医学部 内科学(岡崎医療センター)

Suzuki Atsushi

  (鈴木 敦詞)

Profile Information

Affiliation
Department of Endocrinology, Diabetes and Metabolism, School of Medicine, Fujita Health University
Degree
Doctor (Medicine)(Nagoya University)

J-GLOBAL ID
200901065882187333
researchmap Member ID
5000024859

Awards

 6

Papers

 292
  • Katsumi Iizuka, Akemi Ito, Chihiro Ushiroda, Konomi Hirano, Kanako Deguchi, Izumi Hiratsuka, Megumi Shibata, Takeshi Takayanagi, Yusuke Seino, Kokoro Sano, Atsushi Suzuki
    Nutrients, Mar, 2026  
  • Chihiro Ushiroda, Mioko Ito, Risako Yamamoto-Wada, Kanako Deguchi, Shihomi Hidaka, Toshinori Imaizumi, Yusuke Seino, Atsushi Suzuki, Daisuke Yabe, Katsumi Iizuka
    International Journal of Molecular Sciences, Dec, 2025  
  • Naoya Murao, Yusuke Seino, Risa Morikawa, Shihomi Hidaka, Takuya Haraguchi, Eisuke Tomatsu, Mutsumi Habara, Tamio Ohno, Norihide Yokoi, Norio Harada, Yoshitaka Hayashi, Yuichiro Yamada, Atsushi Suzuki
    The Journal of physiology, 603(22) 6833-6858, Nov, 2025  
    Fructose ingestion increases circulating glucagon-like peptide-1 (GLP-1) and insulin, yet the specific contributions of these hormonal responses to glycaemic control remain incompletely defined. We hypothesised that fructose metabolism in intestinal L-cells triggers GLP-1 secretion, which then potentiates insulin secretion and counteracts fructose-induced hyperglycaemia. To test this hypothesis, we systematically characterised metabolic responses across multiple mouse strains after 24 h ad libitum fructose ingestion. In both lean (NSY.B6-a/a) and obese diabetic (NSY.B6-Ay/a) mice, fructose elevated plasma insulin, GLP-1 and glucose-dependent insulinotropic polypeptide (GIP). The insulin response was preserved in GIP receptor-deficient mice (Gipr-/-) but was abolished in proglucagon-deficient mice (Gcg-/-) by pharmacological GLP-1 receptor antagonism, indicating a requirement for GLP-1, but not GIP. Across strains, fructose-induced insulin response correlated with attenuation of post-fructose glycaemia, consistent with insulin being essential for suppressing fructose-induced hyperglycaemia. To explore the mechanism underlying fructose-induced GLP-1 secretion, we combined ATP-sensitive potassium channel-deficient mice (Kcnj11-/-), the GLUTag L-cell line, and metabolic tracing of 13C-labelled fructose in freshly isolated intestinal crypts. These complementary approaches support a model in which fructolysis increases the ATP/ADP ratio in L-cells, closes KATP channels and stimulates GLP-1 secretion. In obese diabetic mice, increased fructolytic flux and a higher ATP/ADP ratio were associated with elevated GLP-1 levels, further corroborating this model. Collectively, our findings indicate that intestinal fructose metabolism drives GLP-1 secretion required to potentiate insulin secretion, thereby establishing a gut-pancreas axis that counter-regulates fructose-induced hyperglycaemia. KEY POINTS: Fructose ingestion acutely increases plasma insulin levels, but the underlying mechanisms and physiological significance remain elusive. Our study demonstrates that short-term (24 h) fructose ingestion in mice elevates both insulin and glucagon-like peptide 1 (GLP-1) levels in the blood, with the plasma insulin response being GLP-1-dependent. We found that fructose metabolism in intestinal L-cells triggered GLP-1 secretion by increasing the ATP/ADP ratio and closing ATP-sensitive K+ (KATP) channels. This intestinal fructose metabolism-GLP-1-β-cell axis plays a crucial role in preventing fructose-induced hyperglycaemia, an effect that is compromised in obese diabetic mice. These insights highlight the previously unclear metabolic responses following short-term fructose ingestion and their importance in glucose homeostasis.
  • Hidechika Todoroki, Takeshi Takayanagi, Risa Morikawa, Yohei Asada, Shihomi Hidaka, Yasumasa Yoshino, Izumi Hiratsuka, Megumi Shibata, Ayumi Wada, Shiho Asai, Akemi Ito, Kosei Kamimura, Yuuka Fujiwara, Hitoshi Kuwata, Yoshiyuki Hamamoto, Yusuke Seino, Atsushi Suzuki
    Nutrients, Nov, 2025  
  • Haruki Fujisawa, Nobuhiko Magara, Shogo Nakayama, Sachiho Fuse, Naoko Iwata, Masaya Hasegawa, Hisayoshi Kubota, Hirotaka Shoji, Satoko Hattori, Hideo Hagihara, Hidetsugu Fujigaki, Yusuke Seino, Akihiro Mouri, Tsuyoshi Miyakawa, Toshitaka Nabeshima, Atsushi Suzuki, Yoshihisa Sugimura
    Molecular Neurobiology, May 14, 2025  

Misc.

 291

Presentations

 158

Research Projects

 3

Other

 2
  • 細胞内でのリン酸分子の移動を可視化する技術 *本研究ニーズに関する産学共同研究の問い合わせは藤田医科大学産学連携推進セン ター(fuji-san@fujita-hu.ac.jp)まで
  • III型リン酸トランスポーター過剰発現ラット(細胞外リン酸負荷によるポドサイト障害によるネフローゼ症候群を発現。Sekiguchi et al., Am J Physiol. 300(4): F848-856, 2011) *本研究シーズに関する産学共同研究の問い合わせは藤田医科大学産学連携推進セン ター(fuji-san@fujita-hu.ac.jp)まで

作成した教科書、教材、参考書

 2
  • 件名(英語)
    ガイトン生理学
    終了年月日(英語)
    2010
    概要(英語)
    第79章 副甲状腺ホルモン. p.1037を分担執筆
  • 件名(英語)
    内分泌診療のファーストタッチ
    終了年月日(英語)
    2013
    概要(英語)
    編者