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在空气培养的莱茵衣藻类囊体基质中的微氧生态位可保护[FeFe]-氢化酶并在完全有氧环境下支持氢气产生。

Microoxic Niches within the Thylakoid Stroma of Air-Grown Chlamydomonas reinhardtii Protect [FeFe]-Hydrogenase and Support Hydrogen Production under Fully Aerobic Environment.

作者信息

Liran Oded, Semyatich Rinat, Milrad Yuval, Eilenberg Haviva, Weiner Iddo, Yacoby Iftach

机构信息

Department of Molecular Biology and Ecology of Plants, The George S. Wise Faculty of Life Sciences, Tel Aviv University, Ramat Aviv, Tel Aviv 69978, Israel.

Department of Molecular Biology and Ecology of Plants, The George S. Wise Faculty of Life Sciences, Tel Aviv University, Ramat Aviv, Tel Aviv 69978, Israel

出版信息

Plant Physiol. 2016 Sep;172(1):264-71. doi: 10.1104/pp.16.01063. Epub 2016 Jul 21.

DOI:10.1104/pp.16.01063
PMID:27443604
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5074601/
Abstract

Photosynthetic hydrogen production in the microalga Chlamydomonas reinhardtii is catalyzed by two [FeFe]-hydrogenase isoforms, HydA1 and HydA2, both irreversibly inactivated upon a few seconds exposure to atmospheric oxygen. Until recently, it was thought that hydrogenase is not active in air-grown microalgal cells. In contrast, we show that the entire pool of cellular [FeFe]-hydrogenase remains active in air-grown cells due to efficient scavenging of oxygen. Using membrane inlet mass spectrometry, (18)O2 isotope, and various inhibitors, we were able to dissect the various oxygen uptake mechanisms. We found that both chlororespiration, catalyzed by plastid terminal oxidase, and Mehler reactions, catalyzed by photosystem I and Flavodiiron proteins, significantly contribute to oxygen uptake rate. This rate is considerably enhanced with increasing light, thus forming local anaerobic niches at the proximity of the stromal face of the thylakoid membrane. Furthermore, we found that in transition to high light, the hydrogen production rate is significantly enhanced for a short duration (100 s), thus indicating that [FeFe]-hydrogenase functions as an immediate sink for surplus electrons in aerobic as well as in anaerobic environments. In summary, we show that an anaerobic locality in the chloroplast preserves [FeFe]-hydrogenase activity and supports continuous hydrogen production in air-grown microalgal cells.

摘要

莱茵衣藻中的光合产氢由两种[FeFe]-氢化酶亚型HydA1和HydA2催化,这两种亚型在暴露于大气氧中几秒后都会不可逆地失活。直到最近,人们还认为氢化酶在空气培养的微藻细胞中不具有活性。相比之下,我们发现由于对氧气的有效清除,细胞内整个[FeFe]-氢化酶库在空气培养的细胞中仍保持活性。使用膜进样质谱、(18)O2同位素和各种抑制剂,我们能够剖析各种氧气摄取机制。我们发现,由质体末端氧化酶催化的氯呼吸作用以及由光系统I和黄素二铁蛋白催化的梅勒反应,都对氧气摄取速率有显著贡献。随着光照增强,该速率显著提高,从而在类囊体膜基质面附近形成局部厌氧微环境。此外,我们发现,在过渡到高光时,产氢速率在短时间内(100秒)显著提高,这表明[FeFe]-氢化酶在需氧和厌氧环境中均作为多余电子的直接受体发挥作用。总之,我们表明叶绿体中的厌氧区域保留了[FeFe]-氢化酶的活性,并支持空气培养的微藻细胞持续产氢。

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Microoxic Niches within the Thylakoid Stroma of Air-Grown Chlamydomonas reinhardtii Protect [FeFe]-Hydrogenase and Support Hydrogen Production under Fully Aerobic Environment.在空气培养的莱茵衣藻类囊体基质中的微氧生态位可保护[FeFe]-氢化酶并在完全有氧环境下支持氢气产生。
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本文引用的文献

1
Chlamydomonas Flavodiiron Proteins Facilitate Acclimation to Anoxia During Sulfur Deprivation.衣藻黄素铁蛋白在硫缺乏期间促进对缺氧的适应。
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Induction of Photosynthetic Carbon Fixation in Anoxia Relies on Hydrogenase Activity and Proton-Gradient Regulation-Like1-Mediated Cyclic Electron Flow in Chlamydomonas reinhardtii.莱茵衣藻中缺氧条件下光合碳固定的诱导依赖于氢化酶活性以及类质子梯度调控蛋白1介导的循环电子流。
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The involvement of hydrogen-producing and ATP-dependent NADPH-consuming pathways in setting the redox poise in the chloroplast of Chlamydomonas reinhardtii in anoxia.产氢且依赖ATP消耗NADPH的途径在莱茵衣藻叶绿体缺氧状态下氧化还原平衡的设定过程中的作用。
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Hydrogenases.氢化酶
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Genetic disruption of both Chlamydomonas reinhardtii [FeFe]-hydrogenases: Insight into the role of HYDA2 in H₂ production.敲除莱茵衣藻[FeFe]-氢化酶的两个基因:HYDA2 在氢气生成中的作用。
Biochem Biophys Res Commun. 2012 Jan 13;417(2):704-9. doi: 10.1016/j.bbrc.2011.12.002. Epub 2011 Dec 8.
9
Plastid terminal oxidase 2 (PTOX2) is the major oxidase involved in chlororespiration in Chlamydomonas.质体末端氧化酶 2(PTOX2)是参与衣藻中光呼吸的主要氧化酶。
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Multiple ferredoxin isoforms in Chlamydomonas reinhardtii - their role under stress conditions and biotechnological implications.莱茵衣藻中多种铁氧还蛋白同工型——其在胁迫条件下的作用和生物技术意义。
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