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一种用于在无机碳限制下对微藻和蓝细菌的光合作用特性进行多参数筛选的平台。

A multi-parametric screening platform for photosynthetic trait characterization of microalgae and cyanobacteria under inorganic carbon limitation.

机构信息

Institute of Plant Biology, Biological Research Centre, Szeged, Hungary.

Biology PhD School, Faculty of Science and Informatics, University of Szeged, Szeged, Hungary.

出版信息

PLoS One. 2020 Jul 23;15(7):e0236188. doi: 10.1371/journal.pone.0236188. eCollection 2020.

Abstract

Microalgae and cyanobacteria are considered as important model organisms to investigate the biology of photosynthesis; moreover, they are valuable sources of biomolecules for several biotechnological applications. Understanding the species-specific traits of photosynthetic electron transport is extremely important, because it contributes to the regulation of ATP/NADPH ratio, which has direct/indirect links to carbon fixation and other metabolic pathways and thus overall growth and biomass production. In the present work, a cuvette-based setup is developed, in which a combination of measurements of dissolved oxygen, pH, chlorophyll fluorescence and NADPH kinetics can be performed without disturbing the physiological status of the sample. The suitability of the system is demonstrated using a model cyanobacterium Synechocystis sp. PCC6803, as well as biofuel-candidate microalgae species, such as Chlorella sorokiniana, Dunaliella salina and Nannochloropsis limnetica undergoing inorganic carbon (Ci) limitation. Inorganic carbon limitation, induced by photosynthetic Ci uptake under continuous illumination, caused a decrease in the effective quantum yield of PSII (Y(II)) and loss of oxygen-evolving capacity in all species investigated here; these effects were largely recovered by the addition of NaHCO3. Detailed analysis of the dark-light and light-dark transitions of NADPH production/uptake and changes in chlorophyll fluorescence kinetics revealed species- and condition-specific responses. These responses indicate that the impact of decreased Calvin-Benson cycle activity on photosynthetic electron transport pathways involving several sections of the electron transport chain (such as electron transfer via the QA-QB-plastoquinone pool, the redox state of the plastoquinone pool) can be analyzed with high sensitivity in a comparative manner. Therefore, the integrated system presented here can be applied for screening for specific traits in several significant species at different stages of inorganic carbon limitation, a condition that strongly impacts primary productivity.

摘要

微藻和蓝藻被认为是研究光合作用生物学的重要模式生物;此外,它们是许多生物技术应用中生物分子的有价值来源。了解光合作用电子传递的种特异性特征非常重要,因为它有助于调节 ATP/NADPH 比率,这与碳固定和其他代谢途径直接/间接相关,从而影响整体生长和生物量生产。在本工作中,开发了一种基于比色杯的装置,其中可以在不干扰样品生理状态的情况下组合测量溶解氧、pH 值、叶绿素荧光和 NADPH 动力学。该系统的适用性通过使用模型蓝藻集胞藻 PCC6803 以及生物燃料候选微藻物种(如进行无机碳 (Ci) 限制的小球藻sorokiniana、盐藻和 Nannochloropsis limnetica)进行了验证。在连续光照下通过光合作用 Ci 摄取引起的无机碳限制导致所有研究物种的 PSII(Y(II))有效量子产率降低和产氧能力丧失;这些效应在添加 NaHCO3 后大部分得到恢复。对 NADPH 产生/摄取的暗-光和光-暗转换以及叶绿素荧光动力学变化的详细分析揭示了种特异性和条件特异性反应。这些反应表明,卡尔文-本森循环活性降低对涉及电子传递链多个部分的光合作用电子传递途径(例如通过 QA-QB-质体醌池的电子转移、质体醌池的氧化还原状态)的影响可以以高灵敏度进行比较分析。因此,本文提出的集成系统可用于在不同无机碳限制阶段的几种重要物种中筛选特定特征,这种条件强烈影响初级生产力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/755e/7377499/aea47de995be/pone.0236188.g001.jpg

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