Claims
- 1. A fluorescent microsphere comprised of a plurality of fluorescent nanocrystals physically entrapped in a polymeric microsphere, wherein the fluorescent nanocrystals are functionalized with a plurality of molecules selected from the group consisting of carboxylic acid, diaminocarboxylic acid, monoaminocarboxylic acid, and a combination thereof.
- 2. The fluorescent microsphere according to claim 1, wherein the polymeric microsphere comprises multiple molecules of reactive functionality comprising a free chemical group.
- 3. The fluorescent microsphere according to claim 1, wherein physically entrapped in the polymeric microsphere is a homogenous population of fluorescent nanocrystals.
- 4. The fluorescent microsphere according to claim 1, wherein physically entrapped in the polymeric microsphere is a heterogeneous population of fluorescent nanocrystals.
- 5. The fluorescent microsphere according to claim 2, further comprising affinity ligand operably bound thereto.
- 6. The fluorescent microsphere according to claim 1, wherein the fluorescent nanocrystals have an average particle size of approximately 1 nm to approximately 20 nm.
- 7. The fluorescent microsphere according to claim 1, wherein the fluorescent nanocrystals comprise semiconductor nanocrystals.
- 8. The fluorescent microsphere according to claim 7, wherein the fluorescent nanocrystals have a particle size that varies by less than 4%.
- 9. The fluorescent microsphere according to claim 1, wherein the fluorescent nanocrystals comprise doped metal oxide nanocrystals.
- 10. The fluorescent microsphere according to claim 9, wherein the fluorescent microsphere is magnetic.
- 11. The fluorescent microsphere according to claim 1, wherein the polymeric microsphere further comprises carbon black in a weight percentage of from about 0.5 to about 5.
- 12. The fluorescent microsphere according to claim 1, wherein the polymeric microsphere comprises a combination of a polymeric material and a magnetic material selected from the group consisting of a polymeric material into which is embedded the magnetic material, a magnetic material core and a polymeric material coating, a polymeric material coating over the magnetic layer, and a magnetic material dispersed within a polymeric material.
- 13. The fluorescent microsphere according to claim 3, wherein the homogenous population of fluorescent nanocrystals, when excited with an excitation light source, emit a fluorescence signal pattern observable as a single color.
- 14. The fluorescent microsphere according to claim 4, wherein the heterogeneous population of fluorescent nanocrystals, when excited with an excitation light source, emit a fluorescence signal pattern observable as more than one color.
- 15. The fluorescent microsphere according to claim 14, wherein the fluorescence signal pattern comprises multicolor fluorescence and detectably distinguishable intensities.
- 16. The fluorescent microsphere according to claim 15, wherein a code representative of the fluorescence signal pattern, and of the fluorescent microsphere which emits the fluorescence signal pattern, comprises an identifier for each color comprising the fluorescence signal pattern, and an identifier for the intensity of each color.
- 17. The fluorescent microsphere according to claim 16, wherein the code comprises a string of numbers.
- 18. A code representative of the fluorescence microsphere according to claim 16.
- 19. A code representative of the fluorescence microsphere according to claim 17.
- 20. A kit comprising one or more containers, wherein the one or more containers is selected from the group consisting of a container having contents comprising fluorescence microspheres capable of fluorescing a specific fluorescence pattern, and a plurality of containers with each container having contents comprising fluorescence microspheres capable of fluorescing a specific fluorescence pattern different than the specific fluorescence pattern of other contents of the plurality of containers; wherein a fluorescent microsphere is comprised of a plurality of fluorescent nanocrystals physically entrapped in a polymeric microsphere, and wherein the fluorescent nanocrystals are functionalized with a plurality of molecules selected from the group consisting of carboxylic acid, diaminocarboxylic acid, monoaminocarboxylic acid, and a combination thereof.
- 21. The kit according to claim 20 wherein the fluorescent microspheres are selected from the group consisting of fluorescent microspheres with reactive functionalities, fluorescent microspheres further comprising affinity ligand operably bound thereto, and a combination thereof.
- 22. The kit according to claim 20, wherein the kit comprises a single container, and the container has contents comprising fluorescent microspheres capable of fluorescing a specific fluorescence pattern comprising a single color when excited by an excitation light source.
- 23. The kit according to claim 20, wherein the kit comprises a plurality of containers with each container having contents comprising fluorescence microspheres capable of fluorescing a specific fluorescence pattern comprising a color different than the specific fluorescence pattern of contents of other containers of the plurality of containers.
- 24. A method of producing a fluorescent microsphere comprised of a plurality of fluorescent nanocrystals embedded in a polymeric microsphere, wherein the method comprises:
exposing the polymeric microsphere under suitable conditions to cause swelling, and an increase in size of pores, of the polymeric microspheres, and for allowing the fluorescent nanocrystals to enter into the pores of the swelled polymeric microspheres; and exposing the swelled polymeric microspheres to suitable conditions to cause the polymeric micropsheres to become unswollen in decreasing size of the pores, thereby physically entrapping fluorescent nanocrystals which may be present in the pores.
- 25. The method according to claim 24, wherein the suitable conditions for swelling the polymeric microspheres comprises a temperature sufficient to soften a polymeric composition of the polymeric microspheres, and wherein the temperature is below a melting point of the polymer composition.
- 26. The method according to claim 25, wherein the suitable conditions for unswelling the polymeric microspheres comprises reducing the temperature to a temperature sufficient to decrease the pore size for physically entrapping fluorescent nanocrystals.
- 27. The method according to claim 25, wherein the suitable conditions further comprises pressurizing the polymeric microspheres to a pressure above atmospheric pressure.
- 28. The method according to claim 27, wherein the suitable conditions for unswelling the polymeric microspheres comprises reducing the temperature to a temperature sufficient to decrease the pore size for physically entrapping fluorescent nanocrystals, and reducing the pressure to atmospheric pressure.
- 29. The method according to claim 24, wherein the suitable conditions for swelling the polymeric microspheres comprises contacting the polymeric microspheres with an organic medium comprising one or more organic solvents which are able to swell the polymeric microspheres.
- 30. The method according to claim 29, wherein the suitable conditions for unswelling the polymeric microspheres comprises removing the organic medium from contact with the polymeric microspheres.
- 31. The method according to claim 24, wherein the polymeric microsphere comprises multiple molecules of reactive functionality comprising a free chemical group.
- 32. The method according to claim 24, wherein physically entrapped in the polymeric microsphere is a homogenous population of fluorescent nanocrystals.
- 33. The method according to claim 24, wherein physically entrapped in the polymeric microsphere is a heterogeneous population of fluorescent nanocrystals.
- 34. The method according to claim 24, wherein the fluorescent microsphere further comprises affinity ligand operably bound thereto.
- 35. The method according to claim 24, wherein the fluorescent nanocrystals have an average particle size of approximately 1 nm to approximately 20 nm.
- 36. The method according to claim 24, wherein the fluorescent nanocrystals comprise semiconductor nanocrystals.
- 37. The method according to claim 24, wherein the fluorescent nanocrystals have a particle size that varies by less than 4%.
- 38. The method according to claim 24, wherein the fluorescent nanocrystals comprise doped metal oxide nanocrystals.
- 39. The method according to claim 38, wherein the fluorescent microsphere is magnetic.
- 40. The method according to claim 24, wherein the polymeric microsphere further comprises carbon black in a weight percentage of from about 0.5 to about 5.
- 41. The method according to claim 24, wherein the polymeric microsphere comprises a combination of a polymeric material and a magnetic material selected from the group consisting of a polymeric material into which is embedded the magnetic material, a magnetic material core and a polymeric material coating, a polymeric material coating over the magnetic layer, and a magnetic material dispersed within a polymeric material.
- 42. A method of using fluorescent microspheres for determining the presence or absence of a predetermined number of analytes in a sample, wherein a fluorescent microsphere comprises a plurality of fluorescent nanocrystals embedded in a polymeric microsphere and further comprises affinity ligand operably bound to the fluorescent microsphere, the method comprising:
(a) contacting the fluorescent microspheres with the sample under suitable conditions for affinity ligand of the fluorescent microspheres to bind the predetermined number of analytes, if present in the sample, in forming complexes; (b) exposing the complexes, if formed, to an excitation wavelength light source suitable for exciting the fluorescent microspheres of the complexes to emit a fluorescence signal pattern; and (c) detecting the fluorescence signal pattern emitted by the complexes, if present, by a detection means for detecting the fluorescence signal pattern; wherein detection of the fluorescent signal pattern is indicative of the presence of an analyte of the predetermined number of analytes.
- 43. The method according to claim 42, wherein the presence of an analyte is detected, and the method further comprises quantitating an amount of the analyte detected by measuring the intensity of the fluorescence signal pattern emitted from the fluorescent microspheres bound to the analyte.
- 44. The method according to claim 42, wherein the method is performed using a fluorescent detection system selected from the group consisting of an affinity-based assay, fluorescence-based immunoassay, fluorescent staining, flow cytometry, a hybridization-based assay, and combinatorial analysis.
- 45. The method according to claim 42, wherein the fluorescence signal pattern comprises one or more fluorescence emission peaks, wherein each peak has a narrow spectral band in a range of from about 400 nm to about 800 nm.
- 46. The method according to claim 42, wherein the excitation wavelength light source for exciting the fluorescent microspheres is a wavelength spectrum in the range of about 300 nm to about 486 nm.
- 47. The method according to claim 42, wherein the detection means is selected from the group consisting of a photodetector, a filter, a charge couple device camera, a fluorimeter, a fluorescence microscope, a fluorescence cube, a computer for manipulating fluorescence signal pattern data collected, and a combination thereof.
Parent Case Info
[0001] This is a continuation-in-part application based on co-pending U.S. Ser. No. 09/436,145 which is a nonprovisional application based on U.S. Serial No. 60/107,829, the disclosures of which are herein incorporated by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60107829 |
Nov 1998 |
US |
Continuations (1)
|
Number |
Date |
Country |
| Parent |
09633953 |
Aug 2000 |
US |
| Child |
10367063 |
Feb 2003 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
| Parent |
09436145 |
Nov 1999 |
US |
| Child |
09633953 |
Aug 2000 |
US |