Profile Information
- Affiliation
- Assistant Professor, Faculty of Science Department of Life Science, Gakushuin University
- Degree
- 博士(工学)(Mar, 2012, 名古屋大学)
- Researcher number
- 90735771
- ORCID ID
https://orcid.org/0000-0001-7016-5183- J-GLOBAL ID
- 201801016128015231
- researchmap Member ID
- B000347621
Research Interests
5Research Areas
1Research History
5-
Oct, 2024 - Present
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Apr, 2022 - Sep, 2024
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Jun, 2014 - Mar, 2016
Awards
1Papers
25-
bioRxiv, Mar 25, 2025Abstract Experimental and analytical characterizations of protein structural changes are essential for understanding various biological functions. It is well known that each protein or protein complex undergoes shape changes in a specific manner and to a certain extent, influenced by factors such as molecular interactions and the solvent environment. To enable quantitative comparisons of shape changes among multiple proteins, we previously introduced an index called the “UnMorphness Factor” (UMF), which is derived using a simple, original method— intramolecular distance scoring analysis (DSA). Using this approach, we have accumulated data for over 15,000 proteins. Here, we show that among the proteins exhibiting significant structural changes, some are found to undergo substantial isotropic volume expansion or contraction. The uniformity of three-dimensional size changes can be represented by a linear correlation between the average and standard deviation of all intramolecular Cα-Cαdistances across a protein’s structural set. Packing analysis of such proteins reveals that the void volume within the same polypeptide chain can increase by up to 50% relative to the reference state. Our study clearly demonstrates that this type of structural change plays a crucial role in understanding the detailed processes of ligand binding, catalytic reaction cycles, and protein folding pathways.
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Biomolecular NMR assignments, Dec 11, 2024 Peer-reviewedNatural macrocyclic peptides produced by microorganisms serve as valuable resources for therapeutic compounds, including antibiotics, anticancer agents, and immune suppressive agents. Nonribosomal peptide synthetases (NRPSs) are responsible for the biosynthesis of macrocyclic peptides. NRPSs are large multimodular enzymes, and each module recognizes and incorporates one specific amino acid into the polypeptide product. In the final biosynthetic step, the mature linear peptide precursor is subject to head-to-tail cyclization by the thioesterase (TE) domain in the C-terminal module. Since the TE domains can autonomously catalyze the cyclization of diverse linear peptide substrates, isolated TE domains can be used to produce natural product derivatives. To understand the mechanism of TE domains in NRPSs as a base for therapeutic applications, we investigated the TE domain (residues 6236-6486) of tyrocidine synthetase TycC by NMR. Tyrocidine is a cyclic decapeptide with antibiotic activity, and TycC-TE catalyzes the cyclization of the linear decapeptide precursor. Here, we report the backbone resonance assignments of TycC-TE. The assignments of TycC-TE provide the basis for NMR investigations of the structure and substrate-recognition mode of the TE domain in NRPS.
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Protonation/deprotonation-driven switch for the redox stability of low-potential [4Fe-4S] ferredoxinDec 9, 2024 Peer-reviewedAbstract Ferredoxin is a small iron-sulfur protein and acts as an electron carrier. Low-potential ferredoxins harbor [4Fe-4S] cluster(s), which play(s) a crucial role as the redox center. Low-potential ferredoxins are able to cover a wide range of redox potentials (−700 to −200 mV); however, the mechanisms underlying the factors which control the redox potential are still enigmatic. Here, we determined the neutron structure of ferredoxin from Bacillus thermoproteolyticus, and experimentally revealed the exact hydrogen-bonding network involving the [4Fe-4S] cluster. The density functional theory calculations based on the hydrogen-bonding network revealed that protonation states of the sidechain of Asp64 close to the [4Fe-4S] cluster critically affected the stability of the reduced state in the cluster. These findings provide the first identification of the intrinsic control factor of redox potential for the [4Fe-4S] cluster in low-potential ferredoxins.
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Proceedings of the National Academy of Sciences, 121(36), Aug 27, 2024 Peer-reviewedLead authorDeprotonation or suppression of the p K a of the amino group of a lysine sidechain is a widely recognized phenomenon whereby the sidechain amino group transiently can act as a nucleophile at the active site of enzymatic reactions. However, a deprotonated lysine and its molecular interactions have not been directly experimentally detected. Here, we demonstrate a deprotonated lysine stably serving as an “acceptor” in a H-bond between the photosensor protein RcaE and its chromophore. Signal splitting and trans-H-bond J coupling observed by NMR spectroscopy provide direct evidence that Lys261 is deprotonated and serves as a H-bond acceptor for the chromophore NH group. Quantum mechanical/molecular mechanical calculations also indicate that this H-bond exists stably. Interestingly, the sidechain amino group of the lysine can act as both donor and acceptor. The remarkable shift in the H-bond characteristics arises from a decrease in solvation, triggered by photoisomerization. Our results provide insights into the dual role of this lysine. This mechanism has broad implications for other biological reactions in which lysine plays a role.
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Science Advances, 10(24), Jun 14, 2024 Peer-reviewedLead authorCertain cyanobacteria alter their photosynthetic light absorption between green and red, a phenomenon called complementary chromatic acclimation. The acclimation is regulated by a cyanobacteriochrome-class photosensor that reversibly photoconverts between green-absorbing (Pg) and red-absorbing (Pr) states. Here, we elucidated the structural basis of the green/red photocycle. In the Pg state, the bilin chromophore adopted the extended C15- Z , anti structure within a hydrophobic pocket. Upon photoconversion to the Pr state, the bilin is isomerized to the cyclic C15- E , syn structure, forming a water channel in the pocket. The solvation/desolvation of the bilin causes changes in the protonation state and the stability of π-conjugation at the B ring, leading to a large absorption shift. These results advance our understanding of the enormous spectral diversity of the phytochrome superfamily.
Misc.
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日本薬学会年会要旨集(Web), 145th, 2025
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日本薬学会年会要旨集(Web), 145th, 2025
Books and Other Publications
4Presentations
9Research Projects
10-
研究援助, 公益財団法人 山田科学振興財団, Aug, 2025 - Mar, 2027
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酵素研究助成, 公益財団法人 日本応用酵素協会, Aug, 2025 - Sep, 2026
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科学研究費助成事業, 日本学術振興会, Apr, 2023 - Mar, 2026
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科学研究費助成事業, 日本学術振興会, Apr, 2022 - Mar, 2025
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金子・成田研究奨励金, 一般財団法人 蛋白質研究奨励会, Jul, 2024 - Mar, 2025