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玉米叶绿体中的光系统电子传递能力和捕光天线大小。

Photosystem electron-transport capacity and light-harvesting antenna size in maize chloroplasts.

作者信息

Ghirardi M L, Melis A

机构信息

Division of Molecular Plant Biology, University of California, Berkeley, California 94720.

出版信息

Plant Physiol. 1984 Apr;74(4):993-8. doi: 10.1104/pp.74.4.993.

Abstract

Spectrophotometric and kinetic measurements were applied to yield photosystem (PS) stoichiometries and the functional antenna size of PSI, PSII(alpha), and PSII(beta) in Zea mays chloroplasts in situ. Concentrations of PSII and PSI reaction centers were determined from the amplitude of the light-induced absorbance change at 320 and 700 nm, which reflect the photoreduction of the primary electron acceptor Q of PSII and the photooxidation of the reaction center P700 of PSI, respectively. Determination of the functional chlorophyll antenna size (N) for each photosystem was obtained from the measurement of the rate of light absorption by the respective reaction center. Under the experimental conditions employed, the rate of light absorption by each reaction center was directly proportional to the number of light-harvesting chlorophyll molecules associated with the respective photosystem. We determined N(P700) = 195, N(alpha) = 230, N(beta) = 50 for the number of chlorophyll molecules in the light-harvesting antenna of PSI, PSII(alpha), and PSII(beta), respectively. The above values were used to estimate the PSII/PSI electron-transport capacity ratio (C) in maize chloroplasts. In mesophyll chloroplasts C > 1.4, indicating that, under green actinic excitation when Chl a and Chl b molecules absorb nearly equal amounts of excitation, PSII has a capacity to turn over electrons faster than PSI. In bundle sheath chloroplasts C < 1, suggesting that such chloroplasts are not optimally poised for linear electron transport and reductant generation.

摘要

采用分光光度法和动力学测量方法,以得出原位玉米叶绿体中光系统(PS)的化学计量比以及光系统I(PSI)、光系统II(α)和光系统II(β)的功能天线大小。通过320和700nm处光诱导吸光度变化的幅度来确定光系统II和光系统I反应中心的浓度,这两个波长处的吸光度变化分别反映了光系统II初级电子受体Q的光还原和光系统I反应中心P700的光氧化。通过测量各个反应中心的光吸收速率来确定每个光系统的功能叶绿素天线大小(N)。在所采用的实验条件下,每个反应中心的光吸收速率与与各个光系统相关联的捕光叶绿素分子数量成正比。我们分别确定了光系统I、光系统II(α)和光系统II(β)的捕光天线中叶绿素分子数量为N(P700) = 195、N(α) = 230、N(β) = 50。上述数值用于估算玉米叶绿体中的光系统II/光系统I电子传递能力比(C)。在叶肉叶绿体中,C>1.4,这表明在绿色光化激发下,当叶绿素a和叶绿素b分子吸收的激发量几乎相等时,光系统II周转电子的能力比光系统I快。在维管束鞘叶绿体中,C<1,这表明此类叶绿体对于线性电子传递和还原剂生成并未处于最佳状态。

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