Multiparameter Screening on SlipChip Used for Nanoliter Protein Crystallization Combining Free Interface Diffusion and Microbatch Methods
- 14 December 2009
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 132 (1) , 112-119
- https://doi.org/10.1021/ja908558m
Abstract
This paper describes two SlipChip-based approaches to protein crystallization: a SlipChip-based free interface diffusion (FID) method and a SlipChip-based composite method that simultaneously performs microbatch and FID crystallization methods in a single device. The FID SlipChip was designed to screen multiple reagents, each at multiple diffusion equilibration times, and was validated by screening conditions for crystallization of two proteins, enoyl-CoA hydratase from Mycobacterium tuberculosis and dihydrofolate reductase/thymidylate synthase from Babesia bovis, against 48 different reagents at five different equilibration times each, consuming 12 μL of each protein for a total of 480 experiments using three SlipChips. The composite SlipChip was designed to screen multiple reagents, each at multiple mixing ratios and multiple equilibration times, and was validated by screening conditions for crystallization of two proteins, enoyl-CoA hydratase from Mycobacterium tuberculosis and dihydrofolate reductase/thymidylate synthase from Babesia bovis. To prevent cross-contamination while keeping the solution in the neck channels for FID stable, the plates of the SlipChip were etched with a pattern of nanowells. This nanopattern was used to increase the contact angle of aqueous solutions on the surface of the silanized glass. The composite SlipChip increased the number of successful crystallization conditions and identified more conditions for crystallization than separate FID and microbatch screenings. Crystallization experiments were scaled up in well plates using conditions identified during the SlipChip screenings, and X-ray diffraction data were obtained to yield the protein structure of dihydrofolate reductase/thymidylate synthase at 1.95 Å resolution. This free-interface diffusion approach provides a convenient and high-throughput method of setting up gradients in microfluidic devices and may find additional applications in cell-based assays.Keywords
This publication has 31 references indexed in Scilit:
- A plug-based microfluidic system for dispensing lipidic cubic phase (LCP) material validated by crystallizing membrane proteins in lipidic mesophasesMicrofluidics and Nanofluidics, 2009
- Cyclic olefin homopolymer-based microfluidics for protein crystallization andin situX-ray diffractionActa Crystallographica Section D-Biological Crystallography, 2009
- SlipChipLab on a Chip, 2009
- Robust omniphobic surfacesProceedings of the National Academy of Sciences, 2008
- The plug-based nanovolume Microcapillary Protein Crystallization System (MPCS)Acta Crystallographica Section D-Biological Crystallography, 2008
- A 7 µm mini-beam improves diffraction data from small or imperfect crystals of macromoleculesActa Crystallographica Section D-Biological Crystallography, 2008
- In situX-ray analysis of protein crystals in low-birefringent and X-ray transmissive plastic microchannelsActa Crystallographica Section D-Biological Crystallography, 2008
- Nanoliter microfluidic hybrid method for simultaneous screening and optimization validated with crystallization of membrane proteinsProceedings of the National Academy of Sciences, 2006
- Time‐Controlled Microfluidic Seeding in nL‐Volume Droplets To Separate Nucleation and Growth Stages of Protein CrystallizationAngewandte Chemie International Edition in English, 2006
- Phase knowledge enables rational screens for protein crystallizationProceedings of the National Academy of Sciences, 2006