Huang Hao, Liu Xiaoqing, Qu Chunxiang, Liu Chao, Chen Liang, Hong Fashui
Medical College of Soochow University, Suzhou 215123, P.R. China.
Biometals. 2008 Oct;21(5):553-61. doi: 10.1007/s10534-008-9141-z. Epub 2008 Apr 11.
Chloroplast absorbs light energy and transforms it into electron energy, and then converts it into active chemical energy and stable chemical energy. In the present paper, we investigated the effects of Ce(3+), which has the most significant catalytic effects and similar characteristics with Ca(2+), on light energy conversion of spinach chloroplasts under Ca(2+)-deficient stress. The results illuminated that the Hill reaction activity, electron flow both photosystems and photophosphorylation rate of spinach chloroplasts reduced significantly under Ca(2+)-deficient condition, and activities of Mg(2+)-ATPase and Ca(2+)-ATPase on the thylakoid membrane were severely inhibited. Meanwhile, the activity of Rubisco, which is the key enzyme of photosynthetic carbon assimilation, was also prohibited. However, Ce(3+) decreased the inhibition of calcium deprivation the electron transport rate, the oxygen evolution rate, the cyclic and noncyclic photophosphorylation, the activities of Mg(2+)-ATPase, Ca(2+)-ATPase and Rubisco of spinach chloroplasts. All above implied that Ca(2+)-depletion could disturb light energy conversion of chloroplasts strongly, which could be reversed by Ce(3+).
叶绿体吸收光能并将其转化为电子能,然后将其转化为活跃的化学能和稳定的化学能。在本文中,我们研究了具有最显著催化作用且与Ca(2+)具有相似特性的Ce(3+)对缺钙胁迫下菠菜叶绿体光能转化的影响。结果表明,缺钙条件下菠菜叶绿体的希尔反应活性、两个光系统的电子流和光合磷酸化速率均显著降低,类囊体膜上的Mg(2+)-ATP酶和Ca(2+)-ATP酶活性受到严重抑制。同时,光合碳同化的关键酶核酮糖-1,5-二磷酸羧化酶(Rubisco)的活性也受到抑制。然而,Ce(3+)减轻了缺钙对菠菜叶绿体电子传递速率、放氧速率、循环和非循环光合磷酸化、Mg(2+)-ATP酶、Ca(2+)-ATP酶和Rubisco活性的抑制作用。以上所有结果表明,缺钙会强烈干扰叶绿体的光能转化,而Ce(3+)可以逆转这种干扰。