Advanced manufacturing provides tailor-made solutions for crystallography with x-ray free-electron lasers

Author:

Paulson Lars1ORCID,Narayanasamy Sankar Raju2ORCID,Shelby Megan L.2,Frank Matthias23ORCID,Trebbin Martin14ORCID

Affiliation:

1. Department of Chemistry & Research and Education in Energy, Environment and Water (RENEW), The State University of New York at Buffalo 1 , Buffalo, New York 14260, USA

2. Biosciences and Biotechnology Division, Physical and Life Sciences Directorate, Lawrence Livermore National Laboratory 2 , Livermore, California 94550, USA

3. Department of Biochemistry and Molecular Medicine, School of Medicine, University of California 3 , Davis, California 95817, USA

4. Hauptman-Woodward Medical Research Institute 4 , Buffalo, New York 14203, USA

Abstract

Serial crystallography at large facilities, such as x-ray free-electron lasers and synchrotrons, evolved as a powerful method for the high-resolution structural investigation of proteins that are critical for human health, thus advancing drug discovery and novel therapies. However, a critical barrier to successful serial crystallography experiments lies in the efficient handling of the protein microcrystals and solutions at microscales. Microfluidics are the obvious approach for any high-throughput, nano-to-microliter sample handling, that also requires design flexibility and rapid prototyping to deal with the variable shapes, sizes, and density of crystals. Here, we discuss recent advances in polymer 3D printing for microfluidics-based serial crystallography research and present a demonstration of emerging, large-scale, nano-3D printing approaches leading into the future of 3D sample environment and delivery device fabrication from liquid jet gas-dynamic virtual nozzles devices to fixed-target sample environment technology.

Funder

National Institute of General Medical Sciences

Office of the Vice President for Research and Economic Development, University at Buffalo

Yes, funding has been received from NIH

Publisher

AIP Publishing

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