Moderate Temperature Reduction Changes the High-Light Acclimation Strategy of Lettuce Plants.

IF 5.4 2区 生物学 Q1 PLANT SCIENCES
Tapio Lempiäinen, Dorota Muth-Pawlak, Julia P Vainonen, Eevi Rintamäki, Mikko Tikkanen, Eva-Mari Aro
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Abstract

In nature, environmental conditions are constantly changing, requiring plants to have numerous regulatory mechanisms to keep light harvesting and metabolism in balance. Here, we show that high light (HL) induces a much stronger non-photochemical quenching (NPQ) when lettuce plants are exposed to 1500 μmol photons m-2 s-1 for 4 h at 13°C (low temperature, LT) compared to 23°C (growth temperature, GT). GT/HL treatment induced NPQ to relax during 1 h in darkness. In contrast, LT/HL treatment induced an exceptionally high NPQ that only partially relaxed during 1 h in darkness at GT. Such a high sustained NPQ (sNPQ) cannot be explained by the canonical NPQ mechanism(s). Instead, sNPQ was associated with a transient increase in phosphorylation of minor LHCII antenna proteins, LHCB4.1/LHCB4.2 and partial disassembly of PSII-LHCII complexes. This coincided with increased expression of the light-harvesting-like proteins SEP2 and ELIP1.2, the PSII assembly proteins HCF173 and LPA3, and accumulation of the pre-D1 protein, indicating delayed PSII repair. These results lead us to propose that under LT/HL, the phosphorylation of LHCB4.1/LHCB4.2 initiates the disassembly of PSII-LHCII supercomplexes, allowing accumulated SEP2 to bind to CP47, presumably leading to quenching of the inner PSII core antenna. The free CP43 core antenna, released from PSII at an early stage of repair, is proposed to be protected by accumulated LPA3. Apparently, the cascades of regulatory mechanisms are specific to each combination of environmental changes, depending on their concomitant effects on chloroplast redox balance and PSII repair rate, with induced PSII core antenna quenching contributing to sNPQ.

适度降温改变生菜植株的强光驯化策略。
在自然界中,环境条件是不断变化的,需要植物有许多调节机制来保持光收集和代谢的平衡。本研究表明,当生菜在13°C(低温)下暴露于1500 μmol光子m-2 s-1下4 h时,高光(HL)诱导的非光化学猝灭(NPQ)比23°C(生长温度,GT)强得多。GT/HL处理可诱导NPQ在黑暗中松弛1 h。相比之下,LT/HL处理诱导了异常高的NPQ,仅在GT时黑暗中1小时内部分放松。如此高的持续NPQ (sNPQ)不能用规范的NPQ机制来解释。相反,sNPQ与次要LHCII天线蛋白、LHCB4.1/LHCB4.2磷酸化的短暂增加以及PSII-LHCII复合物的部分分解有关。这与光收获样蛋白SEP2和ELIP1.2、PSII组装蛋白HCF173和LPA3的表达增加以及pre-D1蛋白的积累相吻合,表明PSII修复延迟。这些结果使我们提出,在LT/HL条件下,LHCB4.1/LHCB4.2的磷酸化启动了PSII- lhcii超配合物的分解,使积累的SEP2与CP47结合,可能导致PSII内部核心天线的猝灭。在维修初期从PSII中释放出来的CP43核心天线,提出了累积LPA3保护的方法。显然,调控机制的级联是特定于每种环境变化组合的,这取决于它们对叶绿体氧化还原平衡和PSII修复率的伴随影响,诱导PSII核心天线淬火有助于sNPQ。
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来源期刊
Physiologia plantarum
Physiologia plantarum 生物-植物科学
CiteScore
11.00
自引率
3.10%
发文量
224
审稿时长
3.9 months
期刊介绍: Physiologia Plantarum is an international journal committed to publishing the best full-length original research papers that advance our understanding of primary mechanisms of plant development, growth and productivity as well as plant interactions with the biotic and abiotic environment. All organisational levels of experimental plant biology – from molecular and cell biology, biochemistry and biophysics to ecophysiology and global change biology – fall within the scope of the journal. The content is distributed between 5 main subject areas supervised by Subject Editors specialised in the respective domain: (1) biochemistry and metabolism, (2) ecophysiology, stress and adaptation, (3) uptake, transport and assimilation, (4) development, growth and differentiation, (5) photobiology and photosynthesis.
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