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与氧化应激相关的替代性光合电子流的计算分析

Computational Analysis of Alternative Photosynthetic Electron Flows Linked With Oxidative Stress.

作者信息

Saadat Nima P, Nies Tim, van Aalst Marvin, Hank Brandon, Demirtas Büsra, Ebenhöh Oliver, Matuszyńska Anna

机构信息

Institute of Quantitative and Theoretical Biology, Heinrich Heine University Düsseldorf, Düsseldorf, Germany.

CEPLAS - Cluster of Excellence on Plant Sciences, Heinrich Heine University Düsseldorf, Düsseldorf, Germany.

出版信息

Front Plant Sci. 2021 Oct 22;12:750580. doi: 10.3389/fpls.2021.750580. eCollection 2021.

Abstract

During photosynthesis, organisms respond to their energy demand and ensure the supply of energy and redox equivalents that sustain metabolism. Hence, the photosynthetic apparatus can, and in fact should, be treated as an integrated supply-demand system. Any imbalance in the energy produced and consumed can lead to adverse reactions, such as the production of reactive oxygen species (ROS). Reaction centres of both photosystems are known sites of ROS production. Here, we investigate in particular the central role of Photosystem I (PSI) in this tightly regulated system. Using a computational approach we have expanded a previously published mechanistic model of C3 photosynthesis by including ROS producing and scavenging reactions around PSI. These include two water to water reactions mediated by Plastid terminal oxidase (PTOX) and Mehler and the ascorbate-glutathione (ASC-GSH) cycle, as a main non-enzymatic antioxidant. We have used this model to predict flux distributions through alternative electron pathways under various environmental stress conditions by systematically varying light intensity and enzymatic activity of key reactions. In particular, we studied the link between ROS formation and activation of pathways around PSI as potential scavenging mechanisms. This work shines light on the role of alternative electron pathways in photosynthetic acclimation and investigates the effect of environmental perturbations on PSI activity in the context of metabolic productivity.

摘要

在光合作用过程中,生物体对其能量需求做出响应,并确保维持新陈代谢所需的能量和氧化还原当量的供应。因此,光合装置可以而且实际上应该被视为一个综合的供需系统。产生和消耗的能量出现任何不平衡都可能导致不良反应,例如活性氧(ROS)的产生。两个光系统的反应中心都是已知的ROS产生位点。在此,我们特别研究了光系统I(PSI)在这个严格调控系统中的核心作用。我们采用计算方法,通过纳入PSI周围的ROS产生和清除反应,扩展了之前发表的C3光合作用机理模型。这些反应包括由质体末端氧化酶(PTOX)和梅勒反应介导的两个水-水反应以及作为主要非酶抗氧化剂的抗坏血酸-谷胱甘肽(ASC-GSH)循环。我们利用这个模型,通过系统地改变光强度和关键反应的酶活性来预测在各种环境胁迫条件下通过替代电子途径的通量分布。特别是,我们研究了ROS形成与PSI周围途径的激活之间的联系,将其作为潜在的清除机制。这项工作揭示了替代电子途径在光合适应中的作用,并在代谢生产力的背景下研究了环境扰动对PSI活性的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2fb/8569387/b436be37fd00/fpls-12-750580-g0001.jpg

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