XFELs for structure and dynamics in biology

Рентгеновские лазеры на свободных электронах для изучения структуры и динамики в биологии
John C. H. Spence
2017-05-10

X-ray free-electron lasersfast solution scatteringpump-probe studiesserial femtosecond crystallographysingle-particle diffraction
The development and application of the free-electron X-ray laser (XFEL) to structure and dynamics in biology since its inception in 2009 are reviewed. The research opportunities which result from the ability to outrun most radiation-damage effects are outlined, and some grand challenges are suggested. By avoiding the need to cool samples to minimize damage, the XFEL has permitted atomic resolution imaging of molecular processes on the 100 fs timescale under near-physiological conditions and in the correct thermal bath in which molecular machines operate. Radiation damage, comparisons of XFEL and synchrotron work, single-particle diffraction, fast solution scattering, pump-probe studies on photosensitive proteins, mix-and-inject experiments, caged molecules, pH jump and other reaction-initiation methods, and the study of molecular machines are all discussed. Sample-delivery methods and data-analysis algorithms for the various modes, from serial femtosecond crystallo-graphy to fast solution scattering, fluctuation X-ray scattering, mixing jet experiments and single-particle diffraction, are also reviewed.
1
Avoiding cryogenic cooling permits atomic-resolution imaging of molecular processes on 100 fs timescales under near-physiological conditions.
2
Mix-and-inject, caged-molecule, pH-jump, and other reaction-initiation methods enable time-resolved investigation of biological processes.
3
The review covers diverse XFEL approaches, including serial femtosecond crystallography, single-particle diffraction, fast solution scattering, and pump-probe experiments.
4
XFEL studies can probe molecular machines in their native thermal environment, preserving conditions relevant to biological function.
5
XFELs enable biological structure and dynamics measurements while outrunning most radiation-damage processes.

biological molecular systems and processes studied with free-electron X-ray lasers

their atomic structures and ultrafast dynamics under near-physiological conditions, including radiation damage and molecular-machine operation

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2017-05-10
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John C. H. Spence
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