缺氧-复氧对大扇贝离体线粒体能量学和氧化应激的影响。

IF 2.8 2区 生物学 Q2 BIOLOGY
Journal of Experimental Biology Pub Date : 2025-05-01 Epub Date: 2025-05-12 DOI:10.1242/jeb.249870
Linda Lumor, Christian Bock, Felix Christopher Mark, Siriluck Ponsuksili, Inna Sokolova
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引用次数: 0

摘要

王扇贝(Pecten maximus)是一种高度需氧的潮下双壳类动物,易受氧气供应波动的影响。本研究研究了短期(15分钟)和长期(90分钟)缺氧-再氧化(H/R)应激对p.a maximus鳃和消化腺组织中基质特异性线粒体功能的影响,氧化涉及线粒体复合物I(丙酮酸盐、棕榈酸盐)和复合物II(琥珀酸盐)的基质。在常氧条件下,扇贝线粒体优先氧化丙酮酸。H/R应激导致复合物i驱动的ATP合成显著下降,质子泄漏增加,脂肪酸氧化失调,表明线粒体对H/R应激的易感性。在H/R之后,两种组织都表现出比复合物I更大的琥珀酸氧化能力;然而,长期H/R暴露导致所有底物的呼吸耦合效率降低。值得注意的是,与消化腺线粒体相比,鳃线粒体在H/R应激下对活性氧外排和电子泄漏的调节更为有效。尽管有这些生理变化,但没有检测到氧化损伤的证据,这表明存在强大的线粒体抗氧化防御。总的来说,这些发现表明琥珀酸氧化在p.a maximus的应激恢复中起着重要作用,为间歇性缺氧时线粒体恢复能力和氧化应激管理提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of hypoxia-reoxygenation on the bioenergetics and oxidative stress in the isolated mitochondria of the king scallop, Pecten maximus.

The king scallop (Pecten maximus) is a highly aerobic subtidal bivalve species vulnerable to fluctuations in oxygen availability. This study investigated the effects of short-term (15 min) and long-term (90 min) hypoxia-reoxygenation (H/R) stress on substrate-specific mitochondrial functions in the gill and digestive gland tissues of P. maximus, oxidizing substrates that engage mitochondrial Complex I (pyruvate, palmitate) and Complex II (succinate). Under normoxic conditions, scallop mitochondria preferentially oxidized pyruvate. H/R stress induced a significant decline in Complex I-driven ATP synthesis, increased proton leak and dysregulated fatty acid oxidation, indicating mitochondrial vulnerability to H/R stress. Following H/R, both tissues demonstrated a greater capacity for succinate oxidation than for Complex I substrates; however, long-term H/R exposure led to a reduction in respiratory coupling efficiency across all substrates. Notably, gill mitochondria exhibited more effective regulation of reactive oxygen species efflux and electron leak compared with digestive gland mitochondria under H/R stress. Despite these physiological changes, no evidence of oxidative damage was detected, suggesting the presence of a robust mitochondrial antioxidant defense. Collectively, these findings suggest that succinate oxidation plays an important role in stress recovery in P. maximus, providing insights into mitochondrial resilience and the management of oxidative stress during intermittent hypoxia.

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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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