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Dive into the research topics where Naohiro Matsugaki is active.

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Featured researches published by Naohiro Matsugaki.


Nature | 2002

Structural basis for recognition of acidic-cluster dileucine sequence by GGA1.

Tomoo Shiba; Hiroyuki Takatsu; Terukazu Nogi; Naohiro Matsugaki; Masato Kawasaki; Noriyuki Igarashi; Mamoru Suzuki; Ryuichi Kato; Thomas Earnest; Kazuhisa Nakayama; Soichi Wakatsuki

GGAs (Golgi-localizing, γ-adaptin ear homology domain, ARF-interacting proteins) are critical for the transport of soluble proteins from the trans-Golgi network (TGN) to endosomes/lysosomes by means of interactions with TGN-sorting receptors, ADP-ribosylation factor (ARF), and clathrin. The amino-terminal VHS domains of GGAs form complexes with the cytoplasmic domains of sorting receptors by recognizing acidic-cluster dileucine (ACLL) sequences. Here we report the X-ray structure of the GGA1 VHS domain alone, and in complex with the carboxy-terminal peptide of cation-independent mannose 6-phosphate receptor containing an ACLL sequence. The VHS domain forms a super helix with eight α-helices, similar to the VHS domains of TOM1 and Hrs. Unidirectional movements of helices α6 and α8, and some of their side chains, create a set of electrostatic and hydrophobic interactions for correct recognition of the ACLL peptide. This recognition mechanism provides the basis for regulation of protein transport from the TGN to endosomes/lysosomes, which is shared by sortilin and low-density lipoprotein receptor-related protein.


Cell | 2005

Allosteric Modulation of the RNA Polymerase Catalytic Reaction Is an Essential Component of Transcription Control by Rifamycins

Irina Artsimovitch; Marina N. Vassylyeva; Dmitri Svetlov; Vladimir Svetlov; Anna Perederina; Noriyuki Igarashi; Naohiro Matsugaki; Soichi Wakatsuki; Tahir H. Tahirov; Dmitry G. Vassylyev

Rifamycins, the clinically important antibiotics, target bacterial RNA polymerase (RNAP). A proposed mechanism in which rifamycins sterically block the extension of nascent RNA beyond three nucleotides does not alone explain why certain RNAP mutations confer resistance to some but not other rifamycins. Here we show that unlike rifampicin and rifapentin, and contradictory to the steric model, rifabutin inhibits formation of the first and second phosphodiester bonds. We report 2.5 A resolution structures of rifabutin and rifapentin complexed with the Thermus thermophilus RNAP holoenzyme. The structures reveal functionally important distinct interactions of antibiotics with the initiation sigma factor. Strikingly, both complexes lack the catalytic Mg2+ ion observed in the apo-holoenzyme, whereas an increase in Mg2+ concentration confers resistance to rifamycins. We propose that a rifamycin-induced signal is transmitted over approximately 19 A to the RNAP active site to slow down catalysis. Based on structural predictions, we designed enzyme substitutions that apparently interrupt this allosteric signal.


Nature Structural & Molecular Biology | 2003

Molecular Mechanism of Membrane Recruitment of Gga by Arf in Lysosomal Protein Transport

Tomoo Shiba; Masato Kawasaki; Hiroyuki Takatsu; Terukazu Nogi; Naohiro Matsugaki; Noriyuki Igarashi; Mamoru Suzuki; Ryuichi Kato; Kazuhisa Nakayama; Soichi Wakatsuki

GGAs are critical for trafficking soluble proteins from the trans-Golgi network (TGN) to endosomes/lysosomes through interactions with TGN-sorting receptors, ADP-ribosylation factor (ARF) and clathrin. ARF–GTP bound to TGN membranes recruits its effector GGA by binding to the GAT domain, thus facilitating recognition of GGA for cargo-loaded receptors. Here we report the X-ray crystal structures of the human GGA1-GAT domain and the complex between ARF1–GTP and the N-terminal region of the GAT domain. When unbound, the GAT domain forms an elongated bundle of three a-helices with a hydrophobic core. Structurally, this domain, combined with the preceding VHS domain, resembles CALM, an AP180 homolog involved in endocytosis. In the complex with ARF1–GTP, a helix-loop-helix of the N-terminal part of GGA1-GAT interacts with the switches 1 and 2 of ARF1 predominantly in a hydrophobic manner. These data reveal a molecular mechanism underlying membrane recruitment of adaptor proteins by ARF–GTP.


Nature Structural & Molecular Biology | 2005

Structural basis for transcription inhibition by tagetitoxin

Dmitry G. Vassylyev; Vladimir Svetlov; Marina N. Vassylyeva; Anna Perederina; Noriyuki Igarashi; Naohiro Matsugaki; Soichi Wakatsuki; Irina Artsimovitch

Tagetitoxin (Tgt) inhibits transcription by an unknown mechanism. A structure at a resolution of 2.4 Å of the Thermus thermophilus RNA polymerase (RNAP)–Tgt complex revealed that the Tgt-binding site within the RNAP secondary channel overlaps that of the stringent control effector ppGpp, which partially protects RNAP from Tgt inhibition. Tgt binding is mediated exclusively through polar interactions with the β and β′ residues whose substitutions confer resistance to Tgt in vitro. Importantly, a Tgt phosphate, together with two active site acidic residues, coordinates the third Mg2+ ion, which is distinct from the two catalytic metal ions. We show that Tgt inhibits all RNAP catalytic reactions and propose a mechanism in which the Tgt-bound Mg2+ ion has a key role in stabilization of an inactive transcription intermediate. Remodeling of the active site by metal ions could be a common theme in the regulation of catalysis by nucleic acid enzymes.


Nature Structural & Molecular Biology | 2002

Structural basis for the accessory protein recruitment by the γ -adaptin ear domain

Terukazu Nogi; Yoko Shiba; Masato Kawasaki; Tomoo Shiba; Naohiro Matsugaki; Noriyuki Igarashi; Mamoru Suzuki; Ryuichi Kato; Hiroyuki Takatsu; Kazuhisa Nakayama; Soichi Wakatsuki

The adaptor proteins AP-1 and GGA regulate membrane traffic between the trans-Golgi network (TGN) and endosomes/lysosomes through ARF-regulated membrane association, recognition of sorting signals, and recruitment of clathrin and accessory proteins. The γ1-adaptin subunits of AP-1 and GGA possess homologous ear domains involved in the recruitment of accessory proteins, γ-synergin and Rabaptin-5. The crystal structure of the human γ1-adaptin ear domain consists solely of an immunoglobulin-like fold, unlike the α-adaptin ear domain. Structure-based mutational analyses reveal a binding site for the accessory proteins that is composed of conserved basic residues, indicating that the recruitment mechanism in γ1-adaptin and GGA is distinct from that in α-adaptin.


Acta Crystallographica Section D-biological Crystallography | 2006

Development of an automated large-scale protein-crystallization and monitoring system for high-throughput protein-structure analyses

Masahiko Hiraki; Ryuichi Kato; Minoru Nagai; Tadashi Satoh; Satoshi Hirano; Kentaro Ihara; Norio Kudo; Masamichi Nagae; Masanori Kobayashi; Michio Inoue; Tamami Uejima; Shunichiro Oda; Leonard M. G. Chavas; Masato Akutsu; Yusuke Yamada; Masato Kawasaki; Naohiro Matsugaki; Noriyuki Igarashi; Mamoru Suzuki; Soichi Wakatsuki

Protein crystallization remains one of the bottlenecks in crystallographic analysis of macromolecules. An automated large-scale protein-crystallization system named PXS has been developed consisting of the following subsystems, which proceed in parallel under unified control software: dispensing precipitants and protein solutions, sealing crystallization plates, carrying robot, incubators, observation system and image-storage server. A sitting-drop crystallization plate specialized for PXS has also been designed and developed. PXS can set up 7680 drops for vapour diffusion per hour, which includes time for replenishing supplies such as disposable tips and crystallization plates. Images of the crystallization drops are automatically recorded according to a preprogrammed schedule and can be viewed by users remotely using web-based browser software. A number of protein crystals were successfully produced and several protein structures could be determined directly from crystals grown by PXS. In other cases, X-ray quality crystals were obtained by further optimization by manual screening based on the conditions found by PXS.


Proceedings of the National Academy of Sciences of the United States of America | 2016

Redox-coupled proton transfer mechanism in nitrite reductase revealed by femtosecond crystallography

Yohta Fukuda; Ka Man Tse; Takanori Nakane; Toru Nakatsu; Mamoru Suzuki; Michihiro Sugahara; Shigeyuki Inoue; Tetsuya Masuda; Fumiaki Yumoto; Naohiro Matsugaki; Eriko Nango; Kensuke Tono; Yasumasa Joti; Takashi Kameshima; Changyong Song; Takaki Hatsui; Makina Yabashi; Osamu Nureki; Michael E. P. Murphy; Tsuyoshi Inoue; So Iwata; Eiichi Mizohata

Significance Copper nitrite reductase (CuNiR) is involved in denitrification of the nitrogen cycle. Synchrotron X-rays rapidly reduce copper sites and decompose the substrate complex structure, which has made crystallographic studies of CuNiR difficult. Using femtosecond X-ray free electron lasers, we determined intact structures of CuNiR with and without nitrite. Based on the obtained structures, we proposed a redox-coupled proton switch model, which provides an explanation for proton-coupled electron transfer (PCET) in CuNiR. PCET is widely distributed through biogenic processes including respiratory and photosynthetic systems and is highly expected to be incorporated into bioinspired molecular devices. Our study also establishes the foundation for future studies on PCET in other systems. 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.


Acta Crystallographica Section D-biological Crystallography | 2010

Crystallization of small proteins assisted by green fluorescent protein.

Nobuhiro Suzuki; Masahiko Hiraki; Yusuke Yamada; Naohiro Matsugaki; Noriyuki Igarashi; Ryuichi Kato; Ivan Dikic; David Drew; So Iwata; Soichi Wakatsuki; Masato Kawasaki

The generation of crystal lattice contacts by proteinaceous tags fused to target proteins is an attractive approach to aid in the crystallization of otherwise intractable proteins. Here, the use of green fluorescent protein (GFP) fusions for this purpose is demonstrated, using ubiquitin and the ubiquitin-binding motif (UBM) of Y-family polymerase ι as examples. The structure of the GFP-ubiquitin fusion protein revealed that the crystal lattice was formed by GFP moieties. Ubiquitin was accommodated in the lattice through interactions with the peripheral loops of GFP. However, in the GFP-UBM fusion crystal UBM formed extensive interactions with GFP and these interactions, together with UBM dimerization, mediated the crystal packing. Interestingly, the tyrosine residues that are involved in mediating crystal contacts in both GFP-ubiquitin and GFP-UBM crystals are arranged in a belt on the surface of the β-barrel structure of GFP. Therefore, it is likely that GFP can assist in the crystallization of small proteins and of protein domains in general.


Philosophical Transactions of the Royal Society B | 2014

In vivo crystallography at X-ray free-electron lasers: the next generation of structural biology?

François-Xavier Gallat; Naohiro Matsugaki; Nathan P. Coussens; Koichiro J. Yagi; Marion Boudes; Tetsuya Higashi; Daisuke Tsuji; Yutaka Tatano; Mamoru Suzuki; Eiichi Mizohata; Kensuke Tono; Yasumasa Joti; Takashi Kameshima; Jaehyun Park; Changyong Song; Takaki Hatsui; Makina Yabashi; Eriko Nango; Kohji Itoh; Fasséli Coulibaly; Stephen S. Tobe; S. Ramaswamy; Barbara Stay; So Iwata; Leonard M. G. Chavas

The serendipitous discovery of the spontaneous growth of protein crystals inside cells has opened the field of crystallography to chemically unmodified samples directly available from their natural environment. On the one hand, through in vivo crystallography, protocols for protein crystal preparation can be highly simplified, although the technique suffers from difficulties in sampling, particularly in the extraction of the crystals from the cells partly due to their small sizes. On the other hand, the extremely intense X-ray pulses emerging from X-ray free-electron laser (XFEL) sources, along with the appearance of serial femtosecond crystallography (SFX) is a milestone for radiation damage-free protein structural studies but requires micrometre-size crystals. The combination of SFX with in vivo crystallography has the potential to boost the applicability of these techniques, eventually bringing the field to the point where in vitro sample manipulations will no longer be required, and direct imaging of the crystals from within the cells will be achievable. To fully appreciate the diverse aspects of sample characterization, handling and analysis, SFX experiments at the Japanese SPring-8 angstrom compact free-electron laser were scheduled on various types of in vivo grown crystals. The first experiments have demonstrated the feasibility of the approach and suggest that future in vivo crystallography applications at XFELs will be another alternative to nano-crystallography.


Journal of Synchrotron Radiation | 2008

High-throughput operation of sample-exchange robots with double tongs at the Photon Factory beamlines

Masahiko Hiraki; Shokei Watanabe; Nobuo pHonda; Yusuke Yamada; Naohiro Matsugaki; Noriyuki Igarashi; Yurii Gaponov; Soichi Wakatsuki

Sample-exchange robots with a double-tongs system that could exchange samples within 10 s have been developed.

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