研究者業績

山田 大智

ヤマダ ダイチ  (Daichi Yamada)

基本情報

所属
兵庫県立大学 生命理学研究科 助教
学位
工学博士(名古屋工業大学)

連絡先
d.yamadasci.u-hyogo.ac.jp
研究者番号
90793191
ORCID ID
 https://orcid.org/0000-0001-6349-8588
J-GLOBAL ID
201801019650237650
researchmap会員ID
B000335265

外部リンク

論文

 15
  • Keiichi Inoue, Masayuki Karasuyama, Ryoko Nakamura, Masae Konno, Daichi Yamada, Kentaro Mannen, Takashi Nagata, Yu Inatsu, Hiromu Yawo, Kei Yura, Oded Béjà, Hideki Kandori, Ichiro Takeuchi
    Communications Biology 4(1) 2021年12月1日  
  • Daichi Yamada, Junpei Yamamoto, Elizabeth D. Getzoff, Tatsuya Iwata, Hideki Kandori
    Biochemistry 60(43) 3253-3261 2021年11月2日  査読有り筆頭著者
  • Takashi Nomura, Tetsunari Kimura, Yusuke Kanematsu, Daichi Yamada, Keitaro Yamashita, Kunio Hirata, Go Ueno, Hironori Murakami, Tamao Hisano, Raika Yamagiwa, Hanae Takeda, Chai Gopalasingam, Ryota Kousaka, Sachiko Yanagisawa, Osami Shoji, Takashi Kumasaka, Masaki Yamamoto, Yu Takano, Hiroshi Sugimoto, Takehiko Tosha, Minoru Kubo, Yoshitsugu Shiro
    Proceedings of the National Academy of Sciences 118(21) e2101481118-e2101481118 2021年5月25日  査読有り
    Nitric oxide (NO) reductase from the fungus <italic>Fusarium oxysporum</italic> is a P450-type enzyme (P450nor) that catalyzes the reduction of NO to nitrous oxide (N2O) in the global nitrogen cycle. In this enzymatic reaction, the heme-bound NO is activated by the direct hydride transfer from NADH to generate a short-lived intermediate (<italic><underline>I</underline></italic>), a key state to promote N–N bond formation and N–O bond cleavage. This study applied time-resolved (TR) techniques in conjunction with photolabile-caged NO to gain direct experimental results for the characterization of the coordination and electronic structures of <italic><underline>I</underline></italic>. TR freeze-trap crystallography using an X-ray free electron laser (XFEL) reveals highly bent Fe–NO coordination in <italic><underline>I</underline></italic>, with an elongated Fe–NO bond length (Fe–NO = 1.91 Å, Fe–N–O = 138°) in the absence of NAD+. TR-infrared (IR) spectroscopy detects the formation of <italic><underline>I</underline></italic> with an N–O stretching frequency of 1,290 cm−1 upon hydride transfer from NADH to the Fe3+–NO enzyme via the dissociation of NAD+ from a transient state, with an N–O stretching of 1,330 cm−1 and a lifetime of ca. 16 ms. Quantum mechanics/molecular mechanics calculations, based on these crystallographic and IR spectroscopic results, demonstrate that the electronic structure of <italic><underline>I</underline></italic> is characterized by a singly protonated Fe3+–NHO•− radical. The current findings provide conclusive evidence for the N2O generation mechanism via a radical–radical coupling of the heme nitroxyl complex with the second NO molecule.
  • Keiichi Inoue, Masayuki Karasuyama, Ryoko Nakamura, Masae Konno, Daichi Yamada, Kentaro Mannen, Takashi Nagata, Yu Inatsu, Hiromu Yawo, Kei Yura, Oded Béjà, Hideki Kandori, Ichiro Takeuchi
    Communications biology 4(1) 362-362 2021年3月19日  査読有り
    Microbial rhodopsins are photoreceptive membrane proteins, which are used as molecular tools in optogenetics. Here, a machine learning (ML)-based experimental design method is introduced for screening rhodopsins that are likely to be red-shifted from representative rhodopsins in the same subfamily. Among 3,022 ion-pumping rhodopsins that were suggested by a protein BLAST search in several protein databases, the ML-based method selected 65 candidate rhodopsins. The wavelengths of 39 of them were able to be experimentally determined by expressing proteins with the Escherichia coli system, and 32 (82%, p = 7.025 × 10-5) actually showed red-shift gains. In addition, four showed red-shift gains >20 nm, and two were found to have desirable ion-transporting properties, indicating that they would be potentially useful in optogenetics. These findings suggest that data-driven ML-based approaches play effective roles in the experimental design of rhodopsin and other photobiological studies. (141/150 words).
  • Tatsuya Iwata, Daichi Yamada, Katsuhiro Mikuni, Kazuya Agata, Kenichi Hitomi, Elizabeth D Getzoff, Hideki Kandori
    Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology 19(10) 1326-1331 2020年10月14日  査読有り招待有り
    Cryptochromes (CRYs) are blue-light receptors involved in photomorphogenesis in plants. Flavin adenine dinucleotide (FAD) is one of the chromophores of cryptochromes; its resting state oxidized form is converted into a signalling state neutral semiquionod radical (FADH˙) form. Studies have shown that cryptochrome 1 from Arabidopsis thaliana (AtCRY1) can bind ATP at its photolyase homology region (PHR), resulting in accumulation of FADH˙ form. This study used light-induced difference Fourier transform infrared spectroscopy to investigate how ATP influences structural changes in AtCRY1-PHR during the photoreaction. In the presence of ATP, there were large changes in the signals from the protein backbone compared with in the absence of ATP. The deprotonation of a carboxylic acid was observed only in the presence of ATP; this was assigned as aspartic acid (Asp) 396 through measurement of Asp to glutamic acid mutants. This corresponds to the protonation state of Asp396 estimated from the reported pKa values of Asp396; that is, the side chain of Asp396 is deprotonated and protonated for the ATP-free and -bound forms, respectively, in our experimental condition at pH8. Therefore, Asp396 acts a proton donor to FAD when it is ptotonated. It was indicated that the protonation/deprotination process of Asp396 is correlated with the accunumulation of FADH˙ and protein conformational changes.
  • Yamauchi Y, Konno M, Yamada D, Yura K, Inoue K, Béjà O, Kandori H
    Photochemistry and photobiology 95(5) 1116-1121 2019年9月  査読有り
  • Masahito Watari, Tatsuya Ikuta, Daichi Yamada, Wataru Shihoya, Kazuho Yoshida, Satoshi P Tsunoda, Osamu Nureki, Hideki Kandori
    The Journal of biological chemistry 294(10) 3432-3443 2019年3月8日  査読有り
    The choanoflagellate Salpingoeca rosetta contains a chimeric rhodopsin protein composed of an N-terminal rhodopsin (Rh) domain and a C-terminal cyclic nucleotide phosphodiesterase (PDE) domain. The Rh-PDE enzyme light-dependently decreases the concentrations of cyclic nucleotides such as cGMP and cAMP. Photoexcitation of purified full-length Rh-PDE yields an "M" intermediate with a deprotonated Schiff base, and its recovery is much faster than that of the enzyme domain. To gain structural and mechanistic insights into the Rh domain, here we expressed and purified the transmembrane domain of Rh-PDE, Rh-PDE(TMD), and analyzed it with transient absorption, light-induced difference UV-visible, and FTIR spectroscopy methods. These analyses revealed that the "K" intermediate forms within 0.005 ms and converts into the M intermediate with a time constant of 4 ms, with the latter returning to the original state within 4 s. FTIR spectroscopy revealed that all-trans to 13-cis photoisomerization occurs as the primary event during which chromophore distortion is located at the middle of the polyene chain, allowing the Schiff base to form a stronger hydrogen bond. We also noted that the peptide backbone of the α-helix becomes deformed upon M intermediate formation. Results from site-directed mutagenesis suggested that Glu-164 is protonated and that Asp-292 acts as the only Schiff base counterion in Rh-PDE. A strong reduction of enzymatic activity in a D292N variant, but not in an E164Q variant, indicated an important catalytic role of the negative charge at Asp-292. Our findings provide further mechanistic insights into rhodopsin-mediated, light-dependent regulation of second-messenger levels in eukaryotic microbes.
  • Hisham M. Dokainish, Daichi Yamada, Tatsuya Iwata, Hideki Kandori, Akio Kitao
    ACS CATALYSIS 7(7) 4835-4845 2017年7月  査読有り
  • Takashi Gojobori, Kazuho Ikeo, Yukie Katayama, Takeshi Kawabata, Akira R. Kinjo, Kengo Kinoshita, Yeondae Kwon, Ohsuke Migita, Hisashi Mizutani, Masafumi Muraoka, Koji Nagata, Satoshi Omori, Hideaki Sugawara, Daichi Yamada, Kei Yura
    Journal of Structural and Functional Genomics 17(4) 69-81 2016年12月1日  査読有り
  • Daichi Yamada, Hisham M. Dokainish, Tatsuya Iwata, Junpei Yamamoto, Tomoko Ishikawa, Takeshi Todo, Shigenori Iwai, Elizabeth D. Getzoff, Akio Kitao, Hideki Kandori
    BIOCHEMISTRY 55(30) 4173-4183 2016年8月  査読有り
  • Daichi Yamada, Junpei Yamamoto, Yu Zhang, Tatsuya Iwata, Kenichi Hitomi, Elizabeth D. Getzoff, Shigenori Iwai, Hideki Kandori
    BIOCHEMISTRY 55(4) 715-723 2016年2月  査読有り
  • Yamada D, Iwata T, Yamamoto J, Hitomi K, Todo T, Iwai S, Getzoff ED, Kandori H
    Biophysics and physicobiology 12 139-144 2015年  査読有り
  • Yamada D, Kandori H
    Methods in molecular biology (Clifton, N.J.) 1146 361-376 2014年  査読有り
  • Daichi Yamada, Yu Zhang, Tatsuya Iwata, Kenichi Hitomi, Elizabeth D. Getzoff, Hideki Kandori
    BIOCHEMISTRY 51(29) 5774-5783 2012年7月  査読有り
  • Yu Zhang, Junpei Yamamoto, Daichi Yamada, Tatsuya Iwata, Kenichi Hitomi, Takeshi Todo, Elizabeth D. Getzoff, Shigenori Iwai, Hideki Kandorit
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS 2(21) 2774-2777 2011年11月  査読有り

MISC

 3

講演・口頭発表等

 106

共同研究・競争的資金等の研究課題

 3