Claims
- 1. A compound of Formula I:
- 2. The compound of claim 1, wherein
A is a single bond; and R1, R2, and A, together with N to which R1, R2, and A are attached, form a nitrogen-containing cycloheteroalkyl or a nitrogen-containing cycloheteroalkenyl group, either of which is optionally substituted.
- 3. The compound of claim 2, wherein R1, R2, and A, together with N to which R1, R2, and A are attached, form an optionally substituted 5-6 membered nitorgen-containing cycloheteroalkyl group containing 1 or 2 heteroatoms.
- 4. The compound of claim 2 wherein R1, R2, and A, together with N to which R1, R2, and A are attached, form an optionally substituted 5-6 membered nitrogen-containing cycloheteroalkenyl group containing 1-2 heteroatoms.
- 5. The compound of claim 3, wherein said cycloheteroalkyl group is an optionally substituted thiazolidine ring.
- 6. The compound of claim 5, wherein said thiazolidine ring is substituted with 1-2 substituents independently selected from the group consisting of C1-6 alkyl, hydroxy, halogen, C1-6 alkoxy, C1-6 aminoalkoxy, amino, mono(C1-4)alkylamino, di(C1-4)alkylamino, C2-6 alkoxycarbonyl, carboxy, C2-6 hydroxyalkoxy, mono- and di- C1-4 alkylamino(C2-6)alkoxy, C2-10 mono(carboxyalkyl)amino, bis(C2-10 carboxyalkyl) amino, amidino, guanidino, C1-6 alkyliminoamino, formyliminoamino, cyano, trifluoromethoxy, and perfluoroethoxy.
- 7. The compound of claim 1, wherein
A is alkylene, alkenylene, or alkynylene, any of which is optionally substituted; and R1 is cycloalkyl, cycloalkenyl, cycloheteroalkyl, or cycloheteroalkenyl, any of which is optionally substituted.
- 8. The compound of claim 7, wherein
R1 is cycloalkyl, or cycloalkenyl, either of which is optionally substituted.
- 9. The compound of claim 7 wherein
R1 is cycloheteroalkyl, or cycloheteroalkenyl, either of which is optionally substituted.
- 10. The compound of claim 1, wherein
A is C1-8 substituted alkylene, C2-8 substituted alkenylene, or C2-8 substituted alkynylene; and R1 is —OR3 or —NR3R4.
- 11. The compound of claim 10, wherein
A is alkylene, alkenylene, or alkynylene and is substituted with one or more substituents independently selected from the group consisting of hydroxy, nitro, halogen, C1-6 alkoxy, C1-6 amino alkoxy, amino, mono- or di(C1-4)alkylamino, C2-6 alkoxy carbonyl, and carboxy.
- 12. The compound of claim 11, wherein
A is substituted with 1-3 hydroxy groups.
- 13. The compound of claim 11, wherein
A is substituted with 1-3 groups independently selected from the group consisting of amino, mono(C1-4) alkylamino, and di(C1-4)alkylamino.
- 14. The compound of claim 1, wherein
A is C3-8 alkylene, C4-8 alkenylene, or C4-8 alkynylene, R1 is aryl or heteroaryl, either of which is optionally substituted.
- 15. The compound of claim 1, wherein
A is a single bond; and R1 is cycloalkyl, cycloalkenyl, cycloheteroalkyl, or cycloheteroalkenyl, any of which is optionally substituted.
- 16. The compound of claim 15, wherein
R1 is cycloalkyl or cycloalkenyl, either of which is optionally substituted.
- 17. The compound of claim 15, wherein
R1 is cycloheteroalkyl or cycloheteroalkenyl, either of which is optionally substituted.
- 18. The compound of claim 16, wherein
R1 is 5-7 membered cycloalkyl or cycloalkenyl group, either of which is optionally substituted.
- 19. The compound of claim 17, wherein
R1 is a 5-7 membered cycloheteroalkyl or cycloheteroalkenyl group, either of which is optionally substituted.
- 20. The compound of claim 1, wherein
A is alkylene, alkenylene, or alkynylene, any of which is optionally substituted; and R1 is —C(O)OR3, —OC(O)R3, —C(O)NR3R4, —NR3C(O)R4, —OC(O)OR3, —OC(O)NR3R4, —NR3C(O)OR4, —OS(O)2OR3, —S(O)2OR3, —S(O)OR3, —OP(O)(OR3)OR4, —P(O)(OR3)OR4, or —P(O)HOR3, wherein R3 and R4 are independently H, alkyl, arylalkyl or alkenyl.
- 21. The compound of claim 20, wherein
R1 is —C(O)OR3.
- 22. The compound of claim 20, wherein
A is substituted alkylene, substituted alkenylene, or substituted alkynylene.
- 23. The compound of claim 1, wherein
A is alkylene, alkenylene, or alkynylene, any of which is optionally substituted; and R1 is amidino, guanidino, biguanidino, oxyguanidino, alkyliminoamino, or formylamino.
- 24. The compound of claim 23, wherein
R1 is guanidino.
- 25. The compound of claim 24, wherein
A alkylene, alkenylene, or alkynylene, and is substituted with 1-3 groups independently selected from the group consisting of hydroxy, nitro, halogen, C1-6 alkoxy, C1-6 aminoalkoxy, amino, mono- or di(C1-4)alkylamino, C2-6 alkoxy carbonyl, or carboxy.
- 26. The compound of claim 1, wherein R1 is a chelator.
- 27. The compound of claim 26, wherein said chelator is a moiety selected from the group consisting of EDTA, nitrolotriacetic acid, and histidine.
- 28. The compound of claim 1, wherein said compound is a hydroxy reactive probe.
- 29. The compound of claim 1, wherein said compound is an amine reactive probe.
- 30. The compound of claim 1, wherein said compound is a ketone reactive probe.
- 31. The compound of claim 1, wherein said compound is a carboxylic acid reactive probe.
- 32. The compound of claim 1, wherein said compound is a thiol reactive probe.
- 33. The compound of claim 1, wherein R1, R2, and A, together with N to which R1, R2, and A are attached, form a chemical moiety that is ionized at about pH 7.
- 34. The compound of claim 33, wherein R1, R2, and A, together with N to which said R1, R2, and A are attached, form a chemical moiety that has a net charge of from −1 to −3.
- 35. The compound of claim 33, wherein R1, R2, and A, together with N to which said R1, R2, and A are attached, form a chemical moiety that has a net charge of from +1 to +3.
- 36. The compound of claim 33, wherein R1, R2, and A, together with N to which said R1, R2, and A are attached, form a chemical moiety that has a net charge of 0.
- 37. The compound of claim 1 selected from the group consisting of
4-(5-(4-dimethylaminophenyl)oxazol-2-yl)-N-(2-pyrrolidin-1-yl-ethyl)benzenesulfonamide; 4-(5-(4-dimethylaminophenyl)oxazol-2-yl)-N-(3-(4-methylpiperazin-1-yl)-propyl)-benzenesulfonamide; dimethyl-(4-{2-(4-(piperazine-1-sulfonyl)phenyl)oxazol-5-yl}-phenyl)amine; dimethyl-(4-{2-(4-(4-methylpiperazine-1-sulfonyl)phenyl)-oxazol-5-yl}phenyl)amine; 4-(5-(4-dimethylaminophenyl)oxazol-2-yl)-N-(4-methyl-piperazin-1-yl)benzenesulfonamide; 2-{4-(5-(4-dimethylaminophenyl)oxazol-2-yl)-benzenesulfonylamino}succinic acid; {4-(5-(4-dimethylaminophenyl)oxazol-2-yl)benzenesulfonylamino}-acetic acid; ({4-(5-(4-dimethylaminophenyl)oxazol-2-yl)benzenesulfonyl}methyl-amino)acetic acid; 4-(5-(4-dimethylaminophenyl)oxazol-2-yl)-N-(2-guanidinoethyl)-benzenesulfonamide; 4-(5-(4-dimethylaminophenyl)oxazol-2-yl)-N-(2-hydroxy-1,1-bis-hydroxymethylethyl)benzenesulfonamide; 2-amino-5-{4-(5-(4-dimethylaminophenyl)oxazol-2-yl)-benzenesulfonylamino}pentanoic acid; and 3-(4-(5-(4-dimethylaminophenyl)oxazol-2-yl)benzenesulfonyl)-thiazolidine-2,4-dicarboxylic acid dimethyl ester.
- 38. A composition comprising a compound of claim 1 and a chemically suitable solvent.
- 39. The composition of claim 38, wherein said solvent is dimethylsulfoxide.
- 40. A method of using the compound according to claim I to monitor an environment, said method comprising
placing said compound in or near said environment; exposing said compound to a light source, wherein said light source produces light with wavelengths between 200 and 700 nm; and detecting a fluorescent energy, wherein said fluorescent energy is emitted by said compound.
- 41. The method of claim 40, wherein said light source produces light with wavelengths between 300 and 600 nm.
- 42. The method of claim 41 performed as a fluorescence thermal shift assay.
- 43. The method of claim 41, wherein said environment is an endoplasmic reticulum.
- 44. The method of claim 41, wherein said compound is used as a hydroxy reactive probe.
- 45. The method of claim 41, wherein said compound is used as an amine reactive probe.
- 46. The method of claim 41, wherein said compond is used as a ketone reactive probe.
- 47. A method for ranking the affinity of each of a multiplicity of different molecules for a target molecule which is capable of unfolding due to a thermal change, said method comprising (a) contacting the target molecule with one molecule of a multiplicity of different molecules, in the presence of a compound of claim 1, in each of a multiplicity of containers; (b) simultaneously heating the multiplicity of containers; (c) measuring the fluorescence in each of the containers; (d) generating thermal unfolding information for the target molecule as a function of temperature for each of the containers; (e) comparing the thermal unfolding information obtained for each of the containers to (i) the thermal unfolding information obtained for each of the other containers, and (ii) the thermal unfolding information. obtained for the target molecule in the absence of any of the molecules in the multiplicity of different molecules; and (f) ranking the affinities of each of the molecules according to the difference in the thermal unfolding information between the target molecule in each of the containers and the target molecule in the absence of any of the molecules in the multiplicity of different molecules.
- 48. A method for ranking the affinity of a combination of two or more of a multiplicity of different molecules for a target molecule which is capable of unfolding due to a thermal change, said method comprising: (a) contacting the target molecule with a combination of two or more different molecules of the multiplicity of different molecules, in the presence of a compound of claim 1, in each of a multiplicity of containers; (b) simultaneously heating the multiplicity of containers; (c) measuring in the fluorescence in each of the containers; (d) generating thermal unfolding information for the target molecule as a function of temperature in each of the containers; (e) comparing the thermal unfolding information obtained for each of the containers to (i) the thermal unfolding information obtained for each of the other containers, and (ii) the thermal unfolding information obtained for the target molecule in the absence of any of the two or more different molecules; and (f) ranking the affinities of the combinations of the two or more of the multiplicity of different molecules according to the difference in the thermal unfolding information between the target molecule in each of the containers and the thermal unfolding information obtained for the target molecule in the absence of any of the molecules in the multiplicity of different molecules.
- 49. A method for assaying a collection of a multiplicity of different molecules for a molecule which binds to a target molecule which is capable of unfolding due to a thermal change, said method comprising: (a) contacting the target molecule with a collection of at least two molecules of the multiplicity of different molecules, in the presence of a compound of claim 1, in each of a multiplicity of containers; (b) simultaneously heating the multiplicity of containers; (c) measuring the fluorescence in each of the containers; (d) generating thermal unfolding information for the target molecule as a function of temperature for each of the containers; (e) comparing the thermal unfolding information obtained for each of the containers to (i) the thermal unfolding information obtained for each of the other containers, and (ii) the thermal unfolding information obtained for the target molecule in the absence of any of the multiplicity of different molecules; and (f) ranking the affinities of the collections of different molecules according to the difference in the thermal unfolding information between the target molecule in each of the containers and the thermal unfolding information obtained for the target molecule in the absence of any of the molecules in the multiplicity of different molecules; (g) selecting the collection of different molecules which contains a molecule with affinity for the target molecule; (h) dividing the selected collection into smaller collections of molecules in each of a multiplicity of containers; and (i) repeating the above steps (a)-(h) until a single molecule, from the multiplicity of different molecules, is identified.
- 50. A method for ranking the efficacy of one or more of a multiplicity of different biochemical conditions for stabilizing a target molecule which is capable of unfolding due to a thermal change, said method comprising: (a) contacting the target molecule with one or more of the multiplicity of biochemical conditions, in the presence of a compound of claim 1, in each of a multiplicity of containers; (b) simultaneously heating the multiplicity of containers; (c) measuring the fluorescence in each of the containers; (d) generating thermal unfolding information for the target molecule as a function of temperature for each of the containers; (e) comparing the thermal unfolding information obtained for each of the containers to (i) the thermal unfolding information obtained for each of the other containers, and (ii) the thermal unfolding information obtained for the target molecule under a reference set of biochemical conditions; and (f) ranking the efficacies of each of the biochemical conditions for each of the containers according to the difference in the thermal unfolding information between the target molecule for each of the containers and the target molecule under the reference set of biochemical conditions.
- 51. A method for optimizing the shelf life of a target molecule which is capable of unfolding due to a thermal change, said method comprising: (a) contacting the target molecule with one or more of a multiplicity of different molecules or different biochemical conditions, in the presence of a compound of claim 1, in each of a multiplicity of containers; (b) simultaneously heating the multiplicity of containers; (c) measuring the fluorescence in each of the containers; (d) generating thermal unfolding information for the target molecule as a function of temperature for each of the containers; (e) comparing the thermal unfolding information obtained for each of the containers to (i) the thermal unfolding information obtained for each of the other containers, and (ii) the thermal unfolding information obtained for the target molecule under a reference set of biochemical conditions; and (f) ranking the efficacies of each of the biochemical conditions for each of the containers according to the difference in the thermal unfolding information between the target molecule for each of the containers and the target molecule under the reference set of biochemical conditions.
- 52. A method for ranking the efficacies of one or more of a multiplicity of different biochemical conditions to facilitate the refolding or renaturation of a sample of a denatured or unfolded protein, said method comprising: (a) placing one of the refolded protein samples, in the presence of a compound of claim I, in each of a multiplicity of containers, wherein each of the refolded protein samples has been previously refolded or renatured according to one or more of the multiplicity of conditions; (b) simultaneously heating the multiplicity of containers; (c) measuring the fluorescence in each of the containers; (d) generating thermal unfolding information for the target molecule as a function of temperature for each of the containers; (e) comparing the thermal unfolding information obtained for each of the containers to (i) the thermal unfolding information obtained for each of the other containers, and (ii) the thermal unfolding information obtained for the target molecule under a reference set of biochemical conditions; and (f) ranking the efficacies of each of the biochemical conditions for each of the containers according to the difference in the thermal unfolding information between the target molecule for each of the containers and the target molecule under the reference set of biochemical conditions.
- 53. A method for ranking the efficacy of one or more of a multiplicity of different biochemical conditions for facilitating the crystallization of a protein which is capable of unfolding due to a thermal change, said method comprising: (a) contacting the protein with one or more of the multiplicity of different biochemical conditions, in the presence of a compound of claim 1, in each of a multiplicity of containers; (b) simultaneously heating the multiplicity of containers; (c) measuring the fluorescence in each of the containers; (d) generating thermal unfolding information for the target molecule as a function of temperature for each of the containers; (e) comparing the thermal unfolding information obtained for each of the containers to (i) the thermal unfolding information obtained for each of the other containers, and (ii) the thermal unfolding information obtained for the target molecule under a reference set of biochemical conditions; and (f) ranking the efficacies of each of the biochemical conditions for each of the containers according to the difference in the thermal unfolding information between the target molecule for each of the containers and the target molecule under the reference set of biochemical conditions.
- 54. A method of making a compound according to claim 1, comprising reacting 2-(4′-chlorosulfonylphenyl)-5-(4″-dimethylaminophenyl)oxazole with an amine of the formula
Parent Case Info
[0001] This application claims benefit under 35 U.S.C. § 119(e) of U.S. Provisional Application No. 60/327,307, filed Oct. 9, 2001, the contents of which are fully incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60327307 |
Oct 2001 |
US |