Institute of Plant Biology and Biotechnology, University of Münster, Münster 48143, Germany.
Faculty of Fisheries, University of Agriculture and Forestry, Hue University, Hue 530000, Vietnam.
Plant Physiol. 2022 May 3;189(1):329-343. doi: 10.1093/plphys/kiac055.
Linear electron flow (LEF) and cyclic electron flow (CEF) compete for light-driven electrons transferred from the acceptor side of photosystem I (PSI). Under anoxic conditions, such highly reducing electrons also could be used for hydrogen (H2) production via electron transfer between ferredoxin and hydrogenase in the green alga Chlamydomonas reinhardtii. Partitioning between LEF and CEF is regulated through PROTON-GRADIENT REGULATION5 (PGR5). There is evidence that partitioning of electrons also could be mediated via PSI remodeling processes. This plasticity is linked to the dynamics of PSI-associated light-harvesting proteins (LHCAs) LHCA2 and LHCA9. These two unique light-harvesting proteins are distinct from all other LHCAs because they are loosely bound at the PSAL pole. Here, we investigated photosynthetic electron transfer and H2 production in single, double, and triple mutants deficient in PGR5, LHCA2, and LHCA9. Our data indicate that lhca2 and lhca9 mutants are efficient in photosynthetic electron transfer, that LHCA2 impacts the pgr5 phenotype, and that pgr5/lhca2 is a potent H2 photo-producer. In addition, pgr5/lhca2 and pgr5/lhca9 mutants displayed substantially different H2 photo-production kinetics. This indicates that the absence of LHCA2 or LHCA9 impacts H2 photo-production independently, despite both being attached at the PSAL pole, pointing to distinct regulatory capacities.
线性电子流 (LEF) 和循环电子流 (CEF) 竞争从光系统 I (PSI) 的受体侧转移的光驱动电子。在缺氧条件下,这些高度还原的电子也可以通过绿藻莱茵衣藻中铁氧还蛋白和氢化酶之间的电子转移用于氢气 (H2) 生产。LEF 和 CEF 之间的分配通过质子梯度调节 5 (PGR5) 调节。有证据表明,电子的分配也可以通过 PSI 重塑过程来介导。这种可塑性与与 PSI 相关的光捕获蛋白 (LHCA) LHCA2 和 LHCA9 的动力学有关。这两种独特的光捕获蛋白与所有其他 LHCAs 不同,因为它们在 PSAL 极松散地结合。在这里,我们研究了在 PGR5、LHCA2 和 LHCA9 缺失的单个、双个和三个突变体中的光合作用电子转移和 H2 产生。我们的数据表明,lhca2 和 lhca9 突变体在光合作用电子转移中效率很高,LHCA2 影响 pgr5 表型,并且 pgr5/lhca2 是一种有效的 H2 光产生体。此外,pgr5/lhca2 和 pgr5/lhca9 突变体显示出明显不同的 H2 光产生动力学。这表明尽管两者都附着在 PSAL 极上,但 LHCA2 或 LHCA9 的缺失独立地影响 H2 光产生,表明存在不同的调节能力。