| 氏名 | |
|---|---|
| 職位 | 講師 |
| 所属教室 | |
| 専攻・コース(大学院) |
医学専攻 肉眼解剖学コース(新課程) 生理系専攻 器官構築学分野(肉眼解剖学)(旧課程) |
| 担当科目(学部) | 肉眼解剖学I(医学部) 肉眼解剖学II(医学部) |
| 専門分野 | 解剖学・薬理学・糖尿病学・内分泌学 |
| 研究テーマ | G蛋白質共役型受容体、Orphan受容体、Tyrosin Kinase受容体、バイオセンサー開発、生物発光、がん、糖代謝・脂質代謝異常 |
| 略歴 | 2003年3月 東京大学医学部医学科卒業 2003年5月 東京大学医学部附属病院内科研修医 2004年6月 三井記念病院内科 2006年4月 東京大学医学部附属病院腎臓内分泌内科入局・東京大学大学院医学系研究科内科学専攻入学 2012年3月 東京大学大学院医学系研究科内科学専攻修了(博士(医学)取得) 2012年4月 東京大学医学部附属病院腎臓内分泌内科医員・博士研究員 2015年10月 Institut Cochin (Université Paris Descartes, INSERM) 博士研究員(Paris, France) 2020年9月- 現職 受賞歴など 2017年4月 Seal of Excellence in Marie Skłodowska-Curie actions call H2020-MSCA-IF-2016 2024/2025 Teacher of the year(2024, 2025)杏林大学医学部M2 |
| 所有する学位 | 博士(医学) |
| 指導医・専門医・認定医、その他の資格等 | 日本内科学会認定内科医・総合内科専門医 日本糖尿病学会糖尿病専門医 |
| 論文・著書等を含む主要研究業績 |
詳細な業績は researchmap 研究者総覧 をご覧ください
筆頭著者または責任著者の英文論文 1) Oishi A#*, Okamoto H#, Ikegami K#, McHugh R, Masri B, Kusakizako K, Kobayashi K, Karamitri A, Cecon E, Dam J, Nagase M, Tikhonova I, Nureki O*, Jockers R*. Structural basis and physiological significance of non-canonical Gs coupling to the melatonin MT1 receptor. Nat. Comm. 2026, May 21. PMID: 42168230, doi: 10.1038/s41467-026-73555-6. 2) Matsutani H, Oishi A*, Takuya Izumi-Tamura, Yumiko Hayashi, Kurita M, Muto T, Yoshimi A, Ueno H, Shiraishi T, Harii K, Takushima A, Kidoya H, and Ozaki M. A High-Sensitivity Tie2–Grb2 BRET Platform for Functional and Pharmacologic Profiling of Pathogenic Variants Associated with Venous Malformations. Angiogenesis. (accepted) DOI: 10.1007/s10456-026-10071-7 3) Kusama K, Oishi A*, Ueno H, Yoshimi A, Nagase M, Shintake J*. Electrically driven, bioluminescent compliant devices for soft robotics. ACS Appl Mater Interfaces 2025. Feb 19 PMID: 39930615 DOI: 10.1021/acsami.4c18209 本論文はJSTニュース2025年5月号(日本語・英語・中国語)・子供の科学・ASCII TECH・NIKKEI Biotechで紹介されました。 4) Yamauchi H, Oishi A*, Ajiro M, Nakayama A, Nishimura K, Kurikawa M, Yoshida M, Kudo R, Koizumi M, Izumi T, Nagase M, Shinohara N, Hanzawa M, Sakumoto M, Nishino T, Maenosono R, Kawachi A, Mukohyama J, Yano S, Muto T, Yoshimi A*. Dual compartment utility of BRET-based biosensors for PPP2R5A/B56α, a cancer-associated B regulatory subunit of protein phosphatase 2A. BioTechniques 2025. Apr;77(4):153-163. PMID: 40579746, DOI: 10.1080/07366205.2025.2523093 5) Oishi A, and Jockers R. Measuring Protein-protein interactions of Melatonin Receptors by Bioluminescence Resonance Energy Transfer (BRET). Methods in Molecular Biology 2022, 2550:207-18, PMID: 36180695 DOI: 10.1007/978-1-0716-2593-4_26 6) Oishi A, and Jockers R. Recent advances in orphan GPCRs research and therapeutic potential. GPCRs as Therapeutic Targets 2022, 1, 20-59, DOI; https://doi.org/10.1002/9781119564782.ch2 7) Oishi A, Gbahou F, and Jockers R. Meatonin receptors, brain functions and therapies. Handbook of Clinical Neurology. 2021, 179, 345-356, DOI;https://doi.org/10.1016/B978-0-12-819975-6.00022-4 8) Oishi A, and Jockers R. Measuring Protein-protein interactions of Melatonin Receptors by Bioluminescence Resonance Energy Transfer (BRET). Methods in Molecular Biology 2022, 2550:207-18, PMID: 36180695 DOI: 10.1007/978-1-0716-2593-4_26 9) Oishi A, and Jockers R. Recent advances in orphan GPCRs research and therapeutic potential. GPCRs as Therapeutic Targets 2022, 1, 20-59, DOI; https://doi.org/10.1002/9781119564782.ch2 10) Oishi A, Gbahou F, and Jockers R. Meatonin receptors, brain functions and therapies. Handbook of Clinical Neurology. 2021, 179, 345-356, DOI;https://doi.org/10.1016/B978-0-12-819975-6.00022-4 11) Oishi A, Dam J and Jockers R, β-arrestin-2 BRET biosensors detect different β-arrestin-2 conformations in interaction with GPCRs. ACS sensors. 2020, 5:57-64 12) Oishi A, Cecon E, Jockers R. Melatonin Receptor Signaling: Impact of Receptor Oligomerization on Receptor Function. Int Rev Cell Mol Biol. 2018, 338:59-77 13) Oishi A, Makita N, Kishi S, Isogawa A, Iiri T. Continuous glucose monitoring of a runner during five marathons. Science & Sports. 2018, 33 (6): 370-374 14) Oishi A, A, and Jockers, R. Melatonin Receptor MT1 and MT2. Encyclopedia of Signaling Molecules. 2018, 3083-3088, DOI; https://doi.org/10.1007/978-3-319-67199-4_101751 15) Oishi A, Karamitri A, Gerbier R, Lahuna O, Ahmad R and Jockers R. Orphan GPR61, GPR62 and GPR135 receptors and the melatonin MT2 receptor reciprocally modulate their signaling functions Sci Rep. 2017, 7 (1); 8990 16) Oishi A, Makita N, Manaka K. Mitani K, Tomita H, Iiri T. Successful glycemic control with three times a week degludec injection by medical staff for an elderly hemodialysis patient with type 2 diabetes. Diabetol Int. 2016, (7); 95-99 17) Oishi A, Makita N, Sato J, and Iiri T. Regulation of RhoA Signaling by the cAMP-dependent Phosphorylation of RhoGDIα. J Biol Chem. 2012, 87(46):38705-15. 共著者論文 18) Oba R#, Ueno H#, Oishi A, et al. Upregulation of Piezo2 and Increased Extracellular Matrix Protein in Diabetic Kidney Disease Mice. Hypertension Research 2025 Jan 20. 19) Somalo-Barranco G,et al. Mitochondria-targeted melatonin photorelease supports the presence of melatonin MT1 receptors in mitochondria inhibiting respiration. Cell Chemical Biology 2023 20) Cecon E,Oishi A, et al. Novel repertoire of tau biosensors to monitor pathological tau transformation and seeding activity in living cells. eLife 2023;12:e78360 21) Duquenne M, et al. Leptin brain entry via a tanycytic LepR–EGFR shuttle controls lipid metabolism and pancreas function. Nature Metabolism 2021 Aug;3(8):1071-1090. 22) Jones B, et al. Genetic and biased agonist-mediated reductions in β-arrestin recruitment prolong cAMP signalling at glucagon family receptors.J Biol Chem.2021, 296, 100133. 23) Lucey M, et al. Acylation of the incretin peptide exendin-4 directly impacts GLP-1 receptor signalling and trafficking. Mol Pharmacol. . 2021. 24) Cecon E, Oishi A, Jockers R, Melatonin receptors: molecular pharmacology and signaling in the context of system bias. Br J Pharmacol. 2018, 175:3263-80 25) Auriau J, et al. Gain of affinity for VEGF165 binding within the VEGFR2/NRP1 cellular complex detected by an HTRF-based binding assay. Biochem Pharmacol. 2018, 158:45-59 26) Sokolina K, et al. Systematic protein-protein interaction mapping for clinically relevant human GPCRs Mol Syst Biol. 2017,(3), 918 27) Makita N, et al. An Acquired Hypocalciuric Hypercalcemia Autoantibody Induces Allosteric Transition among Active Human Ca-sensing Receptor Conformations. Proc. Natl. Acad. Sci. U.S.A. 2007, 104(13): 5443-5448. 28) Ibukuro K, Oishi A, et al. Signal flare phenomenon as active bleeding in retroperitoneal hematoma with hematocrit effect on dynamic CT scan: three clinical cases and experimental study based on a specific gravity theory. J Comput Assist Tomogr. 2006, 30(5):787-90. (和文論文) 29) 大石 篤郎,長瀬 美樹「腎臓の構造と発生学的特徴」医学のあゆみ 2026.296(5),26512-26517 30) 草間 健吾,大石 篤郎,長瀬 美樹,新竹 純 「光る生き物に学ぶ次世代の変形ロボット材料」日本ロボット学会誌 2025.43 (9), 889-891 DOI: https://doi.org/10.7210/jrsj.43.889 31) 大石 篤郎, 槙田 紀子. 悪性褐色細胞種の長期生存例, Medicina.2006. Nov, 43;11:1936-1941 (公的研究費・代表のみ) ・2025.4- 科研費・基盤C ・2022.4- JST創発的研究支援事業(水島パネル2期生) ・2022.4-2026.3 科研費・基盤C |
| 所属学会 |
日本内科学会 日本糖尿病学会 日本解剖学会 |