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有限的镁生物有效性对肉色小冠花植物光系统I的优先损害作用。

Preferential damaging effects of limited magnesium bioavailability on photosystem I in Sulla carnosa plants.

作者信息

Farhat Nèjia, Ivanov Alexander G, Krol Marianna, Rabhi Mokded, Smaoui Abderrazak, Abdelly Chedly, Hüner Norman P A

机构信息

Laboratory of Extremophile Plants, Biotechnology Centre of Borj-Cedria, P. O. Box 901, 2050, Hammam-Lif, Tunisia.

出版信息

Planta. 2015 May;241(5):1189-206. doi: 10.1007/s00425-015-2248-x. Epub 2015 Jan 31.

Abstract

Magnesium deficiency preferentially inhibits photosystem I rather than photosystem II in Sulla carnosa plants. The effects of magnesium (Mg(2+)) deficiency on growth, photosynthetic performance, pigment and polypeptide composition of chloroplast membranes were studied in the halophyte Sulla carnosa (Desf.), an annual legume endemic to Tunisia and Algeria. The results demonstrate a gradual decrease in biomass production with decreasing Mg(2+) availability in the growth medium. The increase of Mg(2+) deficiency was also associated with a decline of the net CO2 assimilation (Pn) in fully expanded leaves, a decrease in the amount of photosynthetic pigments, and an increase in the lipid peroxidation in plants exposed to decreased Mg(2+) concentrations. Interestingly, while CO2 assimilation already was affected at Mg(2+) concentrations below 1.5 mM, the photochemical efficiency of photosystem II (PSII) declined only in the absence of Mg(2+). In contrast, plants of S. carnosa grown in Mg(2+)-deficient conditions exhibited a significant decrease in photosystem I (PSI) photochemistry in vivo at much higher Mg(2+) levels compared to PSII photochemical activity. The inhibitory effect of Mg(2+) deficiency on PSI photochemistry strongly correlated with significantly lower relative abundance of PSI-related chlorophyll-protein complexes and lower amounts of PSI-associated polypeptides, PsaA, PsaB, and Lhca proteins within the same range of Mg(2+) concentrations. These observations were associated with a higher intersystem electron pool size, restricted linear electron transport and a lower rate of reduction of P700(+) in the dark indicating restricted capacity for PSI cyclic electron transfer in plants exposed to Mg(2+)-deficient conditions compared to controls. These results clearly indicate that PSI, rather than PSII is preferentially targeted and damaged under Mg(2+)-deficiency conditions.

摘要

在肉色补血草植物中,镁缺乏优先抑制光系统I而非光系统II。在盐生植物肉色补血草(Desf.)中研究了镁(Mg(2+))缺乏对其生长、光合性能、叶绿体膜色素和多肽组成的影响。肉色补血草是突尼斯和阿尔及利亚特有的一年生豆科植物。结果表明,随着生长培养基中Mg(2+)可用性的降低,生物量产量逐渐下降。Mg(2+)缺乏的增加还与完全展开叶片中净二氧化碳同化(Pn)的下降、光合色素含量的减少以及暴露于降低的Mg(2+)浓度下的植物中脂质过氧化的增加有关。有趣的是,虽然在Mg(2+)浓度低于1.5 mM时二氧化碳同化就已受到影响,但光系统II(PSII)的光化学效率仅在无Mg(2+)时下降。相比之下,在缺镁条件下生长的肉色补血草植物,与PSII光化学活性相比,在更高的Mg(2+)水平下,体内光系统I(PSI)光化学显著降低。在相同的Mg(2+)浓度范围内,Mg(2+)缺乏对PSI光化学的抑制作用与PSI相关叶绿素-蛋白质复合物的相对丰度显著降低以及PSI相关多肽、PsaA、PsaB和Lhca蛋白的含量较低密切相关。这些观察结果与更高的电子传递链间电子池大小、受限的线性电子传递以及黑暗中P700(+)还原速率较低有关,表明与对照相比,暴露于缺镁条件下的植物中PSI循环电子传递能力受限。这些结果清楚地表明,在镁缺乏条件下,PSI而非PSII优先受到靶向和损伤。

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