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Photosynthetic Responses of Leaves to Water Stress, Expressed by Photoacoustics and Related Methods 1: II. The Effect of Rapid Drought on the Electron Transport and the Relative Activities of the Two Photosystems

机译:叶片对水分胁迫的光合响应,通过光声学和相关方法表达1:II。快速干旱对两种光系统电子传输和相对活性的影响

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摘要

The effect of rapid dehydration of detached tobacco leaves (Nicotiana tabacum L.) on the photochemical apparatus of photosynthesis was studied in vivo by a combination of methods: photoacoustics, chlorophyll a fluorescence, and cytochrome f difference spectroscopy. It was shown that the inhibition of gross O2 evolution was mainly caused by inactivation of PSII: (a) The saturation curve of cytochrome-f photooxidation by farred (>710 nanometers) light was resistant to the stress, leading to the conclusion that photosystem I (PSI) was largely unaffected by the stress. (b) The extent of the chlorophyll a variable fluorescence arising from photosystem II (PSII) decreased with the progression of the stress, but was largely unaffected when the leaf was preincubated with electron donors to PSII, such as hydroxylamine. It is concluded that the drought damage to PSII occurred on the photooxidative side. Despite the extensive inhibition of PSII and the relative preservation of PSI, the apparent PSII/PSI activity balance was somewhat larger in stressed leaves than in the control, as indicated by photoacoustic measurements of Emerson enhancement. These measurements were performed continuously under conditions which favor transitions to either state 1 or 2, showing that the transition to state 2 was considerably inhibited. Simultaneous measurements of chlorophyll fluorescence induction at 680 and 730 mm at room temperature were also used to probe changes in energy distribution between PSII and PSI and indicated that the transition from a dark adapted state to state 2 was also affected in water-stressed leaves. The saturation curve of the far-red light effect in Emerson enhancement was not changed by the stress, giving another independent evidence for the drought resistance of PSI activity. This apparent preservation of the imbalance in photochemical activities in favor of PSII, despite the fact that PSII is strongly inhibited, and PSI is not, supports a previous suggestion that the electron transfer between the two photosystems is not random but that a large extent of PSII and PSI units are specifically linked.
机译:通过结合以下方法,在体内研究了离体烟草叶片(Nicotiana tabacum L.)快速脱水对光合作用光化学装置的影响:光声,叶绿素a荧光和细胞色素f差光谱法。结果表明,抑制总氧气的释放主要是由于PSII的失活引起的:(a)远光(> 710纳米)的光致细胞色素f光氧化的饱和曲线对应力具有抵抗力,从而得出以下结论:光系统I (PSI)在很大程度上不受压力的影响。 (b)由光系统II(PSII)产生的叶绿素a可变荧光的程度随着胁迫的进展而降低,但是当叶片与PSII的电子供体(如羟胺)一起预孵育时,其大部分不受影响。结论是干旱对PSII的损害发生在光氧化方面。尽管对PSII的广泛抑制和对PSI的相对保存,但如Emson增强的光声测量所表明的那样,胁迫叶中的表观PSII / PSI活性平衡比对照中的要大一些。这些测量是在有利于过渡到状态1或2的条件下连续进行的,表明到状态2的过渡受到了明显的抑制。在室温下,分别在680和730 mm处对叶绿素荧光诱导进行了同步测量,以探测PSII和PSI之间的能量分布变化,并表明在水分胁迫的叶片中,从暗适应状态到状态2的过渡也受到影响。艾默生增强中的远红光效应的饱和度曲线并未因应力而改变,这为PSI活性的抗旱性提供了另一项独立证据。尽管PSII被强烈抑制而PSI没有被抑制,但这种光化学活性不平衡的明显保留有利于PSII,这支持了先前的建议,即两个光系统之间的电子转移不是随机的,而是PSII在很大程度上和PSI单位是专门链接的。

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