention also provides methods for ameliorating a condition in an animal, hi some embodiments, the methods comprising administering to an animal in need thereof a compound of Formula I or III in an amount sufficient to ameliorate the condition.

[0054] In some embodiments, the condition is selected from the group consisting of tissue injury, stroke, and cancer. In some embodiments, the tissue is selected from the group consisting of pancreas, liver, intestine, lung, and kidney.

[0055] In some embodiments, the condition comprises at least partial rejection of a transplanted tissue or organ, hi some embodiments, the transplant comprises transplantation of bone marrow, umbilical cord blood, purified hematopoietic stem or progenitor cells, cardiac cells, neural cells, pancreatic beta cells, or hepatic cells.

[0056] In some embodiments, the compound is a compound of Formula I. In some embodiments, the compound is a compound of Formula III.

[0057] The present invention also provides a method for maintaining cell survival, in one embodiment, the method includes producing isolated stem, progenitor, or differentiated cells and inducing stabilization of E-cadherin in the isolated cells, thereby maintaining cell survival.

[0058] In some embodiments, the inducing step comprises contacting the isolated stem cells with a compound of Formula I in an amount sufficient to increase survival of the isolated stem cells by at least two-fold compared to the absence of the compound.

[0059] In some embodiments, the inducing step comprises culturing the isolated stem cells on a surface, wherein a molecule comprising an E-cadherin ectodomain is tethered to the surface.

[0060] The present invention also provides a population of isolated cells comprising a molecule that stabilizes E-cadherin in the isolated cells in an amount sufficient to enhance survival of the isolated cells by at least two-fold compared to the absence of the molecule.

[0061] In some embodiments, the molecule comprises a compound of Formula I:

[0062] In some embodiments, the cell is selected from the group consisting of a stem cell, an induced stem cell, a pluripotent stem cell, a progenitor cell, a differentiated cell, a beta cell, and a fibroblast.

[0063] The present invention also provides a population of isolated cells comprising a compound of Formula I or III in an amount sufficient to enhance survival of the isolated cells by at least 2-fold compared to the absence of the compound.

[0064] In some embodiments, the cells are selected from the group consisting of stem cells, induced stem cells, pluripotent stem cells, progenitor cells, differentiated cells, beta cells, and fibroblasts.

[0065] The present invention also provides a method for maintaining stem cell survival, in one embodiment, the method includes producing isolated cells; and activating protein kinase C (PKC) in the isolated cells, thereby maintaining cell survival.

[0066] In one embodiment, the activating step comprises contacting the isolated cells with phorbol 12-myristate 13-acetate (PMA) in an amount sufficient to enhance survival of the cells compared to survival in the absence of PMA.

[0067] The present invention also provides a population of isolated stem cells comprising a protein kinase C activator in an amount sufficient to enhance survival of the isolated stem cells by at least two-fold compared to survival in the absence of the PKC activator.

[0068] definition The abbreviations used herein have their conventional meaning within the chemical and biological arts.

[0069] The term "stabilizing a cell" means substantially reducing or eliminating a cell's response to a change in the condition or environment to which the cell is exposed. In this context, "substantially reducing" means that the response is at least 50% less than the response that would occur in the absence of the stabilizing component (e.g., a compound of the invention).

[0070] The term "altering the state or environment of a cell" refers to changing the temperature, medium (e.g., carbon source, salt concentration, growth factor), dissociating cells into separated cells, thawing cells, or changing an element of the environment surrounding the cell. As described herein, altering the state or environment of a cell often alters the traits or cellular programming of the cell. For example, when separated, stem cells and some other cells undergo differentiation and / or death in response to specific changes, such as separation, thawing, etc. Thus, while altering the state can reduce or eliminate cell viability, the viability of the stabilized cells described herein is not substantially reduced under similar changes in state. Changes in cellular programming can also be monitored as a cellular response to specific stimuli characteristic of a cell type and / or by the expression of one or a set of characteristic genes or gene products. As a non-limiting example, human pluripotent stem cells are known to express at least some, and optionally all, of the following markers: SSEA-3, SSEA-4, TRA-1-60, TRA-1-81, TRA-2-49 / 6E, ALP, Sox2, E-cadherin, UTF-1, Oct4, Rex1, and Nanog. Such expression can change as stem cells lose pluripotency or otherwise differentiate. Stabilized human pluripotent stem cells will maintain their characteristic expression pattern even after the state is changed.

[0071] An "isolated" cell is one that has been substantially separated or purified away from other cells of an organism.

[0072] The term "dissociating" cells refers to the process of separating cells from other cells or surfaces (e.g., the surface of a culture plate). For example, cells can be dissociated from animals or tissues by mechanical or enzymatic methods. Alternatively, cells that aggregate in vitro can be dissociated from each other. In yet another alternative, adherent cells are dissociated from a culture plate or other surface. Thus, dissociation can include severing the extracellular matrix (ECM) and cellular interactions with the substrate (e.g., the surface of the culture), or severing the ECM between cells.

[0073] "Determining the trait of a cell" means evaluating the quality or characteristics of a cell, such as gene expression or gene expression patterns characteristic of a cell type, the cell's response to stimuli or the environment, the ability to differentiate or dedifferentiate, the presence or absence of a particular morphology, etc.

[0074] Where chemical substituents are specified by their conventional chemical formula and written from left to right, they also include the chemically equivalent substituents that result from writing the structure from right to left. For example, -CH2O- is the same as -OCH2-.

[0075] The term “alkyl,” by itself or as part of another substituent, means, unless otherwise stated, straight (i.e., unbranched) or branched chain, or combinations thereof, which may be fully saturated, mono- or polyunsaturated, and which can include divalent and polyvalent radicals, and which has the specified number of carbon atoms (i.e., C1-C6). 10means 1 to 10 carbons). Examples of saturated hydrocarbon radicals include, but are not limited to, groups such as methyl, ethyl, n-propyl, isopropyl, n-butyl, t-butyl, isobutyl, sec-butyl, cyclohexyl, (cyclohexyl)methyl, cyclopropylmethyl, homologs and isomers of, for example, n-pentyl, n-hexyl, n-heptyl, n-octyl, and the like. Unsaturated alkyl groups are groups that contain one or more double or triple bonds. Examples of unsaturated alkyl groups include, but are not limited to, vinyl, 2-propenyl, crotyl, 2-isopentenyl, 2-(butadienyl), 2,4-pentadienyl, 3-(1,4-pentadienyl), ethynyl, 1- and 3-propynyl, 3-butynyl, and the higher homologs and isomers. Preferred alkyl groups are C 1-6 It is an alkyl group.

[0076] The term "alkylene" by itself or as part of another substituent means a divalent radical derived from alkyl, including, but not limited to, -CH2CH2CH2CH2-. Typically, an alkyl (or alkylene) group has from 1 to 24 carbon atoms, with groups having 10 or fewer carbon atoms being exemplified in the present invention. A "lower alkyl" or "lower alkylene" is a shorter chain alkyl or alkylene group, generally having 8 or fewer carbon atoms. Preferred alkylene groups are C 1-6 It is an alkylene group.

[0077] The term "heteroalkyl," by itself or in combination with another term, means, unless otherwise stated, a stable linear or branched chain or cyclic hydrocarbon radical, or combinations thereof, consisting of at least one carbon atom and at least one heteroatom selected from the group consisting of O, N, P, Si, and S, wherein the nitrogen and sulfur atoms may be optionally oxidized and the nitrogen heteroatom may be optionally quaternized. The heteroatoms O, N, P, and S and Si may be located at any interior position of the heteroalkyl group or at the position at which the alkyl group is attached to the remainder of the molecule. Examples include, but are not limited to, -CH2-CH2-O-CH3, -CH2-CH2-NH-CH3, -CH2-CH2-N(CH3)-CH3, -CH2-S-CH2-CH3, -CH2-CH2, -S(O)-CH3, -CH2-CH2-S(O)2-CH3, -CH=CH-O-CH3, -Si(CH3)3, -CH2-CH=N-OCH3, -CH=CH-N(CH3)-CH3, O-CH3, -O-CH2-CH3, and -CN. Up to two heteroatoms may be consecutive, such as, for example, -CH2-NH-OCH3 and -CH2-O-Si(CH3)3. Similarly, the term "heteroalkylene" by itself or as part of another substituent means a divalent radical derived from heteroalkyl, including, but not limited to, -CH-CH-S-CH-CH- and -CH-S-CH-CH-NH-CH-. For heteroalkylene groups, heteroatoms can also occupy either or both of the chain termini (e.g., alkyleneoxy, alkylenedioxy, alkyleneamino, alkylenediamino, etc.). Furthermore, for alkylene and heteroalkylene linking groups, no directionality of the linking group is implied by the direction in which the formula of the linking group is written. For example, the formula -C(O)R'- denotes both -C(O)R' and -R'C(O)-.As noted above, heteroalkyl groups, as used herein, include groups that are attached to the remainder of the molecule through a heteroatom, such as -C(O)R', -C(O)NR', ​​-NR'R'', -OR', -SR', and / or -S02R'. When "heteroalkyl" is designated followed by a specific heteroalkyl group, such as -NR'R'', it will be understood that the terms heteroalkyl and -NR'R'' are not overlapping or mutually exclusive. Rather, the specific heteroalkyl group is designated to add clarity. Thus, the term "heteroalkyl" should not be construed herein to exclude specific heteroalkyl groups, such as -NR'R'', etc. Preferred heteroalkyl groups are C. 1-6 It is a heteroalkyl group.

[0078] As used herein, the term "heteroalkylene" refers to a heteroalkyl group that links at least two other groups, as defined above. The two moieties linked to the heteroalkylene may be linked to the same atom or different atoms of the heteroalkylene. Preferred heteroalkylene groups are C 1-6 It is a heteroalkylene group.

[0079] The terms "cycloalkyl" and "heterocycloalkyl," by themselves or in combination with other terms, represent, unless otherwise stated, cyclic versions of "alkyl" and "heteroalkyl," respectively. Additionally, for heterocycloalkyl, a heteroatom can occupy the position at which the heterocycle is attached to the remainder of the molecule. Examples of cycloalkyl include, but are not limited to, cyclopentyl, cyclohexyl, 1-cyclohexenyl, 3-cyclohexenyl, cycloheptyl, and the like. Examples of heterocycloalkyl include, but are not limited to, 1-(1,2,5,6-tetrahydropyridyl), 1-piperidinyl, 2-piperidinyl, 3-piperidinyl, 4-morpholinyl, 3-morpholinyl, tetrahydrofuran-2-yl, tetrahydrofuran-3-yl, tetrahydrothien-2-yl, tetrahydrothien-3-yl, 1-piperazinyl, 2-piperazinyl, and the like. "Cycloalkylene" and "heterocycloalkylene" refer to divalent radicals derived from cycloalkyl and heterocycloalkyl, respectively. Cycloalkyl and heterocycloalkyl groups are C 3-8 Cycloalkyl groups and C 3-8 Heterocycloalkyl group, or C 5-8 Cycloalkyl groups and C 5-8 It may be a heterocycloalkyl group.

[0080] The terms "halo" or "halogen," by themselves or as part of another substituent, mean, unless otherwise stated, a fluorine, chlorine, bromine, or iodine atom. Additionally, terms such as "haloalkyl" are meant to include monohaloalkyl and polyhaloalkyl. For example, the term "halo(C1-C4)alkyl" is meant to include, but is not limited to, trifluoromethyl, 2,2,2-trifluoroethyl, 4-chlorobutyl, 3-bromopropyl, and the like.

[0081] The term "aryl," unless otherwise specified, refers to a polyunsaturated, aromatic, or hydrocarbon substituent, which may be a single ring or multiple rings (preferably from one to three rings) that are fused together or linked by a covalent bond. The term "heteroaryl" refers to an aryl group (or ring) containing from one to four heteroatoms selected from N, O, and S, where the nitrogen and sulfur atoms are optionally oxidized and the nitrogen atom is optionally quaternized. A heteroaryl group can be attached to the remainder of the molecule through a carbon or heteroatom. Non-limiting examples of aryl and heteroaryl groups include phenyl, 1-naphthyl, 2-naphthyl, 4-biphenyl, 1-pyrrolyl, 2-pyrrolyl, 3-pyrrolyl, 3-pyrazolyl, 2-imidazolyl, 4-imidazolyl, pyrazinyl, 2-oxazolyl, 4-oxazolyl, 2-phenyl-4-oxazolyl, 5-oxazolyl, 3-isoxazolyl, 4-isoxazolyl, 5-isoxazolyl, Examples include 2-thiazolyl, 4-thiazolyl, 5-thiazolyl, 2-furyl, 3-furyl, 2-thienyl, 3-thienyl, 2-pyridyl, 3-pyridyl, 4-pyridyl, 2-pyrimidyl, 4-pyrimidyl, 5-benzothiazolyl, purinyl, 2-benzimidazolyl, 5-indolyl, 1-isoquinolyl, 5-isoquinolyl, 2-quinoxalinyl, 5-quinoxalinyl, 3-quinolyl, and 6-quinolyl. Substituents for each of the above aryl and heteroaryl ring systems are selected from the group of acceptable substituents described below. "Arylene" and "heteroarylene" refer to divalent radicals derived from aryl and heteroaryl, respectively. The aryl groups of the present invention preferably have 5 to 12 ring members, more preferably 6 to 10 ring members. Heteroaryl groups of the present invention preferably have from 5 to 12 ring members, more preferably from 5 to 10 ring members.

[0082] For brevity, the term "aryl," when used in combination with other terms (e.g., aryloxy, arylthioxy, arylalkyl), includes both aryl and heteroaryl rings as defined above. Thus, the term "arylalkyl" is meant to include radicals in which an aryl group is attached to an alkyl group (e.g., benzyl, phenethyl, pyridylmethyl, etc.), including alkyl groups in which a carbon atom (e.g., a methylene group) has been replaced, for example, by an oxygen atom (e.g., phenoxymethyl, 2-pyridyloxymethyl, 3-(1-naphthyloxy)propyl, etc.).

[0083] As used herein, the term "oxo" refers to an oxygen that is double bonded to a carbon atom.

[0084] As used herein, the term "alkylsulfonyl" means a moiety having the formula -S(O2)-R', where R' is an alkyl group as defined above. R' may have a specified number of carbons (e.g., "C1-C4 alkylsulfonyl").

[0085] Each of the above terms (e.g., "alkyl," "heteroalkyl," "aryl" and "heteroaryl") is meant to include both substituted and unsubstituted forms of the radical being described. Exemplary substituents for each type of radical are provided below.

[0086] Substituents for the alkyl and heteroalkyl radicals (including those groups often referred to as alkylene, alkenyl, heteroalkylene, heteroalkenyl, alkynyl, cycloalkyl, heterocycloalkyl, cycloalkenyl, and heterocycloalkenyl) include, but are not limited to, -OR', ═O, ═NR', ═N-OR', -NR'R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -COR', -CONR'R'', -OC(O )NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O)R', -NR-C(NR'R''R'')=NR'''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O)R', -S(O)NR'R'', -NRSO2R', -CN and -NO2, in a number ranging from 0 to (2m'+1), where m' is the total number of carbon atoms in such radical. R', R'', R''' and R'''' each preferably independently represent hydrogen, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl (e.g., aryl substituted with 1 to 3 halogens), substituted or unsubstituted alkyl, alkoxy or thioalkoxy group, or arylalkyl group. When a compound of the invention includes two or more R groups, each of the R groups is independently selected, as are, for example, each of the R', R", R'", and R"" groups when two or more of these groups are present. When R' and R" are attached to the same nitrogen atom, they can be combined with the nitrogen atom to form a 4-, 5-, 6-, or 7-membered ring. For example, -NR'R" is meant to include, but not be limited to, 1-pyrrolidinyl and 4-morpholinyl.From the above discussion of substituents, one of skill in the art will understand that the term "alkyl" is meant to include groups that contain carbon atoms bonded to groups other than hydrogen groups, such as haloalkyl (e.g., -CF3 and -CH2CF3) and acyl (e.g., -C(O)CH3, -C(O)CF3, -C(O)CHOCH3, etc.).

[0087] Similar to the substituents described for the alkyl radical, substituents for the aryl and heteroaryl groups are varied and include, for example, halogen, —OR′, —NR′R″, —SR′, -halogen, —SiR′R″R′″, —OC(O)R′, —C(O)R′, —COR′, —CONR′R″, —OC(O)NR′R″, —NR″C(O)R′, —NR′-C(O)NR″R′″, — and wherein R′, R″, R′″ and R′″ are preferably independently selected from hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl. When a compound of the invention includes two or more R groups, each of the R groups is independently selected, as is, for example, each of the R', R'', R''', and R'''' groups when two or more of these groups are present.

[0088] Two substituents on adjacent atoms in an aryl or heteroaryl ring are represented by the formula -TC(O)-(CRR'), where T and U are independently -NR-, -O-, -CRR'- or a single bond, and q is an integer from 0 to 3. qAlternatively, two substituents on adjacent atoms in an aryl or heteroaryl ring can be formed of the formula -A-(CH), where A and B are independently -CRR'-, -O-, -NR-, -S-, -S(O)-, -S(O)2-, -S(O)2NR'- or a single bond, and r is an integer from 1 to 4. r The new ring thus formed may be substituted with a substituent of -B-. Optionally, one of the single bonds in the new ring may be replaced with a double bond. Alternatively, two substituents on adjacent atoms in the aryl or heteroaryl ring may be substituted with a substituent of the formula -(CRR'), where s and d are independently integers from 0 to 3, and X' is -O-, -NR'-, -S-, -S(O)-, -S(O)2-, or -S(O)2NR'-. s -X'-(CR''R''') d The substituents R, R', R'', and R''' are preferably independently selected from hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl.

[0089] As used herein, the term "heteroatom" or "ring heteroatom" is intended to include oxygen (O), nitrogen (N), sulfur (S), phosphorus (P), and silicon (Si).

[0090] As used herein, a "substituent" means a group selected from the following moieties: (A) -OH, -NH2, -SH, -CN, -CF3, -NO2, oxo, halogen, unsubstituted alkyl, unsubstituted heteroalkyl, unsubstituted cycloalkyl, unsubstituted heterocycloalkyl, unsubstituted aryl, unsubstituted heteroaryl, and (B) alkyl, heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, substituted with at least one substituent selected from the following: (i) oxo, -OH, -NH2, -SH, -CN, -CF3, -NO2, halogen, unsubstituted alkyl, unsubstituted heteroalkyl, unsubstituted cycloalkyl, unsubstituted heterocycloalkyl, unsubstituted aryl, unsubstituted heteroaryl, and (ii) alkyl, heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, substituted with at least one substituent selected from the following: (a) oxo, -OH, -NH2, -SH, -CN, -CF3, -NO2, halogen, unsubstituted alkyl, unsubstituted heteroalkyl, unsubstituted cycloalkyl, unsubstituted heterocycloalkyl, unsubstituted aryl, unsubstituted heteroaryl, and (b) Alkyl, heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl substituted with at least one substituent selected from oxo, -OH, -NH2, -SH, -CN, -CF3, -NO2, halogen, unsubstituted alkyl, unsubstituted heteroalkyl, unsubstituted cycloalkyl, unsubstituted heterocycloalkyl, unsubstituted aryl, and unsubstituted heteroaryl.

[0091] As used herein, a "size-limited substituent" or "size-limited substituent" means a group selected from all of the substituents described above for "substituents," where each of the substituted or unsubstituted alkyls is a substituted or unsubstituted C-C 20 alkyl, each of the substituted or unsubstituted heteroalkyls is a substituted or unsubstituted 2- to 20-membered heteroalkyl, each of the substituted or unsubstituted cycloalkyls is a substituted or unsubstituted C4-C8 cycloalkyl, and each of the substituted or unsubstituted heterocycloalkyls is a substituted or unsubstituted 4- to 8-membered heterocycloalkyl.

[0092] As used herein, a "lower substituted moiety" or "lower substituent" means a group selected from all of the substituted moieties described above with respect to "substituents," wherein each substituted or unsubstituted alkyl is a substituted or unsubstituted C1-C8 alkyl, each substituted or unsubstituted heteroalkyl is a substituted or unsubstituted 2- to 8-membered heteroalkyl, each substituted or unsubstituted cycloalkyl is a substituted or unsubstituted C5-C7 cycloalkyl, and each substituted or unsubstituted heterocycloalkyl is a substituted or unsubstituted 5- to 7-membered heterocycloalkyl.

[0093] The term "pharmaceutically acceptable salts" is intended to include salts of active compounds prepared using relatively non-toxic acids or bases, depending on the specific substituents found on the compounds described herein. When a compound of the present invention contains a relatively acidic functional group, a base addition salt can be obtained by contacting the neutral form of such a compound with a sufficient amount of the desired base, either neat or in a suitable inert solvent. Examples of pharmaceutically acceptable base addition salts include sodium salts, potassium salts, calcium salts, ammonium salts, organic amino salts, or magnesium salts, or similar salts. When a compound of the present invention contains a relatively basic functional group, an acid addition salt can be obtained by contacting the neutral form of such a compound with a sufficient amount of the desired acid, either neat or in a suitable inert solvent. Examples of pharmaceutically acceptable acid addition salts include salts derived from inorganic acids such as hydrochloric acid, hydrobromic acid, nitric acid, carbonic acid, monohydrogencarbonic acid, phosphoric acid, monohydrogenphosphoric acid, dihydrogenphosphoric acid, sulfuric acid, monohydrogensulfuric acid, hydroiodic acid, or phosphorous acid, as well as salts derived from relatively non-toxic organic acids such as acetic acid, propionic acid, isobutyric acid, maleic acid, malonic acid, benzoic acid, succinic acid, suberic acid, fumaric acid, lactic acid, mandelic acid, phthalic acid, benzenesulfonic acid, p-tolylsulfonic acid, citric acid, tartaric acid, methanesulfonic acid, and the like. Also included are salts of amino acids such as arginate, and salts of organic acids such as glucuronic acid or galacturonic acid (see, e.g., Berge et al., "Pharmaceutical Salts," Journal of Pharmaceutical Science, 1977, 66, 1-19). Certain specific compounds of the present invention contain both basic and acidic functionalities that allow the compounds to be converted into either base or acid addition salts.

[0094] Therefore, the compounds of the present invention may exist as salts, including pharmaceutically acceptable salts. The present invention includes such salts. Examples of such salts include hydrochloride, hydrobromide, sulfate, methanesulfonate, nitrate, maleate, acetate, citrate, fumarate, tartrate (e.g., (+)-tartrate, (-)-tartrate, or a mixture thereof, including a racemic mixture), succinate, benzoate, and salts containing amino acids such as glutamic acid. These salts may be prepared by methods known to those skilled in the art.

[0095] The neutral forms of the compounds are preferably regenerated by contacting the salt with a base or acid and isolating the parent compound in the conventional manner. The parent form of the compound differs from the various salt forms in certain physical properties, such as solubility in polar solvents.

[0096] In addition to salt forms, the present invention also provides compounds in the form of prodrugs. Prodrugs of the compounds described herein are compounds that easily undergo chemical changes under physiological conditions to produce the compounds of the present invention. Furthermore, prodrugs can also be converted to the compounds of the present invention by chemical or biochemical methods in an ex vivo environment. For example, prodrugs can be placed in a transdermal patch reservoir with a suitable enzyme or chemical reagent to be slowly converted to the compounds of the present invention.

[0097] Certain compounds of the present invention can exist in unsolvated form or solvated form, including hydrated form. Generally, solvated form is equivalent to unsolvated form and is included within the scope of the present invention. Certain compounds of the present invention can exist in multiple crystalline or amorphous forms. Generally, all physical forms are equivalent in terms of the intended uses of the present invention and are intended to be within the scope of the present invention.

[0098] Certain compounds of the present invention possess asymmetric carbon atoms (optical centers) or double bonds; the racemates, diastereomers, tautomers, geometric isomers, and individual isomers are encompassed within the scope of the present invention. Compounds of the present invention do not include those known in the art to be so unstable that they cannot be synthesized and / or isolated.

[0099] The compounds of the present invention may also contain unnatural proportions of atomic isotopes at one or more of the atoms that constitute such compounds. For example, the compounds may contain unnatural proportions of atomic isotopes, such as tritium ( 3 H), iodine-125( 125 I) or carbon-14 ( 14 C). All isotopic variations of the compounds of the present invention, whether radioactive or not, are encompassed within the scope of the present invention. [The present invention 1001] The following formula TIFF2025186426000011.tif32128, compound: During the ceremony, Ring A is substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; Ring B is a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl; L 1 -C(O)-NR 2 -or-NR 2 -C(O)-; L 2 is a bond, substituted or unsubstituted alkylene, or substituted or unsubstituted heteroalkylene; and R 1 and R 2 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl. [The present invention 1002] 1001. A compound of the present invention, wherein ring A is substituted or unsubstituted aryl. [The present invention 1003] 1001. A compound of the present invention wherein ring A is substituted or unsubstituted phenyl. [The present invention 1004] 1001. A compound of the present invention, wherein Ring B is a substituted or unsubstituted heterocycloalkyl, or a substituted or unsubstituted heteroaryl. [The present invention 1005] 1001. A compound of the present invention wherein ring B is a substituted or unsubstituted heteroaryl. [The present invention 1006] Ring B is substituted or unsubstituted pyrazolyl, substituted or unsubstituted furanyl, substituted or unsubstituted imidazolyl, substituted or unsubstituted isoxazolyl, substituted or unsubstituted oxadiazolyl, substituted or unsubstituted oxazolyl, substituted or unsubstituted pyrrolyl, substituted or unsubstituted pyridyl, substituted or unsubstituted pyrimidyl, substituted or unsubstituted pyridazinyl, substituted or unsubstituted thiazolyl, substituted or unsubstituted triazolyl, substituted or unsubstituted thienyl, substituted or unsubstituted dihydrothieno-pyrazolyl, substituted or unsubstituted thianaphthenyl, substituted or unsubstituted thiazolyl ... substituted or unsubstituted carbazolyl, substituted or unsubstituted benzothienyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted indolyl, substituted or unsubstituted quinolinyl, substituted or unsubstituted benzotriazolyl, substituted or unsubstituted benzothiazolyl, substituted or unsubstituted benzoxazolyl, substituted or unsubstituted benzimidazolyl, substituted or unsubstituted isoquinolinyl, substituted or unsubstituted isoindolyl, substituted or unsubstituted acridinyl, substituted or unsubstituted benzoisazolyl, or substituted or unsubstituted dimethylhydantoin. [The present invention 1007] L 2 is substituted or unsubstituted C1-C 10 1001. A compound of the present invention, wherein the compound is alkyl. [The present invention 1008] L 2is unsubstituted C1-C 10 1001. A compound of the present invention, wherein the compound is alkyl. [The present invention 1009] L 2 1001. The compound of the present invention, wherein is methylene. [The present invention 1010] Ring A is substituted or unsubstituted aryl; Ring B is a substituted or unsubstituted heteroaryl; R 1 is hydrogen; and L 2 is unsubstituted C1-C 10 is alkyl, 1001 compounds of the present invention. [The present invention 1011] R 2 1001. The compound of the present invention, wherein is hydrogen. [The present invention 1012] R 1 is hydrogen or unsubstituted C1-C 10 1001. A compound of the present invention, wherein the compound is alkyl. [The present invention 1013] R 1 1001. The compound of the present invention, wherein is hydrogen. [The present invention 1014] The following formula TIFF2025186426000012.tif32135, compound of the present invention 1001: During the ceremony, y is an integer from 0 to 3; z is an integer from 0 to 5; X is -N=, -CH=, or -CR 5 = and; R 3 , R 4 , and R 5 But independently, -CN, -S(O) n R 6 , -NR 7 R 8 , -C(O)R 9 , -NR 10 -C(O)R 11 , -NR 12 -C(O)-OR 13 , -C(O)NR14 R 15 , -NR 16 S(O)2R 17 , -OR 18 , -S(O)NR 19 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where n is an integer from 0 to 2, and where z is greater than 1, then two R 3 the moieties may be joined together to form a substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; and R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , and R 19 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl. [The present invention 1015] L 2 is substituted or unsubstituted C1-C 10 The compound of the present invention 1014, which is alkyl. [The present invention 1016] L 2 is unsubstituted C1-C 10 The compound of the present invention 1014, which is alkyl. [The present invention 1017] L 2 The compound of the present invention 1014, wherein is methylene. [The present invention 1018] 1014. The compound of claim 10, wherein X is -N= or -CH=. [The present invention 1019] z is 2 and two R 3 The compound of the present invention 1014, wherein the moieties are linked together to form a substituted or unsubstituted heterocycloalkyl. [The present invention 1020] 1014. The compound of the present invention, wherein z is 1. [The present invention 1021] 1014. The compound of the present invention, wherein y is 0 or 1. [The present invention 1022] R 3 -OR 18 and R 18 is hydrogen or unsubstituted C1-C 10 The compound of the present invention 1014, which is alkyl. [The present invention 1023] L 2 is methylene; X is -N= or -CH=; R 1 is hydrogen; and y and z are 0; Compound 1014 of the present invention. [The present invention 1024] The following formula Compound 1001 of the present invention having TIFF2025186426000013.tif142128. [The present invention 1025] The following formula TIFF2025186426000014.tif30128, compound: During the ceremony, Ring D is substituted or unsubstituted aryl or substituted or unsubstituted heteroaryl; L 3 is -C(O)-NH- or -S(O)2-NH-; R 20is substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; R 21 But, -NR 22 R 23 -OR 24 and; R 22 and R 23 are independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, or are joined together to form a substituted or unsubstituted heterocycloalkyl, or substituted or unsubstituted heteroaryl; and R 24 are substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, or are joined together to form a substituted or unsubstituted cycloalkyl of a substituted or unsubstituted heterocycloalkyl. [The present invention 1026] 1025. A compound of the present invention wherein ring D is substituted or unsubstituted phenyl. [The present invention 1027] R 20 1025 compounds of the present invention, wherein is substituted or unsubstituted alkyl or substituted or unsubstituted cycloalkyl. [The present invention 1028] R 20 substituted or unsubstituted C1-C 10 1025 compounds of the present invention, which are alkyl, or substituted or unsubstituted 3- to 7-membered cycloalkyl. [The present invention 1029] R 201025. The compound of the present invention, wherein is substituted or unsubstituted C1-C5 alkyl, or substituted or unsubstituted 3- to 6-membered cycloalkyl. [The present invention 1030] R 20 1025. The compound of the present invention, wherein is unsubstituted C1-C5 alkyl, or unsubstituted 3- to 6-membered cycloalkyl. [The present invention 1031] R 22 is hydrogen; R 23 is substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; Compound 1025 of the present invention. [The present invention 1032] R 22 is hydrogen; and R 23 is a substituted or unsubstituted aryl; Compound 1025 of the present invention. [The present invention 1033] R 22 and R 23 are linked together to form a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl. [The present invention 1034] R 22 and R 23 are linked together to form a substituted or unsubstituted pyrrolyl, a substituted or unsubstituted isoindolinyl, a substituted or unsubstituted piperidinyl, or a substituted or unsubstituted tetrahydroquinolinyl. [This invention 1035] The following formula Compound of the present invention 1025 having TIFF2025186426000015.tif52128: During the ceremony, w is an integer between 0 and 1; q is an integer from 0 to 7; R 25 , R 26 , R27 , and R 28 but independently, -CN, -NR 29 R 30 , -C(O)R 31 , -NR 32 -C(O)R 33 , -NR 34 -C(O)-OR 35 , -C(O)NR 36 R 37 , -NR 38 S(O)2R 39 , -OR 40 , -S(O)NR 41 , -S(O) v NR 42 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where v is an integer from 0 to 2; R 29 , R 30 , R 31 , R 32 , R 33 , R 34 , R 35 , R 36 , R 37 , R 38 , R 39 , R 40 , R 41 , and R 42 are independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; R 25 and R 26 , or R 26 and R 27 may be linked to form a substituted or unsubstituted cycloalkyl, a substituted or unsubstituted heterocycloalkyl, a substituted or unsubstituted aryl, or a substituted or unsubstituted heteroaryl. [The present invention 1036] R 28 -OR40 where R 40 is hydrogen or unsubstituted C1-C 10 The compound of the present invention 1035, which is alkyl. [This invention 1037] R 40 is hydrogen or unsubstituted C1-C5 alkyl. [The present invention 1038] The following formula Compound 1035 of the present invention having TIFF2025186426000016.tif46128. [This invention 1039] R 20 Unsubstituted C1~C 10 The compound of the present invention 1038, which is alkyl. [The present invention 1040] R 28 -OR 40 where R 40 is hydrogen or unsubstituted C1-C 10 C1-C substituted with alkyl or substituted or unsubstituted C3-C6 cycloalkyl 10 The compound of the present invention 1038, which is alkyl. [The present invention 1041] 1038. The compound of the present invention, wherein q is 1. [The present invention 1042] The following formula Compound 1038 of the present invention having TIFF2025186426000017.tif43128. [This invention 1043] The following formula Compound 1025 of the present invention having TIFF2025186426000018.tif157128TIFF2025186426000019.tif111128. [This invention 1044] contacting animal cells with a compound of formula I or III (e.g., any of the compounds of any of inventions 1001-1043) in an amount sufficient to stabilize the cells; 1. A method for stabilizing isolated cells in vitro, comprising: [This invention 1045] 104. The method of claim 1044, further comprising altering the state or environment of said cell in the presence of said compound, wherein said altering in the absence of said compound results in a change in cellular programming of said cell. [The present invention 1046] 1045. The method of claim 1045, wherein said altering step comprises at least one of thawing said cells and dissociating said cells from other cells. [This invention 1047] The method of claim 1044, wherein said cells are adherent. [This invention 1048] The method of claim 1044, wherein said cells are in suspension. [This invention 1049] The method of claim 1044, further comprising determining the trait of said cells. [The present invention 1050] The method of claim 1044, further comprising the step of isolating said cells from an animal. [This invention 1051] 1050. The method of claim 1050, wherein the animal is a human. [This invention 1052] 1050. The method of claim 1050, wherein said animal is a non-human animal. [This invention 1053] The method of claim 1044, wherein said compound is a compound of formula I. [This invention 1054] The method of claim 1044, wherein said compound is a compound of formula III. [This invention 1055] 1. A method of ameliorating a condition in an animal, comprising: administering to an animal in need thereof a compound of Formula I or III (e.g., any of the compounds of any of inventions 1001-1043) in an amount sufficient to ameliorate the condition. A method comprising: [The present invention 1056] The method of claim 1055, wherein said condition is selected from the group consisting of tissue injury, stroke, and cancer. [This invention 1057] 1056. The method of claim 1056, wherein said tissue is selected from the group consisting of pancreas, liver, intestine, lung, and kidney. [This invention 1058] 1055. The method of claim 1055, wherein said condition comprises at least partial rejection of a transplanted tissue or organ. [This invention 1059] 1058. The method of claim 1058, wherein said transplantation comprises transplantation of bone marrow, umbilical cord blood, purified hematopoietic stem or progenitor cells, cardiac cells, nervous system cells, pancreatic beta cells, or hepatic cells. [The present invention 1060] The method of claim 1055, wherein said compound is a compound of formula I. [This invention 1061] The method of claim 1055, wherein said compound is a compound of formula III. [This invention 1062] 1. A method for maintaining cell viability, comprising: Producing isolated stem, progenitor or differentiated cells; and maintaining cell survival by inducing stabilization of E-cadherin in the isolated cells. A method comprising: [This invention 1063] The method of claim 1062, wherein the inducing step comprises contacting the isolated stem cells with a compound of formula I (e.g., any of the compounds of claims 1001 to 1024) in an amount sufficient to improve survival of the isolated stem cells by at least two-fold compared to the absence of the compound. [This invention 1064] 1063. The method of claim 1062, wherein said inducing step comprises culturing said isolated stem cells on a surface, wherein a molecule comprising an E-cadherin ectodomain is tethered to said surface. [This invention 1065] A population of isolated cells comprising a molecule that stabilizes E-cadherin in the isolated cells in an amount sufficient to enhance survival of the isolated cells by at least two-fold compared to the absence of the molecule. [The present invention 1066] The population of cells of invention 1065, wherein the molecule comprises a compound of formula I (eg, any of compounds of inventions 1001-1024). [This invention 1067] 1065. The population of cells of the present invention, wherein said cells are selected from the group consisting of stem cells, induced stem cells, pluripotent stem cells, progenitor cells, differentiated cells, beta cells, and fibroblasts. [The present invention 1068] A population of isolated cells comprising a compound of formula I or III (e.g., any of the compounds of inventions 1001-1043) in an amount sufficient to enhance survival of the isolated cells by at least 2-fold compared to the absence of the compound. [This invention 1069] The population of claim 1068, wherein said cells are selected from the group consisting of stem cells, induced stem cells, pluripotent stem cells, progenitor cells, differentiated cells, beta cells, and fibroblasts. [The present invention 1070] 1. A method for maintaining stem cell viability, comprising: Producing the isolated cells; and maintaining cell viability by activating protein kinase C (PKC) in the isolated cells; A method comprising: [This invention 1071] 1070. The method of claim 1070, wherein said activating step comprises contacting said isolated cells with phorbol 12-myristate 13-acetate (PMA) in an amount sufficient to improve survival of said isolated cells compared to survival in the absence of PMA. [This invention 1072] A population of isolated stem cells comprising a protein kinase C activator in an amount sufficient to enhance survival of the isolated stem cells by at least two-fold compared to survival in the absence of the PKC activator. [This invention 1073] Each substituent is independently C 1-10 Alkyl, C 1-10and R', -R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -COR', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O)R', -NR-C(NR'R''R''')=NR'''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O)R', -S(O)NR'R'', -NRSOR', -CN, -NO, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, wherein each of R', R'', R''', and R'''' is independently selected from the group consisting of hydrogen, C 1-10 Alkyl group, C 1-10 1001. The compound of the present invention, wherein the compound is selected from the group consisting of a heteroalkyl group, a cycloalkyl group, a heterocycloalkyl group, an aryl group, and an arylalkyl group. [This invention 1074] Ring A is a ring having 1 to 5 R 3 cycloalkyl, heterocycloalkyl, aryl, or heteroaryl, each optionally substituted with a group; Ring B is 1 to 5 R 4 heterocycloalkyl or heteroaryl, each optionally substituted with a group; L 1 -C(O)-NR 2 -or-NR 2 -C(O)-; L 2 But, bond, C 1-10 Alkylene, or C 1-10 is heteroalkylene; R 1 and R 2 are independently hydrogen, C 1-10 Alkyl, C 1-10 Heteroalkyl, C 3-8 Cycloalkyl, C 3-8 is heterocycloalkyl, aryl, or heteroaryl; R 3 and R 4each independently represents -CN, -S(O) n R 6 , -NR 7 R 8 , -C(O)R 9 , -NR 10 -C(O)R 11 , -NR 12 -C(O)-OR 13 , -C(O)NR 14 R 15 , -NR 16 S(O)2R 17 , -OR 18 , -S(O)NR 19 , C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl, where n is an integer from 0 to 2, and two R 3 the moieties may be linked together to form a cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; and R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , and R 19 are independently hydrogen, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; 1001 compounds of the present invention. [This invention 1075] Each substituent is independently C 1-10 Alkyl, C 1-10and R', -R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -COR', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O)R', -NR-C(NR'R''R''')=NR'''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O)R', -S(O)NR'R'', -NRSOR', -CN, -NO, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, wherein each of R', R'', R''', and R'''' is independently selected from the group consisting of hydrogen, C 1-10 Alkyl group, C 1-10 selected from the group consisting of heteroalkyl groups, cycloalkyl groups, heterocycloalkyl groups, aryl groups, and arylalkyl groups; Compound 1025 of the present invention. [This invention 1076] Ring D is aryl or heteroaryl, each optionally substituted with 1 to 5 R groups; L 3 is —C(O)NH— or —S(O)NH—; R 20 each optionally substituted with 1 to 5 R groups, C 1-10 Alkyl, C 1-10 is heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; R 21 But, -NR 22 R 23 -OR 24 and; R 22 and R 23 are independently hydrogen, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl, or joined together to form a heterocycloalkyl or heteroaryl, each optionally substituted with 1 to 5 R groups; R24 each optionally substituted with 1 to 5 R groups, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl; and Each R group is independently C 1-10 Alkyl, C 1-10 and R', -R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -COR', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O)R', -NR-C(NR'R''R''')=NR'''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O)R', -S(O)NR'R'', -NRSOR', -CN, -NO, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, wherein each of R', R'', R''', and R'''' is independently selected from the group consisting of hydrogen, C 1-10 Alkyl group, C 1-10 selected from the group consisting of heteroalkyl groups, cycloalkyl groups, heterocycloalkyl groups, aryl groups, and arylalkyl groups; Compound 1025 of the present invention. [Brief explanation of the drawings]

[0100] [Figure 1A] Newly synthesized small molecules dramatically enhance the survival of hESCs after single cell dissociation without compromising their overall long-term self-renewal and developmental potential. Chemical structures of Thiazovivin / Tzv and Pyrintegrin / Ptn are shown. [Figure 1B] A newly synthesized small molecule dramatically enhances the survival of hESCs after single-cell dissociation without compromising their overall long-term self-renewal and developmental potential. ALP staining of hESC colonies grown from dissociated single cells seeded at low density and treated as described. [Figure 1C]A novel synthetic small molecule dramatically enhances the survival of hESCs after single cell dissociation without compromising their overall long-term self-renewal and developmental potential. Ratio of ALP-positive colonies to total initially seeded cells. [Figure 1D] A newly synthesized small molecule dramatically enhances the survival of hESCs after single-cell dissociation without compromising their overall long-term self-renewal and developmental potential. Immunostaining of hESCs maintained long-term in medium containing Ptn or Tzv is shown. [Figure 1E] A newly synthesized small molecule dramatically enhances the survival of hESCs after single-cell dissociation without compromising their long-term self-renewal and developmental potential. Sections of 5-week-old teratomas formed from long-term expanded hESCs maintained in medium containing Tzv (i, ii) or Ptn (iii, iv). Neuroepithelium (ectoderm), cartilage (mesoderm), and simple epithelium (endoderm) (i); neuroepithelium (ectoderm), simple epithelium, and liver epithelium (endoderm) (ii); neuroepithelium (ectoderm), cartilage (mesoderm), and renal tubular epithelium (endoderm) (iii); neuroepithelium (ectoderm), skeletal muscle (mesoderm), and renal tubular epithelium (endoderm) (iv). [Figure 1F] A newly synthesized small molecule dramatically enhances the survival of hESCs after single-cell dissociation without compromising their overall long-term self-renewal and developmental potential. (G-banding analysis of hESCs after more than 20 passages grown in the presence of compounds Ptn or Tzv. Unless otherwise noted, all hESCs were cultured in chemically defined medium and feeder-free on Matrigel-coated plates.) [Figure 2A] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Cell death analysis of dissociated hESCs grown on Matrigel or in suspension with or without treatment with Ptn or Tzv. [Figure 2B] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Phase contrast images of hESCs grown on uncoated plates treated with the indicated molecules. [Figure 2C]After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Western blot analysis of E-cadherin in hESCs transfected with specific siRNA against E-cadherin or GFP. [Figure 2D] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Cell death analysis by TUNEL staining of dissociated hESCs transfected with specific siRNA against E-cadherin or GFP in the presence of Tzv. [Figure 2E] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. ALP staining of dissociated hESCs transfected with specific siRNA against E-cadherin or GFP in the presence of Tzv. [Figure 2F] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Western blot analysis of full-length E-cadherin in hESCs before and after trypsinization. [Figure 2G] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Time-course Western blot analysis of full-length E-cadherin expression in hESCs treated with DMSO, Tzv, or Ptn for the indicated times after trypsin dissociation. [Figure 2H] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Flow cytometry analysis of E-cadherin surface abundance on hESCs after trypsinization in the presence of Tzv. DMSO was used as a control. [Figure 2I] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Semiquantitative RT-PCR of E-cadherin in hESCs treated or not with Tzv. [Figure 2J] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Endocytosis analysis of E-cadherin in the presence or absence of Tzv. [Figure 2K] After cell dissociation, Tzv stabilizes E-cadherin and protects hESCs from death in suspension culture. Cell survival analysis of hESCs grown on plates coated with BSA or different concentrations of E-cad-Fc chimera. [Figure 3A] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Growth curves of hESCs grown on Matrigel with different time courses of Ptn and Tzv treatment. Group 1, Ptn treatment for the first 24 hours only; Group 2, Ptn treatment continuously throughout the culture period; Group 3, Tzv treatment for the first 24 hours only; Group 4, Tzv treatment continuously throughout the culture period. For each condition, dissociated cells were plated at 10 × 104 cells per well of a 6-well plate. [Figure 3B] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Phase contrast images of hESCs seeded on different matrices and treated with the indicated compounds 12 hours later. [Figure 3C] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Dissociated hESCs were plated on Matrigel-coated plates and allowed to adhere for 3 hours in the presence of compounds or with an integrin β1-blocking antibody as indicated. Percent adhesion was calculated as described in Materials and Methods. [Figure 3D] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Western blot analysis of integrin β1 expressed by hESCs before and after trypsinization. [Figure 3E] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Time-course Western blot analysis of integrin expression in hESCs after trypsin dissociation and treatment with DMSO, Tzv, or Ptn for the indicated times. [Figure 3F] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Flow cytometric analysis of active conformation of β1 integrin in trypsin-dissociated hESCs after treatment with Tzv or Ptn. [Figure 3G] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Immunostaining analysis of active conformation of β1 integrin in trypsin-dissociated hESCs after treatment with Tzv or Ptn. [Figure 3H] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Cell adhesion of hESCs treated or not with the β1-activating antibody, TS2 / 16. [Figure 3I] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. ALP staining of hESCs treated or not with the β1-activating antibody, TS2 / 16. [Figure 3J] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Cell adhesion of hESCs treated with Tzv or Ptn with or without a PKC inhibitor. [Figure 3K] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Immunostaining of β1 integrin in the active conformation in hESCs treated or not with PMA (10 nM). [Figure 3L] Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. Cell adhesion of hESCs treated with the indicated compounds. [Figure 3M]Ptn and Tzv protect hESCs from cell death in adhesion medium after dissociation by maintaining and reactivating integrin activity. ALP staining of hESCs treated with the indicated compounds. [Figure 4A] PI-3K and ERK mediated growth factor receptors are the major survival and anti-differentiation signaling pathways, respectively, emanating from the hESC niche. Cell death analysis of dissociated hESCs plated on Matrigel and treated as described. [Figure 4B] Growth factor receptor-mediated PI-3K and ERK are major survival and anti-differentiation signaling pathways, respectively, emanating from the hESC niche. Western blot showing the phosphorylation status of different growth factor receptors in hESCs treated with Ptn for 2 hours. DMSO was used as a control. [Figure 4C] Growth factor receptor-mediated PI-3K and ERK are the major survival and anti-differentiation signaling pathways, respectively, emanating from the hESC niche. Cell death analysis of dissociated hESCs in suspension treated with the indicated conditions. [Figure 4D] Growth factor receptor-mediated PI-3K and ERK are the major survival and anti-differentiation signaling pathways, respectively, emanating from the hESC niche. Immunoprecipitation showing the interaction of E-cadherin with EGFR1 and Erb2. [Figure 4E] Growth factor receptor-mediated PI-3K and ERK are the major survival and anti-differentiation signaling pathways, respectively, emanating from the hESC niche. Western blot showing AKT phosphorylation status in hESCs treated with Ptn for the indicated time periods. [Figure 4F] Growth factor receptor-mediated PI-3K and ERK are the major survival and anti-differentiation signaling pathways, respectively, emanating from the hESC niche. Western blot showing AKT and ERK phosphorylation status in the presence of Ptn or in the presence of an integrin β1-blocking antibody together with Ptn. [Figure 4G]Growth factor receptor-mediated PI-3K and ERK are major survival and differentiation-suppressing signaling pathways, respectively, emanating from the hESC niche. Western blots showing AKT phosphorylation status in hESCs treated with Ptn or with the indicated receptor inhibitors. [Figure 4H] Growth factor receptor-mediated PI-3K and ERK are major survival and differentiation-suppressing signaling pathways, respectively, emanating from the hESC niche. Cell death analysis of hESCs treated with Ptn for 24 hours, or with Ptn together with a PI-3K inhibitor or MEK inhibitor for 24 hours. [Figure 4I] Growth factor receptor-mediated PI-3K and ERK are the major survival and anti-differentiation signaling pathways, respectively, emanating from the hESC niche. Percentage of SSEA4-negative cells after treatment with MEK inhibitors. [Figure 5A] FIG. 1 depicts compounds of the present invention including thiazovivin and its derivatives. [Figure 5B] FIG. 1 depicts compounds of the present invention including thiazovivin and its derivatives. [Figure 6A] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6B] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6C] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6D] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6E] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6F] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6G] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6H]FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6I] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6J] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6K] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6L] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6M] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6N] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6O] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6P] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6Q] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6R] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6S] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6T] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6U] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6V] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6W] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6X] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6Y]FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6Z] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6AA] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6AB] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. [Figure 6AC] FIG. 1 represents compounds of the present invention including pyrin tegrin and its derivatives. DETAILED DESCRIPTION OF THE INVENTION

[0101] Detailed Description I. Introduction The present invention provides novel compounds and methods for their use. Two small molecule compounds are provided that prevent cell differentiation and promote cell survival, including, but not limited to, when cells are isolated or present outside of their normal culture medium or tissue environment. Although the compounds act by somewhat different mechanisms, both are useful as prophylactic and therapeutic compounds for a number of different disease indications, including, but not limited to, cancer, tissue injury, and stroke.

[0102] II. Compounds that promote cell survival and / or inhibit differentiation In one aspect, compounds are provided that promote cell survival and / or inhibit differentiation. In some embodiments, the compounds have the formula: In formula (I), ring A is a substituted or unsubstituted cycloalkyl, a substituted or unsubstituted heterocycloalkyl, a substituted or unsubstituted aryl, or a substituted or unsubstituted heteroaryl. Ring B is a substituted or unsubstituted heterocycloalkyl, or a substituted or unsubstituted heteroaryl.

[0103] L 1 -C(O)-NR 2 -or-NR2 -C(O)-. 2 is a bond, substituted or unsubstituted alkylene, or substituted or unsubstituted heteroalkylene.

[0104] R 1 and R 2 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

[0105] In some embodiments, ring A is substituted or unsubstituted aryl. Ring A may be substituted or unsubstituted phenyl.

[0106] In another embodiment, Ring B is a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl. Ring B may be a substituted or unsubstituted heteroaryl. Ring B may be a substituted or unsubstituted pyrazolyl, a substituted or unsubstituted furanyl, a substituted or unsubstituted imidazolyl, a substituted or unsubstituted isoxazolyl, a substituted or unsubstituted oxadiazolyl, a substituted or unsubstituted oxazolyl, a substituted or unsubstituted pyrrolyl, a substituted or unsubstituted pyridyl, a substituted or unsubstituted pyrimidyl, a substituted or unsubstituted pyridazinyl, a substituted or unsubstituted thiazolyl, a substituted or unsubstituted triazolyl, a substituted or unsubstituted thienyl, a substituted or unsubstituted dihydrothieno-pyrazolyl, a substituted or unsubstituted thianaphthenyl, a substituted or unsubstituted thiazolyl ...iazolyl, a substituted or unsubstituted thiazolyl, a substituted or unsubstituted thiazolyl, a substituted or unsubstituted thiazolyl, a substituted or unsubstituted thiazolyl, a substituted or unsubstituted thiazolyl, a substituted or unsubstituted thiazolyl, a substituted or unsubstituted thiazolyl, a or unsubstituted carbazolyl, substituted or unsubstituted benzothienyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted indolyl, substituted or unsubstituted quinolinyl, substituted or unsubstituted benzotriazolyl, substituted or unsubstituted benzothiazolyl, substituted or unsubstituted benzoxazolyl, substituted or unsubstituted benzimidazolyl, substituted or unsubstituted isoquinolinyl, substituted or unsubstituted isoindolyl, substituted or unsubstituted acridinyl, substituted or unsubstituted benzisazolyl, or substituted or unsubstituted dimethylhydantoin.

[0107] L 2 is a substituted or unsubstituted C1-C 10 In some embodiments, L 2 is unsubstituted C1-C 10 It is alkyl. 2 can also be substituted or unsubstituted methylene (eg, unsubstituted methylene).

[0108] R 2 R may be hydrogen. 1 is hydrogen or unsubstituted C1-C 10 In some embodiments, R 1 is simply hydrogen.

[0109] In some embodiments of formula (I), ring A is substituted or unsubstituted aryl, ring B is substituted or unsubstituted heteroaryl, R 1 is hydrogen and L 2 is unsubstituted C1-C 10 It is alkyl.

[0110] In another embodiment, the compound that promotes cell survival and / or inhibits differentiation has the formula: TIFF2025186426000021.tif32135In formula (II), y is an integer of 0 to 3, and z is an integer of 0 to 5. X is -N=, -CH=, or -CR=. 5 = R 1 and L 2 is as described in formula (I) as defined above.

[0111] R 3 , R 4 , and R 5 are independently -CN, -S(O) n R 6 , -NR 7 R 8 , -C(O)R 9 , -NR 10 -C(O)R 11 , -NR 12 -C(O)-OR 13 , -C(O)NR 14 R 15 , -NR 16 S(O)2R 17 , -OR 18 , -S(O)NR 19 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where n is an integer from 0 to 2, and where if z is greater than 1, then two R 3 The moieties may be linked together to form a substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

[0112] R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , and R 19 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

[0113] In one embodiment, L 2 is a substituted or unsubstituted C1-C 10 It is alkyl. 2 is unsubstituted C1-C 10 Alternatively, L 2 is a substituted or unsubstituted methylene (eg, unsubstituted methylene).

[0114] In other embodiments, X is -N= or -CH=. The symbol z may be 2. In yet other embodiments, two R at adjacent vertices 3 The moieties are linked together to form a substituted or unsubstituted heterocycloalkyl. The symbol z can be 1. The symbol y can be 0 or 1. R 3 HA-OR 18 R 18 is hydrogen or unsubstituted C1-C 10 It may be alkyl.

[0115] In one embodiment, L 2 is substituted or unsubstituted methylene (e.g., unsubstituted methylene), X is -N= or -CH=, R 1 is hydrogen, and y and z are 0.

[0116] In other embodiments, the compound has the formula: TIFF2025186426000022.tif155162

[0117] In yet another embodiment, the compound of formula I is a compound in which ring A is selected from 1 to 5 R 3 ring B is a cycloalkyl, heterocycloalkyl, aryl, or heteroaryl group, each of which may be substituted with 1 to 5 R 4 is a heterocycloalkyl or heteroaryl, each of which may be substituted by a group; L 1 -C(O)-NR 2 -or-NR 2 -C(O)-;L 2 is bond, C 1-10 Alkylene, or C 1-10 Heteroalkylene; R 1 and R 2 are independently hydrogen, C 1-10 Alkyl, C 1-10 Heteroalkyl, C 3-8 Cycloalkyl, C 3-8 heterocycloalkyl, aryl, or heteroaryl; R 3 and R 4 each independently represents -CN, -S(O) n R 6 , -NR 7 R 8 , -C(O)R 9 , -NR 10 -C(O)R 11 , -NR 12 -C(O)-OR 13 , -C(O)NR 14 R 15 , -NR 16 S(O)2R 17 , -OR 18 , -S(O)NR 19 , C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl, where n is an integer from 0 to 2, and two R 3The moieties may be linked together to form a cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; and R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , and R 19 are independently hydrogen, C 1-10 Alkyl, C 1-10 It is heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl.In still other embodiments, the compound of formula I is a compound other than thiazovivin.

[0118] In other embodiments, the compound that promotes cell survival and / or inhibits differentiation has the formula: In formula (III), ring D is a substituted or unsubstituted aryl or a substituted or unsubstituted heteroaryl. 3 is —C(O)NH— or —S(O)2NH—.

[0119] R 20 is substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl. 21 is -NR 22 R 23 -OR 24 is.

[0120] R 22 and R 23are independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, or are joined together to form a substituted or unsubstituted heterocycloalkyl or substituted or unsubstituted heteroaryl.

[0121] R 24 is a substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, or is joined together to form a substituted or unsubstituted cycloalkyl of a substituted or unsubstituted heterocycloalkyl.

[0122] In another embodiment, L 3 is a bond, -O-, -C(O)NH- or -S(O)2NH-, R 20 is hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, and rings D and R 21 is as defined above. In certain other embodiments, L 3 is a bond, -O- or -S(O)2NH-, and rings D, R 20 , and R 21 is as defined above, and L 3 If -S(O)2NH-, then R 20 is hydrogen. In yet another embodiment, L 3 is a bond or -O-, and rings D and R 20 , and R 21 is as defined above.

[0123] In some embodiments, ring D is substituted or unsubstituted phenyl.

[0124] In other embodiments, R 20 is substituted or unsubstituted alkyl or substituted or unsubstituted cycloalkyl. 20 is a substituted or unsubstituted C1-C 10 R may be alkyl, or a substituted or unsubstituted 3- to 7-membered cycloalkyl. 20 may be a substituted or unsubstituted C1-C5 alkyl, or a substituted or unsubstituted 3- to 6-membered cycloalkyl. 20 is unsubstituted C1-C5 alkyl, or unsubstituted 3- to 6-membered cycloalkyl.

[0125] In yet other embodiments, R 22 is hydrogen and R 23 is a substituted or unsubstituted cycloalkyl, a substituted or unsubstituted heterocycloalkyl, a substituted or unsubstituted aryl, or a substituted or unsubstituted heteroaryl. 22 is hydrogen and R 23 is a substituted or unsubstituted aryl; or R 22 and R 23 are linked together to form a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl. R 22 and R 23 may be linked together to form a substituted or unsubstituted pyrrolyl, a substituted or unsubstituted isoindolinyl, a substituted or unsubstituted piperidinyl, or a substituted or unsubstituted tetrahydroquinolinyl.

[0126] In some embodiments, the compound has the formula: TIFF2025186426000024.tif53149In formula (IV), w is an integer from 0 to 1, and q is an integer from 0 to 7. R 20 is as defined above in the definition of the compound of formula (III). 25 , R 26 , R 27 , and R 28are independently -CN, -NR 29 R 30 , -C(O)R 31 , -NR 32 -C(O)R 33 , -NR 34 -C(O)-OR 35 , -C(O)NR 36 R 37 , -NR 38 S(O)2R 39 , -OR 40 , -S(O)NR 41 , -S(O) v NR 42 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where v is an integer from 0 to 2.

[0127] R 29 , R 30 , R 31 , R 32 , R 33 , R 34 , R 35 , R 36 , R 37 , R 38 , R 39 , R 40 , R 41 , and R 42 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

[0128] R 25 and R 26 , or R 26 and R 27 may be linked to form a substituted or unsubstituted cycloalkyl, a substituted or unsubstituted heterocycloalkyl, a substituted or unsubstituted aryl, or a substituted or unsubstituted heteroaryl.

[0129] In some embodiments, R 28 HA-OR 40 R 40 is hydrogen or unsubstituted C1-C 10 alkyl and R 40 may be hydrogen, or unsubstituted C1-C5 alkyl.

[0130] The compound may have the formula: TIFF2025186426000025.tif47135In formula (V), R 20 , R 28 and q are as defined above in the definition of formula (IV). 20 is unsubstituted C1 to C 10 It is alkyl. R 28 HA-OR 40 R 40 is hydrogen or unsubstituted C1-C 10 C1-C substituted with alkyl or substituted or unsubstituted C3-C6 cycloalkyl 10 The symbol q may be 1.

[0131] In another embodiment, the compound has the formula: TIFF2025186426000026.tif45149In formula (VI), R 20 , R 28 and q are as defined above in the definition of formula (IV) or formula (VI).

[0132] In another embodiment, the compound has the formula: TIFF2025186426000027.tif125128TIFF2025186426000028.tif164163

[0133] In another embodiment, the compound of formula III is a compound in which ring D is aryl or heteroaryl, each optionally substituted with 1 to 5 R groups; 3 is —C(O)NH— or —S(O)NH—; R 20each optionally substituted with 1 to 5 R groups, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; R 21 But, -NR 22 R 23 -OR 24 and;R 22 and R 23 are independently hydrogen, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl, or joined together to form a heterocycloalkyl or heteroaryl, each optionally substituted with 1 to 5 R groups; R 24 each optionally substituted with 1 to 5 R groups, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; and each R group is independently C 1-10 Alkyl, C 1-10 and R', -R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -COR', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O)R', -NR-C(NR'R''R''')=NR'''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O)R', -S(O)NR'R'', -NRSOR', -CN, -NO, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, wherein each of R', R'', R''', and R'''' is independently selected from the group consisting of hydrogen, C 1-10 Alkyl group, C 1-10 The compound is selected from the group consisting of a heteroalkyl group, a cycloalkyl group, a heterocycloalkyl group, an aryl group, and an arylalkyl group.

[0134] In certain embodiments, each of the above substituents in the compounds of Formulas (I)-(VI) is substituted with at least one substituent. More specifically, in certain embodiments, each of the above substituted alkyl, substituted heteroalkyl, substituted cycloalkyl, substituted heterocycloalkyl, substituted aryl, substituted heteroaryl, substituted alkylene, and / or substituted heteroalkylene in the compounds of Formulas (I)-(VI) is substituted with at least one substituent. In other embodiments, at least one or all of these groups are substituted with at least one size-limited substituent. Alternatively, at least one or all of these groups are substituted with at least one lower substituent.

[0135] In other embodiments of compounds of Formulae (I)-(VI), each of the substituted or unsubstituted alkyl is a substituted or unsubstituted C-C 20 each substituted or unsubstituted heteroalkyl is a substituted or unsubstituted 2- to 20-membered heteroalkyl; each substituted or unsubstituted cycloalkyl is a substituted or unsubstituted C3-C8 cycloalkyl; each substituted or unsubstituted heterocycloalkyl is a substituted or unsubstituted 3- to 8-membered heterocycloalkyl; and each substituted or unsubstituted alkylene is a substituted or unsubstituted C1-C 20 Each alkylene and / or substituted or unsubstituted heteroalkylene is a substituted or unsubstituted 2- to 20-membered heteroalkylene.

[0136] In some embodiments, each substituted or unsubstituted alkyl is a substituted or unsubstituted C1-C8 alkyl, each substituted or unsubstituted heteroalkyl is a substituted or unsubstituted 2-8 membered heteroalkyl, each substituted or unsubstituted cycloalkyl is a substituted or unsubstituted C5-C7 cycloalkyl, each substituted or unsubstituted heterocycloalkyl is a substituted or unsubstituted 5-7 membered heterocycloalkyl, and / or each substituted or unsubstituted alkylene is a substituted or unsubstituted C1-C8 alkylene, and / or each substituted or unsubstituted heteroalkylene is a substituted or unsubstituted 2-8 membered heteroalkylene.

[0137] In certain other embodiments, compounds of Formulas (I)-(VI) are 1-10 Alkyl, C 1-10 and R', -R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -COR', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O)R', -NR-C(NR'R''R''')=NR'''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O)R', -S(O)NR'R'', -NRSOR', -CN, -NO, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl, wherein each of R', R'', R''', and R'''' is selected from hydrogen, C 1-10 Alkyl, C 1-10 It is a heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or arylalkyl group.

[0138] III.How to use The compounds of the present invention are useful for a variety of purposes. For example, the compounds promote survival in situations where cells (e.g., isolated cells) would otherwise undergo apoptosis or otherwise die. In some embodiments, cells are stabilized for at least a specific period, for example, 10 minutes, 30 minutes, or 1 hour, 2 hours, 4 hours, 6 hours, 8 hours, 10 hours, 24 hours, 48 ​​hours, or 96 hours. Furthermore, the compounds are useful for maintaining the status quo of cell differentiation when cells are otherwise differentiated or otherwise undergo a change in cell programming. These effects lead to a variety of uses for the compounds either in vitro or in vivo.

[0139] A. In Vivo Applications The compounds of the present invention are useful for reducing tissue damage and can therefore be administered to treat, alleviate, or prevent tissue damage. In some embodiments, the compounds of the present invention are administered to individuals who have or are at risk of tissue damage in internal organs. Internal organs include, but are not limited to, the brain, pancreas, liver, intestines, lungs, kidneys, or heart, and are injured, for example, by burns or cuts. For example, in some embodiments, the compounds of the present invention are effective in reducing infarct size in ischemic reperfusion injury. Therefore, the compounds of the present invention can be administered to individuals who are likely to have, have had, or have had a stroke. Similarly, the compounds of the present invention can be administered to individuals who are likely to have, have had, or have had a heart attack or heart damage.

[0140] The present inventors have found that compounds of the present invention can prevent cell death, for example, in epithelial cells. For example, the present inventors seeded primary human pancreatic islet / beta cells as single cells onto tissue culture plates coated with Matrigel or laminin. In a normal cell culture medium for beta cells without Tzv, substantial cell death was observed. However, when Tzv (1-2 mM) was added to the medium, cell death was inhibited. Similar effects were observed in other early epithelial cells, such as neural cells. Thus, in one embodiment, compounds of the present invention are administered to an individual in need of pancreatic beta cells and / or pancreatic islet cells, where administration of the compound results in an increase in the number of beta cells or islet cells in the individual.

[0141] Furthermore, compounds of the present invention (e.g., compounds of Formula I or III) are effective in increasing blood flow and inhibiting inflammatory responses. For example, compounds of Formula I enhance monocyte adhesion and migration across endothelial cell monolayers, thereby reducing inflammatory responses (data not shown). Thus, in some embodiments, compounds of the present invention are administered to individuals in need of increased blood flow and / or reduced inflammation (e.g., those with cerebral ischemia). Individuals in need of reduced inflammation include those with inflammatory diseases or diseases mediated by inflammatory conditions. Examples of inflammatory diseases include, but are not limited to, chronic obstructive pulmonary disease, osteoarthritis, tendonitis or bursitis, gouty arthritis, polymyalgia rheumatica, fibromyalgia, pelvic inflammatory disease, and arthritis, including rheumatoid arthritis.

[0142] In some embodiments, the compounds of the present invention are used to treat or alleviate cancer. In some cases, the compounds of the invention are useful in treating cancer, e.g., cell types, glioma, mesothelioma, melanoma, lymphoma, leukemia, adenocarcinoma, breast cancer, ovarian cancer, cervical cancer, glioblastoma, leukemia, lymphoma, prostate cancer, and Burkitt's lymphoma, head and neck cancer, colon cancer, colorectal cancer, non-small cell lung cancer, small cell lung cancer, esophageal cancer, gastric cancer, pancreatic cancer, hepatobiliary cancer, gallbladder cancer, small intestine cancer, rectal cancer, kidney cancer, bladder cancer, prostate cancer, penile cancer, urethral cancer, testicular cancer, cervical cancer, vaginal cancer, uterine cancer, ovarian cancer, thyroid cancer, parathyroid cancer, adrenal cancer, pancreatic endocrine cancer, carcinoid tumors, bone cancer, skin cancer, retinoblastoma, Hodgkin's lymphoma, non-Hodgkin's lymphoma (for further examples of cancers, see Cancer: Principles and Practice (De Vita, VT et al., eds., 1997)).

[0143] Cancer cell metastasis is typically a process involving epithelial-mesenchymal transition / EMT (e.g., from epithelial cells to fibroblastic cells). The present inventors have discovered that the compounds of the present invention (i.e., Tvz and Ptn) can induce MET (the reverse of EMT) and inhibit EMT, demonstrating that the compounds are effective in reducing or preventing cancer metastasis. Therefore, in some embodiments, the compounds of the present invention are administered to individuals experiencing or at risk of cancer metastasis. For example, the present inventors have discovered that the compounds of Formulas I and III inhibit the metastasis of epithelial cancers, including, but not limited to, breast cancer and hepatocellular carcinoma.

[0144] In certain embodiments, the compounds of the invention are administered to individuals suffering from or at risk of suffering from hypertension and / or atherosclerosis.

[0145] The compounds of Formulas I and III (i.e., Tvz and Ptn) are effective in promoting axonal regeneration and functional recovery in injured central nervous system neurons. For example, the present inventors have found that Tvz can promote neurite outgrowth from primary neurons derived from mice. Tzv (3 μM) was tested using mouse P1 cortical explants and resulted in axonal outgrowth. Tzv was added to the culture medium 20 minutes after plating, and DMSO served as a control. The explants were observed in culture for 4 days. Tzv showed a dramatic effect on promoting axonal outgrowth, which was more pronounced than the first division. Therefore, in some embodiments, the compounds of the present invention are administered to individuals with central nervous system injuries or those who require or would otherwise benefit from axonal regeneration.

[0146] In certain embodiments, the compounds of the invention are administered to individuals suffering from diabetes, insulin resistance, or otherwise in need of enhanced beta cell survival or at risk of losing beta cell function.

[0147] The compounds of the present invention are also found to be used in the amelioration of negative symptoms, and also in the improvement of organ, cell or tissue transplantation.As described herein, the compounds of the present invention are effective in stabilizing and maintaining the contextual programming of cells.Therefore, in some embodiments, the compounds of the present invention are administered to individuals during or after cell, tissue or organ transplantation.Examples of transplantation include but are not limited to the transplantation of bone marrow, umbilical cord blood, purified hematopoietic stem / progenitor cells, cardiac cells, neural cells, pancreatic beta cells and hepatocytes.

[0148] B. In Vitro Applications The compounds of the present invention are effective in stabilizing cells exposed to a wide variety of conditions. Many animal cells lose viability, undergo apoptosis, and / or change programming when isolated (whether in suspension or adherent) (e.g., stem cells often die or differentiate when isolated). When mixed with such cells, the compounds of the present invention are effective in preventing the response of such cells to changes in their environment. In some embodiments, cells are isolated from an animal and contacted with a compound of the present invention in an amount sufficient to prevent the loss of cellular potential and / or the change in cellular programming. In some embodiments, such isolated cells are useful for diagnostics because they retain traits that would otherwise be lost by the isolation process and the cell's response to the isolation itself. Examples of retained traits include gene expression patterns, cellular responsiveness to stimuli, ligands, or drugs, and cellular potential.

[0149] The stability of a cell population can be monitored, for example, by monitoring the expression of gene products. For example, certain gene products are tissue- or cell-type-specific and can be monitored before and after a change in condition or environment (e.g., changing cell culture medium, thawing cells, separating cells from other cells) to determine whether the change affects cellular programming. In some embodiments, cells immediately before exposure to a change in condition or environment, or relatively soon after the change (e.g., within 1 minute, 5 minutes, 1 hour, etc., depending on the context), are contacted with a sufficient amount of a compound of the present invention so that one or more cellular expression markers remain substantially identical. "Substantially identical" refers to a context-dependent term as understood in the art. In some embodiments, "substantially identical" means that the expression of a gene product associated with a particular cell type does not change by more than about 10%, 20%, or 30% (e.g., compared to expression before treatment) after a particular treatment of the cells.

[0150] In one embodiment, the present invention provides a method for promoting survival and differentiation inhibition in ex vivo stem cells.For example, the present inventors have found that the compounds of formula I or III (i.e., Tzv and Ptn) are effective in promoting survival and differentiation inhibition in human embryonic stem cells, mouse embryonic stem cells, multiple neural stem cells, skin stem cells, mesenchymal stem cells, hematopoietic stem cells, stromal stem cells and epithelial stem cells, by contacting cells with the compounds of formula I or III immediately after cell separation.

[0151] Thus, the present invention provides cell populations and / or tissues that have been contacted with a compound of the present invention (e.g., a compound of Formula I or III) in an amount sufficient to stabilize the cells, e.g., prevent or reduce the response of the cells to a change in condition (e.g., separation from the tissue, thawing the cells). In some embodiments, for example, the cells or tissues that have been contacted with a compound of the present invention are in a frozen or liquid state. In some embodiments, the cells / tissues are thawed from a frozen state while in contact with a compound of the present invention in an amount sufficient to prevent or reduce cell damage or differentiation.

[0152] In some embodiments, the compounds of the present invention are contacted with a population of stem cells, progenitor cells, or differentiated cells. Exemplary stem cells include pluripotent stem cells, embryonic stem cells, and induced pluripotent stem cells (iPS cells). Exemplary stem cells further include human embryonic stem cells, mouse embryonic stem cells, neural stem cells, skin stem cells, mesenchymal stem cells, hematopoietic stem cells, stromal stem cells, and epithelial stem cells. Any type of progenitor cell can be used, including, but not limited to, endodermal progenitor cells, mesodermal progenitor cells (e.g., muscle progenitor cells, bone progenitor cells, blood progenitor cells), and ectodermal progenitor cells (e.g., epithelial tissue progenitor cells and neural progenitor cells). A wide variety of differentiated cells are also known. Examples of differentiated cells include, but are not limited to, fibroblasts, cardiac cells, neural cells, pancreatic beta cells, hepatic cells, epithelial cells, and intestinal cells. The cells described herein can be human or non-human. In some embodiments, the cells are human cells. In some embodiments, the cells are mouse, dog, bovine, pig, rat, or non-human primate cells.

[0153] The ability to maintain cell viability and cellular programming allows for improved methods of drug screening and diagnosis. For example, in some embodiments, cells are screened for a response in the presence of at least one compound of the present invention (e.g., a compound of Formula I or III) that maintains cell viability, and are further contacted with at least one of a plurality of agents (e.g., a compound library), and the response is monitored. Various screening methods are known. This method has been found to be particularly advantageous for use with cells that would otherwise be considered to have low viability under the conditions of the screening method (e.g., when it is convenient to use isolated cells, cells in suspension, adherent cells, etc.). The cells may be, for example, stem cells, progenitor cells, or differentiated cells as described herein. The cellular response may be any desired response. Some responses in cell-based screening assays include, but are not limited to, gene expression (e.g., based on reporter gene expression or quantified by PCR or other detection techniques), cell viability or loss thereof, induction of apoptosis, etc.

[0154] The agent used in the screening method may be, for example, a small organic compound (e.g., a molecular weight of less than 10,000 daltons, e.g., less than 8000, 6000, 4000, 2000 daltons), a lipid, a carbohydrate, a polypeptide, an antibody, a nucleic acid (e.g., an oligonucleotide, DNA, RNA, ribozyme, short inhibitory RNA (siRNA), microRNA (miRNA), etc.).

[0155] In some embodiments, assays are designed to screen large combinatorial libraries by automating the assay steps, which are typically performed in parallel (e.g., in microtiter formats or microwell plates in robotic assays), and providing compounds from any convenient source. Combinatorial libraries can be completely random or can include members containing core structures based on one or more promising lead compounds. Combinatorial libraries can be completely synthetic or contain some or all members derived from natural sources, such as bacteria, fungi, plants, insects, and vertebrates (e.g., Xenopus (frogs) or Anguilla (eels)), and invertebrates (e.g., Strongylocentrotus (sea urchins) or mollusks). See also Boldi, Combinatorial Synthesis of Natural Product Based Libraries, 2006, CRC Press.

[0156] In one embodiment, a high-throughput screening method involves providing a combinatorial chemical or peptide library containing a large number of potential therapeutic compounds (potential modulator or ligand compounds). Such a "combinatorial chemical library" or "ligand library" is then screened using one or more assays, as described herein, to identify library members (particular chemical species or subclasses) that exhibit a desired characteristic activity. The compounds thus identified can serve as conventional "lead compounds," or can themselves be used as potential or actual therapeutic agents.

[0157] A combinatorial chemical library is a diverse collection of compounds produced by chemical or biological synthesis by combining chemical "building blocks," such as multiple reagents. For example, a linear combinatorial chemical library, such as a polypeptide library, is formed by combining a set of chemical building blocks (amino acids) in every possible way to obtain a compound of a particular length (i.e., the number of amino acids in a polypeptide compound). Millions of chemical compounds can be synthesized through such combinatorial mixing of chemical building blocks.

[0158] The preparation and screening of combinatorial compound libraries are known to those skilled in the art.See, for example, U.S. Patent Nos. 5,663,046; 5,958,792; 6,185,506; 6,541,211; and 6,721,665, the disclosures of which are also incorporated herein by reference.Such combinatorial compound libraries include, but are not limited to, peptide libraries (see, for example, U.S. Patent No. 5,010,175; Furka, Int. J. Pept. Prot. Res. 37:487-493 (1991); Houghton, et al., Nature 354:84-88 (1991); Combinatorial Peptide Library Protocols, Cabilly, ed., 1997, Humana Press).Other chemistries for generating chemical diversity libraries can also be used. Such chemistries include, but are not limited to, peptoids (e.g., PCT Publication WO 91 / 19735), coded peptides (e.g., PCT Publication WO 93 / 20242), random bio-oligomers (e.g., PCT Publication WO 92 / 00091), benzodiazepines (e.g., U.S. Patent No. 5,288,514), diversomers such as hydantoins, benzodiazepines, and dipeptides (Hobbs et al., Proc. Nat. Acad. Sci. USA 90:6909-6913 (1993)), vinylogous polypeptides (Hagihara et al., J. Amer. Chem. Soc. 114:6568 (1992)), non-peptidic peptidomimetics with glucose scaffolds (Hirschmann et al., J. Amer. Chem. Soc. 114:9217-9218(1992)), analogous organic synthesis of small molecule compound libraries (Chen et al., J. Amer. Chem. Soc. 116:2661(1994), Combinatorial Libraries: Synthesis, Screening and Application Potential, Cortese, ed., 1995, Walter De Gruyter Inc., and Obrecht and Villalgordo, Solid-Supported Combinatorial and Parallel Synthesis of Small-Molecular-Weight Compound Libraries, 1998, Elsevier Science Ltd.), oligocarbamates (Cho et al., Science 261:1303(1993)), and / or peptidyl phosphonates (Campbell et al., J. Org. Chem. 59:658 (1994)), nucleic acid libraries (see Ausubel, Sambrook, and Russell, all supra, and U.S. Pat. Nos. 6,955,879, 6,841,347, 6,830,890, 6,828,098, 6,573,098, and 6,399,334), peptide nucleic acid libraries (see, e.g., U.S. Pat. Nos. 5,539,083, 5,864,010, and 6,756,199), antibody libraries (see, e.g., Vaughn et al., Nature Biotechnology, 14(3):309-314 (1996) and PCT / US96 / 10287), carbohydrate libraries (see, e.g., Liang et al., Science, 274:1520-1522 (1996), U.S. Patent No. 5,593,853, and Solid Support Oligosaccharide Synthesis and Combinatorial Carbohydrate Libraries, Seeberger, ed., 2004, John Wiley & Sons (E-book)), organic small molecule libraries (e.g., benzodiazepines, see Baum C&EN, January 18, page 33 (1993) and U.S. Pat. No. 5,288,514; isoprenoids, see U.S. Pat. No. 5,569,588; thiazolidinones and metathiazanones, see U.S. Pat. No. 5,549,974; pyrrolidines, see U.S. Pat. Nos. 5,525,735 and 5,519,134; morpholino compounds, see U.S. Pat. No. 5,506,337, etc.). See also Combinatorial Library Design and Evaluation: Principles, Software Tools, and Applications in Drug Discovery, Ghose et al., eds., 2001, Marcel Dekker; Molecular Diversity and Combinatorial Chemistry: Libraries and Drug Discovery, Chaiken and Janda, eds., 1996, Oxford University Press; and Combinatorial Library Methods and Protocols, English ed., 2002, Humana Press.

[0159] Equipment for preparing combinatorial libraries is commercially available (see, e.g., Advanced Chem Tech, Louisville, KY; Symphony, Rainin, Woburn, MA; Applied Biosystems, Foster City, CA; Millipore, Bedford, MA; and Caliper Life Sciences, Hopkinton, MA).

[0160] In some embodiments, screening assays can be conveniently performed in multi-well plates (e.g., 96-well, 384-well, etc.), where each agent to be screened is tested separately in one well. In some embodiments, two or more candidate agents are tested in one reaction mixture.

[0161] C. Another target for a similar effect As illustrated in the examples below, the inventors have learned about the role of several gene products in the cellular response to the compounds of the invention, which has led to the discovery that cells can also be stabilized by manipulating the gene products as described below.

[0162] 1. E-cadherin The present inventors have found that increasing E-cadherin expression enhances stem cell survival. Thus, the present invention provides a method for stabilizing and / or increasing E-cadherin expression in cells, thereby stabilizing cells against changes in conditions that may otherwise be detrimental to cell viability. Stabilizing E-cadherin can include, for example, contacting cells with a compound that increases E-cadherin expression or protects E-cadherin from proteolytic cleavage in some manner.

[0163] In one embodiment, the present invention provides a method for culturing stem cells (including, but not limited to, human or mouse embryonic stem cells) in a container, where the surface is coated with a protein comprising at least the ectodomain of E-cadherin, optionally linked to another component such as a fusion protein, thereby stabilizing the cells (e.g., maintaining or increasing cell viability and / or maintaining cellular programming). An ectodomain is a portion of a membrane protein that extends into the extracellular space. In one embodiment, an ectodomain is a portion of a protein that initiates contact with a surface and mediates signal transduction. The ectodomain of E-cadherin is described, for example, in Ito et al., Oncogene 18(50):7080-90 (1999). In one embodiment, at least the ectodomain of E-cadherin is fused to a dimerizing polypeptide sequence, thereby enabling stabilized dimerization of the ectodomain. A "dimerizing polypeptide" refers to an amino acid sequence that forms a homodimer, thereby allowing two polypeptides to form a dimer. An example of a dimerizing polypeptide includes, but is not limited to, an IgG Fc fragment. In one embodiment, stem cells (including, but not limited to, human or mouse embryonic stem cells, pluripotent stem cells, iPS cells) are dissociated and cultured in a container having a surface coated with a protein comprising at least the ectodomain of E-cadherin, optionally linked to another component such as a fusion protein, resulting in improved cell viability and cell stabilization compared to the viability of similarly treated cells cultured in a container that is not coated with the polypeptide.

[0164] 2. Protein kinase C The present invention also provides stabilization of cells by contacting the cells with a protein kinase C activator. As described herein, treating dissociated hESCs with a protein kinase C activator and growing them in the presence of a Matrigel matrix resulted in significantly improved cell adhesion and colony formation, thereby improving cell viability. Thus, the present invention provides improved cell viability by culturing cells in the presence of a protein kinase C activator, thereby improving cell viability, proliferation, and / or adhesion. In some embodiments, a protein kinase C activator is contacted with a population of stem cells, progenitor cells, or differentiated cells in an amount sufficient to improve cell viability and / or survival time and / or adhesion. Examples of stem cells include pluripotent cells, embryonic stem cells, induced pluripotent stem cells (iPS cells), or others described herein. Examples of protein kinase C activators include, but are not limited to, phorbol esters (e.g., phorbol 12-myristate 13-acetate (PMA) or the phorbol esters described in U.S. Patent Application Publication No. 20080226589) or peptide agonists (e.g., as described in U.S. Patent No. 6,165,977).

[0165] 3. Integrin β1 The present invention also provides stabilization of cells by contacting them with an integrin β1 activator. As described herein, treating dissociated hESCs with an integrin β1 activator and growing the cells on lamins resulted in significantly improved cell adhesion and colony formation, thereby improving cell viability. Thus, the present invention provides improved cell viability by culturing cells in the presence of an integrin β1 activator, thereby improving cell viability, proliferation, and / or adhesion. In some embodiments, an integrin β1 activator is contacted with a population of stem cells, progenitor cells, or differentiated cells in an amount sufficient to improve cell viability, survival time, and / or adhesion. Examples of stem cells include pluripotent cells, embryonic stem cells, induced pluripotent stem cells (iPS cells), or others described herein. Examples of integrin β1 activators include, but are not limited to, integrin β1 activating antibodies, such as TS2 / 16 (commercially available from Thermo Scientific, Rockfield, Illinois, etc.).

[0166] IV. Cell populations As described herein, the present invention provides cells in a mixture (e.g., cell culture) with one or more compounds described herein (e.g., compounds of Formula I or III, including, but not limited to, Tzv and Pt-, or protein kinase C activators, or integrin β1 activators). In some embodiments, the compound is present in the mixture at a concentration sufficient to maintain viability or cellular programming in response to a change in the cellular environment or condition (e.g., thawing). For example, in some embodiments, the compound is present at a concentration of at least 0.1 M, e.g., at least 1, 10, 100, 1000, 10,000, or 100,000 nM, e.g., 0.1 nM to 100,000 nM, e.g., 1 nM to 10,000 nM, e.g., 10 nM to 10,000 nM, e.g., 1 to 10 μM. In some embodiments, the mixture is present in an artificial container (e.g., a test tube, a Petri dish, etc.). Thus, in some embodiments, the cell is an isolated cell (not part of an animal). In some embodiments, the cells are adherent cells or cells in suspension. In some embodiments, the cells are isolated or dissociated from a tissue sample (e.g., biopsy tissue) from an animal (human or non-human), placed in a container, and contacted with one or more compounds described herein (e.g., a compound of Formula I or III). The cells can then be cultured, optionally stimulated to differentiate into a specific cell type or cell lineage, or after introducing a recombinant expression cassette into the cells, and optionally returned to the same or a different animal.

[0167] V. Cell Culture Cells can be cultured by any method known in the art. Cells can be cultured in suspension or as adherent cells, as appropriate.

[0168] In some embodiments, cells (for example, stem cells) are cultured in contact with feeder cells.Examples of feeder cells include but are not limited to fibroblasts, such as mouse embryonic fibroblasts (MEF).The method of culturing cells on feeder cells is known in the art.

[0169] In some embodiments, cells are cultured in the absence of feeder cells. For example, cells can be directly attached to a solid culture surface (e.g., a culture plate) via, for example, a molecular tether. Examples of molecular tethers include, but are not limited to, Matrigel, extracellular matrix (ECM), ECM analogs, laminin, fibronectin, or collagen. However, those skilled in the art will recognize that this is a non-limiting list, and other molecules can be used to attach cells to a solid surface. Methods for initially attaching tethers to a solid surface are known in the art.

[0170] VI. Formulations and Methods of Administration Formulations (e.g., containing the compounds of the present invention, including, but not limited to, those suitable for administration) include aqueous and non-aqueous solutions, isotonic sterile solutions containing antioxidants, buffers, bacteriostats, and solutes to render the formulation isotonic, and aqueous and non-aqueous sterile suspensions that may contain suspending agents, solubilizers, thickeners, stabilizers, and preservatives. In practicing the present invention, compositions can be administered, for example, orally, nasally, topically, intravenously, intraperitoneally, or intrathecally. Compound formulations can be provided in unit-dose or multi-dose sealed containers, such as ampoules and vials. Solutions and suspensions can be prepared from sterile powders, granules, and tablets of the type described above. Modulators can also be administered as part of prepared foods or drugs.

[0171] The dose administered to a patient in the context of the present invention should be sufficient to induce a gradual beneficial response in the subject. The optimal dosage level for any patient will be determined by a variety of factors, including the potency of the particular modulator used, the patient's age, weight, physical activity, and diet, possible combinations with other drugs, and the severity of the disease or condition being treated. The size of the dose will also be determined by the existence, nature, and extent of any adverse side effects associated with the administration of a particular compound or vector to a particular subject.

[0172] In determining the effective amount of active ingredient to administer, a physician may evaluate the circulating plasma concentration of the compound or agent, the toxicity of the compound or agent, and the production of antibodies to the compound or agent. Generally, the equivalent dose of the compound or agent is about 1 ng / kg to 10 mg / kg for a typical subject. [Example]

[0173] VII. Working Examples The following examples are offered to illustrate, but not to limit, the claimed invention.

[0174] Example 1: To improve chemically defined media conditions and elucidate the molecular mechanisms underlying hESC death after single-cell dissociation, we performed a high-throughput trait screen of 50,000 synthetic compounds to identify small molecules that promote hESC survival after trypsin dissociation. This screen identified two groups of compounds that significantly increased cell survival after dissociation and maintained hESC colony morphology and alkaline phosphatase (ALP) expression. Further compound optimization and activity analysis identified two lead molecules, a 2,4-disubstituted thiazole (termed thiazovivin / Tzv) and a 2,4-disubstituted pyrimidine (termed pyrintegrin / Ptn) (Figure 1A), for further functional and mechanistic characterization.

[0175] (Table 1) Activity data TIFF2025186426000029.tif113164TIFF2025186426000030.tif220164TIFF2025186426000031.tif241164TIFF2025186426000032.tif92164 1 Ratio of ALP-positive colonies to the total number of cells initially seeded.

[0176] Compounds Tzv or Ptn enhanced the survival of single hESCs by more than 20-fold after enzymatic dissociation on Matrigel-coated plates (Fig. 1B, C). hESCs were serially passaged for more than 20 generations in chemically defined medium containing Tzv or Ptn. Under these conditions, cells uniformly maintained the characteristic hESC morphology, expression of typical pluripotency markers, and a normal karyotype (Fig. 1D, E). When these cells were injected into nude mice, complex teratomas composed of all three primary germ layer tissues developed (Fig. 1F). These results, confirmed in several independent hESC lines, collectively and convincingly demonstrated that both compounds can substantially promote hESC survival without impairing self-renewal and full developmental potential.

[0177] hESCs are known to have difficulty forming embryoid bodies (EBs) in suspension culture after single-cell dissociation due to extensive cell death. Therefore, we further tested whether Tzv or Ptn could promote the survival of dissociated hESCs in suspension. Interestingly, Tzv significantly improved hESC survival in both adherent and suspension cultures. In contrast, Ptn promoted hESC survival only in adherent culture (e.g., on Matrigel-coated plates) but not in suspension culture (Figure 2A). These findings suggest that at least two different mechanisms are involved in these two types of cell death under ECM / Matrigel or suspension conditions, and that Tzv and Ptn function differently. When cultured in suspension in the presence of Tzv (Figure 2B), hESCs formed favorable cell aggregates and were capable of differentiation into various lineages (data not shown). Because cell aggregation is most frequently mediated by cell-cell adhesion, and E-cadherin is a primary cell-cell adhesion molecule and is highly expressed in hESCs (Eastham, AM et al., Cancer Res 67(23):11254-11262(2007)), we tested the effect of a specific E-cadherin-blocking antibody on the formation of multicellular aggregates. Culturing cells in the presence of the antibody significantly inhibited Tzv-induced cell survival and the formation of large, compact aggregates, indicating that functional E-cadherin is required for Tzv-induced cell survival and the assembly of multicellular aggregates (Figure 2B). Furthermore, knockdown of E-cadherin by specific siRNA in hESCs dramatically reduced Tzv-induced cell survival and significantly reduced the number of ALP-positive colonies (Figure 2C, D, E). These results suggest that Tzv enhances hESC survival in suspension, possibly acting through E-cadherin-mediated cell-cell adhesion.

[0178] Next, we examined E-cadherin expression in hESCs after trypsin dissociation. We found that most of the full-length E-cadherin was cleaved after trypsin dissociation (Figure 2F). This finding was consistent with a report that the extracellular domain of E-cadherin has an intracellular proteolytic cleavage site near the transmembrane domain (Damsky, CH et al., Cell 34(2):455-466(1983)). In cells without Tzv treatment, newly synthesized full-length E-cadherin appeared 1 hour after enzyme treatment and disappeared 4 hours later, suggesting that newly synthesized E-cadherin in dissociated hESCs is unstable. However, E-cadherin expression was significantly increased in Tzv-treated cells (Figure 2G). Furthermore, flow cytometry analysis revealed that Tzv significantly increased cell surface E-cadherin in hESCs (Figure 2H). Therefore, Tzv appears to affect cell adhesion by regulating the cell surface levels of E-cadherin. Semiquantitative RT-PCR revealed similar levels of E-cadherin transcripts in mock-control and Tzv-treated cells (Figure 2I), suggesting that the difference in E-cadherin protein abundance is not due to altered transcript levels. Tzv likely exerts its effect by stabilizing E-cadherin on the cell surface. Finally, endocytosis assays revealed that E-cadherin internalization was significantly blocked by Tzv. These results indicate that Tzv regulates E-cadherin activity by inhibiting E-cadherin endocytosis (Figure 2J).

[0179] Cell-cell dissociation with trypsin leads to the rapid cleavage and subsequent destabilization of E-cadherin. We hypothesized that E-cadherin stability might be mediated by cell-cell homophilic interactions. Therefore, homophilic ligation of E-cadherin with a recombinant ligand might stabilize E-cadherin and affect hESC survival. To test this hypothesis, we coated plates with a dimeric E-cadherin-Fc chimeric protein (Ecad-Fc), which contains the ectodomain of E-cadherin fused to an IgG Fc fragment. Remarkably, dissociated hESCs adhered to the coated surface, and their viability was significantly increased in a dose-dependent manner (Figure 2K), confirming that E-cadherin-mediated cell-cell adhesion is a critical regulator of hESC survival.

[0180] Both Tzv and Ptn dramatically affected the survival of hESCs grown on Matrigel-coated plates. This survival-promoting effect is unlikely to be due to an effect on cell proliferation and may be largely attributable to the enhanced cell adhesion following the cell dissociation and seeding process (Figure 3A, B). Indeed, dissociated hESCs treated with Tzv or Ptn showed dramatically enhanced adhesion to Matrigel or laminin. In contrast, integrin-independent hESC adhesion to gelatin or polylysine (Figure 3B and data not shown) was unaffected by Ptn or Tzv treatment. The main component of Matrigel is laminin, and the laminin receptor β1 integrin has been reported to be highly expressed in hESCs (Xu, C. et al., Nat Biotechnol 19(10):971-974 (2001)). To verify whether Ptn or Tzv acts through β1 integrin, we pretreated cells with a blocking antibody against β1 integrin and observed that the increased cell adhesion induced by compound treatment was completely abolished, suggesting that Tzv and Ptn mediate cell adhesion to ECM substrates through β1 integrin (Fig. 3C).

[0181] To gain insight into the mechanism of β1 integrin regulation by Tzv and Ptn, we investigated whether the compound effects were due to alterations in integrin expression. In contrast to E-cadherin, β1 integrin was not cleaved by trypsin. Western blot analysis revealed that the compound effects were unlikely because β1 integrin expression was increased. Therefore, Tzv and Ptn likely affect cell adhesion by modulating integrin activity (Figure 3D, E). To examine the effect of compound treatment on β1 integrin activity, we used the monoclonal antibody HUTS-21, which specifically binds to the activated form of β1 integrin (Luque, A. et al., J Biol Chem 271 (19):11067-11075 (1996)). Notably, compound treatment increased the level of HUTS-21 binding (Figure 3F, G). Collectively, these results suggest that Tzv and Ptn increase cell adhesion by modulating integrin activity from the inside out.

[0182] If both compounds enhance cell adhesion by converting integrins to their active conformation, then treating cells with an integrin-activating antibody that locks integrins in the active conformation should have a similar effect. Indeed, when dissociated hESCs were plated on laminin in the presence of TS2 / 16, an activating antibody against β1 integrin (van de Wiel-van Kemenade, E. et al., J Cell Biol 117 (2):461-470 (1992)), cell adhesion was significantly increased and cells formed more colonies than control (Figure 3H, I). These results suggest that the increased adhesion observed when cells were treated with these compounds involves a mechanism that induces integrin activation.

[0183] To further investigate the molecular mechanisms underlying the regulation of integrin activity by Tzv and Ptn, we examined the effects of several pathway inhibitors. We found that bisindolylmaleimide I, a specific inhibitor of PKC, could antagonize the increase in cell adhesion induced by Ptn but had no effect on Tzv-induced cell adhesion. This suggests that PKC may mediate the effects of Ptn, but not Tzv (Fig. 3J). To further confirm the role of PKC in hESC survival, dissociated hESCs were treated with the PKC agonist phorbol 12-myristate 13-acetate (PMA). PMA treatment induced integrin activation and a substantial increase in cell adhesion and colony formation (Fig. 3K, L, M).

[0184] The fate of stem cells is influenced by their cellular niche, which consists of growth factors, cell-ECM interactions, and cell-cell interactions. The fact that hESC survival is highly dependent on cell-cell and / or cell-ECM interactions has revealed the previously unrecognized importance of the in vitro niche for hESCs. More importantly, cell-intrinsic protein expression (e.g., E-cadherin and integrins) and regulatory mechanisms (e.g., protein stabilization and activation) are not only responsive to niche components but are also essential niche components, suggesting that stem cells have the intrinsic ability to form their own niche even in the absence of other exogenous factors or cell types, but that these exogenous factors or cell types can participate in and enhance the cellular self-regulatory niche mechanism.

[0185] The interaction between the physical / structural environment and growth factors plays a crucial role in regulating cell fate (Comoglio, PM, Boccaccio, C., and Trusolino, L., Curr Opin Cell Biol 15 (5): 565-571 (2003)). To examine whether growth factors are involved in integrin-mediated hESC survival, we treated dissociated hESCs with Tzv or Ptn together with individual, highly specific growth factor receptor inhibitors. We found that chemical inhibition of FGFR, IGFR, EGFR1, or Erb2 significantly reduced the pro-survival effect induced by Tzv or Ptn treatment (Figure 4A). In addition, Ptn significantly increased the phosphorylation of growth factor receptors, suggesting that growth factor receptor involvement is required for integrin-mediated cell survival (Figure 4B). Similarly, inhibition of FGFR, IGFR, EGFR1, or Erb2 significantly abolished Tzv-induced hESC survival in suspension culture. Furthermore, Tzv induced E-cadherin binding to EGFR1 and ERB2, demonstrating a critical role for growth factor receptors in E-cadherin-mediated cell survival (Fig. 4C, D).

[0186] Phosphatidylinositol-3-kinase (PI-3K) signaling and MAPK / ERK are key regulators of hESC self-renewal (Armstrong, L. et al., Hum Mol Genet 15 (11): 1894-1913 (2006); Paling, NR et al., J Biol Chem 279 (46):48063-48070 (2004); Pyle, AD, Lock, LF, and Donovan, PJ, Nat Biotechnol 24 (3):344-350 (2006); Li, J. et al., Differentiation 75 (4):299-307 (2007)). The phosphorylation of ERK and AKT, downstream effectors of PI-3K, increased upon treatment of dissociated hESCs with Ptn, and this increase was abolished by integrin-blocking antibodies (Figure 4E, F). Furthermore, Ptn-induced activation of AKT and ERK was blocked by inhibitors of FGFR, IGFR, EGFR, or Erb2 (Figure 4G and data not shown). Chemical inhibition of PI-3K activity significantly antagonized the survival effect induced by Ptn (Figure 4H). Inhibition of ERK induced hESC differentiation, although it had no dramatic effect on Ptn-induced survival (Figure 4I). These results indicated that activation of PI-3K is a major survival signaling pathway, while activation of ERK is an anti-differentiation signaling pathway generated by the niche through growth factor receptor activation.

[0187] In summary, we have identified two novel synthetic small molecules with distinct mechanisms of action through high-throughput trait screening that significantly enhance hESC survival after single-cell dissociation. The newly identified biological tools (e.g., a defined recombinant Ecad-Fc for hESC attachment in adherent culture; an activating antibody for enhancing cell survival and attachment) through these chemical and mechanistic characterizations will enable more robust hESC cultures and significantly facilitate hESC applications, such as gene targeting and drug discovery. More importantly, thorough mechanistic characterization has revealed a previously unrecognized niche mechanism required for maintaining hESC survival and proliferation. This niche consists of E-cadherin-mediated hESC-hESC interactions, integrin-mediated cell-ECM interactions, and growth factors. Previous studies have pointed to the critical role of growth factors in hESC self-renewal. However, full activation of growth factor signaling requires not only the presence of growth factors and receptors but also interactions with a specific microenvironment. When this physical / structural environment is disrupted, growth factors alone are insufficient for ESC self-renewal.

[0188] Recently, it has been reported that differentiated fibroblasts generated from hESCs in self-renewal medium create an in vitro niche for hESCs (Bendall, SC et al., Nature 448(7157):1015-1021 (2007)). Observation of such differentiated cells in long-term cultures under our and others' chemically defined medium conditions is extremely rare, suggesting that such artificial niches may be created by differences in the medium. However, our study uncovers unique cell-autonomous (i.e., cell-cell interactions) and cell-independent (i.e., cell-ECM and growth factor) niche mechanisms that likely play an important role in controlling the in vivo fate of adult stem cells in the survival and self-renewal of hESCs.

[0189] Trypsin-mediated cell-cell dissociation not only destabilized E-cadherin but also inactivated integrins, demonstrating that the signaling pathways that maintain integrin activity are sensitive to enzymatic treatment. Feeder cell-conditioned medium (serum rich in growth factors) offered little protection against cell death after single-cell dissociation. Furthermore, the fact that high-density cell seeding also induced increased cell adhesion and survival suggests that the signaling pathways required to maintain integrin activity are not due to secreted factors but rather to physical cell-cell interactions. Tzv inhibits E-cadherin endocytosis, thereby protecting cells from death in suspension. Similarly, by inhibiting endocytosis, Tzv stabilizes signaling from the cell surface, thereby maintaining integrin activity. Meanwhile, Ptn activates PKC by mimicking downstream signaling pathways mediated by physical cell-cell interactions. Future identification of Ptn targets may provide new insights into the mechanisms by which cell-cell adhesion regulates cell-ECM interactions. Our work also illustrates the potential and advancement of high-throughput compound screening in stem cell research. Further development and application of such chemical approaches in stem cells will undoubtedly result in the identification of additional novel small molecules and insight into the mechanisms for precisely controlling cell fate in vitro and in vivo.

[0190] method cell culture Human ESC lines, H1, HUES7, and HUES9, were cultured on irradiated MEF feeder cells in DMEM-F12 supplemented with 2 mM L-glutamine, 1x non-essential amino acids, 20% serum replacement (Invitrogen), and 10 ng / ml basic fibroblast growth factor (Invitrogen). Chemically defined, feeder-free hESC culture medium has been previously described (Yao, S. et al., Proc Natl Acad Sci USA 103 (18):6907-6912 (2006)). Briefly, hESCs were grown on Matrigel-coated tissue culture plates in N2B27-CDM (DMEM-F12 supplemented with 1x N2 supplement, 1x B27 supplement, 2 mM L-glutamine, 0.11 mM 2-mercaptoethanol, 1x non-essential amino acids, and 0.5 mg / ml BSA (fraction V) and 20 ng / ml bFGF) and 20 ng / ml bFGF. Human ESCs were passaged every 5–6 days with 0.05% trypsin.

[0191] For clonal survival assays, single hESCs were diluted to clonal density and plated onto 96-well Matrigel-coated plates. For low-density survival assays, 500 cells were plated onto 96-well Matrigel-coated plates. To visualize hESC colonies, cultures were fixed in 4% paraformaldehyde in PBS for 5 minutes, washed once with PBS, and stained for alkaline phosphatase activity according to the manufacturer's instructions. ALP-positive colonies were counted using an inverted microscope.

[0192] reagent The ALP detection kit and integrin antibody were from Chemicon. AG825 (Erb2 inhibitor), AG1478 (EGFR inhibitor), and PPP (IGFR1 inhibitor) were purchased from Calbiochem. An antibody raised against the cytoplasmic tail of E-cadherin (Transduction Laboratories, Lexington, KY) was used for immunoprecipitation. The TS2 / 16 antibody was from Pierce. An antibody against the extracellular domain of the E-cadherin molecule was from Zymed (Carlsbad). Antibodies against extracellular signal-regulated kinases / MAPKs, EGFR1, ERB2, GADPH, and phosphorylated AKT were from Cell Signaling. Mouse monoclonal anti-phosphotyrosine (4G-10 clone) was from Upstate Biotechnology. Ptn and Tzv were added to the culture medium at 2 μM.

[0193] High-throughput compound screening Trypsinizable hESC lines HUES7 or HUES9 were used for screening. hESCs were cultured on Matrigel-coated plates in chemically defined medium as described above. Cells were then harvested using trypsin. hESCs were plated at 4,000 cells per well on Matrigel-coated 384-well plates. After one hour of cell settling, compounds from a library of 50,000 distinct heterocycles were added to each well (final concentration of 2 μM). After an additional 6 days of culture, with medium and compound changes on day 3, cells were stained for ALP expression and examined for compact colony morphology.

[0194] Immunostaining analysis Immunostaining was performed as previously described (Yao, S. et al., Proc Natl Acad Sci USA 103 (18):6907-6912 (2006)). Briefly, cells were fixed with 4% paraformaldehyde for 15 minutes at room temperature (RT). Cells were then cultured in blocking buffer for one hour at RT. Primary antibody incubation was performed overnight at 4°C. The following commercially available antibodies were used at a concentration of 1:100 in blocking buffer: anti-SSEA4, anti-Oct4 (Chemicon), and anti-Nanog (Chemicon). Staining was visualized using FITC-, cy3-, or cy5-conjugated secondary antibodies (Jackson ImmunoResearch).

[0195] Teratoma formation and karyotyping Teratoma formation experiments were performed by injecting 3–5 million hESCs (maintained in the presence of compounds Tvz or Ptn) into the kidney capsule of nude mice. After 4–5 weeks, teratomas developed in all mice, which were excised and analyzed immunohistochemically by Scripps Research Institute Research Histology Service and Animal Resources. Compound-treated cells were karyotyped by standard G-banding in the Cytogenetics Laboratory at Children's Hospital Oakland. No chromosomal abnormalities were detected in 10 randomly selected nuclei.

[0196] TUNEL assay The differently treated hESCs were dissociated with trypsin and fixed with 4% paraformaldehyde. Staining was performed according to the manufacturer's instructions (MBL Laboratories, Watertown, MA). After staining, the samples were analyzed by flow cytometry using a FACS Calibur flow cytometer (BD).

[0197] Flow cytometry analysis To assess the expression of E-cadherin, activated integrins, and SSEA4, dissociated cells (3 × 10 5 ) were washed with PBS and resuspended in PBS containing 2% goat serum. Cells were then incubated with the appropriate antibody for 1 hour at 4°C, washed with blocking solution, and labeled with FITC-conjugated secondary antibodies for 30 minutes at 4°C. Cells were then washed and analyzed on a FACS Calibur flow cytometer.

[0198] Cell adhesion assay Cell adhesion assays were performed in 96-well microtiter plates coated with Matrigel. After trypsinization, hESCs were resuspended in a chemically defined medium containing the desired compound. The cells were then added to the microtiter wells and incubated at 37°C for 3 hours. Unbound and loosely bound cells were removed by shaking and washing, and the remaining cells were then immediately fixed. The wells were washed three times with 200 μl of HO, and the adherent cells were stained with crystal violet (Sigma). The absorbance of each well at 570 nm was then measured. For experiments using blocking antibodies, cells were preincubated with the antibody on ice for 30 minutes, and the adhesion assay was performed in the presence of the antibody. The assay for each sample was performed in triplicate.

[0199] Endocytosis assay hESCs were incubated on ice with 1.5 mg / ml sulfosuccinimidyl 2-(biotinamido)ethyl-dithioproprionate (sulfo-NHS-SS-biotin) (Pierce Chemical Co.), washed, and the reaction was stopped. Endocytosis of E-cadherin is mediated by Ca. 2+The cells were induced by depletion of glutathione and incubation at 37°C. The cells were then incubated twice at 0°C with glutathione solution (60 mM glutathione, 0.83 M NaCl, with 0.83 M NaOH and 1% BSA added before use) for 20 min, which removed all biotin groups on the cell surface. The remaining biotinylated proteins were sequestered intracellularly by endocytosis and thus protected from stripping by glutathione. Biotinylated proteins were recovered on streptavidin beads and analyzed by SDS-PAGE. E-cadherin was detected by immunoblotting. The total amount of surface E-cadherin before endocytosis was used as a reference.

[0200] Example 2: Synthesis of N-benzyl-2-(pyrimidin-4-ylamino)thiazole-4-carboxamide (thiazovivin) chemical synthesis Using the chemical synthesis examples below and chemical synthesis methods generally known in the art, one of ordinary skill in the art can produce the compounds disclosed herein (e.g., compounds of Formulas (I)-(VI)).

[0201] All commercially obtained compounds were used without further purification. NMR spectra were recorded on a Bruker (400 MHz) instrument. Chemical shifts (δ) are measured in ppm, and coupling constants (J) are reported in Hz. LCMS was performed using an Agilent 1100 LCMS system with an API-ES ionization source. High-pressure liquid chromatography was performed on a C18 column using a linear gradient of 10% to 90% solution A (acetonitrile containing 0.035% trifluoroacetic acid) in solution B (water containing 0.05% trifluoroacetic acid) over 7.5 min, followed by 90% A over 2.5 min.

[0202] Synthesis of N-benzyl-2-(pyrimidin-4-ylamino)thiazole-4-carboxamide (thiazovivin) Benzylamine was added to 4-formyl-3,5-dimethoxyphenoxymethyl-functionalized polystyrene resin (PAL) via reductive amination to give PAL-benzylamine resin. See Ding, S.; Grey, N.S.; Wu, X.; Ding, Q.; Schultz, P.G.J. Am. Chem. Soc. 2002, 124, 1594-1596. A reaction flask containing PAL-benzylamine resin (200 mg, 0.2 mmol), 2-bromothiazole-4-carboxylic acid (83 mg, 0.4 mmol), bis(2-oxo-3-oxazolidinyl)phosphinic chloride (BOP-Cl) (153 mg, 0.6 mmol), and diisopropylethylamine (0.17 mL, 1 mmol) in DMF (3 mL) was shaken at room temperature for 24 hours. The resin was washed with methanol, dichloromethane, and dried under vacuum to give PAL resin-N-benzyl-2-bromothiazole-4-carboxamide, which was added to a flame-dried reaction vial followed by 4-aminopyrimidine (95 mg, 1 mmol), Pd(dba) (46 mg, 0.05 mmol), Xantphos (87 mg, 0.15 mmol), and NaO. t Bu (192 mg, 2 mmol) was added. The vial was securely and safety capped, degassed, and then backfilled with argon and anhydrous dioxane (1.5 mL). The reaction was shaken at 90 °C for 24 h. The resin was washed with sodium diethyldithiocarbamate solution (0.05 M in DMF), methanol, and dichloromethane and dried under vacuum. The resin was then cleaved with a cleavage cocktail of TFA:CHCl:H0 (45:55:5) (2 mL) for 2 h. The resin was filtered, and the filtrate was collected and dried under vacuum to give the crude product, which was then purified by HPLC to give the title compound (30 mg, 48%). TIFF2025186426000033.tif21128N-Benzyl-2-(pyrimidin-4-ylamino)thiazole-4-carboxamide C 15 H 13 Calculated accurate mass of N5OS: 311.1, Measured value: LCMS m / z = 334.1 (M + Na +). TIFF2025186426000034.tif21155

[0203] Example 3: Synthesis of thiazovivin derivatives TIFF2025186426000035.tif26151

[0204] Amines R suitable for 4-formyl-3,5-dimethoxyphenoxymethyl functionalized polystyrene resin (PAL) through reductive amination 1 PAL-benzylamine resin was obtained by pre-addition of NH. A mixture of PAL-benzylamine resin (200 mg, 0.2 mmol, 1.0 equiv.), 2-bromothiazolecarboxylic acid 1 (0.4 mmol, 2.0 equiv.), bis(2-oxo-3-oxazolidinyl)phosphinic chloride (BOP-Cl) (0.6 mmol, 3.0 equiv.), and diisopropylethylamine (1 mmol, 5.0 equiv.) in anhydrous DMF (3 mL) was shaken at ambient temperature for 24 h. The resin was washed with methanol, dichloromethane, and dried under vacuum. It was then added to a flame-dried reaction vial and the corresponding R 2 NH2 (1 mmol, 5.0 equiv.), Pd2(dba)3 (0.05 mmol), Xantphos (0.15 mmol), and NaO t Bu (2 mmol, 10.0 equiv) was added. The vial was securely capped, degassed, and backfilled with argon and anhydrous dioxane (1.5 mL). The reaction was shaken at 90 °C for 24 h. The resin was washed with sodium diethyldithiocarbamate solution (0.05 M in DMF), methanol, and dichloromethane and dried under vacuum. The resin was then cleaved with a cleavage cocktail of TFA:CHCl:H0 = 45:55:5 (2 mL) for 2 h. The resin was filtered, and the filtrate was collected and dried under vacuum to give the crude product, which was then purified by HPLC to give the desired title compound 3. TIFF2025186426000036.tif75162TIFF2025186426000037.tif230162TIFF2025186426000038.tif129162

[0205] Example 4: Synthesis of N-(cyclopropylmethyl)-4-(4-(6-hydroxy-3,4-dihydroquinolin-1(2H)-yl)pyrimidin-2-ylamino)benzenesulfonamide (pyrintegrin) A reaction flask containing 2,4-dichloropyrimidine (372 mg, 2.5 mmol), 6-methoxy-1,2,3,4-tetrahydroquinoline (489 mg, 3 mmol), and diisopropylethylamine (0.52 mL, 3 mmol) in n-butanol (10 mL) was warmed to 40 °C overnight. The solvent was evaporated, and the residue was purified by flash column chromatography to give 2-chloro-4-(6-methoxy-3,4-dihydroquinolin-1(2H)-yl)pyrimidine (551 mg, 80%). This intermediate (250 mg, 0.91 mmol) was dissolved in dichloromethane and treated with BBr (1 M in dichloromethane) (1 mL, 1 mmol) at −78 °C. The reaction mixture was allowed to warm slowly to room temperature, stirred for 1 h, poured into water, and extracted with dichloromethane. The combined organic layers were dried over anhydrous NaSO and concentrated. The residue was purified by flash column chromatography to give 2-chloro-4-(6-hydroxy-3,4-dihydroquinolin-1(2H)-yl)pyrimidine (154 mg, 65%). To a stirred solution of 2-chloro-4-(6-hydroxy-3,4-dihydroquinolin-1(2H)-yl)pyrimidine (29 mg, 0.11 mmol) and 4-amino-N-(cyclopropylmethyl)benzenesulfonamide (27 mg, 0.12 mmol) in DMF (0.5 mL) was added p-toluenesulfonic acid (2 M in dioxane) (55 μL, 0.11 mmol). The reaction mixture was stirred at 90° C. overnight and then purified by HPLC to give the title compound (27 mg, 56%). TIFF2025186426000039.tif26128N-(cyclopropylmethyl)-4-(4-(6-hydroxy-3,4-dihydroquinolin-1(2H)-yl)pyrimidin-2-ylamino)benzenesulfonamide C 23 H 25 Calculated accurate mass of N5O3S: 451.2, measured value LCMS m / z = 452.3 (M + H + ). TIFF2025186426000040.tif29159

[0206] Example 5: Synthesis of pyritegrin derivatives TIFF2025186426000041.tif21152 2,4-Dichloropyrimidine 4 (1.0 equiv.) in n-butanol, R 1 A mixture of NH (1.2 equiv.) and diisopropylethylamine (1.2 equiv.) was heated at 80 °C overnight. The solvent was evaporated and the residue was purified by flash column chromatography to give intermediate 10 in excellent yield (>80%), which was dissolved in R 2 After treatment with NH (1.2 equiv.), p-toluenesulfonic acid (2 M in dioxane) (1.2 equiv.) was added. The reaction mixture was stirred at 90 °C overnight and then directly purified by preparative HPLC to give pyritegrin derivative 11 in excellent yield. TIFF2025186426000042.tif26157TIFF2025186426000043.tif241157TIFF20251864260 00044.tif244157TIFF2025186426000045.tif229157TIFF2025186426000046.tif102157

[0207] It is understood that the examples and embodiments described herein are for illustrative purposes only, and that various modifications or changes therein will be suggested to those skilled in the art, which are intended to be included within the spirit and scope of this application and the appended claims. All references, patents, and patent applications cited herein are incorporated herein by reference in their entirety for all purposes.

Claims

1. The following formula The compound having the formula: During the ceremony, Ring A is substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; Ring B is a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl; L 1 -C(O)-NR 2 -or-NR 2 -C(O)-; L 2 is a bond, substituted or unsubstituted alkylene, or substituted or unsubstituted heteroalkylene; and R 1 and R 2 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

2. 2. The compound of claim 1, wherein ring A is a substituted or unsubstituted aryl.

3. 2. The compound of claim 1, wherein ring A is substituted or unsubstituted phenyl.

4. 2. The compound of claim 1, wherein Ring B is a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl.

5. 10. The compound of claim 1, wherein Ring B is a substituted or unsubstituted heteroaryl.

6. Ring B is substituted or unsubstituted pyrazolyl, substituted or unsubstituted furanyl, substituted or unsubstituted imidazolyl, substituted or unsubstituted isoxazolyl, substituted or unsubstituted oxadiazolyl, substituted or unsubstituted oxazolyl, substituted or unsubstituted pyrrolyl, substituted or unsubstituted pyridyl, substituted or unsubstituted pyrimidyl, substituted or unsubstituted pyridazinyl, substituted or unsubstituted thiazolyl, substituted or unsubstituted triazolyl, substituted or unsubstituted thienyl, substituted or unsubstituted dihydrothieno-pyrazolyl, substituted or unsubstituted thianaphthenyl, substituted or unsubstituted 2. The compound of claim 1, which is substituted carbazolyl, substituted or unsubstituted benzothienyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted indolyl, substituted or unsubstituted quinolinyl, substituted or unsubstituted benzotriazolyl, substituted or unsubstituted benzothiazolyl, substituted or unsubstituted benzoxazolyl, substituted or unsubstituted benzimidazolyl, substituted or unsubstituted isoquinolinyl, substituted or unsubstituted isoindolyl, substituted or unsubstituted acridinyl, substituted or unsubstituted benzisazolyl, or substituted or unsubstituted dimethylhydantoin.

7. L 2 is substituted or unsubstituted C 1 -C 10 2. The compound of claim 1, wherein the compound is alkyl.

8. L 2 is unsubstituted C 1 -C 10 2. The compound of claim 1, wherein the compound is alkyl.

9. L 2 2. The compound of claim 1, wherein is methylene.

10. Ring A is substituted or unsubstituted aryl; Ring B is a substituted or unsubstituted heteroaryl; R 1 is hydrogen; and L 2 is unsubstituted C 1 -C 10 is alkyl, The compound of claim 1.

11. R 2 2. The compound of claim 1, wherein is hydrogen.

12. R 1 is hydrogen or unsubstituted C 1 -C 10 2. The compound of claim 1, wherein the compound is alkyl.

13. R 1 2. The compound of claim 1, wherein is hydrogen.

14. The following formula The compound of claim 1 having the formula: During the ceremony, y is an integer from 0 to 3; z is an integer from 0 to 5; X is -N=, -CH=, or -CR 5 = and; R 3 , R 4 , and R 5 but independently, -CN, -S(O) n R 6 , -NR 7 R 8 , -C(O)R 9 , -NR 10 -C(O)R 11 , -NR 12 -C(O)-OR 13 , -C(O)NR 14 R 15 , -NR 16 S (O) 2 R 17 , -OR 18 , -S(O) 2 NR 19 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where n is an integer from 0 to 2, and where z is greater than 1, then two R 3 the moieties may be joined together to form a substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; and R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , and R 19 is independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl.

15. L 2 is substituted or unsubstituted C 1 -C 10 15. The compound of claim 14, wherein said compound is alkyl.

16. L 2 is unsubstituted C 1 -C 10 15. The compound of claim 14, wherein said compound is alkyl.

17. L 2 15. The compound of claim 14, wherein is methylene.

18. 15. The compound of claim 14, wherein X is -N= or -CH=.

19. z is 2 and two R 3 15. The compound of claim 14, wherein the moieties are linked together to form a substituted or unsubstituted heterocycloalkyl.

20. 15. The compound of claim 14, wherein z is 1.

21. 15. The compound of claim 14, wherein y is 0 or 1.

22. R 3 -OR 18 and R 18 is hydrogen or unsubstituted C 1 -C 10 15. The compound of claim 14, wherein said compound is alkyl.

23. L 2 is methylene; X is -N= or -CH=; R 1 is hydrogen; and y and z are 0; 15. The compound of claim 14.

24. The following formula 2. The compound of claim 1, having the formula:

25. The following formula The compound having the formula: During the ceremony, Ring D is substituted or unsubstituted aryl or substituted or unsubstituted heteroaryl; L 3 -C(O)-NH- or -S(O) 2 -NH-; R 20 is substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; R 21 But, -NR 22 R 23 -OR 24 and R 22 and R 23 are independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, or are joined together to form a substituted or unsubstituted heterocycloalkyl, or substituted or unsubstituted heteroaryl; and R 24 are substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, or are joined together to form a substituted or unsubstituted cycloalkyl of a substituted or unsubstituted heterocycloalkyl.

26. 26. The compound of claim 25, wherein ring D is substituted or unsubstituted phenyl.

27. R 20 26. The compound of claim 25, wherein is substituted or unsubstituted alkyl or substituted or unsubstituted cycloalkyl.

28. R 20 is a substituted or unsubstituted C 1 -C 10 26. The compound of claim 25, which is alkyl, or a substituted or unsubstituted 3- to 7-membered cycloalkyl.

29. R 20 is a substituted or unsubstituted C 1 -C 5 26. The compound of claim 25, which is alkyl, or substituted or unsubstituted 3- to 6-membered cycloalkyl.

30. R 20 But unsubstituted C 1 -C 5 26. The compound of claim 25, which is alkyl, or unsubstituted 3-6 membered cycloalkyl.

31. R 22 is hydrogen; R 23 is substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; 26. The compound of claim 25.

32. R 22 is hydrogen; and R 23 is a substituted or unsubstituted aryl; 26. The compound of claim 25.

33. R 22 and R 23 are linked together to form a substituted or unsubstituted heterocycloalkyl or a substituted or unsubstituted heteroaryl.

34. R 22 and R 23 are linked together to form a substituted or unsubstituted pyrrolyl, a substituted or unsubstituted isoindolinyl, a substituted or unsubstituted piperidinyl, or a substituted or unsubstituted tetrahydroquinolinyl.

35. The following formula 26. The compound of claim 25, having: During the ceremony, w is an integer from 0 to 1; q is an integer from 0 to 7; R 25 , R 26 , R 27 , and R 28 but independently, -CN, -NR 29 R 30 , -C(O)R 31 , -NR 32 -C(O)R 33 , -NR 34 -C(O)-OR 35 , -C(O)NR 36 R 37 , -NR 38 S (O) 2 R 39 , -OR 40 , -S(O) 2 NR 41 , -S(O) v NR 42 , substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl, where v is an integer from 0 to 2; R 29 , R 30 , R 31 , R 32 , R 33 , R 34 , R 35 , R 36 , R 37 , R 38 , R 39 , R 40 , R 41 , and R 42 are independently hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, or substituted or unsubstituted heteroaryl; R 25 and R 26 , or R 26 and R 27 may be linked to form a substituted or unsubstituted cycloalkyl, a substituted or unsubstituted heterocycloalkyl, a substituted or unsubstituted aryl, or a substituted or unsubstituted heteroaryl.

36. R 28 -OR 40 where R 40 is hydrogen or unsubstituted C 1 -C 10 36. The compound of claim 35, which is alkyl.

37. R 40 is hydrogen or unsubstituted C 1 ~C 5 37. The compound of claim 36, which is alkyl.

38. The following formula 36. The compound of claim 35, having the formula:

39. R 20 is unsubstituted C 1 ~C 10 39. The compound of claim 38, which is alkyl.

40. R 28 -OR 40 where R 40 is hydrogen or unsubstituted C 1 ~C 10 Alkyl, or substituted or unsubstituted C 3 ~C 6 Cycloalkyl-substituted C 1 ~C 10 39. The compound of claim 38, which is alkyl.

41. 39. The compound of claim 38, wherein q is 1.

42. The following formula 39. The compound of claim 38, having the formula:

43. The following formula 26. The compound of claim 25, having the formula:

44. contacting animal cells with a compound of formula I or III (e.g., any of the compounds of any one of claims 1-43) in an amount sufficient to stabilize the cells; 1. A method for stabilizing isolated cells in vitro, comprising:

45. 45. The method of claim 44, further comprising altering the state or environment of said cell in the presence of said compound, wherein said altering in the absence of said compound results in a change in cellular programming of said cell.

46. 46. ​​The method of claim 45, wherein said altering step comprises at least one of thawing said cells and dissociating said cells from other cells.

47. 45. The method of claim 44, wherein the cells are adherent.

48. 45. The method of claim 44, wherein the cells are in suspension.

49. 45. The method of claim 44, further comprising determining a trait of the cell.

50. 45. The method of claim 44, comprising isolating the cells from an animal.

51. 51. The method of claim 50, wherein the animal is a human.

52. 51. The method of claim 50, wherein the animal is a non-human animal.

53. 45. The method of claim 44, wherein the compound is a compound of formula I.

54. 45. The method of claim 44, wherein the compound is a compound of formula III.

55. 1. A method of ameliorating a condition in an animal, comprising: administering to an animal in need thereof a compound of formula I or III (e.g., any of the compounds of any one of claims 1-43) in an amount sufficient to ameliorate the condition. A method comprising:

56. 56. The method of claim 55, wherein the condition is selected from the group consisting of tissue injury, stroke, and cancer.

57. 57. The method of claim 56, wherein the tissue is selected from the group consisting of pancreas, liver, intestine, lung, and kidney.

58. 56. The method of claim 55, wherein said condition comprises at least partial rejection of a transplanted tissue or organ.

59. 59. The method of claim 58, wherein said transplant comprises transplantation of bone marrow, umbilical cord blood, purified hematopoietic stem or progenitor cells, cardiac cells, neural cells, pancreatic beta cells, or hepatic cells.

60. 56. The method of claim 55, wherein the compound is a compound of formula I.

61. 56. The method of claim 55, wherein the compound is a compound of formula III.

62. 1. A method for maintaining cell viability, comprising: Producing isolated stem, progenitor or differentiated cells; and maintaining cell survival by inducing stabilization of E-cadherin in the isolated cells. A method comprising:

63. 63. The method of claim 62, wherein the inducing step comprises contacting the isolated stem cells with a compound of formula I (e.g., any of the compounds of any one of claims 1-24) in an amount sufficient to increase survival of the isolated stem cells by at least two-fold compared to the absence of the compound.

64. 63. The method of claim 62, wherein said inducing step comprises culturing said isolated stem cells on a surface, wherein a molecule comprising an E-cadherin ectodomain is tethered to said surface.

65. A population of isolated cells comprising a molecule that stabilizes E-cadherin in the isolated cells in an amount sufficient to enhance survival of the isolated cells by at least two-fold compared to the absence of the molecule.

66. 66. The population of cells of claim 65, wherein the molecule comprises a compound of formula I (e.g., any of the compounds of any one of claims 1-24).

67. 66. The population of cells of claim 65, wherein said cells are selected from the group consisting of stem cells, induced stem cells, pluripotent stem cells, progenitor cells, differentiated cells, beta cells, and fibroblasts.

68. A population of isolated cells comprising a compound of formula I or III (e.g., any of the compounds of any one of claims 1-43) in an amount sufficient to enhance survival of the isolated cells by at least 2-fold compared to the absence of the compound.

69. 69. The population of claim 68, wherein said cells are selected from the group consisting of stem cells, induced stem cells, pluripotent stem cells, progenitor cells, differentiated cells, beta cells, and fibroblasts.

70. 1. A method for maintaining stem cell viability, comprising: Producing the isolated cells; and maintaining cell viability by activating protein kinase C (PKC) in the isolated cells; A method comprising:

71. 71. The method of claim 70, wherein said activating step comprises contacting said isolated cells with phorbol 12-myristate 13-acetate (PMA) in an amount sufficient to increase the survival of said isolated cells compared to survival in the absence of PMA.

72. A population of isolated stem cells comprising a protein kinase C activator in an amount sufficient to enhance survival of the isolated stem cells by at least two-fold compared to survival in the absence of the PKC activator.

73. Each substituent is independently C 1-10 Alkyl, C 1-10 Heteroalkyl, -OR', =O, =NR', =N-OR', -NR'R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -CO 2 R', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O) 2 R', -NR-C(NR'R''R''')=NR''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O) 2 R', -S(O) 2 NR'R'', -NRSO 2 R', -CN, -NO 2 , cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, wherein each of R', R'', R''', and R'''' is independently selected from the group consisting of hydrogen, C 1-10 Alkyl group, C 1-10 2. The compound of claim 1, wherein the alkyl group is selected from the group consisting of a heteroalkyl group, a cycloalkyl group, a heterocycloalkyl group, an aryl group, and an arylalkyl group.

74. Ring A is a group consisting of 1 to 5 R 3 cycloalkyl, heterocycloalkyl, aryl, or heteroaryl, each optionally substituted with a group; Ring B is 1 to 5 R 4 is a heterocycloalkyl or heteroaryl, each optionally substituted with a group; L 1 -C(O)-NR 2 -or-NR 2 -C(O)-; L 2 But, bond, C 1-10 Alkylene, or C 1-10 is heteroalkylene; R 1 and R 2 are independently hydrogen, C 1-10 Alkyl, C 1-10 Heteroalkyl, C 3-8 Cycloalkyl, C 3-8 heterocycloalkyl, aryl, or heteroaryl; R 3 and R 4 each independently represents -CN, -S(O) n R 6 , -NR 7 R 8 , -C(O)R 9 , -NR 10 -C(O)R 11 , -NR 12 -C(O)-OR 13 , -C(O)NR 14 R 15 , -NR 16 S (O) 2 R 17 , -OR 18 , -S(O) 2 NR 19 , C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl, where n is an integer from 0 to 2, and two R 3 the moieties may be linked together to form a cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; and R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , and R 19 are independently hydrogen, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; The compound of claim 1.

75. Each substituent is independently C 1-10 Alkyl, C 1-10 Heteroalkyl, -OR', =O, =NR', =N-OR', -NR'R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -CO 2 R', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O) 2 R', -NR-C(NR'R''R''')=NR''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O) 2 R', -S(O) 2 NR'R'', -NRSO 2 R', -CN, -NO 2 , cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, wherein each of R', R'', R''', and R'''' is independently selected from the group consisting of hydrogen, C 1-10 Alkyl group, C 1-10 selected from the group consisting of heteroalkyl groups, cycloalkyl groups, heterocycloalkyl groups, aryl groups, and arylalkyl groups; 26. The compound of claim 25.

76. Ring D is aryl or heteroaryl, each optionally substituted with 1 to 5 R groups; L 3 -C(O)NH- or -S(O) 2 NH-; R 20 are each optionally substituted with 1 to 5 R groups; C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, or heteroaryl; R 21 But, -NR 22 R 23 -OR 24 and R 22 and R 23 are independently hydrogen, C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl, or joined together to form a heterocycloalkyl or heteroaryl, each optionally substituted with 1 to 5 R groups; R 24 are each optionally substituted with 1 to 5 R groups; C 1-10 Alkyl, C 1-10 heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl; and Each R group is independently C 1-10 Alkyl, C 1-10 Heteroalkyl, -OR', =O, =NR', =N-OR', -NR'R'', -SR', -halogen, -SiR'R''R''', -OC(O)R', -C(O)R', -CO 2 R', -CONR'R'', -OC(O)NR'R'', -NR''C(O)R', -NR'-C(O)NR''R''', -NR''C(O) 2 R', -NR-C(NR'R''R''')=NR''', -NR-C(NR'R'')=NR''', -S(O)R', -S(O) 2 R', -S(O) 2 NR'R'', -NRSO 2 R', -CN, -NO 2 , cycloalkyl, heterocycloalkyl, aryl, and heteroaryl, wherein each of R', R'', R''', and R'''' is independently selected from the group consisting of hydrogen, C 1-10 Alkyl group, C 1-10 selected from the group consisting of heteroalkyl groups, cycloalkyl groups, heterocycloalkyl groups, aryl groups, and arylalkyl groups; 26. The compound of claim 25.

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