Branched-chain amino acid metabolism is regulated by ERRα in primary human myotubes and is further impaired by glucose loading in type 2 diabetes.
分岐鎖アミノ酸代謝は初代ヒト筋管細胞においてERRαにより調節され、2型糖尿病ではグルコース負荷によりさらに障害される (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
- 2021
- 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、2型糖尿病患者における分岐鎖アミノ酸(BCAA)代謝の異常と、その調節機構を解明することを目的とした。正常耐糖能(NGT)群と2型糖尿病群に対してOGTTを実施し、血漿および骨格筋生検でBCAA関連代謝物と遺伝子発現を解析した。その結果、2型糖尿病群では空腹時からBCAA異化の障害が認められ、グルコース負荷後にその障害が増悪した。NGT群ではOGTT後に分岐鎖ケト酸が37-56%減少したが、2型糖尿病群では変化が見られなかった。また、2型糖尿病の骨格筋ではBCAA関連遺伝子の発現低下が認められた。初代ヒト筋管細胞を用いた実験では、PGC-1αの過剰発現によりBCAA遺伝子の61%が上方制御され、ESRRA(ERRα)のノックダウンによりその効果が消失した。以上より、PGC-1αによるBCAA遺伝子の転写調節はERRα依存的であり、2型糖尿病における代謝の柔軟性の低下がBCAAホメオスタシスに影響することが示された。
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抄録
Aims/hypothesis: Increased levels of branched-chain amino acids (BCAAs) are associated with type 2 diabetes pathogenesis. However, most metabolomic studies are limited to an analysis of plasma metabolites under fasting conditions, rather than the dynamic shift in response to a metabolic challenge. Moreover, metabolomic profiles of peripheral tissues involved in glucose homeostasis are scarce and the transcriptomic regulation of genes involved in BCAA catabolism is partially unknown. This study aimed to identify differences in circulating and skeletal muscle BCAA levels in response to an OGTT in individuals with normal glucose tolerance (NGT) or type 2 diabetes. Additionally, transcription factors involved in the regulation of the BCAA gene set were identified.Methods: Plasma and vastus lateralis muscle biopsies were obtained from individuals with NGT or type 2 diabetes before and after an OGTT. Plasma and quadriceps muscles were harvested from skeletal muscle-specific Ppargc1a knockout and transgenic mice. BCAA-related metabolites and genes were assessed by LC-MS/MS and quantitative RT-PCR, respectively. Small interfering RNA and adenovirus-mediated overexpression techniques were used in primary human skeletal muscle cells to study the role of PPARGC1A and ESRRA in the expression of the BCAA gene set. Radiolabelled leucine was used to analyse the impact of oestrogen-related receptor α (ERRα) knockdown on leucine oxidation.Results: Impairments in BCAA catabolism in people with type 2 diabetes under fasting conditions were exacerbated after a glucose load. Branched-chain keto acids were reduced 37-56% after an OGTT in the NGT group, whereas no changes were detected in individuals with type 2 diabetes. These changes were concomitant with a stronger correlation with glucose homeostasis biomarkers and downregulated expression of branched-chain amino acid transaminase 2, branched-chain keto acid dehydrogenase complex subunits and 69% of downstream BCAA-related genes in skeletal muscle. In primary human myotubes overexpressing peroxisome proliferator-activated receptor γ coactivator-1α (PGC-1α, encoded by PPARGC1A), 61% of the analysed BCAA genes were upregulated, while 67% were downregulated in the quadriceps of skeletal muscle-specific Ppargc1a knockout mice. ESRRA (encoding ERRα) silencing completely abrogated the PGC-1α-induced upregulation of BCAA-related genes in primary human myotubes.Conclusions/interpretation: Metabolic inflexibility in type 2 diabetes impacts BCAA homeostasis and attenuates the decrease in circulating and skeletal muscle BCAA-related metabolites after a glucose challenge. Transcriptional regulation of BCAA genes in primary human myotubes via PGC-1α is ERRα-dependent.
MeSH
DOI 10.1007/s00125-021-05481-9
PMID 34131782
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