Macromolecular structures probed by combining single-shot free-electron laser diffraction with synchrotron coherent X-ray imaging

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作者
Marcus Gallagher-Jones
Yoshitaka Bessho
Sunam Kim
Jaehyun Park
Sangsoo Kim
Daewoong Nam
Chan Kim
Yoonhee Kim
Do Young Noh
Osamu Miyashita
Florence Tama
Yasumasa Joti
Takashi Kameshima
Takaki Hatsui
Kensuke Tono
Yoshiki Kohmura
Makina Yabashi
S. Samar Hasnain
Tetsuya Ishikawa
Changyong Song
机构
[1] RIKEN SPring-8 Center,Department of Physics
[2] 1-1-1 Kouto,Department of Physics and Photon Science and School of Materials Science and Engineering
[3] Sayo 679-5148,undefined
[4] Japan,undefined
[5] Institute of Integrative Biology,undefined
[6] University of Liverpool,undefined
[7] Pohang University of Science and Technology (POSTECH),undefined
[8] Gwangju Institute of Science and Technology,undefined
[9] RIKEN Advanced Institute for Computational Science,undefined
[10] 7-1-26 Minatojima-Minamimach,undefined
[11] Chuo-ku,undefined
[12] Kobe 650-0047,undefined
[13] Japan,undefined
[14] Japan Synchrotron Radiation Research Institute,undefined
[15] 1-1-1 Kouto,undefined
[16] Sayo 679-5198,undefined
[17] Japan,undefined
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摘要
Nanostructures formed from biological macromolecular complexes utilizing the self-assembly properties of smaller building blocks such as DNA and RNA hold promise for many applications, including sensing and drug delivery. New tools are required for their structural characterization. Intense, femtosecond X-ray pulses from X-ray free-electron lasers enable single-shot imaging allowing for instantaneous views of nanostructures at ambient temperatures. When combined judiciously with synchrotron X-rays of a complimentary nature, suitable for observing steady-state features, it is possible to perform ab initio structural investigation. Here we demonstrate a successful combination of femtosecond X-ray single-shot diffraction with an X-ray free-electron laser and coherent diffraction imaging with synchrotron X-rays to provide an insight into the nanostructure formation of a biological macromolecular complex: RNA interference microsponges. This newly introduced multimodal analysis with coherent X-rays can be applied to unveil nano-scale structural motifs from functional nanomaterials or biological nanocomplexes, without requiring a priori knowledge.
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