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在菜豆植株去顶和去叶后,初级叶片中光合电子传递免受衰老诱导失活的保护。

Preservation of photosynthetic electron transport from senescence-induced inactivation in primary leaves after decapitation and defoliation of bean plants.

作者信息

Yordanov Ivan, Goltsev Vasilij, Stefanov Detelin, Chernev Petko, Zaharieva Ivelina, Kirova Maria, Gecheva Velichka, Strasser Reto Jörg

机构信息

Institute of Plant Physiology, Bulgarian Academy of Sciences, Sofia, Bulgaria.

出版信息

J Plant Physiol. 2008 Dec;165(18):1954-63. doi: 10.1016/j.jplph.2008.05.003. Epub 2008 Jun 30.

Abstract

The comparative effects of decapitation and defoliation on the senescence-induced inactivation of photosynthetic activity in primary leaves of bean plants were investigated. Decapitation was performed during different phases of bean plant ontogenesis, immediately after the appearance of the 1st, 2nd, 3rd and 4th composite leaf. In addition, we examined a variant with primary leaves and stem with an apical bud, but without composite leaves, i.e. defoliated plants. Analyses of chlorophyll fluorescence, millisecond delayed fluorescence and absorption at 830nm in primary leaves were undertaken to investigate the alterations in photosystems II and I electron transport during the decapitation-induced delayed senescence in the non-detached leaves. Analysis of the OKJIP transients using the JIP-test (see [Strasser R, Srivastava A, Tsimilli-Michael M. Analysis of the chlorophyll a fluorescence transient. In: Papageorgiou G, Govindjee, editors. Chlorophyll a fluorescence: a signature of photosynthesis. The Netherlands: Kluwer Academic Publishers, 2004; pp. 321-362]) showed an increase in several biophysical parameters of photosystem II in decapitated plants, specifically, the density of active reaction centers on a chlorophyll basis, the yields of trapping and electron transport, and the performance index. We also observed a decrease in the absorbed light energy per reaction center. Such a decrease in light absorption could be a result of the photosystem II down regulation that appeared as an increase in Q(B)-non-reducing photosystem II centers. The effect was identical when all leaves except the primary leaves were removed. The variant with a preserved apical bud, the defoliated plant, showed values similar to those of decapitated plants with primary leaves only. The changes in the induction curves of the delayed fluorescence also indicated an acceleration of electron transport beyond photosystem II in the decapitated and in defoliated plants. In these plants, the photosystem I-driven electron transport was accelerated, and the size of the plastoquinone pool was enhanced. It was established that decapitation can retard the senescence of primary leaves, can expand leaf life span and can cause activation of both photosystems I and II electron transport. The decapitation procedure shows similarities to the process of defoliation. The overcompensation effect that is developed after defoliation could initially be manifested as an acceleration of the linear photosynthetic electron flow in the rest of the leaves.

摘要

研究了摘心和去叶对菜豆植株初生叶衰老诱导的光合活性失活的比较效应。在菜豆植株个体发育的不同阶段进行摘心,即在第1、2、3和4片复叶出现后立即进行。此外,我们还研究了一个变体,即保留初生叶和带有顶芽的茎,但没有复叶,即去叶植株。对初生叶的叶绿素荧光、毫秒延迟荧光和830nm处的吸收进行分析,以研究在非离体叶片中摘心诱导的延迟衰老过程中光系统II和I电子传递的变化。使用JIP-test分析OKJIP瞬变(见[Strasser R, Srivastava A, Tsimilli-Michael M. 叶绿素a荧光瞬变分析。载于:Papageorgiou G, Govindjee编。叶绿素a荧光:光合作用的标志。荷兰:Kluwer学术出版社,2004;第321 - 362页])表明,摘心植株中光系统II的几个生物物理参数增加,具体而言,以叶绿素为基础的活性反应中心密度、捕获和电子传递的产量以及性能指数。我们还观察到每个反应中心吸收的光能减少。这种光吸收的减少可能是光系统II下调的结果,表现为Q(B) - 非还原光系统II中心的增加。当去除除初生叶以外的所有叶片时,效果相同。保留顶芽的变体,即去叶植株,其值与仅保留初生叶的摘心植株相似。延迟荧光诱导曲线的变化也表明,摘心和去叶植株中光系统II之后的电子传递加速。在这些植株中,光系统I驱动的电子传递加速,质体醌库的大小增加。已确定摘心可以延缓初生叶的衰老,延长叶片寿命,并导致光系统I和II电子传递的激活。摘心过程与去叶过程相似。去叶后产生的超补偿效应最初可能表现为其余叶片中线性光合电子流的加速。

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