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result(s) for
"Joti, Yasumasa"
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High-fluence and high-gain multilayer focusing optics to enhance spatial resolution in femtosecond X-ray laser imaging
by
Yabashi, Makina
,
Joti, Yasumasa
,
Bessho, Yoshitaka
in
639/624/1107/510
,
639/925/930/2735
,
Atoms & subatomic particles
2022
With the emergence of X-ray free-electron lasers (XFELs), coherent diffractive imaging (CDI) has acquired a capability for single-particle imaging (SPI) of non-crystalline objects under non-cryogenic conditions. However, the single-shot spatial resolution is limited to ~5 nanometres primarily because of insufficient fluence. Here, we present a CDI technique whereby high resolution is achieved with very-high-fluence X-ray focusing using multilayer mirrors with nanometre precision. The optics can focus 4-keV XFEL down to 60 nm × 110 nm and realize a fluence of >3 × 10
5
J cm
−2
pulse
−1
or >4 × 10
12
photons μm
−2
pulse
−1
with a tenfold increase in the total gain compared to conventional optics due to the high demagnification. Further, the imaging of fixed-target metallic nanoparticles in solution attained an unprecedented 2-nm resolution in single-XFEL-pulse exposure. These findings can further expand the capabilities of SPI to explore the relationships between dynamic structures and functions of native biomolecular complexes.
Here, the authors realize an ultra-high fluence X-ray laser by high-gain multilayer focusing optics. This enables in-solution imaging with 2-nm resolution in a single-pulse exposure, making strides toward biomolecular imaging under physiological conditions.
Journal Article
Imaging live cell in micro-liquid enclosure by X-ray laser diffraction
by
Ishikawa, Tetsuya
,
Moriya, Toshiyuki
,
Tamakoshi, Masatada
in
639/624/1020/1087
,
639/624/400/1106
,
639/766/747
2014
Emerging X-ray free-electron lasers with femtosecond pulse duration enable single-shot snapshot imaging almost free from sample damage by outrunning major radiation damage processes. In bioimaging, it is essential to keep the sample close to its natural state. Conventional high-resolution imaging, however, suffers from severe radiation damage that hinders live cell imaging. Here we present a method for capturing snapshots of live cells kept in a micro-liquid enclosure array by X-ray laser diffraction. We place living
Microbacterium lacticum
cells in an enclosure array and successively expose each enclosure to a single X-ray laser pulse from the SPring-8 Angstrom Compact Free-Electron Laser. The enclosure itself works as a guard slit and allows us to record a coherent diffraction pattern from a weakly-scattering submicrometre-sized cell with a clear fringe extending up to a 28-nm full-period resolution. The reconstructed image reveals living whole-cell structures without any staining, which helps advance understanding of intracellular phenomena.
Live cell imaging at high resolution is very challenging because cells die upon prolonged radiation exposure. Kimura
et al.
overcome this problem by using pulsed coherent X-ray diffraction to image live microbacterium in a nanofabricated liquid enclosure at resolution far exceeding optical methods.
Journal Article
Viscosity-adjustable grease matrices for serial nanocrystallography
by
Numata, Keiji
,
Yabashi, Makina
,
Ishikawa, Tetsuya
in
631/45/612
,
631/535/1266/1265
,
Cellulose
2020
Serial femtosecond crystallography (SFX) has enabled determination of room temperature structures of proteins with minimum radiation damage. A highly viscous grease matrix acting as a crystal carrier for serial sample loading at a low flow rate of ~0.5 μl min
−1
was introduced into the beam path of X-ray free-electron laser. This matrix makes it possible to determine the protein structure with a sample consumption of less than 1 mg of the protein. The viscosity of the matrix is an important factor in maintaining a continuous and stable sample column from a nozzle of a high viscosity micro-extrusion injector for serial sample loading. Using conventional commercial grease (an oil-based, viscous agent) with insufficient control of viscosity in a matrix often gives an unexpectedly low viscosity, providing an unstable sample stream, with effects such as curling of the stream. Adjustment of the grease viscosity is extremely difficult since the commercial grease contains unknown compounds, which may act as unexpected inhibitors of proteins. This study introduces two novel grease matrix carriers comprising known compounds with a viscosity higher than that of conventional greases, to determine the proteinase K structure from nano-/microcrystals.
Journal Article
Serial crystallography captures dynamic control of sequential electron and proton transfer events in a flavoenzyme
by
Hosokawa, Yuhei
,
Kiontke, Stephan
,
Liao, Jiahn-Haur
in
631/45/607/1168
,
631/535/1266
,
639/638/45/173
2022
Flavin coenzymes are universally found in biological redox reactions. DNA photolyases, with their flavin chromophore (FAD), utilize blue light for DNA repair and photoreduction. The latter process involves two single-electron transfers to FAD with an intermittent protonation step to prime the enzyme active for DNA repair. Here we use time-resolved serial femtosecond X-ray crystallography to describe how light-driven electron transfers trigger subsequent nanosecond-to-microsecond entanglement between FAD and its Asn/Arg-Asp redox sensor triad. We found that this key feature within the photolyase-cryptochrome family regulates FAD re-hybridization and protonation. After first electron transfer, the FAD
•−
isoalloxazine ring twists strongly when the arginine closes in to stabilize the negative charge. Subsequent breakage of the arginine–aspartate salt bridge allows proton transfer from arginine to FAD
•−
. Our molecular videos demonstrate how the protein environment of redox cofactors organizes multiple electron/proton transfer events in an ordered fashion, which could be applicable to other redox systems such as photosynthesis.
A reduction reaction is usually equated with an electron transfer reaction. Now, ultrafast time-resolved serial femtosecond X-ray crystallography has enabled the visualization of the stepwise structural changes that occur after electron transfers have been observed in the light-triggered reduction of flavin adenine dinucleotide catalysed by DNA photolyase.
Journal Article
FPGA‐accelerated streaming data reduction achieving an average compression ratio over 8000 in a 17.4 kHz, 840 kpixel CITIUS detector for quasi‐elastic gamma‐ray scattering
by
Hiraki, Toshiyuki Nishiyama
,
Yamaga, Mitsuhiro
,
Joti, Yasumasa
in
Compression ratio
,
Data acquisition
,
data analysis
2026
We present a data‐acquisition and ‐analysis framework for quasi‐elastic gamma‐ray scattering (QEGS) experiments at BL35XU of SPring‐8, equipped with an 840 kpixel CITIUS X‐ray detector operating at 17.4 kHz. The detector produces data at 27 GB s−1 (216 Gbps), and typical experiments involve acquisition over beam‐time periods longer than 24 h, generating datasets of 2.3 PB per day. To handle this volume, we constructed a data‐handling pipeline consisting of the detector, data reduction at the beamline and analysis tools at the data center. The data reduction employs field‐programmable gate array (FPGA)‐accelerated per‐pixel processing to reduce data entropy, followed by Zstandard compression on CPUs, achieving an average compression ratio of over 8000. The compressed data are transferred to the SPring‐8 data center within two to three minutes of data acquisition. At the data center, analysis tools are provided via the Open OnDemand platform, enabling incremental integration and spectral analysis through a web‐based interface without the need for high‐performance‐computing command‐line interaction. This data‐handling pipeline has been applied in QEGS user experiments, where it enabled timely feedback on experimental data, with integrated results available within six minutes and spectral analysis within seven minutes of integration. A high‐throughput field‐programmable gate array (FPGA)‐accelerated data‐reduction and ‐analysis pipeline combined with high‐performance computing enables the continuous handling of a 216 Gbps data stream from quasi‐elastic gamma‐ray scattering experiments at SPring‐8.
Journal Article
High-resolution and high-sensitivity X-ray ptychographic coherent diffraction imaging using the CITIUS detector
by
Hiraki, Toshiyuki Nishiyama
,
Ishiguro, Nozomu
,
Abe, Masaki
in
citius
,
Diffraction patterns
,
Emittance
2023
Ptychographic coherent diffraction imaging (PCDI) is a synchrotron X-ray microscopy technique that provides high spatial resolution and a wide field of view. To improve the performance of PCDI, the performance of the synchrotron radiation source and imaging detector should be improved. In this study, ptychographic diffraction pattern measurements using the CITIUS high-speed X-ray image detector and the corresponding image reconstruction are reported. X-rays with an energy of 6.5 keV were focused by total reflection focusing mirrors, and a flux of ∼2.6 × 10 10 photons s −1 was obtained at the sample plane. Diffraction intensity data were collected at up to ∼250 Mcounts s −1 pixel −1 without saturation of the detector. Measurements of tantalum test charts and silica particles and the reconstruction of phase images were performed. A resolution of ∼10 nm and a phase sensitivity of ∼0.01 rad were obtained. The CITIUS detector can be applied to the PCDI observation of various samples using low-emittance synchrotron radiation sources and to the stability evaluation of light sources.
Journal Article
Redox-coupled proton transfer mechanism in nitrite reductase revealed by femtosecond crystallography
by
Masuda, Tetsuya
,
Yumoto, Fumiaki
,
Nakane, Takanori
in
Alcaligenes faecalis - enzymology
,
Alcaligenes faecalis - genetics
,
Amino Acid Sequence
2016
Proton-coupled electron transfer (PCET), a ubiquitous phenomenon in biological systems, plays an essential role in copper nitrite reductase (CuNiR), the key metalloenzyme in microbial denitrification of the global nitrogen cycle. Analyses of the nitrite reduction mechanism in CuNiR with conventional synchrotron radiation crystallography (SRX) have been faced with difficulties, because X-ray photoreduction changes the native structures of metal centers and the enzyme–substrate complex. Using serial femtosecond crystallography (SFX), we determined the intact structures of CuNiR in the resting state and the nitrite complex (NC) state at 2.03- and 1.60-Å resolution, respectively. Furthermore, the SRX NC structure representing a transient state in the catalytic cycle was determined at 1.30-Å resolution. Comparison between SRX and SFX structures revealed that photoreduction changes the coordination manner of the substrate and that catalytically important His255 can switch hydrogen bond partners between the backbone carbonyl oxygen of nearby Glu279 and the side-chain hydroxyl group of Thr280. These findings, which SRX has failed to uncover, propose a redox-coupled proton switch for PCET. This concept can explain how proton transfer to the substrate is involved in intramolecular electron transfer and why substrate binding accelerates PCET. Our study demonstrates the potential of SFX as a powerful tool to study redox processes in metalloenzymes.
Journal Article
Ion–ion interactions in the denatured state contribute to the stabilization of CutA1 proteins
by
Joti, Yasumasa
,
Matsuura, Yoshinori
,
Naitow, Hisashi
in
631/45/470
,
631/57/2272/951
,
Denaturation
2018
In order to elucidate features of the denatured state ensembles that exist in equilibrium with the native state under physiological conditions, we performed 1.4-μs molecular dynamics (MD) simulations at 400 K and 450 K using the monomer subunits of three CutA1 mutants from
Escherichia coli
: an SH-free mutant (Ec0SH) with denaturation temperature (
T
d
) = 85.6 °C, a hydrophobic mutant (Ec0VV) with
T
d
= 113.3 °C, and an ionic mutant (Ec0VV_6) with
T
d
= 136.8 °C. The occupancy of salt bridges by the six substituted charged residues in Ec0VV_6 was 140.1% at 300 K and 89.5% at 450 K, indicating that even in the denatured state, salt bridge occupancy was high, approximately 60% of that at 300 K. From these results, we can infer that proteins from hyperthermophiles with a high ratio of charged residues are stabilized by a decrease in conformational entropy due to ion–ion interactions in the denatured state. The mechanism must be comparable to the stabilization conferred by disulfide bonds within a protein. This suggests that introduction of charged residues, to promote formation of salt bridges in the denatured state, would be a simple way to rationally design stability-enhanced mutants.
Journal Article
A beam branching method for timing and spectral characterization of hard X-ray free-electron lasers
by
Vartiainen, Ismo
,
Eronen, Anni
,
Togashi, Tadashi
in
Electron beams
,
Error analysis
,
Free electron lasers
2016
We report a method for achieving advanced photon diagnostics of x-ray free-electron lasers (XFELs) under a quasi-noninvasive condition by using a beam-splitting scheme. Here, we used a transmission grating to generate multiple branches of x-ray beams. One of the two primary diffracted branches (+1st-order) is utilized for spectral measurement in a dispersive scheme, while the other (−1st-order) is dedicated for arrival timing diagnostics between the XFEL and the optical laser pulses. The transmitted x-ray beam (0th-order) is guided to an experimental station. To confirm the validity of this timing-monitoring scheme, we measured the correlation between the arrival timings of the −1st and 0th branches. The observed error was as small as 7.0 fs in root-mean-square. Our result showed the applicability of the beam branching scheme to advanced photon diagnostics, which will further enhance experimental capabilities of XFEL.
Journal Article
Hydroxyethyl cellulose matrix applied to serial crystallography
by
Masuda, Tetsuya
,
Yumoto, Fumiaki
,
Nakane, Takanori
in
631/1647/2258/1266
,
631/535/1266
,
Cellulose
2017
Serial femtosecond crystallography (SFX) allows structures of proteins to be determined at room temperature with minimal radiation damage. A highly viscous matrix acts as a crystal carrier for serial sample loading at a low flow rate that enables the determination of the structure, while requiring consumption of less than 1 mg of the sample. However, a reliable and versatile carrier matrix for a wide variety of protein samples is still elusive. Here we introduce a hydroxyethyl cellulose-matrix carrier, to determine the structure of three proteins. The
de novo
structure determination of proteinase K from single-wavelength anomalous diffraction (SAD) by utilizing the anomalous signal of the praseodymium atom was demonstrated using 3,000 diffraction images.
Journal Article