Claims
- 1. A system for holding at least one of sample and reagent for analysis, the system comprising:
a pair of parallel covers, at least one of which is light transmissive, of which pair a light transmissive cover forms a top, and of which pair the other forms a bottom; a frame disposed between the covers to define, in relation to the covers, an interior volume, the frame and the covers associated with one another to form a case, the case being substantially tight to liquids; and a microfluidic array disposed in the interior volume, the array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces, the through-holes containing at least one of sample and reagent.
- 2. The system according to claim 1, further comprising:
spacer means for providing space between at least one of the covers and at least a portion of the array.
- 3. The system according to claim 2, wherein the spacer means includes a plurality of beads affixed to at least one of (i) the array and (ii) at least one of the covers.
- 4. The system according to claim 2, wherein the spacer means includes an increase in thickness of the array over a defined set of locations thereof.
- 5. The system according to claim 1, wherein one or more positioning guide rails are affixed to at least one of (i) the frame and ii) at least one of the covers.
- 6. The system according to claim 1, wherein the array includes a recess at an opening of each of through-holes, the recess preventing fluid in each through-hole from coming into contact with a cover to which each such throughhole is proximate.
- 7. The system according to claim 1, wherein the dimensions of the case are approximately 25×75×<2 mm, so that it has the approximate size and shape of a microscope slide.
- 8. The system according to claim 2, wherein the top cover and the spacer means are dimensioned to provide a distance of less than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 9. The system according to claim 2, wherein the top cover and the spacer means are dimensioned to provide a distance of greater than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 10. The system according to claim 1, further comprising:
an encapsulation fluid, which reduces interactions between contents of distinct through-holes, disposed in the interior volume.
- 11. The system according to claim 10, wherein the encapsulation fluid is a liquid at room temperature, having a specific gravity greater than 1, and is substantially insoluble in water.
- 12. The system according to claim 10, wherein the encapsulation fluid is selected from the group consisting of mineral oil, silicon oil, and a fluorinated hydrocarbon.
- 13. The system according to claim 10, wherein the encapsulation fluid has been sparged to remove air from the encapsulated fluid.
- 14. The system according to claim 10, wherein the encapsulation fluid includes at least one of an osmolyte, polymer, and an amino acid.
- 15. The system according to claim 1, wherein the frame includes walls defining a hole, the hole filled with a self-sealing material.
- 16. The system according to claim 15, wherein the frame is a gasket that can be penetrated by a syringe.
- 17. The system according to claim 15, wherein the self-sealing material is a grease.
- 18. The system according to claim 1, wherein at least one of the array and the case includes an identifier.
- 19. The system according to claim 18, wherein the identifier is a barcode.
- 20. The system according to claim 1, wherein the frame and the covers are coupled together to form the case by at least one of an epoxy, an adhesive gasket, and a compression gasket.
- 21. The system according to claim 1, wherein the at least one cover of which is light transmissive is coated with a hydrophilic layer to prevent fogging.
- 22. A system for holding at least one of sample and reagent for analysis, the system comprising:
a pair of parallel covers, at least one of which is light transmissive, of which pair a light transmissive cover forms a top, and of which pair the other forms a bottom; a frame disposed between the covers to define, in relation to the covers, an interior volume, the frame and the covers associated with one another to form a case, the case having a sealable opening, such opening when sealed rendering the case substantially tight to liquids; and a microfluidic array, disposed in the interior volume and removable via the opening, the array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces, the through-holes containing at least one of sample and reagent.
- 23. The system according to claim 22, further comprising:
spacer means for providing space between at least one of the covers and at least a portion of the array.
- 24. The system according to claim 23, wherein the spacer means includes a plurality of beads affixed to one of (i) the array and (ii) at least one of the covers.
- 25. The system according to claim 23, wherein the spacer means includes an increase in thickness of the array over a defined set of locations thereof.
- 26. The system according to claim 22, wherein one or more positioning guide rails are affixed to at least one of (i) the frame and ii) at least one of the covers.
- 27. The system according to claim 22, wherein the array includes a recess at an opening of each of through-holes, the recess preventing fluid in each through-hole from coming into contact with a cover to which each such through-hole is proximate.
- 28. The system according to claim 22, wherein the dimensions of the case are approximately 25×76×<2 mm, so that it has the approximate size and shape of a microscope slide.
- 29. The system according to claim 23, wherein the top cover and the spacer means are dimensioned to provide a distance of less than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 30. The system according to claim 23, wherein the top cover and the spacer means are dimensioned to provide a distance of greater than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 31. The system according to claim 22, further comprising:
one of a UV curable sealent and a grease for sealing the opening.
- 32. The system according to claim 22, wherein the frame includes walls defining a hole, the hole filled with a self-sealing material.
- 33. The system according to claim 32, wherein the frame is a gasket that can be penetrated by a syringe.
- 34. The system according to claim 32, wherein the self-sealing material is a grease.
- 35. The system according to claim 22, wherein the frame and the covers are coupled together to form the case by at least one of an epoxy, an adhesive gasket, and a compression gasket.
- 36. The system according to claim 22, further comprising a funnel guide coupled to the case, the array capable of being inserted into the case by passing the array through the funnel guide and the opening.
- 37. The system according to claim 36, wherein the funnel guide is removable attached to the case.
- 38. The system according to claim 36, wherein the funnel guide includes walls defining a slit, the array capable of being passed through the slit.
- 39. The system according to claim 38, wherein liquid is substantially prevented from passing through the slit in the absence of the array due to, at least in part, surface energy.
- 40. The system according to claim 38, wherein the walls defining the slit are capable of being deformed to allow the array to pass through the slit.
- 41. The system according to claim 40, wherein the walls defining the slit are made of plastic.
- 42. The system according to claim 38, wherein the slit is capable of being opened and closed.
- 43. The system according to claim 36, wherein the funnel guide includes brushes for spreading of the at least one of sample and reagent.
- 44. The system according to claim 22, wherein the at least one cover of which is light transmissive is coated with a hydrophilic layer to prevent fogging.
- 45. The system according to claim 22, wherein at least one of the frame and the covers includes a hydrophilic strip for promoting spreading of sample during array loading.
- 46. The system according to claim 22, wherein at least one of the array and the case includes an identifier.
- 47. The system according to claim 45, wherein the identifier is a barcode.
- 48. A system for holding at least one of sample and reagent for analysis, the system comprising:
a case having an interior volume and an opening; a microfluidic array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces, the through-holes containing at least one of sample and reagent; a funnel guide coupled to the case, the array capable of being inserted into the interior volume of the case by passing the array through the funnel guide and the opening.
- 49. The system according to claim 48, wherein the funnel guide is removably attached to the case.
- 50. The system according to claim 48, wherein the funnel guide includes walls defining a slit, the array capable of being passed through the slit.
- 51. The system according to claim 50, wherein liquid is substantially prevented from passing through the slit in the absence of the array due to, at least in part, surface energy.
- 52. The system according to claim 50, wherein the walls defining the slit are capable of being deformed to allow the array to pass through the slit.
- 53. The system according to claim 52, wherein the walls defining the slit are made of plastic.
- 54. The system according to claim 50, wherein the slit is capable of being opened and closed.
- 55. The system according to claim 48, wherein the funnel guide includes brushes for spreading of sample.
- 56. A method of conducting an assay on a plurality of samples, the method comprising:
providing a microfluidic array, the array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces, each of the through-holes containing one of the samples and at least one reagent providing an optical effect for assay purposes; placing the array in a case, the case including a pair of parallel covers, at least one of which is light transmissive, of which pair a light transmissive cover forms a top, and of which pair the other forms a bottom; a frame disposed between the covers to define, in relation to the covers, an interior volume for receiving the array, wherein the case is substantially tight to liquids; permitting in each of the through-holes the corresponding sample to react with the at least one reagent therein; obtaining a measurement, through the top cover, for each through-hole, of the optical effect associated therewith and using the measurement to provide assay results for the corresponding sample therein.
- 57. The method according to claim 56, wherein placing the array in the case further includes placing an encapsulation fluid, which reduces interactions between contents of distinct through-holes, in the interior volume.
- 58. The method according to claim 56, wherein the case further includes:
spacer means for providing space between at least one of the covers and at least a portion of the array.
- 59. The method according to claim 58, wherein the spacer means includes a plurality of beads affixed to one of (i) the array and (ii) at least one of the covers.
- 60. The method according to claim 58, wherein the spacer means includes an increase in thickness of the array over a defined set of locations thereof.
- 61. The method according to claim 56, further including positioning means for positioning the array between at least one of the i) frame and ii) at least one of the covers, so as to ensure proper separation between the array and the case.
- 62. The method according to claim 61, wherein the positioning means includes one or more guide rails affixed to at least one of the i) frame and ii) at least one of the covers.
- 63. The method according to claim 56, wherein the array includes a recess at an opening of each of through-holes, the recess preventing fluid in each through-hole from coming into contact with a cover to which each such through-hole is proximate.
- 64. The method according to claim 56, wherein the dimensions of the case are approximately 25×75×<2 mm, so that it has the approximate size and shape of a microscope slide.
- 65. The method according to claim 56, wherein the top cover and the spacer means are dimensioned to provide a distance of less than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 66. The method according to claim 56, wherein the top cover and the spacer means are dimensioned to provide a distance of greater than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 67. The method according to claim 56, wherein the at least one reagent permits effectuation of a PCR assay.
- 68. The method according to claim 56, wherein the PCR assay is a QPCR assay.
- 69. The method according to claim 56, wherein the at least one reagent permits effectuation of an ELISA assay.
- 70. The method according to claim 56, wherein permitting in each of the through-holes the corresponding sample to react with the at least one reagent therein includes placing the case on a thermal cycler.
- 71. The method according to claim 57, wherein the encapsulation fluid is a liquid having a specific gravity greater than 1, the method further comprising:
providing at least one vessel holding (i) the encapsulation fluid as a lower layer therein and (ii) at least one of the samples as an upper layer therein; immersing the array in the at least one vessel, so that through-holes are exposed to the at least one of the samples before coming into contact with encapsulation fluid.
- 72. The method according to claim 71, wherein the at least one vessel includes materials that are used to form the case.
- 73. The method according to claim 71, wherein the at least one vessel includes a funnel guide that holds at least one of the samples as the upper layer therein.
- 74. The method according to claim 73, wherein the funnel guide includes walls defining a slit, the array capable of being passed through the slit.
- 75. The method according to claim 74, wherein liquid is substantially prevented from passing through the slit in the absence of the array due to, at least in part, surface energy.
- 76. The method according to claim 74, wherein the walls defining the slit are capable of being deformed to allow the array to pass through the slit.
- 77. The method according to claim 76, wherein the walls defining the slit are made of plastic.
- 78. The system according to claim 74, wherein the slit is capable of being opened and closed.
- 79. The method according to claim 70, further comprising at least one of agitating the array in the at least one vessel, so that the through-holes are exposed to the at least one sample.
- 80. The method according to claim 79, wherein agitating the array includes spinning the at least one vessel.
- 81. The method according to claim 57, further comprising:
providing at least one vessel holding the encapsulation fluid and at least one of the samples; immersing the array in the at least one vessel; and agitating the array in the at least one vessel, so that through-holes are exposed to the at least one of the samples.
- 82. The method according to claim 81, wherein the at least one vessel includes materials that are used to form the case.
- 83. The method according to claim 57, further comprising:
sparging the encapsulated fluid to remove air from the encapsulation fluid.
- 84. The method according to claim 83, wherein sparging includes passing one of hydrogen and helium through the encapsulation fluid.
- 85. The method according to claim 57, further comprising adding at least one of an osmolyte, polymer, and an amino acid to the encapsulated fluid.
- 86. The method according to claim 57, further comprising adding at least one of an osmolyte, polymer, and an amino acid to the at least one of the sample and reagent.
- 87. The method according to claim 57, further comprising barcoding the microfluidic array.
- 88. The method according to claim 57, further comprising coating the at least one cover of which is light transmissive with a hydrophilic layer to prevent fogging.
- 89. A thermal cycling device comprising:
a fluid delivery system for developing a flow of controlled-temperature fluid; a case having a fluid-tight cavity for holding a microfluidic array, the array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces; and a cycling head for holding the case and delivering the flow of fluid over the case.
- 90. The thermal cycling device according to claim 89, wherein the flow of controlled temperature fluid is selectable between a first controlled temperature and a second controlled temperature.
- 91. The thermal cycling device according to claim 89, further comprising:
a thermal sensor for sensing temperature of the flow of fluid.
- 92. The thermal cycling device according to claim 89, wherein the case includes transparent covers over the microfluidic array, and the cycling head includes transparent windows arranged for imaging of samples in the a microfluidic array.
- 93. The thermal cycling device according to claim 92, wherein the transparent windows are arranged for one of transmission imaging and epi-flourescence imaging.
- 94. The thermal cycling device according to claim 89, further including a Peltier device associated with the cycling head for controlling temperature of the fluid.
- 95. The thermal cycling device according to claim 89, wherein the cycling head is adapted for vertical orientation of the microfluidic array.
- 96. The thermal cycling device according to claim 89, wherein the case includes a guide rail arrangement for holding the a microfluidic array.
- 97. The thermal cycling device according to claim 89, wherein the cycling head includes a guide rail arrangement for holding the case.
- 98. The thermal cycling device according to claim 89, wherein cycling head delivers a laminar flow of fluid delivered over the case.
- 99. The thermal cycling device according to claim 89, wherein the cycling head includes a flow regulator for promoting uniform flow of fluid over the case.
- 100. The thermal cycling device according to claim 99, wherein the flow regulator includes a flow restrictor in the cycling head upstream of the case.
- 101. The thermal cycling device according to claim 99, wherein the flow regulator includes a flow inlet cavity in the cycling head upstream of the case.
- 102. The thermal cycling device according to claim 89, further comprising:
a volume of an encapsulation fluid in the case for covering an inserted microfluidic array.
- 103. The thermal cycling device according to claim 102, wherein the encapsulation fluid is selected from the group consisting of mineral oil, silicon oil, and a fluorinated hydrocarbon.
- 104. The thermal cycling device according to claim 89, wherein the opposed surfaces include a top surface and a bottom surface, and the case has an associated top cover and bottom cover.
- 105. The thermal cycling device according to claim 104, wherein the case and the cycling head are adapted so that the flow of fluid is delivered over both the top cover and the bottom cover.
- 106. The thermal cycling device according to claim 89, wherein the case is adapted to hold a plurality of microfluidic arrays.
- 107. A method of thermal cycling comprising:
developing a flow of controlled-temperature fluid; holding a microfluidic array in a fluid-tight cavity in a case, the array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces; and delivering the flow of controlled-temperature fluid over the case.
- 108. The method according to claim 107, wherein the flow of controlled-temperature fluid is selectable between a first controlled temperature and a second controlled temperature.
- 109. The method according to claim 107, further comprising:
sensing the temperature of the flow of fluid over the case.
- 110. The method according to claim 107, further comprising:
performing transmission imaging of samples in the microfluidic array.
- 111. The method according to claim 107, further comprising:
performing epi-flourescence imaging of sample in the microfluidic array.
- 112. The method according to claim 107, wherein developing the flow of temperature-controlled fluid uses a Peltier device.
- 113. The method according to claim 107, wherein the case is adapted for vertical orientation in the flow of fluid.
- 114. The method according to claim 107, wherein a guide rail arrangement is used for holding the microfluidic array.
- 115. The method according to claim 114, wherein a guide rail arrangement is used for holding the case.
- 116. The method according to claim 107, wherein the flow of fluid delivered over-the case is a laminar flow.
- 117. The method according to claim 107, wherein delivering the flow of controlled-temperature fluid includes promoting uniform flow of fluid over the case with a flow regulator.
- 118. The method according to claim 117, wherein the flow regulator includes a flow restrictor in the cycling head upstream of the case.
- 119. The method according to claim 117, wherein the flow regulator includes a flow inlet cavity in the cycling head upstream of the case.
- 120. The method according to claim 107, further comprising covering the microfluidic array in the cavity with a volume of an encapsulation fluid to avoid sample evaporation.
- 121. The method according to claim 120, wherein the encapsulation fluid is selected from the group consisting of mineral oil, silicon oil, and a fluorinated hydrocarbon.
- 122. The method according to claim 107, wherein the opposed surfaces include a top surface and a bottom surface, and the case has an associated top cover and bottom cover.
- 123. The method according to claim 122, wherein the flow of temperature-controlled fluid is delivered over both the top cover and the bottom cover.
- 124. A microfluidic array comprising:
a platen having a high-density microfluidic array of through-holes; a biocompatible coating coupled to walls of at least one through-hole, a primer component encapsulated in the coating, the primer component for amplifying a nucleotide sequence of a sample introduced into the through-hole.
- 125. The array according to claim 124, wherein the platen has at least one hydrophobic surface.
- 126. The array according to claim 124, wherein the biocompatible coating is is dried onto walls of the at least one through-holes.
- 127. The array according to claim 124, wherein the biocompatible material is covalently immobilized on walls of the at least one through-hole.
- 128. The array according to claim 124, wherein the biocompatible material is hydrophilic.
- 129. The array according to claim 124, wherein the biocompatible material is a polymer.
- 130. The array according to claim 124, wherein the biocompatible material includes polyethylene glycol moieties.
- 131. The array according to claim 124, wherein the primer is for polymerase chain reaction (PCR) assaying.
- 132. The array according to claim 124, further comprising adding a second layer of polymer on top of the coating.
- 133. The array according to claim 124, wherein the platen and array of through-holes are arranged for stacking the platen with another platen to promote a desired chemical reaction in each through-hole.
- 134. A method for use in PCR sequencing, the method comprising:
providing a sample platen having a high-density microfluidic array of through-holes, each through-hole having a hybridization capture probe for capturing a nucleotide sequence of a sample introduced into the through-hole; introducing a sample containing nucleic acid to the array so as to form a hybridized array of samples; providing a reagent platen having a high-density microfluidic array of through-hole, each through-hole containing a volume of PCR reagent, the reagent platen having a structural geometry that corresponds to the sample platen; and stacking one platen on top of the other so as to deliver PCR reagent to samples in the hybridized array.
- 135. The method according to claim 134, wherein at least one of the platens includes a hydrophobic surface surrounding the openings of each through-hole.
- 136. The method according to claim 134, wherein each through-hole includes a hydrophilic material.
- 137. The method according to claim 134 further comprising washing the hybridized array of samples with a buffer to remove non-specifically bound nuclic acids.
- 138. A system for use in PCR sequencing, the system comprising:
a sample platen having a high-density microfluidic array of through-holes, each through-hole having a hybridization probe for capturing a nucleotide sequence of a sample introduced into the through-hole so as to form a hybridized array of samples; and a reagent platen having a high-density microfluidic array of through-holes, each through-hole containing a volume of PCR reagent, the reagent platen having a structural geometry that corresponds to the sample platen so as to be capable of stacking one platen on top of the other so as to deliver PCR reagent to samples in the hybridized array.
- 139. A system according to claim 138, wherein at least one of the platens includes a hydrophobic surface surrounding the openings of each through-hole.
- 140. The system according to claim 138, further comprising a biocompatible coating coupled to the walls of at least one through-hole of at least one of the platens, wherein a nucleic acid component is encapsulated in the coating.
- 141. The system according to claim 140, wherein the biocompatible coating is dried onto walls of the at least one through-hole.
- 142. The system according to claim 140, wherein the biocompatible material is covalently immobilized on walls of the at least one through-hole.
- 143. The system according to claim 140, wherein the biocompatible material is hydrophilic.
- 144. The system according to claim 140, wherein the biocompatible material is a polymer.
- 145. The system according to claim 140, wherein the biocompatible material includes polyethylene glycol moieties.
- 146. The system according to claim 140, wherein the nucleic acid component is immobilized in a melting polymer that melts during assay so as to release the nucleic acid component into solution in the at least one of the through-holes.
- 147. The system according to claim 140, wherein the nucleic acid component is a primer for polymerase chain reaction (PCR) assaying.
- 148. The system according to claim 140, wherein the nucleic acid component is a probe for PCR assaying.
- 149. The system according to claim 140, further comprising adding a second layer of polymer on top of the coating.
- 150. A microfluidic sample array comprising:
a layer of hydrophobic material surrounding the openings of a high-density microfluidic array of through-holes that include hydrophilic material, at least one through-hole including an immobilized nucleic acid component for assaying.
- 151. The array according to claim 150, wherein the nucleic acid component is immobilized in a hydrophilic polymer.
- 152. The array according to claim 150, wherein the nucleic acid component is immobilized in a melting polymer that melts during assay so as to release the nucleic acid component into solution in the at least one through-hole.
- 153. The array according to claim 152, wherein the polymer is based on polyethylene glycol.
- 154. The array according to claim 150, wherein the nucleic acid component is covalently immobilized.
- 155. The array according to claim 150, wherein the nucleic acid component is non-covalently immobilized.
- 156. The array according to claim 150, wherein the nucleic acid component is a primer for polymerase chain reaction (PCR) assaying.
- 157. The array according to claim 150, wherein the nucleic acid component is a probe for PCR assaying.
- 158. A method of biochemical assaying, the method comprising:
loading a polymer solution including a nucleic acid into at least one through-hole in a high-density microfluidic array of through-holes, the array having a layer of hydrophobic material surround the openings of the through-holes, each through-hole including a hydrophilic material; and drying the solution so that a nucleic acid component is immobilized within the at least one through-hole.
- 159. The method according to claim 158, further comprising:
loading a nucleic acid target component into the at least one through-hole.
- 160. The method according to claim 159, wherein loading a nucleic acid target component is based on dipping the array into a solution containing the nucleic acid target component, and then withdrawing the array from the solution.
- 161. The method according to claim 159, wherein loading a nucleic acid target component is based on pippetting into the at least one through-hole a solution containing the nucleic acid target component.
- 162. The method according to claim 159, wherein loading a nucleic acid target component is based on dragging a drop of a solution including the nucleic acid target component over the opening of the at least one through-hole.
- 163. The method according to claim 159, further comprising:
thermal cycling the array and performing a PCR assay.
- 164. The method according to claim 158, wherein thermal cycling includes:
developing a flow of controlled-temperature fluid; loading the array into a case having a cavity for holding the array; and delivering the flow of controlled-temperature fluid over the case.
- 165. A microfluidic sample array comprising:
a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces; and a biocompatible coating coupled to the walls of at least one through-hole, and a nucleic acid component immobilized in the coating.
- 166. The array according to claim 165, wherein the biocompatible coating is is dried onto walls of the at least one through-holes.
- 167. The array according to claim 165, wherein the biocompatible material is covalently immobilized on walls of the at least one through-hole.
- 168. The array according to claim 165, wherein the biocompatible material is hydrophilic.
- 169. The array according to claim 165, wherein the biocompatible material is a polymer.
- 170. The array according to claim 165, wherein the biocompatible material includes polyethylene glycol moieties.
- 171. The array according to claim 165, wherein the nucleic acid component is immobilized in a melting polymer that melts during assay so as to release the nucleic acid component into solution in the at least one of the through-holes.
- 172. The array according to claim 165, wherein the nucleic acid component is a primer for polymerase chain reaction (PCR) assaying.
- 173. The array according to claim 165, wherein the nucleic acid component is a probe for PCR assaying.
- 174. The array according to claim 165, further comprising adding a second layer of polymer on top of the coating.
- 175. A method of biochemical assaying, the method comprising:
providing a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces; mixing a nucleic acid component with a biocompatible material to form a solution; and coating the solution onto at least one through-hole.
- 176. The method according to claim 175, wherein the solution is dried onto walls of the a at least one through-hole.
- 177. The method according to claim 175, wherein the solution is covalently immobilized onto walls of the at least one through-hole.
- 178. The method according to claim 175, further comprising:
loading a nucleic acid target component into the at least one through-hole.
- 179. The method according to claim 178, wherein loading a nucleic acid target component is based on dipping the array into a solution containing the nucleic acid target component, and then withdrawing the array from the solution.
- 180. The method according to claim 178, wherein loading a nucleic acid target component is based on pippetting into the at least one through-hole a solution containing the nucleic acid target component.
- 181. The method according to claim 178, wherein loading a nucleic acid target component is based on dragging a drop of a solution including the nucleic acid target component over the opening of the at least one through-hole.
- 182. The method according to claim 175, further comprising:
thermal cycling the array and performing a PCR assay.
- 183. The method according to claim 182, wherein thermal cycling includes:
developing a flow of controlled-temperature fluid; loading the array into a case having a cavity for holding the array; and delivering the flow of controlled-temperature fluid over the case.
- 184. A biochemical assay structure comprising:
a chip having a microfluidic array of through-holes, individual through-holes being adapted for:
capture of one or more targets of interest from a liquid sample introduced into the individual through-hole; and chemical processing of the captured one or more targets.
- 185. The biochemical assay structure according to claim 184, wherein the target capture is based on a capture structure immobilized within the individual through-holes.
- 186. The biochemical assay structure according to claim 185, wherein the capture structure is a nucleic acid probe.
- 187. The biochemical assay structure according to claim 185, wherein the capture structure is a protein.
- 188. The biochemical assay structure according to claim 185, wherein the capture structure is an antibody.
- 189. The biochemical assay structure according to claim 185, wherein the capture structure is an aptamer.
- 190. The biochemical assay array structure according to claim 185, wherein the capture structure is covalently immobilized.
- 191. The biochemical assay array structure according to claim 185, wherein the capture structure is selected from antibodies, proteins, peptides, peptide nucleic acids, and oligonucleotides.
- 192. The biochemical assay structure according to claim 184, wherein the chemical processing includes amplification of the captured one or more targets.
- 193. The biochemical assay structure according to claim 192, wherein the amplification includes at least one of polymerase chain reaction (PCR) amplification and reverse transcription.
- 194. The biochemical assay structure according to claim 184 or 192, wherein the chemical processing includes detection of a signal from the captured one or more targets.
- 195. The biochemical assay structure according to claim 184, wherein the chemical processing is specific to the captured one or more targets.
- 196. The biochemical assay array structure according to claim 184, wherein the structure is adapted to perform lysis of a target pathogen.
- 197. The biochemical assay array structure according to claim 184, wherein the structure is adapted to perform ELISA analysis.
- 198. The biochemical assay array structure according to claim 184, wherein the individual through-holes include a layer of wax containing at least one reagent for the target capture or chemical processing.
- 199. The biochemical assay array structure according to claim 198, wherein the wax includes polyethylene glycol (PEG).
- 200. The biochemical assay array structure according to claim 198, wherein the wax has a melting point above 40° C.
- 201. The biochemical assay array structure according to claim 198, wherein the individual through-holes include a plurality of layers of wax, at least one of the layers containing the at least one reagent.
- 202. The biochemical assay array structure according to claim 201, wherein each layer of wax has a different melting point.
- 203. The biochemical assay array structure according to claim 201, wherein each layer of wax contains a different reagent.
- 204. The biochemical assay array structure according to claim 184, further comprising:
a first chip layer having a microfluidic array of through-holes; and a second chip layer having a microfluidic array of through-holes; wherein the first chip layer and the second chip layer are fixedly coupled such that the through-holes of each are aligned, and individual aligned through-holes are adapted for the target capture and the chemical processing.
- 205. The biochemical assay array structure according to claim 204, wherein the first and second chip layers are coupled by an adhesive.
- 206. The biochemical assay array structure according to claim 204, wherein the first and second chip layers are coupled by screws, bolts, rivets, or clamps.
- 207. The biochemical assay array structure according to claim 204, wherein the surfaces of the through-holes are bio-compatible to avoid binding bio-molecules.
- 208. A method of performing biochemical assays, the method comprising:
providing a chip having a microfluidic array of through-holes, individual through-holes being adapted for:
capture of one or more targets of interest from a liquid sample introduced into the individual through-hole, and chemical processing of one or more captured targets; introducing a sample to the chip so that the individual through-holes capture the one or more targets; and initiating chemical processing of the captured one or more targets.
- 209. The method according to claim 208, wherein the capture of one or more targets is based on a capture structure immobilized within the individual through-holes.
- 210. The method according to claim 209, wherein the capture structure is a nucleic acid probe.
- 211. The method according to claim 209, wherein the capture structure is a protein.
- 212. The method according to claim 209, wherein the capture structure is an antibody.
- 213. The method according to claim 209, wherein the capture structure is an aptamer.
- 214. The method according to claim 209, wherein the capture structure is covalently immobilized.
- 215. The method according to claim 209, wherein the capture structure is selected from antibodies, proteins, peptides, peptide nucleic acids, and oligonucleotides.
- 216. The method according to claim 209, wherein the chemical processing includes amplification of the one or more captured targets.
- 217. The method according to claim 216, wherein the amplification includes polymerase chain reaction (PCR) amplification.
- 218. The method according to claim 209 or 216, wherein the chemical processing includes detection of a signal from the captured one or more targets.
- 219. The method according to claim 208, wherein the chemical processing is specific to the captured one or more targets.
- 220. The method according to claim 208, wherein the chip is adapted to perform lysis of a target pathogen.
- 221. The method according to claim 208, wherein the chip is adapted to perform ELISA analysis.
- 222. The method according to claim 208, wherein the individual through-holes include a layer of wax containing at least one reagent for the target capture or chemical processing.
- 223. The method according to claim 222, wherein the wax includes polyethylene glycol (PEG).
- 224. The method according to claim 222, wherein the wax has a melting point above 40° C.
- 225. The method according to claim 222, wherein the individual through-holes include a plurality of layers of wax, at least one of the layers containing the at least one reagent.
- 226. The method according to claim 225, wherein each layer of wax has a different melting point.
- 227. The method according to claim 225, wherein each layer of wax contains a different reagent.
- 228. The method according to claim 208, wherein the chip includes:
a first chip layer having a microfluidic array of through-holes; and a second chip layer having a microfluidic array of through-holes; wherein the first chip layer and the second chip layer are fixedly coupled such that the through-holes of each are aligned, and individual aligned through-holes are adapted for the target capture and the chemical processing.
- 229. The method according to claim 228, wherein the first and second chip layers are coupled by an adhesive.
- 230. The method according to claim 228, wherein the first and second chip layers are coupled by screws, bolts, rivets, or clamps.
- 231. The method according to claim 228, wherein the surfaces of the through-holes are bio-compatible to avoid binding bio-molecules.
- 232. A biochemical assay structure comprising:
a first chip layer having a microfluidic array of through-holes; and a second chip layer having a microfluidic array of through-holes; wherein the first chip layer and the second chip layer are fixedly coupled such that the through-holes of each are aligned.
- 233. The biochemical assay structure according to claim 232, wherein the first and second chip layers are coupled by an adhesive.
- 234. A method of conducting an assay on a plurality of samples, the method comprising:
performing an assay at each sample site in a sample array having greater than 100 sample sites, each assay providing an optical effect; and simultaneously imaging each of the sample sites to produce imaging data pertinent to the optical effect of each site.
- 235. The method according to claim 234, wherein the sample array has greater than 500 sample sites.
- 236. The method according to claim 234, wherein the sample array has greater than 1600 sample sites.
- 237. The method according to claim 234, wherein performing the assay includes performing replication cycles by Polymerase Chain Reaction (PCR).
- 238. The method according to claim 234, wherein imaging includes simultaneously imaging each sample site during each replication cycle.
- 239. The method according to claim 234, further comprising simultaneously illuminating each sample site using one or more LEDs.
- 240. The method according to claim 234, further comprising analyzing the imaging data.
- 241. A method of conducting an assay on a plurality of samples, the method comprising:
performing an assay at each of a plurality of sample sites in a sample array, the sample array having a sample site density greater than one sample site per 20 mm2, each assay providing an optical effect; and simultaneously imaging each of the sample sites to produce imaging data pertinent to the optical effect of each site.
- 242. The method according to claim 241, wherein performing the assay includes performing replication cycles by Polymerase Chain Reaction (PCR).
- 243. The method according to claim 241, wherein imaging includes simultaneously imaging each sample site during each replication cycle.
- 244. The method according to claim 241, further comprising simultaneously illuminating each sample site using one or more LEDs.
- 245. The method according to claim 141, further comprising analyzing the imaging data.
- 246. A method of conducting an assay on a plurality of samples, the method comprising:
performing an assay at each of a plurality of sample sites in a sample array, each assay providing an optical effect; simultaneously illuminating each sample site using one or more colored LEDs; and. simultaneously imaging each of the sample sites to produce imaging data pertinent to the optical effect of each site.
- 247. The method according to claim 246, wherein performing the assay includes performing replication cycles by Polymerase Chain Reaction (PCR).
- 248. The method according to claim 246, wherein imaging includes simultaneously imaging each sample site during each replication cycle.
- 249. The method according to claim 246, further comprising analyzing the imaging data.
- 250. A system for conducting an assay on a plurality of samples, the system comprising:
a case having a fluid-tight cavity defining an interior volume; a microfluidic array disposed in the interior volume, the array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces; and a thermal cycler adapted to thermally contact the case.
- 251. The system according to claim 250, wherein the thermal cycler is a flat block having at least one thermally controlled surface.
- 252. The system according to claim 251, wherein the thermal cycling flat block is a Peltier device.
- 253. The system according to claim 251, further comprising a heat transfer pad positioned between the case and the surface.
- 254. The system according to claim 250, wherein the thermal cycler includes a fluid delivery module for delivering a flow of controlled-temperature fluid over the case.
- 255. The system according to claim 250, further comprising an illumination source capable of illuminating each of the through-holes simultaneously.
- 256. The system according to claim 155, wherein the illumination source includes at least one color LCD.
- 257. The system according to claim 256, further comprising an excitation filter for filtering the at least one LCD.
- 258. The system according to claim 250, further comprising a camera for simultaneously imaging each of the through-holes to provide imaging data.
- 259. The system according to claim 250, further comprising a processor for processing the imaging data.
- 260. The system according to claim 250, wherein the case includes:
a pair of parallel covers, at least one of which is light transmissive, of which pair a light transmissive cover forms a top, and of which pair the other forms a bottom; and a frame disposed between the covers to define, in relation to the covers, an interior volume, the frame and the covers associated with one another to form the case.
- 261. The system according to claim 260, further comprising:
an encapsulation fluid, which reduces interactions between contents of distinct through-holes, disposed in the interior volume.
- 262. A system for conducting an assay on a plurality of samples, the system comprising:
a case having a fluid-tight cavity defining an interior volume; a microfluidic array disposed in the interior volume, the array including a sheet of material having a pair of opposed surfaces, a thickness, and a plurality of through-holes running through the thickness between the surfaces; an illumination source for simultaneously illuminating each of the through-holes; and a camera for simultaneously imaging each of the through-holes to produce imaging data.
- 263. The system according to claim 262, wherein the illumination source includes at least one Light Emitting Diode (LED).
- 264. The system according to claim 263, wherein the at least one LED is a colored LED.
- 265. The system according to claim 263, further comprising an excitation filter for filtering the at least one LED.
- 266. The system according to claim 263, wherein the at least one LED is symmetrically positioned off-axis from the camera with reference to the array.
- 267. The system according to claim 262, wherein the camera is one of a Charge-Coupled Device (CCD) or Complimentary Metal-oxide Semiconductor (CMOS) camera.
- 268. The system according to claim 262, further comprising an emission filter for filtering light entering the camera.
- 269. The system according to claim 262, wherein the array has greater than 100 through-holes.
- 270. The system according to claim 262, wherein the array has greater than 500 through-holes.
- 271. The system according to claim 262, wherein the array has greater than 1600 through-holes.
- 272. The system according to claim 262, wherein the array has a through-hole density greater than one through-hole per 20 mm2.
- 273. The system according to claim 262, wherein the array has a through-hole density greater than one sample sites per 0.25 mm2.
- 274. The system according to claim 262, further comprising a processor for analyzing the imaging data.
- 275. A system for holding at least one of sample and reagent for analysis, the system comprising:
a pair of parallel covers, at least one of which is light transmissive, of which pair a light transmissive cover forms a top, and of which pair the other forms a bottom; a frame disposed between the covers to define, in relation to the covers, an interior volume, the frame and the covers associated with one another to form a case, the case having a sealable opening, such opening when sealed rendering the case substantially tight to liquids; and a microfluidic array, disposed in the interior volume and removable via the opening, the array including a sheet of material having a plurality of sample sites, the sample sites containing at least one of sample and reagent.
- 276. The system according to claim 275, wherein the array includes a hydrophobic surface surrounding the openings of each sample site.
- 277. The system according to claim 275, wherein the sample sites include a hydrophilic surface that attracts the at least one of sample and reagent.
- 278. The system according to claim 275 wherein the sheet has a pair of opposed surfaces and a thickness, and wherein the sample sites include a plurality of through-holes running through the thickness between the surfaces.
- 279. The system according to claim 275, wherein the sample sites include a plurality of closed-ended wells.
- 280. The system according to claim 275, wherein the at least one cover of which is light transmissive is coated with a hydrophobic layer to prevent fogging.
- 281. The system according to claim 275, further comprising:
spacer means for providing space between at least one of the covers and at least a portion of the array.
- 282. The system according to claim 281, wherein the spacer means includes a plurality of beads affixed to one of (i) the array and (ii) at least one of the covers.
- 283. The system according to claim 281, wherein the spacer means includes an increase in thickness of the array over a defined set of locations thereof.
- 284. The system according to claim 281, wherein the top cover and the spacer means are dimensioned to provide a distance of less than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 285. The system according to claim 281, wherein the top cover and the spacer means are dimensioned to provide a distance of greater than 0.5 mm from an upper surface of the top cover to a proximate surface of the array.
- 286. The system according to claim 275, wherein one or more positioning guide rails are affixed to at least one of (i) the frame and ii) at least one of the covers.
- 287. The system according to claim 275, wherein the array includes a recessed opening at each sample site, the recess preventing fluid in each sample site from coming into contact with a cover to which each such sample site is proximate.
- 288. The system according to claim 275, wherein the dimensions of the case are approximately 25×76×<2 mm, so that it has the approximate size and shape of a microscope slide.
- 289. The system according to claim 275, further comprising:
one of a UV curable sealent and a grease for sealing the opening.
- 290. The system according to claim 275, wherein the frame and the covers are coupled together to form the case by at least one of an epoxy, an adhesive gasket, and a compression gasket
- 291. The system according to claim 275, wherein the frame includes walls defining a hole, the hole filled with a self-sealing material.
- 292. The system according to claim 291, wherein the frame is a gasket that can be penetrated by a syringe.
- 293. The system according to claim 291, wherein the self-sealing material is a grease.
- 294. The system according to claim 275, further comprising a funnel guide coupled to the case, the array capable of being inserted into the case by passing the array through the funnel guide and the opening.
- 295. The system according to claim 294, wherein the funnel guide is removable attached to the case.
- 296. The system according to claim 294, wherein the funnel guide includes walls defining a slit, the array capable of being passed through the slit.
- 297. The system according to claim 296, wherein liquid is substantially prevented from passing through the slit in the absence of the array due to, at least in part, surface energy.
- 298. The system according to claim 296, wherein the walls defining the slit are capable of being deformed to allow the array to pass through the slit.
- 299. The system according to claim 298, wherein the walls defining the slit are made of plastic.
- 300. The system according to claim 296, wherein the slit is capable of being opened and closed.
- 301. The system according to claim 294, wherein the funnel guide includes brushes for spreading of the at least one of sample and reagent.
- 302. The system according to claim 275, wherein at least one of the frame and the covers includes a hydrophilic strip for promoting spreading of sample during array loading.
- 303. The system according to claim 275, wherein at least one of the array and the case includes an identifier.
- 304. The system according to claim 303, wherein the identifier is a barcode.
- 305. The system according to claim 275, wherein the frame and the covers are coupled together to form the case by at least one of an epoxy, an adhesive gasket, and a compression gasket.
- 306. The system according to claim 275, wherein the at least one cover of which is light transmissive is coated with a hydrophilic layer to prevent fogging.
- 307. The system according to claim 2, wherein the spacer means includes a post protruding from at least one of the array and at least one cover.
- 308. The system according to claim 23, wherein the spacer means includes a post protruding from at least one of the array and at least one cover.
- 309. The method according to claim 58, wherein the spacer means includes a post protruding from at least one of the array and at least one cover.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from U.S. provisional patent application serial No. 60/434,988, entitled “Chip Temperature Cycling,” filed Dec. 20, 2002; U.S. provisional patent application serial No. 60/461,559, entitled “Immobilized Probe Nanotiter Array,” filed Apr. 9, 2003; U.S. provisional patent application 60/528,461, entitled “Improved Selective Ligation and Amplification Assay” filed Dec. 10, 2003; and U.S. provisional patent application serial No. 60/461,556, entitled “High-Density Microfluidic Thermal Cycling with Stackability,” filed Apr. 9, 2003. Each of these patent applications described in this paragraph is hereby incorporated by reference, in its entirety.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60434988 |
Dec 2002 |
US |
|
60461559 |
Apr 2003 |
US |
|
60461556 |
Apr 2003 |
US |
|
60528461 |
Dec 2003 |
US |