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铜缺乏对光合作用电子传递的影响。

Effects of Cu deficiency on photosynthetic electron transport.

机构信息

Department of Plant and Soil Biology, University of California, 108 Hilgard Hall, Berkeley, CA 94720.

出版信息

Proc Natl Acad Sci U S A. 1984 Apr;81(8):2369-73. doi: 10.1073/pnas.81.8.2369.

Abstract

The role of copper (Cu) in photosynthetic electron transport was explored by using Cu deficiency in sugar beet as an experimental approach. Copper influenced electron transport at two sites in addition to plastocyanin. Under mild deficiency (0.84 nmol of Cu per cm(2) of leaf area), electron transport between the two photosystems (PS) is inhibited but not electron transport within PS I or PS II measured separately. The chlorophyll/plastoquinone ratio was normal in Cu-deficient plants. However, the breakpoint in the Arrhenius plot of electron transport was shifted towards a higher temperature. It is concluded that Cu is necessary to maintain the appropriate membrane fluidity to ensure the mobility of plastoquinone molecules to transfer electrons between the two photosystems. Under severe deficiency (0.22 nmol of Cu per cm(2) of leaf area) both PS II and PS I electron transports were inhibited and to the same extent. PS II electron transport activity could not be restored by adding artificial electron donors. Polypeptides with M(r)s of 28,000 and 13,500 were missing in Cu-deficient chloroplast membranes. In PS II particles prepared from normal chloroplasts of spinach, 2 atoms of Cu per reaction center are present. We conclude that Cu influences PS II electron transport either directly, by participation in electron transfer as a constituent of an electron carrier, or indirectly, via the polypeptide composition of the membrane in the PS II complex.

摘要

采用甜菜铜缺乏症作为实验方法,研究了铜(Cu)在光合作用电子传递中的作用。铜除了影响质体蓝素之外,还影响两个位点的电子传递。在轻度缺乏(叶面积每平方厘米 0.84 毫摩尔铜)的情况下,两个光系统(PS)之间的电子传递受到抑制,但单独测量 PS I 或 PS II 内的电子传递不受影响。在铜缺乏的植物中,叶绿素/质体醌的比值正常。然而,电子传递的 Arrhenius 图中的断点向更高的温度移动。由此得出结论,铜是维持适当膜流动性所必需的,以确保质体醌分子的流动性,从而在两个光系统之间传递电子。在严重缺乏(叶面积每平方厘米 0.22 毫摩尔铜)的情况下,PS II 和 PS I 的电子传递均受到抑制,且程度相同。添加人工电子供体也不能恢复 PS II 电子传递活性。在铜缺乏的叶绿体膜中,缺失了分子量为 28000 和 13500 的两种多肽。在从菠菜正常叶绿体中制备的 PS II 颗粒中,每个反应中心存在 2 个铜原子。我们的结论是,铜要么直接通过作为电子载体组成部分参与电子转移来影响 PS II 电子传递,要么间接地通过 PS II 复合物中膜的多肽组成来影响 PS II 电子传递。

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Effects of Cu deficiency on photosynthetic electron transport.铜缺乏对光合作用电子传递的影响。
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