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NTRC对非光化学猝灭的影响取决于PGR5。

NTRC Effects on Non-Photochemical Quenching Depends on PGR5.

作者信息

Naranjo Belen, Penzler Jan-Ferdinand, Rühle Thilo, Leister Dario

机构信息

Plant Molecular Biology, Faculty of Biology, Ludwig-Maximilians-Universität München, D-82152 Planegg-Martinsried, Germany.

出版信息

Antioxidants (Basel). 2021 Jun 3;10(6):900. doi: 10.3390/antiox10060900.

Abstract

Non-photochemical quenching (NPQ) protects plants from the detrimental effects of excess light. NPQ is rapidly induced by the trans-thylakoid proton gradient during photosynthesis, which in turn requires PGR5/PGRL1-dependent cyclic electron flow (CEF). Thus, plants lacking either protein cannot induce transient NPQ and die under fluctuating light conditions. Conversely, the NADPH-dependent thioredoxin reductase C (NTRC) is required for efficient energy utilization and plant growth, and in its absence, transient and steady-state NPQ is drastically increased. How NTRC influences NPQ and functionally interacts with CEF is unclear. Therefore, we generated the line , and found that the inactivation of PGR5 suppresses the high transient and steady-state NPQ and impaired growth phenotypes observed in the mutant under short-day conditions. This implies that NTRC negatively influences PGR5 activity and, accordingly, the lack of NTRC is associated with decreased levels of PGR5, possibly pointing to a mechanism to restrict upregulation of PGR5 activity in the absence of NTRC. When exposed to high light intensities, plants display extremely impaired photosynthesis and growth, indicating additive effects of lack of both proteins. Taken together, these findings suggest that the interplay between NTRC and PGR5 is relevant for photoprotection and that NTRC might regulate PGR5 activity.

摘要

非光化学猝灭(NPQ)可保护植物免受过量光照的有害影响。在光合作用过程中,NPQ由类囊体跨膜质子梯度迅速诱导产生,而这反过来又需要依赖PGR5/PGRL1的循环电子流(CEF)。因此,缺乏这两种蛋白之一的植物无法诱导瞬时NPQ,并在波动光照条件下死亡。相反,NADPH依赖的硫氧还蛋白还原酶C(NTRC)是高效能量利用和植物生长所必需的,在其缺失时,瞬时和稳态NPQ会大幅增加。NTRC如何影响NPQ以及与CEF在功能上如何相互作用尚不清楚。因此,我们构建了相关株系,发现在短日照条件下,PGR5的失活抑制了在NTRC突变体中观察到的高瞬时和稳态NPQ以及生长受损的表型。这意味着NTRC对PGR5的活性有负面影响,因此,NTRC的缺失与PGR5水平的降低有关,这可能表明在缺乏NTRC的情况下限制PGR5活性上调的一种机制。当暴露于高光强度下时,NTRC和PGR5双缺失的植物表现出极其受损的光合作用和生长,表明这两种蛋白缺失具有累加效应。综上所述,这些发现表明NTRC和PGR5之间的相互作用与光保护相关,并且NTRC可能调节PGR5的活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/adc1/8229092/f295d8492a46/antioxidants-10-00900-g001.jpg

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