Microfluidic protein crystallography
The use of microfluidic structures enables high throughput screening of protein crystallization. In one embodiment, an integrated combinatoric mixing chip allows for precise metering of reagents to rapidly create a large number of potential crystallization conditions, with possible crystal formations observed on chip. In an alternative embodiment, the microfluidic structures may be utilized to explore phase space conditions of a particular protein crystallizing agent combination, thereby identifying promising conditions and allowing for subsequent focused attempts to obtain crystal growth.
1. An apparatus for investigating crystallization comprising:
a microfluidic formulator comprising a microfluidic chamber configured to receive a crystallization target and a precipitant;
a light source configured to illuminate the microfluidic chamber; and
a light detector configured to receive light transmitted through the microfluidic chamber.
2. The apparatus of claim 1 wherein the microfluidic chamber comprises a rotary flow chamber.
3. The apparatus of claim 1 further comprising a peristaltic pump actuable to flow the crystallization target and crystallizing agent through the rotary flow chamber.
4. The apparatus of claim 1 wherein the detector comprises a plurality of pixels configured to receive light transmitted through a portion of the rotary flow chamber.
5. The apparatus of claim 1 wherein the detector comprises a charge coupled device.
6. The apparatus of claim 2 further comprising a processor configured to receive an electronic signal from the light detector indicating an intensity of light transmitted through the chamber and received on the pixel, the processor comprising a computer readable storage medium having recorded instructions to calculate from the electronic signal a standard deviation of pixel intensity of light transmitted through the portion, and to compare the standard deviation to a background value recorded in an absence of the crystallization target.
7. An apparatus for investigating crystallization comprising:
a chip holder for holding a microfluidic chamber configured to receive a crystallization target and a precipitant;
a light source configured to illuminate the microfluidic chamber; and
a light detector configured to receive light transmitted through the microfluidic chamber.
8. The apparatus of claim 7 wherein the detector comprises a charge coupled device.
9. The apparatus of claim 7 further comprising a processor adapted to receive an electronic signal from the light detector indicating an intensity of light transmitted through a microfluidic chamber.
10. The apparatus of claim 3 wherein the peristaltic pump comprises a plurality of peristaltic pump valves.
11. The apparatus of claim 10 wherein the plurality of peristaltic pump valves comprises are positioned in series along a channel that is in fluidic communication with the rotary flow chamber.