Institute of Basic Biological Problems, Pushchino Scientific Center for Biological Research, Russian Academy of Sciences, Pushchino, Moscow Region, 142290, Russia.
Biochemistry (Mosc). 2021 Jul;86(7):867-877. doi: 10.1134/S0006297921070075.
The involvement of carbonic anhydrases (CA) and CA activity in the functioning of photosystem II (PSII) has been studied for a long time and has been shown in many works. However, so far only for CAH3 from Chlamydomonas reinhardtii there is evidence for its association with the donor side of PSII, where the CA activity of CAH3 can influence the functioning of the water-oxidizing complex (WOC). Our results suggest that CAH3 is also involved in the organization of the native structure of WOC independently of its CA activity. It was shown that in PSII preparations from wild type (WT) the high O2-evolving activity of WOC was observed up to 100 mM NaCl in the medium and practically did not decrease with increasing incubation time with NaCl. At the same time, the WOC function in PSII preparations from CAH3-deficient mutant cia3 is significantly inhibited already at NaCl concentrations above 35 mM, reaching 50% at 100 mM NaCl and increased incubation time. It is suggested that the absence of CAH3 in PSII from cia3 causes disruption of the native structure of WOC, allowing more pronounced conformational changes of its proteins and, consequently, suppression of the WOC active center function, when the ionic strength of the medium is increased. The results of Western blot analysis indicate a more difficult removal of PsbP protein from PSII of cia3 at higher NaCl concentrations, apparently due to the changes in the intermolecular interactions between proteins of WOC in the absence of CAH3. At the same time, the values of the maximum quantum yield of PSII did not practically differ between preparations from WT and cia3, indicating no effect of CAH3 on the photoinduced electron transfer in the reaction center of PSII. The obtained results indicate the involvement of the CAH3 protein in the native organization of the WOC and, as a consequence, in the stabilization of its functional state in PSII from C. reinhardtii.
碳酸酐酶(CA)及其活性在光系统 II(PSII)功能中的作用已经研究了很长时间,许多研究已经证实了这一点。然而,到目前为止,只有莱茵衣藻的 CAH3 有证据表明其与 PSII 的供体侧相关联,CAH3 的 CA 活性可以影响水氧化复合物(WOC)的功能。我们的结果表明,CAH3 还参与了 WOC 天然结构的组织,而与 CA 活性无关。结果表明,在野生型(WT)PSII 制剂中,观察到 WOC 的高 O2 释放活性在介质中高达 100 mM NaCl,并且随着 NaCl 孵育时间的增加而几乎没有降低。同时,在 CAH3 缺失突变体 cia3 的 PSII 制剂中,WOC 的功能在 NaCl 浓度高于 35 mM 时就受到显著抑制,在 100 mM NaCl 和延长孵育时间时达到 50%。这表明 cia3 的 PSII 中缺乏 CAH3 会破坏 WOC 的天然结构,允许其蛋白质发生更明显的构象变化,并且当介质的离子强度增加时,抑制 WOC 活性中心的功能。Western blot 分析的结果表明,在较高的 NaCl 浓度下,来自 cia3 的 PSbP 蛋白更难以从 PSII 中去除,这显然是由于在缺乏 CAH3 的情况下,WOC 中蛋白质之间的分子间相互作用发生了变化。同时,来自 WT 和 cia3 的制剂之间的 PSII 最大光量子产量值没有实质上的差异,这表明 CAH3 对 PSII 反应中心的光诱导电子转移没有影响。所得结果表明 CAH3 蛋白参与了 WOC 的天然组织,并且因此在莱茵衣藻的 PSII 中稳定了其功能状态。