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Glycolytic Coupling to Mitochondrial Energy Production Ensures Survival in an Oxygen Rich Environment

机译:糖酵解与线粒体能量产生的耦合确保了在富氧环境中的生存

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ABSTRACT The mitochondrion exhibits biochemical and functional variations that emerged by random chance as an evolutionary survival strategy, which include enhanced energy production driven by anaerobic respiratory mechanisms. In invertebrates, this mitochondrial anaerobic respiration permits survival at a lower energy state suited for this type of environment while yielding more ATP than by glycolysis alone. This ability provides a protective existential advantage in naturally occurring hypoxic environments via diminished free radical generation. In the blue mussel [i]Mytilus edulis[/i] and other marine organisms, a functionally active mitochondrial anaerobic respiratory mechanism tailored to hypoxic conditions reflects an evolutionary adaptation/reworking of ancient metabolic pathways. Components of these pathways were also discovered and characterized as metabolic intermediates in plant parasites, specifically crown gall tumors. Mechanistic similarities between anaerobically functioning mitochondria in [i]M. edulis[/i] and crown gall tissues and metabolic processes in human tumors are known to occur, demonstrating commonalities in diverse life energy processes. Furthermore, cytoplasmic glycolytic processes are now shown also to exhibit a dynamic capacity for enhanced energy generation by increasing its efficiency in hypoxic environments, making it equally dynamic in meeting its cellular survival goal.
机译:摘要线粒体表现出生物化学和功能变异,这些变异是随机机会作为进化生存策略出现的,其中包括由厌氧呼吸机制驱动的能量产生增加。在无脊椎动物中,这种线粒体厌氧呼吸使它能够在适合这种类型环境的较低能量状态下生存,同时比单独的糖酵解产生更多的ATP。通过减少自由基的产生,这种能力在自然发生的低氧环境中提供了保护性的生存优势。在蓝贻贝和其他海洋生物中,针对缺氧条件而定的功能活跃的线粒体厌氧呼吸机制反映了古代代谢途径的进化适应/改造。还发现了这些途径的组成部分,并将其表征为植物寄生虫(尤其是冠gall瘤)中的代谢中间体。 [i] M中厌氧功能的线粒体之间的机理相似性。众所周知,人的肿瘤中会发生紫癜和冠胆组织以及新陈代谢过程,这证明了各种生命能量过程的共同点。此外,现在还显示出细胞质糖酵解过程还具有通过增加缺氧环境下的效率来增强能量产生的动态能力,使其在满足细胞存活目标方面同样具有动力。

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