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首页> 外文期刊>Biochimica et biophysica acta: international journal of biochemistry and biophysics >Two functionally distinct manganese clusters formed by introducing a mutation in the carboxyl terminus of a photosystem II reaction center polypeptide, D1, of the green alga Chlamydomonas reinhardtii.
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Two functionally distinct manganese clusters formed by introducing a mutation in the carboxyl terminus of a photosystem II reaction center polypeptide, D1, of the green alga Chlamydomonas reinhardtii.

机译:通过在绿藻莱茵衣藻的光系统II反应中心多肽D1的羧基末端引入突变形成了两个功能不同的锰簇。

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摘要

To study the function of the carboxyl-terminal domain of a photosystem II (PSII) reaction center polypeptide, D1, chloroplast mutants of the green alga Chlamydomonas reinhardtii have been generated in which Leu-343 and Ala-344 have been simultaneously or individually replaced by Phe and Ser, respectively. The mutants carrying these replacements individually, L343F and A344S, showed a wild-type phenotype. In contrast, the double mutant, L343FA344S, evolved O2 at only 20-30% of the wild-type rate and was unable to grow photosynthetically. In this mutant, PSII accumulated to 60% of the wild-type level, indicating that the O2-evolving activity per PSII was reduced to approximately half that of the wild-type. However, the amount of Mn atom detected in the thylakoids suggested that a normal amount of Mn cluster was assembled. An investigation of the kinetics of flash-induced fluorescence yield decay revealed that the electron transfer from Q(-)(A) to Q(B) was not affected. When a back electron transfer from Q(-)(A) to a donor component was measured in the presence of 3-(3,4-dichlorophenol)-1,1-dimethylurea, a significantly slower component of the Q(-)(A) oxidation was detected in addition to the normal component that corresponds to the back electron transfer from the Q(-)(A) to the S(2)-state of the Mn cluster. Thermoluminescence measurements revealed that L343FA344S cells contained two functionally distinct Mn clusters. One was equivalent to that of the wild-type, while the other was incapable of water oxidation and was able to advance the transition from the S(1)-state to the S(2)-state. These results suggested that a fraction of the Mn cluster had been impaired by the L343FA344S mutation, leading to decreased O2 evolution. We concluded that the structure of the C-terminus of D1 is critical for the formation of the Mn cluster that is capable of water oxidation, in particular, transition to higher S-states.
机译:为了研究光系统II(PSII)反应中心多肽的羧基末端结构域的功能,已经生成了绿藻莱茵衣藻的D1叶绿体突变体,其中Leu-343和Ala-344已被同时或单独地替换为Phe和Ser。分别携带这些替代的突变体L343F和A344S显示了野生型表型。相反,双重突变体L343FA344S只能以野生型比例的20-30%释放O2,并且不能光合生长。在该突变体中,PSII积累到野生型水平的60%,这表明每个PSII的O2进化活性降低到野生型的一半左右。然而,在类囊体中检测到的Mn原子数量表明正常数量的Mn团簇已组装。闪光诱导的荧光产量衰减的动力学研究表明,从Q(-)(A)到Q(B)的电子转移不受影响。当在3-(3,4-二氯苯酚)-1,1-二甲基脲存在下测量从Q(-)(A)向施主组分的反向电子转移时,Q(-)(除正常成分外,还检测到A)氧化,该成分与从Mn团簇的Q(-)(A)到S(2)态的反向电子转移相对应。热致发光测量表明,L343FA344S细胞包含两个功能不同的Mn簇。一种等同于野生型,而另一种则不能水氧化,并且能够促进从S(1)态到S(2)态的转变。这些结果表明,L343FA344S突变削弱了一部分Mn簇,从而导致O2释放减少。我们得出的结论是,D1的C末端的结构对于形成能够进行水氧化(尤其是过渡到更高的S状态)的Mn团簇至关重要。

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