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低温驯化和未硬化的菠菜叶片的冻害:II. 冷冻对叶绿素荧光和光散射反应的影响。

Freezing injury in cold-acclimated and unhardened spinach leaves : II. Effects of freezing on chlorophyll fluorescence and light scattering reactions.

机构信息

Botanisches Institut der Universität Düsseldorf, Universitätsstraße 1, D-4000, Düsseldorf 1, Germany.

出版信息

Planta. 1981 Apr;151(4):347-52. doi: 10.1007/BF00393289.

Abstract

Leaves from cold-acclimated and from unhardened spinach plants (Spinacia oleracea L.) were subjected to a freezing/thawing procedure in which varying minimum temperatures were reached. Subsequently, the chlorophyll fluorescence induction signal (Kautsky phenomenon) and the light-induced apparent absorbance changes at 535 nm (light-scattering changes indicative of the proton gradient, and absorbance changes induced by the membrane potential) of the leaves were studied to obtain information on the course and mechanism of frost damage to the photosynthetic apparatus. Membrane energization as indicated by these signals was related in a complex way to the inactivation of CO2 assimilation due to the progressing impact of freezing: In the absence of CO2, the maximum energization of the thylakoids was progressively decreased. According to altered fluorescence signals, the electron transport system was affected in parallel. In the presence of CO2, energization frequently appeared increased when the leaves had been partially damaged, i.e., when the CO2 assimilation rates were lowered. The results suggest that the primary frost injury in chloroplasts of intact leaves consists of an inhibition of the energy conserving photosynthetic processes and, in addition, of a partial inactivation of the carbon reduction cycle. The pattern of freezing injury was no different in frost-hardened and unhardened leaves.

摘要

将来自耐寒和未硬化的菠菜(Spinacia oleracea L.)的叶子置于冷冻/解冻过程中,达到不同的最低温度。随后,研究了叶子的叶绿素荧光诱导信号(Kautsky 现象)和 535nm 处的光诱导表观吸收变化(质子梯度指示的光散射变化和由膜电位诱导的吸收变化),以获取有关光合作用器受冻害过程和机制的信息。这些信号指示的膜能量化为 CO2 同化由于冷冻的影响而失活提供了复杂的关系:在没有 CO2 的情况下,类囊体的最大能量化逐渐降低。根据荧光信号的变化,电子传递系统也受到了平行影响。在存在 CO2 的情况下,当叶子部分受损时,即当 CO2 同化速率降低时,能量化通常会增加。结果表明,完整叶子叶绿体中的初级冻害主要包括能量守恒光合作用过程的抑制,以及碳还原循环的部分失活。在耐寒和未耐寒的叶子中,冷冻损伤的模式没有不同。

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