Sodium-glucose cotransporter 2 inhibitors-but not insulin-enhance renal branched-chain amino acid catabolism.
ナトリウム-グルコース共輸送体2阻害薬は、インスリンとは異なり、腎臓の分岐鎖アミノ酸異化を促進する (機械翻訳の邦題)
記録の確認項目
- 研究デザイン
- その他の原著論文
- 対象
- ヒト・動物 併記
- 出版年
- 2025
- 出典
- doi.org
- 抄録の表示
- 表示あり
- 出版状態
- 有効な記録
- 状態確認日
- 2026/08/17
- 収集日
- 2026/08/03
- 鮮度
- 確認期限内
- 確認段階
- 自動処理
- 記録状態
- 公開
日本語要約(機械生成)
本研究は、SGLT2阻害薬が血糖降下作用とは独立して腎臓の分岐鎖アミノ酸(BCAA)異化を促進するか検討した。インスリン治療中の2型糖尿病患者をダパグリフロジン群とインスリン増量群に分け、12週間後の尿中・血中代謝物を比較した。また、db/dbマウスにルセオグリフロジンまたはインスリンを投与し、腎組織とBCAA代謝酵素の発現を評価した。ヒトでは、ダパグリフロジン群で尿中BCAA由来代謝物(3-ヒドロキシプロピオン酸、C5-OHカルニチン、3-ヒドロキシ酪酸)の排泄が増加したが、血中では差がなかった。マウスでは、ルセオグリフロジンが腎病変を改善し、BCKDHのリン酸化(不活性化)を減少させ、BCKDKタンパク質を低下させた。これらの結果は、SGLT2阻害薬が血糖非依存的に腎臓のBCAA異化を促進し、糖尿病性腎症の治療標的となる可能性を示唆する。
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抄録
Aims/hypothesis: Sodium-glucose cotransporter 2 inhibitors (SGLT2i) confer cardio-renal protection, and recent work implicates enhanced branched-chain amino acid (BCAA) catabolism as a potential mechanism in the heart. Whether SGLT2i also promotes renal BCAA catabolism is largely unknown. We hypothesized that SGLT2i enhances renal BCAA catabolism independently of glycemic effects.Methods: We conducted a prospective, single-center, open-label, nonrandomized, controlled clinical study in patients with type 2 diabetes stably treated with insulin, who were assigned to dapagliflozin (5 mg/day with dose-reduced insulin; n=8/9 completed) or insulin dose-up (n=5/8 completed). At 12 weeks, changes in urinary and plasma metabolites and short-chain acylcarnitines related to BCAA catabolism were quantified. To explore mechanisms, 10-week-old db/db mice received luseogliflozin (10 mg/kg/day, p.o.) or insulin glargine (10 U/day, s.c.) for 4 weeks; renal histology, mRNA and protein expression of key enzymes involved in BCAA catabolism, including branched-chain aminotransferase 2 (BCAT2), branched-chain ketoacid dehydrogenase (BCKDH), and BCKD kinase (BCKDK), were assessed.Results: Dapagliflozin treatment induced greater increases in urinary excretion of three BCAA-derived metabolites-3-hydroxypropionic acid, C5-OH carnitine, and 3-hydroxybutyric acid-compared with insulin at comparable glycemic levels. In contrast, C4 carnitine (an earlier metabolite in valine catabolism) rose more with insulin. No corresponding between-group differences were detected in plasma metabolites. In db/db mice, luseogliflozin attenuated glomerular mesangial expansion and tubular epithelial atrophy, and reduced Col1a1 mRNA and TGF-β1 protein, compared with glargine at comparable glycemic levels. Luseogliflozin decreased the phosphorylated (inactive) form of the BCKDH E1α subunit (p-BCKDHA/BCKDHA) and lowered BCKDK protein. mRNA expression of amino acid transporters and BCAT2 expression was unchanged.Conclusions/interpretation: Across complementary human and mouse studies, SGLT2 inhibition was suggested to enhance renal BCAA catabolism compared with insulin at comparable glycemic levels. In humans, increases in urinary BCAA-derived downstream metabolites without corresponding changes in plasma support a kidney-localized metabolic effect. In mice, SGLT2 inhibitor improved renal histopathology, and reduced phosphorylation-mediated inactivation of BCKDH. These findings provide mechanistic, translational evidence that SGLT2i modulate BCAA flux independently of glucose lowering, suggesting BCAA catabolism as a therapeutic axis in diabetic kidney disease.Clinical trial registration: https://rctportal.mhlw.go.jp/en/detail?trial_id=UMIN000052955, identifier UMIN000052955.
MeSH
DOI 10.3389/fendo.2025.1706838
PMID 41282284
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