Storti Mattia, Puggioni Maria Paola, Segalla Anna, Morosinotto Tomas, Alboresi Alessandro
Dipartimento di Biologia, Università degli Studi di Padova, Padova, Italy.
J Exp Bot. 2020 Sep 19;71(18):5538-5548. doi: 10.1093/jxb/eraa274.
Alternative electron pathways contribute to regulation of photosynthetic light reactions to adjust to metabolic demands in dynamic environments. The chloroplast NADH dehydrogenase-like (NDH) complex mediates the cyclic electron transport pathway around PSI in different cyanobacteria, algae, and plant species, but it is not fully conserved in all photosynthetic organisms. In order to assess how the physiological role of this complex changed during plant evolution, we isolated Physcomitrella patens lines knocked out for the NDHM gene that encodes a subunit fundamental for the activity of the complex. ndhm knockout mosses indicated high PSI acceptor side limitation upon abrupt changes in illumination. In P. patens, pseudo-cyclic electron transport mediated by flavodiiron proteins (FLVs) was also shown to prevent PSI over-reduction in plants exposed to light fluctuations. flva ndhm double knockout mosses had altered photosynthetic performance and growth defects under fluctuating light compared with the wild type and single knockout mutants. The results showed that while the contribution of NDH to electron transport is minor compared with FLV, NDH still participates in modulating photosynthetic activity, and it is critical to avoid PSI photoinhibition, especially when FLVs are inactive. The functional overlap between NDH- and FLV-dependent electron transport supports PSI activity and prevents its photoinhibition under light variations.
交替电子途径有助于调节光合作用的光反应,以适应动态环境中的代谢需求。叶绿体NADH脱氢酶样(NDH)复合体在不同的蓝细菌、藻类和植物物种中介导围绕PSI的循环电子传递途径,但它在所有光合生物中并不完全保守。为了评估该复合体的生理作用在植物进化过程中是如何变化的,我们分离了小立碗藓中敲除了编码该复合体活性所必需亚基的NDHM基因的株系。ndhm基因敲除的苔藓在光照突然变化时表现出较高的PSI受体侧限制。在小立碗藓中,黄素二铁蛋白(FLV)介导的伪循环电子传递也被证明可以防止暴露于光波动下的植物中PSI过度还原。与野生型和单基因敲除突变体相比,flva ndhm双基因敲除的苔藓在波动光下具有改变的光合性能和生长缺陷。结果表明,虽然与FLV相比,NDH对电子传递的贡献较小,但NDH仍然参与调节光合活性,并且对于避免PSI光抑制至关重要,特别是当FLV无活性时。NDH依赖和FLV依赖的电子传递之间的功能重叠支持PSI活性,并防止其在光照变化下的光抑制。