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Comparison of photosynthetic performances of marine picocyanobacteria with different configurations of the oxygen-evolving complex

机译:用氧化复合物的野生野生菌的光合作用性能比较

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摘要

The extrinsic PsbU and PsbV proteins are known to play a critical role in stabilizing the Mn4CaO5 cluster of the PSII oxygen-evolving complex (OEC). However, most isolates of the marine cyanobacterium Prochlorococcus naturally miss these proteins, even though they have kept the main OEC protein, PsbO. A structural homology model of the PSII of such a natural deletion mutant strain (P. marinus MED4) did not reveal any obvious compensation mechanism for this lack. To assess the physiological consequences of this unusual OEC, we compared oxygen evolution between Prochlorococcus strains missing psbU and psbV (PCC 9511 and SS120) and two marine strains possessing these genes (Prochlorococcus sp. MIT9313 and Synechococcus sp. WH7803). While the low light-adapted strain SS120 exhibited the lowest maximal O-2 evolution rates (P-max per divinyl-chlorophyll a, per cell or per photosystem II) of all four strains, the high light-adapted strain PCC 9511 displayed even higher P-max(Chl) and P-max(PSII) at high irradiance than Synechococcus sp. WH7803. Furthermore, thermoluminescence glow curves did not show any alteration in the B-band shape or peak position that could be related to the lack of these extrinsic proteins. This suggests an efficient functional adaptation of the OEC in these natural deletion mutants, in which PsbO alone is seemingly sufficient to ensure proper oxygen evolution. Our study also showed that Prochlorococcus strains exhibit negative net O-2 evolution rates at the low irradiances encountered in minimum oxygen zones, possibly explaining the very low O-2 concentrations measured in these environments, where Prochlorococcus is the dominant oxyphototroph.
机译:已知外部蛋白质和PSBV蛋白在稳定MN4CaO5簇(OEC)中发挥关键作用。然而,大多数海洋青杆菌的分离株,即使它们保持了主要的OEC蛋白,PSBO,也可以错过这些蛋白质。这种天然缺失突变体菌株(P. Marinus Med4)的PSII结构同源性模型没有揭示这种缺乏的任何明显的补偿机制。为了评估这种不寻常的OEC的生理结果,我们将缺血菌株缺失的PSBU和PSBV(PCC 9511和SS120)和具有这些基因的两个海洋菌株的氧气进化进行了比较(Prochlorococcus Sp.stemeChococcus sp.wh7803)。虽然低光适应的菌株SS120显示出所有四种菌株的最低最大O-2进化速率(P-MAX /每种氯氰酸叶绿素A,每个电池或每光系统II),但高光适应菌株PCC 9511甚至更高P-MAX(CHL)和P-MAX(PSII)比SyneChoccus SP高辐照度。 WH7803。此外,热致发光发光曲线没有显示出与缺乏这些外在蛋白质有关的B频带形状或峰值位置的任何改变。这表明在这些天然缺失突变体中的OEC的有效功能适应,其中单独的PSBO似乎足以确保适当的氧气进化。我们的研究还表明,促胰蛋白酶菌株在最小氧气区遇到的低埃米氏症处表现出负净O-2演化速率,可能解释在这些环境中测量的非常低的O-2浓度,其中促胰蛋白酶是占优势氧的辐射术。

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