Journal Article PHPPUBDB-16204

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Femtosecond x-ray protein nanocrystallography

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2011
Nature Publising Group London [u.a.]

Nature <London> 470, 73-77 () [10.1038/nature09750]
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Abstract: X-ray crystallography provides the vast majority of macromolecular structures, but the success of the method relies on growing crystals of sufficient size. In conventional measurements, the necessary increase in X-ray dose to record data from crystals that are too small leads to extensive damage before a diffraction signal can be recorded. It is particularly challenging to obtain large, well-diffracting crystals of membrane proteins, for which fewer than 300 unique structures have been determined despite their importance in all living cells. Here we present a method for structure determination where single-crystal X-ray diffraction 'snapshots' are collected from a fully hydrated stream of nanocrystals using femtosecond pulses from a hard-X-ray free-electron laser, the Linac Coherent Light Source. We prove this concept with nanocrystals of photosystem I, one of the largest membrane protein complexes. More than 3,000,000 diffraction patterns were collected in this study, and a three-dimensional data set was assembled from individual photosystem I nanocrystals (∼200 nm to 2 μm in size). We mitigate the problem of radiation damage in crystallography by using pulses briefer than the timescale of most damage processes. This offers a new approach to structure determination of macromolecules that do not yield crystals of sufficient size for studies using conventional radiation sources or are particularly sensitive to radiation damage.

Keyword(s): Crystallography, X-Ray: instrumentation (MeSH) ; Crystallography, X-Ray: methods (MeSH) ; Lasers (MeSH) ; Models, Molecular (MeSH) ; Nanoparticles: chemistry (MeSH) ; Nanotechnology: instrumentation (MeSH) ; Nanotechnology: methods (MeSH) ; Photosystem I Protein Complex: chemistry (MeSH) ; Protein Conformation (MeSH) ; Time Factors (MeSH) ; X-Rays (MeSH) ; Photosystem I Protein Complex

Classification:

Contributing Institute(s):
  1. Experiments with synchrotron radiation (HASYLAB(-2012))
  2. CFEL-Coherent X-Ray Imaging (FS-CFEL-1)
  3. Forschungsgruppe für strukturelle Dynamik (MPSD)
  4. FS-Detektor Systeme (FS-DS)
  5. European XFEL (Eur.XFEL)
Research Program(s):
  1. Experiments at CFEL (POF2-544) (POF2-544)
Experiment(s):
  1. Experiments at CFEL

Appears in the scientific report 2011
Notes: (c) Nature Publishing Group
Database coverage:
Medline ; OpenAccess ; JCR ; No Author Disambiguation ; Thomson Reuters Master Journal List ; Web of Science Core Collection
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The record appears in these collections:
Private Collections > >DESY > >FS > HASYLAB(-2012)
Private Collections > >DESY > >FS > FS-CFEL-1
Private Collections > >DESY > >FS > FS-DS
Private Collections > >XFEL.EU > Eur.XFEL
Document types > Articles > Journal Article
Private Collections > >MPG > MPSD
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 Record created 2012-09-19, last modified 2025-07-30


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