Claims
- 1. A laser capture microdissection method, comprising:
providing a sample that is to undergo laser capture microdissection; positioning said sample within an optical axis of a laser capture microdissection instrument, said laser capture microdissection instrument including an illumination/laser beam delivery system; providing a transfer film carrier having a substrate surface and a laser capture microdissection transfer film coupled to said substrate surface; placing said laser capture microdissection transfer film in juxtaposition with said sample with a pressure sufficient to allow laser capture microdissection transfer of a portion of said sample to said laser capture microdissection transfer film, without forcing nonspecific transfer of a remainder of said sample to said laser capture microdissection film; then illuminating said sample with said illumination/laser beam delivery system; and then transferring a portion of said sample to said laser capture microdissection transfer film, without forcing nonspecific transfer of a remainder of said sample to said laser capture microdissection transfer film, with said illumination/laser beam delivery system.
- 2. The method of claim 1, wherein said illumination/laser beam delivery system includes a white light illuminator and the step of illuminating said sample includes illuminating said sample with said white light illuminator.
- 3. The method of claim 2, wherein illuminating said sample with said white light illuminator includes passing white light toward said transfer film carrier through both a dichroic mirror and a focusing lens.
- 4. The method of claim 3, further comprising superimposing a beam from a laser with white light illumination from said white light illuminator.
- 5. The method of claim 1, wherein said illumination/laser beam delivery system includes a laser capture microdissection optical train and the step of transferring a portion of said sample includes transferring a portion of said sample with said laser capture microdissection optical train.
- 6. The method of claim 5, wherein transferring a portion of said sample with said laser capture microdissection optical train includes reflecting a collimated beam with a beam steering mirror and then reflecting said collimated beam with a dichroic mirror through a focusing lens toward said transfer film carrier.
- 7. The method of claim 6, further comprising adjusting a beam spot size with said focusing lens, said beam spot size being defined by said collimated beam.
- 8. The method of claim 6, further comprising changing a beam diameter with a variable aperture, said beam diameter being defined by said collimated beam.
- 9. The method of claim 6, further comprising passing said collimated beam through an objective and then reflecting said collimated beam to a cut-off filter.
- 10. The method of claim 5, further comprising superimposing a beam from said laser capture microdissection optical train with white light illumination from a white light illuminator.
- 11. The method of claim 1, further comprising delivering optical information to an image acquisition system with said illumination/laser beam delivery system.
- 12. The method of claim 1, further comprising delivering optical information to an eyepiece assembly with said illumination/laser beam delivery system.
- 13. The method of claim 1, wherein said sample includes a fluorescent system, and, further comprising exciting said fluorescent system.
- 14. The method of claim 13, further comprising identifying at least a portion of said sample with light that excites said fluorescent system, before the step of transferring.
- 15. The method of claim 1, wherein illuminating said sample includes condensing a collimated beam of illumination light.
- 16. The method of claim 15, wherein illuminating said sample includes passing said collimated beam of illumination light through a beam splitter.
- 17. The method of claim 16, wherein transferring said portion of said sample includes injecting a laser beam by reflecting said laser beam with said beam splitter.
- 18. The method of claim 15, wherein said collimated beam of illumination light is obtained by collimating a diverging beam of illumination light with an aspheric lens.
- 19. The method of claim 18, wherein said diverging beam of illumination light is obtained from a fiber optic.
- 20. The method of claim 1, wherein the step of illuminating said sample includes scattering illumination light with a scattering media.
- 21. The method of claim 20, wherein scattering illumination light with said scattering media includes scattering illumination light with said transfer film carrier.
- 22. A laser capture microdissection instrument, comprising: an illumination/laser beam delivery system.
- 23. The laser capture microdissection instrument of claim 22, wherein said illumination/laser beam delivery system includes a white light illuminator.
- 24. The laser capture microdissection instrument of claim 23, wherein said illumination/laser beam delivery system includes a dichroic mirror optically coupled to said while light illuminator and a focusing lens optically coupled to said dichroic mirror.
- 25. The laser capture microdissection instrument of claim 24, wherein said illumination/laser beam delivery system includes a laser diode optically coupled to said focusing lens.
- 26. The laser capture microdissection instrument of claim 22, wherein said illumination/laser beam delivery system includes a laser capture microdissection optical train.
- 27. The laser capture microdissection instrument of claim 26, wherein said laser capture microdissection optical train includes a laser, a beam steering mirror optically coupled to said laser, a dichroic mirror optically coupled to said beam steering mirror, and a focusing lens optically coupled to said dichroic mirror.
- 28. The laser capture microdissection instrument of claim 27, wherein said laser capture microdissection optical train includes an objective optically coupled to said focusing lens and a cut-off filter optically coupled to said objective.
- 29. The laser capture microdissection instrument of claim 27, wherein said laser capture microdissection optical train includes a variable aperture optically coupled to said focusing lens.
- 30. The laser capture microdissection instrument of claim 27, wherein said laser capture microdissection optical train includes a stepped prism that can be optically coupled to said focusing lens.
- 31. The laser capture microdissection instrument of claim 27, wherein said illumination/laser beam delivery system includes a white light illuminator optically coupled to said dichroic mirror.
- 32. The laser capture microdissection instrument of claim 22, further comprising an image acquisition system optically coupled to said illumination/laser beam delivery system.
- 33. The laser capture microdissection instrument of claim 22, further comprising an eyepiece assembly optically coupled to said illumination/laser beam delivery system.
- 34. The laser capture microdissection instrument of claim 22, further comprising a fluorescent system optically coupled to said illumination/laser beam delivery system.
- 35. The laser capture microdissection instrument of claim 22, wherein said illumination/laser beam delivery system includes a condensing lens.
- 36. The laser capture microdissection instrument of claim 35, wherein said illumination/laser beam delivery system includes a beam splitter optically coupled to said condensing lens.
- 37. The laser capture microdissection instrument of claim 36, wherein said illumination/laser beam delivery system includes a laser optically coupled to said beam splitter.
- 38. The laser capture microdissection instrument of claim 37, wherein said illumination/laser beam delivery system includes a fiber optic optically coupled to said beam splitter.
- 39. The laser capture microdissection instrument of claim 22, wherein said illumination/laser beam delivery system includes a scattering media.
- 40. The laser capture microdissection instrument of claim 39, wherein said scattering media includes a transfer film carrier.
- 41. The laser capture microdissection instrument of claim 22, further comprising a translation stage coupled to said illumination/laser beam delivery system.
- 42. The laser capture microdissection instrument of claim 41, further comprising a manual joystick subsystem connected to said translation stage.
- 43. The laser capture microdissection instrument of claim 41, further comprising a vacuum chuck subsystem connected to said translation stage.
- 44. The laser capture microdissection instrument of claim 22, further comprising a transfer film carrier handling subsystem coupled to said illumination/laser beam delivery system.
- 45. An inverted microscope, comprising:
an illumination/laser beam delivery system.
- 46. The inverted microscope of claim 45, wherein said illumination/laser beam delivery system includes a white light illuminator.
- 47. The inverted microscope of claim 46, wherein said illumination/laser beam delivery system includes a dichroic mirror optically coupled to said white light illuminator and a focusing lens optically coupled to said dichroic mirror.
- 48. The inverted microscope of claim 47, wherein said illumination/laser beam delivery system includes a laser diode optically coupled to said focusing lens.
- 49. The inverted microscope of claim 45, wherein said illumination/laser beam delivery system includes a laser capture microdissection optical train.
- 50. The inverted microscope of claim 49, wherein said laser capture microdissection optical train includes a laser, a beam steering mirror optically coupled to said laser, a dichroic mirror optically coupled to said beam steering mirror, and a focusing lens optically coupled to said dichroic mirror.
- 51. The inverted microscope of claim 50, wherein said laser capture microdissection optical train includes an objective optically coupled to said focusing lens and a cut-off filter optically coupled to said objective.
- 52. The inverted microscope of claim 50, wherein said laser capture microdissection optical train includes a variable aperture optically coupled to said focusing lens.
- 53. The inverted microscope of claim 50, wherein said laser capture microdissection optical train includes a stepped prism that can be optically coupled to said focusing lens.
- 54. The inverted microscope of claim 50, wherein said illumination/laser beam delivery system includes a white light illuminator optically coupled to said dichroic mirror.
- 55. The inverted microscope of claim 45, further comprising an image acquisition system optically coupled to said illumination/laser beam delivery system.
- 56. The inverted microscope of claim 45, further comprising an eyepiece assembly optically coupled to said illumination/laser beam delivery system.
- 57. The inverted microscope of claim 45, further comprising a fluorescent system optically coupled to said illumination/laser beam delivery system.
- 58. The inverted microscope of claim 45, wherein said illumination/laser beam delivery system includes a condensing lens.
- 59. The inverted microscope of claim 58, wherein said illumination/laser beam delivery system includes a beam splitter optically coupled to said condensing lens.
- 60. The inverted microscope of claim 59, wherein said illumination/laser beam delivery system includes a laser optically coupled to said beam splitter.
- 61. The inverted microscope of claim 60, wherein said illumination/laser beam delivery system includes a fiber optic optically coupled to said beam splitter.
- 62. The inverted microscope of claim 45, wherein said illumination/laser beam delivery system includes a scattering media.
- 63. The inverted microscope of claim 62, wherein said scattering media includes a transfer film carrier.
- 64. The inverted microscope of claim 45, further comprising a translation stage coupled to said illumination/laser beam delivery system.
- 65. The inverted microscope of claim 64, further comprising a manual joystick subsystem connected to said translation stage.
- 66. The inverted microscope of claim 64, further comprising a vacuum chuck subsystem connected to said translation stage.
- 67. The inverted microscope of claim 45, further comprising a transfer film carrier handling subsystem coupled to said illumination/laser beam delivery system.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of U.S. Ser. No. 09/617,742, filed Jul. 17, 2000, which is a continuation of U.S. Ser. No. 09/121,635, filed Jul. 23, 1998, now U.S. Pat. No. 6,215,550, which is a continuation of U.S. Ser. No. 09/018,452, filed Feb. 4, 1998 , and claims benefit of both U.S. Ser. No. 60/060,731, filed Oct. 1, 1997 and U.S. Ser. No. 60/037,864, filed Feb. 7, 1997, the entire contents of all of which are hereby incorporated herein by reference as if fully set forth herein.
Provisional Applications (2)
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Number |
Date |
Country |
|
60060731 |
Oct 1997 |
US |
|
60037864 |
Feb 1997 |
US |
Divisions (1)
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Number |
Date |
Country |
Parent |
09617742 |
Jul 2000 |
US |
Child |
10272879 |
Oct 2002 |
US |
Continuations (2)
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Number |
Date |
Country |
Parent |
09121635 |
Jul 1998 |
US |
Child |
09617742 |
Jul 2000 |
US |
Parent |
09018452 |
Feb 1998 |
US |
Child |
09121635 |
Jul 1998 |
US |