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首页> 外文期刊>Biochemistry (Moscow). Supplement, Series A. Membrane and cell biology >Changes of the Antenna of Photosystem I Induced by Short-term Heating
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Changes of the Antenna of Photosystem I Induced by Short-term Heating

机译:短期加热引起的光系统I天线的变化

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Changes in low-temperature fluorescence spectra of pea chloroplasts induced by the short-term heating were studied. Excitation spectra of the long-wavelength fluorescence were studied as well. Heating was carried out at 45°C for 5 min in the darkness or in the presence of white light sourced with intensities of 260 or 1400 μmol/m~2 s. All variants of heating decreased the intensity of the long-wavelength fluorescence band. The integral of the excitation spectrum decreased after the exposure to heating in the darkness and increased after the exposure to heating in the presence of light. The observed changes in most intensive com-ponents - 726, 729 and 731 nm - of the long-wavelength fluorescence band, induced by various modes of heating, were similar. The changes in the fourth intensive component at 735 nm were different. Twenty-five components were found in the fine structure of the excitation spectrum of the long-wavelength fluorescence. Positions of most of peaks corresponded to the absorption peaks of Lhca proteins. Heat-induced changes in the excitation spectrum in the regions corresponding to the absorption of chl b and short-wavelength forms of chl a have been shown to correlate with changes in the intensities of the 726-, 729-, and 731-nm compo-nents of the long-wavelength fluorescence. This allows one to assign them to the emission of the outer antenna of Photosystem I. Changes in the intensity of the component at 735 nm correlated only with changes in excitation spectrum in the long-wavelength region that corresponded to the absorption of the long-wave-length forms of chlorophyll a. Therefore, the 735-nm component could be assigned to the emission of the Photosystem I inner antenna. Analysis of the changes induced by heating in the emission and excitation spec-tra of fluorescence revealed changes in the energy transfer in the outer and the inner antennas of Photosystem I. Heating in the darkness lowered the energy transfer in the outer and in the inner antennas. Both modes of heating in the presence of light increased the energy transfer in the outer antenna. For the inner antenna, presence of the light promotes an efficient of energy transfer at the levels close to the control one. It is pro-posed that illumination during heating exposure causes a specific state of the antenna complex in Photosys-tem I that provides an increase in funneling of the energy toward the reaction centers.
机译:研究了短期加热引起的豌豆叶绿体低温荧光光谱的变化。还研究了长波长荧光的激发光谱。在黑暗中或在强度为260或1400μmol/ m〜2 s的白光存在下,在45°C下加热5分钟。加热的所有方式都降低了长波长荧光带的强度。激发光谱的积分在黑暗中暴露于加热后降低,而在光存在下暴露于加热后则增加。观察到的由各种加热方式引起的长波荧光带的最强组分(726、729和731 nm)的变化是相似的。在735 nm处第四强度成分的变化是不同的。在长波长荧光的激发光谱的精细结构中发现了二十五个成分。大多数峰的位置对应于Lhca蛋白的吸收峰。研究表明,在与chl b的吸收和短波形式的chl a吸收相对应的区域中,激发光谱中的热诱导变化与726-,729-和731-nm复合光的强度变化相关。长波长荧光的含义。这样就可以将它们分配给光系统I的外部天线的发射。735 nm处组件强度的变化仅与对应于长波吸收的长波长区域中的激发光谱变化相关。叶绿素的全长形式因此,可以将735 nm分量分配给Photosystem I内部天线的发射。对由荧光发射和激发光谱中的加热引起的变化的分析表明,光系统I的内外天线的能量传递发生了变化。在黑暗中加热降低了内外天线的能量传递。 。两种存在光的加热方式都增加了外部天线中的能量传递。对于内部天线,光的存在促进了接近控制水平的能量传输效率。提出在暴露于热的过程中进行照明会导致光电系统I中天线复合体的特定状态,从而使能量向反应中心的漏斗增加。

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