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Single-particle structure determination by correlations of snapshot X-ray diffraction patterns

delete2012-12-11
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OA
AI
D
D. Starodub *
A
Andrew Aquila
S
S. Bajt
M
Miriam Barthelmeß
A
Anton Barty
C
Christoph Bostedt
J
John D. Bozek
N
N. Coppola
R
R. Bruce Doak
S
Sascha W. Epp
B
Benjamin Erk
L
L. Foucar
L
Lars Gumprecht
C
Christina Y. Hampton
A
A. Hartmann
R
Robert Hartmann
P
P. Holl
S
Stephan Kassemeyer
N
Nils Kimmel
H
Hartawan Laksmono
M
Mengning Liang
N
N. Duane Loh
L
Lukas Lomb
A
Andrew V. Martin
K
Karol Nass
C
Christian Reich
D
Daniel Rolles
B
Benedikt Rudek
A
Artem Rudenko
J
Joachim Schulz
R
Robert L. Shoeman
R
Raymond G. Sierra
H
H. Soltau
J
Jan Steinbrener
F
Francesco Stellato
S
Stephan Stern
G
G. Weidenspointner
M
Matthias Frank
J
J. Ullrich
L
L. Strüder
I
Ilme Schlichting
H
Henry N. Chapman
J
John C. H. Spence
M
Mike Bogan
DOI:10.1038/ncomms2288delete
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Abstract

Abstract

En 中文
Diffractive imaging with free-electron lasers allows structure determination from ensembles of weakly scattering identical nanoparticles. The ultra-short, ultra-bright X-ray pulses provide snapshots of the randomly oriented particles frozen in time, and terminate before the onset of structural damage. As signal strength diminishes for small particles, the synthesis of a three-dimensional diffraction volume requires simultaneous involvement of all data. Here we report the first application of a three-dimensional spatial frequency correlation analysis to carry out this synthesis from noisy single-particle femtosecond X-ray diffraction patterns of nearly identical samples in random and unknown orientations, collected at the Linac Coherent Light Source. Our demonstration uses unsupported test particles created via aerosol self-assembly, and composed of two polystyrene spheres of equal diameter. The correlation analysis avoids the need for orientation determination entirely. This method may be applied to the structural determination of biological macromolecules in solution.
Keywords:
RECONSTRUCTION
VIRUS

Journal

Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.2W
Citations:
91.2W

Organization

D
deutsches elektronen-synchrotron (desy)
Scholars:
5.7K
Papers: 4.8K
Citations: 10
S
Stanford University
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9.6W
Papers: 8.2W
Citations: 17.0W
E
European XFEL
Scholars:
975
Papers: 384
Citations: 5
S
SLAC National Accelerator Laboratory
Scholars:
4.1K
Papers: 2.5K
Citations: 1.7W
H
Helmholtz Association
Scholars:
13.2W
Papers: 10.7W
Citations: 145
U
united states department of energy (doe)
Scholars:
11.3W
Papers: 9.6W
Citations: 246
M
Max Planck Society
Scholars:
8.2W
Papers: 7.7W
Citations: 3.3W
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