缺氧条件下Littorina littorea足肌乳酸脱氢酶活性的稳定抑制以及乙酰化作为一种新的翻译后调节机制的潜在作用。

Q2 Biochemistry, Genetics and Molecular Biology
Enzyme Research Pub Date : 2013-01-01 Epub Date: 2013-10-23 DOI:10.1155/2013/461374
Ali Shahriari, Neal J Dawson, Ryan A V Bell, Kenneth B Storey
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引用次数: 15

摘要

潮间带海螺,Littorina littorea,已经进化到能够承受潮汐变化或其他潜在有害环境条件带来的长时间缺氧。生存依赖于对其代谢率的强烈抑制和细胞生物化学的剧烈重组,以维持固定燃料储备下的能量平衡。乳酸脱氢酶(LDH)是厌氧代谢的关键酶,因为它通常负责NAD(+)的再生,这使得糖酵解在缺氧的情况下继续发挥作用。本研究比较了有氧对照和缺氧暴露24 h的立鼠足部肌肉中d -乳酸特异性LDH (E.C. 1.1.1.28)的动力学和结构特征。与对照组相比,缺氧LDH的vmax(丙酮酸还原方向)降低了近50%。这些动力学差异表明,在缺氧条件下,LDH可能存在稳定的修饰和调控,事实上,随后的点印迹分析发现,缺氧条件下的LDH乙酰化程度明显低于相应的对照酶。因此,乙酰化可能是在缺氧时抑制LDH活性的调节机制,这可能允许产生替代糖酵解终产物,从而增加固定燃料储备下的ATP产量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Stable Suppression of Lactate Dehydrogenase Activity during Anoxia in the Foot Muscle of Littorina littorea and the Potential Role of Acetylation as a Novel Posttranslational Regulatory Mechanism.

Stable Suppression of Lactate Dehydrogenase Activity during Anoxia in the Foot Muscle of Littorina littorea and the Potential Role of Acetylation as a Novel Posttranslational Regulatory Mechanism.

Stable Suppression of Lactate Dehydrogenase Activity during Anoxia in the Foot Muscle of Littorina littorea and the Potential Role of Acetylation as a Novel Posttranslational Regulatory Mechanism.

Stable Suppression of Lactate Dehydrogenase Activity during Anoxia in the Foot Muscle of Littorina littorea and the Potential Role of Acetylation as a Novel Posttranslational Regulatory Mechanism.

The intertidal marine snail, Littorina littorea, has evolved to withstand extended bouts of oxygen deprivation brought about by changing tides or other potentially harmful environmental conditions. Survival is dependent on a strong suppression of its metabolic rate and a drastic reorganization of its cellular biochemistry in order to maintain energy balance under fixed fuel reserves. Lactate dehydrogenase (LDH) is a crucial enzyme of anaerobic metabolism as it is typically responsible for the regeneration of NAD(+), which allows for the continued functioning of glycolysis in the absence of oxygen. This study compared the kinetic and structural characteristics of the D-lactate specific LDH (E.C. 1.1.1.28) from foot muscle of aerobic control versus 24 h anoxia-exposed L. littorea. Anoxic LDH displayed a near 50% decrease in V max (pyruvate-reducing direction) as compared to control LDH. These kinetic differences suggest that there may be a stable modification and regulation of LDH during anoxia, and indeed, subsequent dot-blot analyses identified anoxic LDH as being significantly less acetylated than the corresponding control enzyme. Therefore, acetylation may be the regulatory mechanism that is responsible for the suppression of LDH activity during anoxia, which could allow for the production of alternative glycolytic end products that in turn would increase the ATP yield under fixed fuel reserves.

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来源期刊
Enzyme Research
Enzyme Research Biochemistry, Genetics and Molecular Biology-Biochemistry
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4.60
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