Microfluidic strategies to enable the growth and subsequent serial crystallographic analysis of micro-crystals have the potential to facilitate both structural characterization and dynamic structural studies of protein targets that have been resistant to single-crystal strategies. However, adapting microfluidic crystallization platforms for micro-crystallography requires a dramatic decrease in the overall device thickness. We report a robust strategy for the straightforward incorporation of single-layer graphene into ultra-thin microfluidic devices. This architecture allows for a total material thickness of only â¼1 μm, facilitating on-chip X-ray diffraction analysis while creating a sample environment that is stable against significant water loss over several weeks. We demonstrate excellent signal-to-noise in our X-ray diffraction measurements using a 1.5 μs polychromatic X-ray exposure, and validate our approach via on-chip structure determination using hen egg white lysozyme (HEWL) as a model system. Although this work is focused on the use of graphene for protein crystallography, we anticipate that this technology should find utility in a wide range of both X-ray and other lab on a chip applications.
Graphene-based microfluidics for serial crystallography.
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作者:Sui Shuo, Wang Yuxi, Kolewe Kristopher W, Srajer Vukica, Henning Robert, Schiffman Jessica D, Dimitrakopoulos Christos, Perry Sarah L
| 期刊: | Lab on a Chip | 影响因子: | 5.400 |
| 时间: | 2016 | 起止号: | 2016 Aug 2; 16(16):3082-96 |
| doi: | 10.1039/c6lc00451b | ||
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