Claims
- 1. A biosensor comprising one or more host cells expressing the following elements:
(a) at least one chimeric olfactory receptor protein for binding olfactant; (b) at least one exogenous signaling pathway coupled to the at least one chimeric olfactory receptor for transducing a signal produced by the at least one chimeric olfactory receptor upon olfactant binding; and (c) at least one signal reporter coupled to the signaling pathway for producing a detectable phenomenon upon transduction of the olfactant binding signal by the signaling pathway, wherein the at least one chimeric olfactory receptor protein comprises:
(i) an olfactory receptor hypervariable segment which contains at least one olfactant binding site; (ii) a processing/transport segment which directs the processing and transport of the chimeric receptor in the host cell; and (iii) a coupling segment which couples the chimeric receptor to the at least one exogenous signaling pathway in the host cell.
- 2. The biosensor of claim 1 wherein the processing/transport segment is located N-terminal to the olfactory receptor hypervariable segment, and the coupling segment is located C-terminal to the olfactory receptor hypervariable segment.
- 3. The biosensor of claim 1, wherein the host cell is prokaryotic.
- 4. The biosensor of claim 1, wherein the host cell is eukaryotic.
- 5. The biosensor of claim 4, wherein the host cell is present in a multicellular organism.
- 6. The biosensor of claim 4, wherein the host cell is a yeast.
- 7. The biosensor of claim 6, wherein the processing/transport segment comprises the first 60 amino acids of the yeast mam2 protein, and the coupling segment comprises the last 35 amino acids of the rat R17 receptor.
- 8. The method of claim 7, wherein the processing/transport segment comprises the first 61 amino acids of the rat RI7 olfactory receptor, and the coupling segment comprises the last 35 amino acids of the rat R17 receptor.
- 9. The biosensor of claim 1, wherein the at least one signaling pathway comprises a G-protein and an adenylate cyclase.
- 10. The biosensor of claim 1, wherein the at least one signal reporter is responsive to intracellular cAMP or Ca++ levels.
- 11. The biosensor of claim 10, wherein the at least one signal reporter is selected from the group consisting of a cyclic AMP-responsive GFP expression system, a cyclic AMP-responsive β-galactosidase expression system, a Ca++-responsive luminescence reporter system, a fluorescent cytosolic Ca++ indicator, and the electrophysiological detection of Ca++ influx.
- 12. The biosensor of claim 10, wherein the at least one signal reporter comprises GFP.
- 13. The biosensor of claim 1, wherein the at least one signaling pathway comprises a Golf protein, type III adenylyl cyclase, and the at least one signal reporter comprises CREB and CRE-driven GFP.
- 14. A method of constructing a biosensor, comprising transfecting one or more host cells to express the following components:
(a) at least one a chimeric olfactory receptor protein for binding olfactant; (b) at least one exogenous signaling pathway coupled to the at least one chimeric olfactory receptor for transducing a signal produced by the at least one chimeric olfactory receptor upon olfactant binding; and (c) at least one signal reporter coupled to the signaling pathway for producing a detectable phenomenon upon transduction of the olfactant binding signal by the signaling pathway, wherein the at least one chimeric olfactory receptor protein comprises:
(i) an olfactory receptor hypervariable segment which contains at least one olfactant binding site; (ii) a processing/transport segment which directs the processing and transport of the chimeric receptor in the host cell; and (iii) a coupling segment which couples the chimeric receptor to the at least one exogenous signaling pathway in the host cell.
- 15. The method of claim 14, wherein the processing/transport segment is located N-terminal to the olfactory receptor hypervariable segment, and the coupling segment is located C-terminal to the olfactory receptor hypervariable segment.
- 16. The method of claim 14, wherein the host cell is a yeast.
- 17. The method of claim 15, wherein the processing/transport segment comprises the first 60 amino acids of the yeast mam2 protein, and the coupling segment comprises the last 35 amino acids of the rat R17 receptor.
- 18. The method of claim 17, wherein the processing/transport segment comprises the first 61 amino acids of the rat RI7 olfactory receptor, and the coupling segment comprises the last 35 amino acids of the rat R17 receptor.
- 19. The method of claim 14, wherein the at least one exogenous signaling pathway comprises a G-protein and an adenylate cyclase.
- 20. The method of claim 14, wherein the at least one signal reporter is responsive to intracellular cAMP or Ca++ levels.
- 21. A method of identifying biosensors which can detect a selected olfactant, comprising the steps of
(1) providing at least one biosensor of claim 1;(2) contacting the at least one biosensor with the selected olfactant; and (3) observing whether said detectable phenomenon is produced from the signal reporter of said biosensor.
- 22. The method of claim 21, wherein the signal is detected by an apparatus comprising a measurement tool for detecting the detectable phenomenon and a computer controller for controlling operation of the measurement tool.
- 23. The method of claim 22, wherein the at least one biosensor is located in a fixed position on an array comprising a solid support.
- 24. The method of claim 22, wherein the at least one biosensor is located in a set pattern on a biochip comprising a solid substrate, optionally together with machine readable information encoded on the substrate identifying the location and type of the at least one biosensor.
- 25. The method of claim 21, wherein the apparatus is portable.
- 26. An apparatus capable of detecting the detectable phenomenon produced by a biosensor of claim 1, comprising a measurement tool for measuring the detectable phenomenon, a computer controller for controlling the measurement tool and at least one said biosensor.
- 27. The apparatus of claim 26, wherein the at least one biosensor is located in a fixed position on an array comprising a solid support.
- 28. The apparatus of claim 26, wherein the at least one biosensor is located in a set pattern on a biochip comprising a solid substrate, optionally together with machine readable information encoded on the substrate identifying the location and type of the at least one biosensor.
- 29. A method for detecting a selected olfactant in a sample, comprising:
(1) providing at least one biosensor of claim 1 capable of detecting the olfactant, wherein detection of the olfactant generates a detectable phenomenon from the signal reporter of said biosensor; (2) contacting said at least one biosensor with a sample suspected of containing the olfactant; and (3) observing whether said detectable phenomenon is produced from the signal reporter.
- 30. The method of claim 29, wherein said detectable phenomenon comprises fluorescence.
- 31. The method of claim 29, wherein the detectable phenomenon is detected by an apparatus comprising a measurement tool for detecting the detectable phenomenon and a computer controller for controlling operation of the measurement tool.
- 32. The method of claim 31, wherein the at least one biosensor is located in a fixed position on an array comprising a solid support.
- 33. The method of claim 31, wherein the at least one biosensor is located in a set pattern on a biochip comprising a solid substrate, optionally together with machine readable information encoded on the substrate identifying the location and type of the at least one biosensor.
- 34. The method of claim 31, wherein the apparatus is portable.
- 35. A vector adapted to receive an olfactory receptor hypervariable segment, said vector comprising a cloning cassette and nucleic acid sequences encoding a processing/transport segment which directs the efficient processing and transport of the chimeric receptor in a host cell, and a coupling segment which couples the chimeric receptor to an exogenous signaling pathway in a host cell.
- 36. The vector of claim 35, wherein the processing/transport segment is located N-terminal to the olfactory receptor hypervariable segment, and the coupling segment is located C-terminal to the olfactory receptor hypervariable segment.
- 37. The vector of claim 36, wherein the processing/transport segment comprises the first 61 amino acids of the rat RI7 olfactory receptor, and the coupling segment comprises the last 35 amino acids of the rat RI7 olfactory receptor.
- 38. The vector of claim 37, wherein the vector is pESCleu-RX-DH5α.
- 39. An expression vector comprising nucleic acid sequences encoding a chimeric olfactory receptor protein, wherein the chimeric olfactory receptor protein comprises a processing/transport segment which directs the efficient processing and transport of the chimeric receptor in the host cell, and a coupling segment which couples the chimeric receptor to an exogenous signaling pathway in the host cell.
- 40. The expression vector of claim 39, wherein the processing/transport segment is located N-terminal to the olfactory receptor hypervariable segment, and the coupling segment is located C-terminal to the olfactory receptor hypervariable segment.
- 41. The expression vector of claim 40, wherein the processing/transport segment comprises the first 61 amino acids of the rat RI7 olfactory receptor, and the coupling segment comprises the last 35 amino acids of the rat R17 receptor.
- 42. The expression vector of claim 41, wherein the vector is pESCleu-RI7-DH5α.
- 43. An expression vector library comprising a plurality of expression vectors of claim 39, which comprise different olfactory receptor hypervariable segments.
- 44. A library of biosensors comprising a plurality of biosensors of claim 1 which express different chimeric olfactory receptor proteins.
- 45. A method of constructing a library of biosensors, comprising transfecting a plurality of pre-biosensors with the expression vector library of claim 43 so that the pre-biosensors express differing chimeric olfactory receptors, wherein each pre-biosensors comprises:
(a) at least one exogenous signaling pathway coupled to a chimeric olfactory receptor for transducing a signal produced by the chimeric olfactory receptors upon olfactant binding; and (b) at least one signal reporter coupled to the signaling pathway for producing a detectable phenomenon upon transduction of the olfactant binding signal by the signaling pathway.
- 46. A host master cell comprising a host cell transfected with at least one exogenous cell signaling pathway.
- 47. The host master cell of claim 46, wherein the host cell is a yeast.
- 48. The host master cell of claim 47, wherein the exogenous signaling pathway comprises a G-protein and an adenylate cyclase.
- 49. The host master cell of claim 48, wherein the host master cell is WIF-1.
- 50. A pre-biosensor comprising the host master cell of claim 46 transfected with a signal reporter.
- 51. The pre-biosensor of claim 50, wherein the host master cell is a yeast.
- 52. The pre-biosensor of claim 50, wherein the signal reporter is responsive to intracellular cAMP or Ca++ levels.
- 53. The pre-biosensor of claim 52, wherein the pre-biosensor is WIF-1-α.
- 54. A kit comprising:
(1) one or more pre-biosensors of claim 50; and (2) one or more vectors adapted to receive an olfactory receptor hypervariable segment, said one or more vectors comprising a cloning cassette and nucleic acid sequences encoding an N-terminal segment and a C-terminal segment of a chimeric olfactory receptor, wherein the N-terminal segment directs the efficient processing and transport of the chimeric receptor in a host cell, and the C-terminal segment couples the chimeric receptor to an exogenous signaling pathway in a host cell.
- 55. The kit of claim 54, wherein the vectors further comprise nucleic acid sequences encoding an olfactory receptor protein hypervariable segment.
- 56. A chimeric olfactory receptor protein comprising an olfactory receptor hypervariable segment, a processing/transport segment which directs the efficient processing and transport of the chimeric receptor in the host cell, and a coupling segment which couples the chimeric receptor to an exogenous signaling pathway in the host cell.
- 57. The chimeric olfactory receptor protein of claim 56, wherein the processing/transport segment is located N-terminal to the olfactory receptor hypervariable segment, and the coupling segment is located C-terminal to the olfactory receptor hypervariable segment.
- 58. An array comprising a solid substrate and at least one biosensor of claim 1 arranged in a fixed position on the substrate.
- 59. A biochip comprising a solid substrate and at least one biosensor of claim 1 located in a set pattern on said substrate, optionally together with machine readable information encoded on the substrate identifying the location and type of the at least one biosensor on the substrate.
- 60. A portable container comprising at least one biosensor of claim 1.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the priority of copending U.S. Provisional Application Ser. No. 60/267,223 filed Feb. 8, 2001, the entire disclosure of which is herein incorporated by reference.
REFERENCE TO GOVERNMENT GRANT
[0002] The invention described herein was supported in part by the Department of Advance Research Agency (DARPA) of the Department of Defense, under grant no. N66001-00-C-8050. The government has certain rights in this invention.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US02/03809 |
2/8/2002 |
WO |
|
Provisional Applications (1)
|
Number |
Date |
Country |
|
60267223 |
Feb 2001 |
US |