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对绿色果实中快速叶绿素荧光上升(O-K-J-I-P)曲线的分析表明,在 PSII 的供体侧和两个光系统的受体侧存在电子流动限制。

Analysis of fast chlorophyll fluorescence rise (O-K-J-I-P) curves in green fruits indicates electron flow limitations at the donor side of PSII and the acceptor sides of both photosystems.

机构信息

Laboratory of Plant Physiology, Department of Biology, University of Patras, Patras GR 265 00, Greece.

出版信息

Physiol Plant. 2010 Jul 1;139(3):313-23. doi: 10.1111/j.1399-3054.2010.01362.x. Epub 2010 Feb 8.

Abstract

Limited evidence up to now indicates low linear photosynthetic electron flow and CO(2) assimilation rates in non-foliar chloroplasts. In this investigation, we used chlorophyll fluorescence techniques to locate possible limiting steps in photosystem function in exposed, non-stressed green fruits (both pericarps and seeds) of three species, while corresponding leaves served as controls. Compared with leaves, fruit photosynthesis was characterized by less photon trapping and less quantum yields of electron flow, while the non-photochemical quenching was higher and potentially linked to enhanced carotenoid/chlorophyll ratios. Analysis of fast chlorophyll fluorescence rise curves revealed possible limitations both in the donor (oxygen evolving complex) and the acceptor (Q(A)(-)--> intermediate carriers) sides of photosystem II (PSII) indicating innately low PSII photochemical activity. On the other hand, PSI was characterized by faster reduction of its final electron acceptors and their small pool sizes. We argue that the fast reductive saturation of final PSI electron acceptors may divert electrons back to intermediate carriers facilitating a cyclic flow around PSI, while the partial inactivation of linear flow precludes strong reduction of plastoquinone. As such, the photosynthetic attributes of fruit chloroplasts may act to replenish the ATP lost because of hypoxia usually encountered in sink organs with high diffusive resistance to gas exchange.

摘要

迄今为止,有限的证据表明非叶质叶绿体的线性光合电子流和 CO2 同化率较低。在这项研究中,我们使用叶绿素荧光技术来定位三个物种暴露、非胁迫的绿色果实(果皮和种子)中光合作用系统功能的可能限制步骤,而相应的叶片作为对照。与叶片相比,果实光合作用的特点是光捕获较少,电子流的量子产率较低,而非光化学猝灭较高,可能与类胡萝卜素/叶绿素比值的增加有关。快速叶绿素荧光上升曲线的分析表明,在光合作用系统 II(PSII)的供体(放氧复合体)和受体(Q(A)(-)-->中间载体)侧可能存在限制,表明 PSII 光化学活性先天较低。另一方面,PSI 的特点是其最终电子受体的还原更快,其小池体积较小。我们认为,最终 PSI 电子受体的快速还原饱和可能会将电子转移回中间载体,从而促进 PSI 周围的循环流动,而线性流动的部分失活则阻止了质体醌的强烈还原。因此,果实叶绿体的光合特性可能有助于补充由于具有高气体交换扩散阻力的汇器官通常缺氧而丧失的 ATP。

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