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脯氨酸在压力生存中的机制。

Proline mechanisms of stress survival.

机构信息

Department of Biochemistry, University of Nebraska-Lincoln, Lincoln, NE 68588, USA.

出版信息

Antioxid Redox Signal. 2013 Sep 20;19(9):998-1011. doi: 10.1089/ars.2012.5074. Epub 2013 May 23.

Abstract

SIGNIFICANCE

The imino acid proline is utilized by different organisms to offset cellular imbalances caused by environmental stress. The wide use in nature of proline as a stress adaptor molecule indicates that proline has a fundamental biological role in stress response. Understanding the mechanisms by which proline enhances abiotic/biotic stress response will facilitate agricultural crop research and improve human health.

RECENT ADVANCES

It is now recognized that proline metabolism propels cellular signaling processes that promote cellular apoptosis or survival. Studies have shown that proline metabolism influences signaling pathways by increasing reactive oxygen species (ROS) formation in the mitochondria via the electron transport chain. Enhanced ROS production due to proline metabolism has been implicated in the hypersensitive response in plants, lifespan extension in worms, and apoptosis, tumor suppression, and cell survival in animals.

CRITICAL ISSUES

The ability of proline to influence disparate cellular outcomes may be governed by ROS levels generated in the mitochondria. Defining the threshold at which proline metabolic enzyme expression switches from inducing survival pathways to cellular apoptosis would provide molecular insights into cellular redox regulation by proline. Are ROS the only mediators of proline metabolic signaling or are other factors involved?

FUTURE DIRECTIONS

New evidence suggests that proline biosynthesis enzymes interact with redox proteins such as thioredoxin. An important future pursuit will be to identify other interacting partners of proline metabolic enzymes to uncover novel regulatory and signaling networks of cellular stress response.

摘要

意义

不同的生物体利用亚氨基酸脯氨酸来抵消环境压力引起的细胞失衡。脯氨酸在自然界中的广泛应用表明它在应激反应中具有基本的生物学作用。了解脯氨酸增强非生物/生物胁迫反应的机制将有助于农业作物研究和提高人类健康水平。

最新进展

现在人们认识到,脯氨酸代谢推动了促进细胞凋亡或存活的细胞信号转导过程。研究表明,脯氨酸代谢通过增加线粒体电子传递链中的活性氧(ROS)形成来影响信号通路。由于脯氨酸代谢增强 ROS 的产生,与植物中的超敏反应、蠕虫的寿命延长以及动物中的细胞凋亡、肿瘤抑制和细胞存活有关。

关键问题

脯氨酸影响不同细胞结果的能力可能受到线粒体中产生的 ROS 水平的控制。定义脯氨酸代谢酶表达从诱导存活途径转变为细胞凋亡的临界点,将为脯氨酸对细胞氧化还原调节提供分子见解。ROS 是脯氨酸代谢信号转导的唯一介质还是有其他因素参与?

未来方向

新的证据表明,脯氨酸生物合成酶与氧化还原蛋白(如硫氧还蛋白)相互作用。一个重要的未来研究方向将是确定脯氨酸代谢酶的其他相互作用伙伴,以揭示细胞应激反应的新的调节和信号网络。

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