Claims
- 1. A method for simultaneously conducting a plurality of micro-volume reactions, the method comprising:
(a) introducing a plurality of liquid samples into the sample chambers of a microhole apparatus, wherein the samples contain necessary reaction components; and (b) placing the apparatus into an environment favorable to the reaction; wherein the microhole apparatus comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and holds a sample such that the sample is in the form of a thin film such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and wherein the sample chamber has a height to width ratio of less than 1:1, wherein the height of the sample chamber is measured from one face of the substrate to the other.
- 2. The method of claim 1, wherein the apparatus is substantially free of contaminating amplifiable polynucleotides.
- 3. The method of claim 1, wherein the reactions are selected from the group consisting of ligation reactions, primer extension reactions, nucleotide sequencing reactions, restriction endonuclease digestions, biological interactions, oligonucleotide synthesis reactions, and polynucleotide hybridization reactions.
- 4. The method of claim 3, wherein the biological interactions are selected from the group consisting of avidin-biotin interactions, streptavidin-biotin interactions, antigen-antibody interactions, hapten-antibody interactions and ligand-receptor interactions.
- 5. The method according to claim 1 wherein the environment is selected from the group consisting of a hydrophobic medium and a humidified chamber.
- 6. The method according to claim 1, wherein results of the reactions are monitored.
- 7. The method according to claim 6 wherein the results are monitored by a method selected from the group consisting of optical monitoring, mass spectrometry and electrophoresis.
- 8. The method according to claim 1, wherein progress of the reactions are monitored during the course of the reactions.
- 9. The method according to claim 1, wherein one or more of the reactions are supplemented with one or more reagents during the course of the reaction.
- 10. The method according to claim 1, wherein a reaction component is affixed to the substrate.
- 11. The method according to claim 10 wherein the environment is selected from the group consisting of a hydrophobic medium and a humidified chamber.
- 12. A method for adding a component to a micro-volume reaction, wherein the method comprises the steps of:
(a) providing a first apparatus comprising a first sample chamber containing a reaction mixture; (b) providing a second apparatus comprising a second sample chamber containing the component; and (c) bringing the apparatuses into proximity such that liquid contact is established between the first sample chamber and the second sample chamber; wherein each apparatus comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is in the form of a thin film such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and wherein the sample chamber has a height to width ratio of less than 1:1, wherein the height of the sample chamber is measured from one face of the substrate to the other.
- 13. The method according to claim 12 wherein multiple components are added to a reaction, by providing additional apparatuses, wherein each of the components is present in a sample chamber of an apparatus.
- 14. The method according to claim 13, wherein the apparatuses are brought into proximity such that liquid contact is established between corresponding sample chambers of the apparatuses.
- 15. A method for simultaneously adding a component to a plurality of micro-volume reactions wherein, in the method according to claim 12, the apparatuses are brought into proximity such that liquid contact is established between corresponding sample chambers of the apparatuses.
- 16. The method of claim 12, wherein the component is a nucleic acid.
- 17. A method for adding a nucleic acid to a micro-volume reaction, wherein the method comprises the steps of:
(a) providing a first apparatus comprising a first sample chamber containing a reaction mixture; (b) providing a second apparatus comprising a second sample chamber containing the nucleic acid; and (c) bringing the apparatuses into proximity such that liquid contact is established between the first sample chamber and the second sample chamber; wherein each apparatus comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 18. A method for introducing a liquid sample into a sample chamber, wherein the method comprises the steps of:
(a) contacting an apparatus with a liquid solution; and (b) removing the apparatus from the solution; wherein the apparatus comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is in the form of a thin film such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and wherein the sample chamber has a height to width ratio of less than 1:1, wherein the height of the sample chamber is measured from one face of the substrate to the other.
- 19. A method for introducing a liquid sample comprising a nucleic acid into a sample chamber, wherein the method comprises the steps of:
(a) contacting an apparatus with a liquid solution comprising a nucleic acid; and (b) removing the apparatus from the solution; wherein the apparatus comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 20. A method for diluting a solution, wherein the method comprises the steps of:
(a) providing a first apparatus comprising a first sample chamber containing the solution (b) providing a second apparatus comprising a second sample chamber containing a diluent; and (c) bringing the apparatuses into proximity such that liquid contact is established between the first sample chamber and the second sample chamber; wherein each of the apparatuses comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is in the form of a thin film such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and wherein the sample chamber has a height to width ratio of less than 1:1, wherein the height of the sample chamber is measured from one face of the substrate to the other.
- 21. A method for simultaneously diluting a plurality of solutions wherein, in the method of claim 20, the apparatuses are brought into proximity such that liquid contact is established between corresponding sample chambers of the apparatuses.
- 22. The method according to claim 20, wherein steps (b) through (c) are repeated one or more times using a new second apparatus containing fresh solvent at each repetition of step (b).
- 23. A method for diluting a solution comprising a nucleic acid, wherein the method comprises the steps of:
(a) providing a first apparatus comprising a first sample chamber containing the solution which comprises a nucleic acid; (b) providing a second apparatus comprising a second sample chamber containing a diluent; and (c) bringing the apparatuses into proximity such that liquid contact is established between the first sample chamber and the second sample chamber; wherein each of the apparatuses comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 24. A method for simultaneously diluting a plurality of solutions comprising nucleic acids wherein, in the method of claim 23, the apparatuses are brought into proximity such that liquid contact is established between corresponding sample chambers of the apparatuses.
- 25. The method according to claim 23, wherein steps (b) through (c) are repeated one or more times using a new second apparatus containing fresh solvent at each repetition of step (b).
- 26. A method for selective retention of a molecule in a first sample chamber, wherein the method comprises the steps of:
(a) providing a first apparatus, wherein the first sample chamber contains a solution comprising the molecule and one or more additional solute molecules of higher diffusibility; (b) providing a second apparatus comprising a second sample chamber containing a solvent; (c) bringing the apparatuses into proximity such that liquid contact is established between the first sample chamber and the second sample chamber; and (d) removing the apparatuses from proximity; wherein each of the apparatuses comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is in the form of a thin film such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and wherein the sample chamber has a height to width ratio of less than 1:1, wherein the height of the sample chamber is measured from one face of the substrate to the other.
- 27. The method according to claim 26, wherein steps (b) through (d) are repeated one or more times using a new second apparatus containing fresh solvent at each repetition of step (b).
- 28. The method according to claim 26 wherein the method is used for desalting a solution.
- 29. The method according to claim 28, wherein steps (b) through (d) are repeated one or more times using a new second apparatus containing fresh solvent at each repetition of step (b).
- 30. A method for simultaneously desalting a plurality of solutions, wherein, in the method of claim 26, the apparatuses are brought into proximity such that liquid contact is established between corresponding sample chambers of the apparatuses.
- 31. A method for selective retention of a nucleic acid in a first sample chamber, wherein the method comprises the steps of:
(a) providing a first apparatus, wherein the first sample chamber contains a solution comprising the nucleic acid and one or more additional solute molecules of higher diffusibility; (b) providing a second apparatus comprising a second sample chamber containing a solvent; (c) bringing the apparatuses into proximity such that liquid contact is established between the first sample chamber and the second sample chamber; and (d) removing the apparatuses from proximity; wherein each of the apparatuses comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 32. The method according to claim 31, wherein steps (b) through (d) are repeated one or more times using a new second apparatus containing fresh solvent at each repetition of step (b).
- 33. The method according to claim 31 wherein the method is used for desalting a solution comprising a nucleic acid.
- 34. The method according to claim 33, wherein steps (b) through (d) are repeated one or more times using a new second apparatus containing fresh solvent at each repetition of step (b).
- 35. A method for simultaneously desalting a plurality of solutions comprising a nucleic acid, wherein, in the method of claim 31 the apparatuses are brought into proximity such that liquid contact is established between corresponding sample chambers of the apparatuses.
- 36. A method for parallel electrophoretic analysis of a plurality of micro-volume reactions, wherein the method comprises:
(a) conducting the reactions in a microhole apparatus; (b) placing the apparatus in contact with an electrophoresis medium; and (c) conducting electrophoresis; wherein the apparatus comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 37. The method according to claim 36, wherein the apparatus is placed with one face in contact with the electrophoresis medium.
- 38. The method according to claim 37, wherein the electrophoresis medium is contained within the sample chambers of one or more additional apparatuses, wherein each additional apparatus comprises a substrate, wherein the substrate comprises an upper face and a lower face, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(a) extends through the substrate, (b) comprises one or more walls and an opening on each face of the substrate, and (c) holds a sample in the form of a thin film; such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 39. The method according to claim 38, wherein, in the additional apparatuses, corresponding sample chambers are aligned.
- 40. A method for preparing a plurality of samples for mass spectrometric analysis, wherein the samples are placed in an apparatus that comprises a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(a) extends through the substrate; (b) comprises one or more walls and an opening at each end; and (c) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 41. The method according to claim 40, wherein the analysis is by matrix assisted laser desorption ionization time-of-flight (MALDI-TOF) spectrometry.
- 42. The method according to claim 41, wherein the analysis is used to detect a genetic polymorphism.
- 43. The method according to claim 42 wherein detection is by single base primer extension.
- 44. A method for mixing a plurality of micro-volume samples, the method comprising:
(a) providing a first microhole apparatus comprising a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; (b) providing a second microhole apparatus comprising a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(i) extends through the substrate; (ii) comprises one or more walls and an opening at each end; and (iii) holds a sample such that the sample is retained in the apparatus through surface tension and such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and (c) bringing the apparatuses into proximity such that liquid contact is established between more than one sample chamber from the first apparatus and a sample chamber in the second apparatus.
- 45. An apparatus for containing multiple micro-volume liquid samples comprising a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(a) extends through the substrate, (b) comprises one or more walls and an opening at each end, and (c) holds a sample such that the sample is in the form of a thin film such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and wherein the sample chamber has a height to width ratio of less than 1:1, wherein the height of the sample chamber is measured from one face of the substrate to the other.
- 46. An apparatus according to claim 45 wherein the substrate comprises hydrophobic regions, wherein the hydrophobic regions are located on the substrate such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber.
- 47. An apparatus according to claim 46, wherein the substrate comprises an upper face and a lower face.
- 48. An apparatus according to claim 47, wherein the through axes of the sample chambers are perpendicular to both faces of the substrate.
- 49. An apparatus according to claim 48, wherein the sample chamber has the shape of a right circular cylinder.
- 50. An apparatus according to claim 48, wherein the sample chamber has the shape of a right polygonal prism.
- 51. An apparatus according to claim 46, wherein the hydrophobic regions are located on the upper and lower faces of the substrate such that the openings of at least one sample chamber from at least one adjacent sample chamber by a hydrophobic region.
- 52. An apparatus according to claim 51, wherein additional hydrophobic regions are located on the walls of the sample chambers.
- 53. An apparatus according to claim 46, wherein hydrophobic regions are located on the walls of the sample chambers.
- 54. An apparatus according to claim 53, wherein the hydrophobic region forms an annular ring along the wall of the sample chamber.
- 55. An apparatus according to claim 53, comprising two or more hydrophobic regions, each forming an annular ring along the wall of the sample chamber, wherein the hydrophobic regions define one or more annular non-hydrophobic rings therebetween.
- 56. An apparatus according to claim 45 farther comprising at least one component of a reaction to be carried out in the apparatus.
- 57. An apparatus according to claim 45 wherein a reaction component is affixed to the substrate.
- 58. An apparatus according to claim 45, wherein the component is a reagent used in a nucleotide sequencing reaction.
- 59. An apparatus according to claim 45 wherein the component is one used in a hybridization reaction.
- 60. An apparatus according to claim 46, wherein the component is a reagent used in a nucleotide sequencing reaction.
- 61. An apparatus according to claim 46 wherein the component is one used in a hybridization reaction.
- 62. An apparatus according to claim 45, wherein the apparatus is substantially free from contaminating amplifiable polynucleotides.
- 63. A kit comprising an apparatus for containing multiple micro-volume liquid samples comprising a substrate, wherein the substrate defines a plurality of sample chambers, wherein each sample chamber:
(a) extends through the substrate, (b) comprises one or more walls and an opening at each end, and (c) holds a sample such that the sample is in the form of a thin film such that a liquid sample present in one sample chamber does not intermix with a liquid sample present in another sample chamber; and wherein the sample chamber has a height to width ratio of less than 1:1, wherein the height of the sample chamber is measured from one face of the substrate to the other; and further comprising a reaction component packaged in a suitable container.
- 64. The kit according to claim 63, wherein the reaction component is a reagent for performing a reaction selected from the group consisting of ligation reactions, primer extension reactions, nucleotide sequencing reactions, restriction endonuclease digestions, oligonucleotide synthesis, hybridization reactions and biological interactions.
- 65. A kit according to claim 63, further comprising a hydrophobic substance to be used with the apparatus.
- 66. A kit according to claim 65, wherein the hydrophobic substance is a hydrophobic fluid packaged in a suitable container.
- 67. A kit according to claim 65, wherein the hydrophobic substance is a hydrophobic cover.
- 68. A kit according to claim 63, further comprising a chamber for maintaining the appropriate environmental conditions for a reaction to be carried out in the apparatus.
- 69. A kit according to claim 63, further comprising an apparatus for loading samples into the sample chambers.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application Ser. No. 60/229,357, filed Feb. 18, 2000, the disclosure of which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60229357 |
Feb 2000 |
US |