Instituto de Bioquímica Vegetal y Fotosíntesis, cicCartuja, Universidad de Sevilla and CSIC, Seville, Spain.
Physiol Plant. 2021 Feb;171(2):277-290. doi: 10.1111/ppl.13290. Epub 2020 Dec 8.
We have investigated if the heterologous expression of a functional green alga plastocyanin in the diatom Phaeodactylum tricornutum can improve photosynthetic activity and cell growth. Previous in vitro assays showed that a single-mutant of the plastocyanin from the green algae Chlamydomonas reinhardtii is effective in reducing P. tricornutum photosystem I. In this study, in vivo assays with P. tricornutum strains expressing this plastocyanin indicate that even the relatively low intracellular concentrations of holo-plastocyanin detected (≈4 μM) are enough to promote an increased growth (up to 60%) under iron-deficient conditions as compared with the WT strain, measured as higher cell densities, content in pigments and active photosystem I, global photosynthetic rates per cell, and even cell volume. In addition, the presence of plastocyanin as an additional photosynthetic electron carrier seems to decrease the over-reduction of the plastoquinone pool. Consequently, it promotes an improvement in the maximum quantum yield of both photosystem II and I, together with a decrease in the acceptor side photoinhibition of photosystem II-also associated to a reduced oxidative stress-a decrease in the peroxidation of membrane lipids in the choroplast, and a lower degree of limitation on the donor side of photosystem I. Thus the heterologous plastocyanin appears to act as a functional electron carrier, alternative to the native cytochrome c , under iron-limiting conditions.
我们研究了在硅藻三角褐指藻中异源表达功能型绿藻质体蓝蛋白是否能提高光合作用活性和细胞生长。先前的体外实验表明,来自绿藻莱茵衣藻的质体蓝蛋白的单一突变体可有效还原三角褐指藻的光系统 I。在这项研究中,用表达这种质体蓝蛋白的三角褐指藻菌株进行的体内实验表明,即使检测到的全质体蓝蛋白的细胞内浓度相对较低(≈4 μM),也足以在缺铁条件下促进生长(最高可达 60%),与野生型菌株相比,细胞密度更高、色素含量和活性光系统 I 更高、每个细胞的整体光合速率更高,甚至细胞体积也更大。此外,质体蓝蛋白作为额外的光合电子载体的存在似乎减少了质醌池的过度还原。因此,它提高了光系统 II 和 I 的最大量子产量,同时降低了光系统 II 受体侧的光抑制——也与氧化应激减少有关——减少了叶绿体中膜脂的过氧化,以及对光系统 I 供体侧的限制程度降低。因此,在缺铁条件下,异源质体蓝蛋白似乎作为一种功能性电子载体,替代了天然细胞色素 c。