X-Ray Free-Electron Lasers for the Structure and Dynamics of Macromolecules
Рентгеновские лазеры на свободных электронах для исследования структуры и динамики макромолекул
2019-01-02
SCID: 54.1/g6ppdu5r
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X-ray free-electron lasersmacromolecular dynamicsradiation damageserial crystallographysingle-particle diffraction
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Abstract (AI)
X-ray free-electron lasers provide femtosecond-duration pulses of hard X-rays with a peak brightness approximately one billion times greater than is available at synchrotron radiation facilities. One motivation for the development of such X-ray sources was the proposal to obtain structures of macromolecules, macromolecular complexes, and virus particles, without the need for crystallization, through diffraction measurements of single noncrystalline objects. Initial explorations of this idea and of outrunning radiation damage with femtosecond pulses led to the development of serial crystallography and the ability to obtain high-resolution structures of small crystals without the need for cryogenic cooling. This technique allows the understanding of conformational dynamics and enzymatics and the resolution of intermediate states in reactions over timescales of 100 fs to minutes. The promise of more photons per atom recorded in a diffraction pattern than electrons per atom contributing to an electron micrograph may enable diffraction measurements of single molecules, although challenges remain.
Key Findings
1
Femtosecond pulses help outrun radiation damage and enabled serial crystallography of small crystals without cryogenic cooling.
2
Serial crystallography can resolve conformational dynamics, enzymatic processes, and reaction intermediates across timescales from 100 femtoseconds to minutes.
3
The high photon yield per atom in XFEL diffraction may permit single-molecule diffraction measurements, but substantial technical challenges remain.
4
X-ray free-electron lasers deliver femtosecond hard X-ray pulses with peak brightness approximately one billion times higher than synchrotron sources.
5
XFEL development enabled diffraction studies of single noncrystalline macromolecules, complexes, and virus particles without crystallization, although single-molecule measurements remain challenging.
Research Object
Macromolecules, macromolecular complexes, virus particles, and small crystals studied using X-ray free-electron laser diffraction
Research Subject
Their structures, conformational dynamics, enzymatic activity, and femtosecond-to-minute reaction intermediates measured by diffraction, including the effects of radiation damage and crystallization requirements
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2019-01-02
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