Crystallization and Structural Determination of an Enzyme:Substrate Complex by Serial Crystallography in a Versatile Microfluidic Chip
Author(s) -
Raphaël de Wijn,
K. Rollet,
Vincent Oliéric,
Oliver Hennig,
Nicola Thome,
Camille Noûs,
Caroline Paulus,
Bernard Lorber,
Heike Betat,
Mario Mörl,
C. Sauter
Publication year - 2021
Publication title -
journal of visualized experiments
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.596
H-Index - 91
ISSN - 1940-087X
DOI - 10.3791/61972
Subject(s) - crystallization , protein crystallization , substrate (aquarium) , microfluidics , materials science , crystal (programming language) , diffusion , diffraction , lab on a chip , crystallography , nanotechnology , chemistry , computer science , optics , physics , thermodynamics , biology , organic chemistry , programming language , ecology
The preparation of well diffracting crystals and their handling before their X-ray analysis are two critical steps of biocrystallographic studies. We describe a versatile microfluidic chip that enables the production of crystals by the efficient method of counter-diffusion. The convection-free environment provided by the microfluidic channels is ideal for crystal growth and useful to diffuse a substrate into the active site of the crystalline enzyme. Here we applied this approach to the CCA-adding enzyme of the psychrophilic bacterium Planococcus halocryophilus in the presented example. After crystallization and substrate diffusion/soaking, the crystal structure of the enzyme:substrate complex was determined at room temperature by serial crystallography and the analysis of multiple crystals directly inside the chip. The whole procedure preserves the genuine diffraction properties of the samples because it requires no crystal handling.
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