ZERO WORLD RESEARCHアミノ酸・有機酸の学術文献データベース

Branched-Chain Amino Acid Catabolism and Cardiopulmonary Function Following Acute Maximal Exercise Testing in Adolescents.

青年期における急性最大運動テスト後の分岐鎖アミノ酸異化と心肺機能 (機械翻訳の邦題)

Frontiers in cardiovascular medicine2021Gumus Balikcioglu P, Ramaker ME, Mason KA, et al.
研究デザインその他の原著論文
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記録の確認項目

研究デザイン
その他の原著論文
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未確定
出版年
2021
出典
doi.org
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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
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確認期限内
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自動処理
記録状態
公開

日本語要約(機械生成)

健常な青年期アスリート11名を対象に、最大運動負荷前後の血液を分析し、分岐鎖アミノ酸(BCAA)異化と心肺機能指標(aVO2、rVO2、aVO2/HRmax)との関連を検討した。運動後、成長ホルモンとコルチゾールが増加し、グレリンが減少した。グルコースとインスリンに変化はなかった。脂肪分解と脂肪酸酸化の亢進を示すグリセロール、ケトン体、β-ヒドロキシ酪酸、アセチルカルニチンが増加し、ピルビン酸、乳酸、アラニン、グルタミン酸も増加した。BCAAであるバリンは減少し、その分解産物が増加した。心肺機能指標はBCAA異化産物であるプロピオニルカルニチン(C3)とCi4-DC/C4-DCの増加と有意に関連した。脂肪分解や脂肪酸酸化は心肺機能指標と関連せず、青年期の最大運動への心肺反応はBCAA利用と関連することが示唆された。

この要約は公開抄録のみを根拠にAIが機械的に生成したものです。正確な内容は原文を確認してください。

抄録

Background: To provide energy for cardiopulmonary function and maintenance of blood glucose, acute aerobic exercise induces lipolysis, fatty acid oxidation (FAO), glycolysis, and glycogenolysis/gluconeogenesis. These adaptations are mediated by increases in cortisol, growth hormone (GH), and catecholamines and facilitated by a decline in insulin. Branched-chain amino acids (BCAA) also undergo catabolism during intense exercise. Here, we investigated the relationship between BCAA catabolism and metrics of cardiopulmonary function in healthy, well-developed, mature adolescent athletes undergoing an acute bout of maximal aerobic exercise. Hypothesis: We hypothesized: (a) acute maximal exercise in adolescents induces lipolysis, FAO, and BCAA catabolism associated with increases in GH and cortisol and a reduction in insulin; (b) increases in GH are associated with increases in ghrelin; and (c) metrics of cardiopulmonary function (aVO2, rVO2, aVO2/HRmax) following maximal exercise correlate with increases in GH secretion, FAO, and BCAA catabolism. Methods: Blood samples before and after maximal cardiopulmonary exercise in 11 adolescent athletes were analyzed by tandem-mass spectrometry. Paired, two-tailed student's t-tests identified significant changes following exercise. Linear regression determined if pre-exercise metabolite levels, or changes in metabolite levels, were associated with aVO2, rVO2, and aVO2/HRmax. Sex and school of origin were included as covariates in all regression analyses. Results: Following exercise there were increases in GH and cortisol, and decreases in ghrelin, but no changes in glucose or insulin concentrations. Suggesting increased lipolysis and FAO, the levels of glycerol, ketones, β-hydroxybutyrate, and acetylcarnitine concentrations increased. Pyruvate, lactate, alanine, and glutamate concentrations also increased. Plasma concentrations of valine (a BCAA) declined (p = 0.002) while valine degradation byproducts increased in association with decreases in urea cycle amino acids arginine and ornithine. Metrics of cardiopulmonary function were associated with increases in propionylcarnitine (C3, p = 0.013) and Ci4-DC/C4-DC (p < 0.01), byproducts of BCAA catabolism. Conclusions: Induction of lipolysis, FAO, gluconeogenesis, and glycogenolysis provides critical substrates for cardiopulmonary function during exercise. However, none of those pathways were significantly associated with metrics of cardiopulmonary function. The associations between rVO2, and aVO2/HRmax and C3 and Ci4-DC/C4-DC suggest that the cardiopulmonary response to maximal exercise in adolescents is linked to BCAA utilization and catabolism.

DOI 10.3389/fcvm.2021.721354

PMID 34485418

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