医学部 乳腺外科

金井 好克

カナイ ヨシカツ  (Yoshikatsu Kanai)

基本情報

所属
藤田医科大学 研究推進本部 BNCT研究センター センター長
大阪大学 ヒューマン・メタバース疾患研究拠点(WPI-PRIMe) 特任教授
学位
医学士(1984年3月)
医学博士(1988年3月)

研究者番号
60204533
J-GLOBAL ID
200901003262194571
researchmap会員ID
1000305140

学歴

 2

論文

 473
  • Thosapol Sampunta, Tadashi Watabe, Sadahiro Naka, Kazuko Kaneda-Nakashima, Yoichiro Ohta, Takanori Kobayashi, Kenta Kurimoto, Kayako Isohashi, Mitsuaki Tatsumi, Hiroki Kato, Yoshikatsu Kanai, Mitsunori Kirihata, Noriyuki Tomiyama
    Nuclear Medicine and Biology 156-157 109623-109623 2026年5月  査読有り
  • Hiroki Okanishi, Isayuki Uno, Sho-Ichi Nishimura, Yoshikatsu Kanai, Ryoji Masui
    Journal of proteome research 25(4) 1878-1891 2026年4月3日  査読有り
    Proteases play crucial roles in numerous biological processes through specific protein cleavage, and their dysregulation has been implicated in various diseases. To better understand protease specificity, we developed a lauroylation-assisted proteomic identification of protease cleavage sites (PICS) workflow that labels and enriches targeted protease-generated neo-N-termini using economical reagents and standard laboratory equipment. The lauroylation enables both discrimination of the neo-N-termini in LC-MS/MS and efficient enrichment on a C18 StageTip by exploiting its hydrophobicity. Among tested acylations, we found lauroylation to be optimal for PICS and improved enrichment and fractionation conditions. We demonstrated that this method can profile specificities of multiple proteases with high sensitivity. Furthermore, we extended this concept to N-terminomics to examine proteolysis at the protein level. Protein N-terminal dimethylation is used for labeling, and tryptic internal peptides are lauroylated for removal. This approach identified over 1500 cleavages induced by etoposide, including 912 Asp-cleaved sites consistent with caspase-3 motifs and sensitive to inhibition by Z-DEVD-FMK. Additionally, 2286 protein N-termini were identified in untreated cells, including 1794 non-ORF N-termini with 665 previously annotated processing sites. These results demonstrate that our workflow provides a simple, economical, and widely applicable method for characterizing protease cleavage at both peptide and protein levels.
  • Yunlong Sui, Norihiro Okamoto, Namiko Hoshi, Yuta Inoue, Yuna Ku, Misaki Agawa, Hirotaka Nakamura, Haruka Miyazaki, Daisuke Watanabe, Makoto Ooi, Yoshihiko Yano, Ryuichi Ohgaki, Yoshikatsu Kanai, Hui Yang, Yuzo Kodama
    International Immunopharmacology 172 116138-116138 2026年3月  査読有り
  • Kou Nishikubo, Ryuichi Ohgaki, Hiroki Okanishi, Minhui Xu, Yoshikatsu Kanai
    Cancer & Metabolism 13(1) 2025年12月2日  査読有り最終著者責任著者
  • Anna Ochi, Kano Shibamoto, Yosuke Toyotake, Daiki Fujioka, Fumiaki Yokoyama, Hiroki Okanishi, Takeshi Imai, Daiki Fujita, Riku Aono, Masao Inoue, Masaru Takizawa, Ryuta Tobe, Yoshikatsu Kanai, Tomoya Imai, Hisaaki Mihara
    Environmental science & technology 2025年11月21日  査読有り
    Bacteria reduce toxic selenium oxyanions, such as selenite, to elemental selenium (Se0), forming selenium nanoparticles (SeNPs) either intracellularly or extracellularly. However, the mechanism through which extracellular SeNPs (Ex-SeNPs) are exported remains unclear. In this study, we characterized Ex-SeNPs biosynthesized by Escherichia coli during the aerobic reduction of selenite. The SeNPs appeared within 2 h of exposure, remained extracellular, and displayed a consistent spherical morphology (∼100 nm). Purified Ex-SeNPs consisted of an Se0 core enveloped by a membrane-like layer containing lipids, proteins, carbohydrates, peptidoglycan, and lipopolysaccharides. Fluorescence microscopy and gas chromatography-mass spectrometry indicated that the encapsulated membrane originates from the E. coli cell membrane. Notably, mutants deficient in the outer membrane proteins OmpC or TolA failed to excrete SeNPs, resulting in intracellular accumulation despite efficient Se0 synthesis. Our findings suggest that E. coli forms SeNPs intracellularly and exports them via an envelope-dependent process, during which the particles may become encapsulated in membrane-like structures. These findings help clarify the mechanism underlying a membrane-dependent pathway for SeNP detoxification and export that had been suggested but not directly demonstrated.

MISC

 440

書籍等出版物

 41

講演・口頭発表等

 38

共同研究・競争的資金等の研究課題

 53

産業財産権

 68