Effects of arginase inhibition on myocardial Ca2+ and contractile responses.
アルギナーゼ阻害が心筋のCa2+および収縮応答に及ぼす影響 (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
- 動物
- 出版年
- 2022
- 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)
一酸化窒素(NO)は心筋収縮性を亢進すると考えられるが、その機序として細胞質Ca2+濃度の増加か、Ca2+感受性の増加かが不明である。アルギナーゼはNO合成酵素(NOS)と競合してNO産生を調節するため、アルギナーゼ阻害はNO産生を増加させ心筋収縮性を亢進すると仮説を立てた。単離ラット心筋細胞を用い、電気刺激に対する細胞質Ca2+濃度とサルコメア長短縮を同時測定した。アルギナーゼ阻害薬BEC曝露により、誘発Ca2+濃度の振幅と総量、サルコメア短縮の程度と速度が増加したが、NOS阻害薬L-NAMEの併用でこれらの効果は減弱した。一方、収縮・弛緩の50%時点でのCa2+濃度は群間で差がなく、Ca2+感受性への影響は認められなかった。これらの結果から、アルギナーゼ阻害はNO産生を介して細胞質Ca2+濃度応答を増加させ、心筋収縮応答を亢進することが示された。
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抄録
Nitric oxide (NO) is thought to increase cardiac contractility by increasing cytosolic Ca2+ concentration ([Ca2+ ]cyt ) during excitation. Alternatively, NO could increase the sensitivity of the contractile response to [Ca2+ ]cyt (Ca2+ sensitivity). Arginase regulates NO production by competing with NO synthase (NOS), and thus, arginase inhibition should increase cardiac contractility by increasing NO production. We hypothesized that arginase inhibition increases cardiac contractility by increasing both [Ca2+ ]cyt and Ca2+ sensitivity. [Ca2+ ]cyt and contractile (sarcomere length [SL] shortening) responses to electrical stimulation were measured simultaneously in isolated rat cardiomyocytes using an IonOptix system. In the same cardiomyocytes, measurements were obtained at baseline, following 3-min exposure to an arginase inhibitor (S-[2-boronoethyl]-l-cysteine; BEC) and following 3-min exposure to BEC plus a NOS inhibitor (NG -nitro-l-arginine-methyl ester; l-NAME). These responses were compared to time-matched control cardiomyocytes that were untreated. Compared to baseline, BEC increased the amplitude and the total amount of evoked [Ca2+ ]cyt , and the extent and velocity of SL shortening in cardiomyocytes, whereas addition of l-NAME mitigated these effects. The [Ca2+ ]cyt at 50% contraction and relaxation were not different across treatment groups indicating no effect of BEC on Ca2+ sensitivity. The [Ca2+ ]cyt and SL shortening responses in time-matched controls did not vary with time. Arginase inhibition by BEC significantly increased the amplitude and the total amount of evoked [Ca2+ ]cyt , and the extent and velocity of SL shortening in cardiomyocytes, but did not affect Ca2+ sensitivity. These effects of BEC were mitigated by l-NAME. Together, these results indicate an effect of NO on [Ca2+ ]cyt responses that then increase the contractile response of cardiomyocytes.
MeSH
DOI 10.14814/phy2.15396
PMID 35866269
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