Thermo-controllable high-density chips for multiplex analyses
The present invention provides miniaturized instruments for conducting chemical reactions where control of the reaction temperature is desired or required. Specifically, this invention provides chips and optical systems for performing and monitoring temperature-dependent chemical reactions. The apparatus and methods embodied in the present invention are particularly useful for high-throughput and low-cost amplification of nucleic acids.
1. A method for dispensing reaction samples into micro wells in a humidified chamber at a temperature at or near the dew point comprising:
i) providing a system comprising:
(a) a chip for cycling at least two temperature levels, said chip comprising an array of fluidically isolated micro wells, wherein each of said micro wells is un-filled and configured for receiving a reaction sample, wherein the micro wells are coated with a hydrophobic coating suitable for the nucleic acid amplification reaction, wherein each of the micro wells has an open top surface and a closed bottom surface, wherein each micro well has a volume of approximately 0.001 μl to 10 μl, and wherein the chip is configured to be in thermal contact with a heating element;
(b) a chamber containing ambient air; and
(c) a dispenser located inside said chamber and configured to dispense the plurality of reaction samples separately into the fluidically isolated micro wells; and
ii) placing said chip in said chamber and activating said system such that:
(a) said ambient air in said chamber becomes saturated with moisture with respect to the planar surface of said chip thereby causing said chamber to become a humidified chamber, wherein the temperature inside said humidified chamber is at, or 1-5 degrees Celsius above, the dew point; and
(b) said dispenser dispenses said plurality of reaction samples separately into said unfilled fluidically isolated microwells inside said humidified chamber.
2. The method of claim 1 wherein the chip further comprises individually controlled heating elements, each of which is operably coupled to an individual micro well of said array.
3. The method of claim 1 wherein the chip has a ramp temperature time of about 10 degrees ° C. or higher per second.
4. The method of claim 1 wherein each micro well has a volume of approximately 0.01 μl to 1 μl.
5. The method of claim 1 wherein each micro well has a volume of approximately 0.1 μl.
6. The method of claim 1 wherein the chip has a surface density of at least about 1 thermo-controllable unit per mm 2 .