Protein crystallography is transitioning into a new generation with the introduction of the X-ray free electron laser, which can be used to solve the structures of complex proteins via serial femtosecond crystallography. Sample characteristics play a critical role in successful implementation of this new technology, whereby a small, narrow protein crystal size distribution is desired to provide high quality diffraction data. To provide such a sample, we developed a microfluidic device that facilitates dielectrophoretic sorting of heterogeneous particle mixtures into various size fractions. The first generation device demonstrated great potential and success toward this endeavor; thus, in this work, we present a comprehensive optimization st...
Recently microfluidic technologies have emerged as viable platforms for nano-volume protein crystall...
A new era of protein crystallography started when X-ray free-electron lasers (XFELs) came into opera...
abstract: We present results from experiments at the Linac Coherent Light Source (LCLS) demonstratin...
Protein crystallography is transitioning into a new generation with the introduction of the X-ray fr...
The advent and application of the X-ray free-electron laser (XFEL) has uncovered the str...
abstract: The advent and application of the X-ray free-electron laser (XFEL) has uncovered the struc...
Structure elucidation of large membrane protein complexes is still a considerable challenge, yet is ...
One of the oldest goals across the science is to watch atoms undergo reactions in real time. However...
The unprecedented economies of scale and unique mass transport properties of microfluidic devices ma...
abstract: X-ray crystallography is the most widely used method to determine the structure of protein...
The response of a microscopic dielectric object to an applied light field can profoundly affect its ...
X-ray crystallography is the leading technique for determining the atomic structure of biological mo...
X-ray free-electron lasers (XFELs) promise to enable the collection of interpretable diffraction dat...
The response of a microscopic dielectric object to an applied light field can profoundly affect its ...
Recently microfluidic technologies have emerged as viable platforms for nano-volume protein crystall...
A new era of protein crystallography started when X-ray free-electron lasers (XFELs) came into opera...
abstract: We present results from experiments at the Linac Coherent Light Source (LCLS) demonstratin...
Protein crystallography is transitioning into a new generation with the introduction of the X-ray fr...
The advent and application of the X-ray free-electron laser (XFEL) has uncovered the str...
abstract: The advent and application of the X-ray free-electron laser (XFEL) has uncovered the struc...
Structure elucidation of large membrane protein complexes is still a considerable challenge, yet is ...
One of the oldest goals across the science is to watch atoms undergo reactions in real time. However...
The unprecedented economies of scale and unique mass transport properties of microfluidic devices ma...
abstract: X-ray crystallography is the most widely used method to determine the structure of protein...
The response of a microscopic dielectric object to an applied light field can profoundly affect its ...
X-ray crystallography is the leading technique for determining the atomic structure of biological mo...
X-ray free-electron lasers (XFELs) promise to enable the collection of interpretable diffraction dat...
The response of a microscopic dielectric object to an applied light field can profoundly affect its ...
Recently microfluidic technologies have emerged as viable platforms for nano-volume protein crystall...
A new era of protein crystallography started when X-ray free-electron lasers (XFELs) came into opera...
abstract: We present results from experiments at the Linac Coherent Light Source (LCLS) demonstratin...