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Plant Cell. 2021 Jul 19;33(6):2072-2091. doi: 10.1093/plcell/koab092.
2
Chloroplast ATP synthase is reduced by both f-type and m-type thioredoxins.叶绿体 ATP 合酶同时被 f 型和 m 型硫氧还蛋白还原。
Biochim Biophys Acta Bioenerg. 2020 Nov 1;1861(11):148261. doi: 10.1016/j.bbabio.2020.148261. Epub 2020 Jul 11.
3
One C-to-U RNA Editing Site and Two Independently Evolved Editing Factors: Testing Reciprocal Complementation with DYW-Type PPR Proteins from the Moss () and the Flowering Plants and Arabidopsis.一个 C 到 U 的 RNA 编辑位点和两个独立进化的编辑因子:用来自藓类植物 和开花植物 和拟南芥的 DYW 型 PPR 蛋白进行相互互补测试。
Plant Cell. 2020 Sep;32(9):2997-3018. doi: 10.1105/tpc.20.00311. Epub 2020 Jul 2.
4
Regulation of electron transport is essential for photosystem I stability and plant growth.电子传递的调节对于光系统I的稳定性和植物生长至关重要。
New Phytol. 2020 Nov;228(4):1316-1326. doi: 10.1111/nph.16643. Epub 2020 Jun 18.
5
Photosynthesis, respiration and growth: A carbon and energy balancing act for alternative oxidase.光合作用、呼吸作用和生长:交替氧化酶的碳和能量平衡作用。
Mitochondrion. 2020 May;52:197-211. doi: 10.1016/j.mito.2020.04.001. Epub 2020 Apr 9.
6
Photoautotrophic cultures of Chlamydomonas reinhardtii: sulfur deficiency, anoxia, and hydrogen production.莱茵衣藻的光自养培养:硫缺乏、缺氧和氢气生产。
Photosynth Res. 2020 Mar;143(3):275-286. doi: 10.1007/s11120-019-00701-1. Epub 2020 Jan 2.
7
Modification of Activity of the Thylakoid H/K Antiporter KEA3 Disturbs ∆pH-Dependent Regulation of Photosynthesis.类囊体 H/K 反向转运蛋白 KEA3 的活性修饰会扰乱 ∆pH 依赖型光合作用的调节。
Plant Physiol. 2019 Oct;181(2):762-773. doi: 10.1104/pp.19.00766. Epub 2019 Aug 19.
8
Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light.叶片能量平衡需要在线粒体呼吸和叶绿体 NADPH 的输出。
Plant Physiol. 2019 Aug;180(4):1947-1961. doi: 10.1104/pp.19.00624. Epub 2019 Jun 18.
9
Role of cyclic and pseudo-cyclic electron transport in response to dynamic light changes in Physcomitrella patens.环式和拟环式电子传递在Physcomitrella patens 响应动态光变化中的作用。
Plant Cell Environ. 2019 May;42(5):1590-1602. doi: 10.1111/pce.13493. Epub 2018 Dec 18.
10
The assembly pathway of complex I in Arabidopsis thaliana.拟南芥中复合体 I 的组装途径。
Plant J. 2019 Feb;97(3):447-459. doi: 10.1111/tpj.14133. Epub 2018 Nov 27.

线粒体复合物 I 的失活会刺激Physcomitrium patens 中的叶绿体 ATP 酶。

Inactivation of mitochondrial complex I stimulates chloroplast ATPase in Physcomitrium patens.

机构信息

Department of Biology, University of Padova, 35121 Padova, Italy.

MSU-DOE Plant Research Laboratory, Michigan State University, East Lansing, Michigan 48824, USA.

出版信息

Plant Physiol. 2021 Oct 5;187(2):931-946. doi: 10.1093/plphys/kiab276.

DOI:10.1093/plphys/kiab276
PMID:34608952
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8491079/
Abstract

Light is the ultimate source of energy for photosynthetic organisms, but respiration is fundamental for supporting metabolism during the night or in heterotrophic tissues. In this work, we isolated Physcomitrella (Physcomitrium patens) plants with altered respiration by inactivating Complex I (CI) of the mitochondrial electron transport chain by independently targeting on two essential subunits. Inactivation of CI caused a strong growth impairment even in fully autotrophic conditions in tissues where all cells are photosynthetically active, demonstrating that respiration is essential for photosynthesis. CI mutants showed alterations in the stoichiometry of respiratory complexes while the composition of photosynthetic apparatus was substantially unaffected. CI mutants showed altered photosynthesis with high activity of both Photosystems I and II, likely the result of high chloroplast ATPase activity that led to smaller ΔpH formation across thylakoid membranes, decreasing photosynthetic control on cytochrome b6f in CI mutants. These results demonstrate that alteration of respiratory activity directly impacts photosynthesis in P. patens and that metabolic interaction between organelles is essential in their ability to use light energy for growth.

摘要

光是光合作用生物的最终能量来源,但呼吸作用对于在夜间或异养组织中维持代谢是至关重要的。在这项工作中,我们通过独立靶向两个必需亚基使线粒体电子传递链的复合物 I (CI)失活,从而分离出具有改变呼吸作用的Physcomitrella (Physcomitrium patens) 植物。即使在组织中所有细胞都具有光合作用活性的完全自养条件下,CI 的失活也会导致强烈的生长受损,这表明呼吸作用对于光合作用是必不可少的。CI 突变体在呼吸复合物的计量比上表现出改变,而光合器官的组成则基本不受影响。CI 突变体表现出改变的光合作用,具有较高的 PSI 和 PSII 的活性,这可能是由于叶绿体 ATP 酶活性较高,导致类囊体膜上的 ΔpH 形成减少,从而降低了 CI 突变体中细胞色素 b6f 的光合控制。这些结果表明,呼吸活性的改变会直接影响 P. patens 的光合作用,并且细胞器之间的代谢相互作用对于它们利用光能进行生长是必不可少的。