School of Biological Science and Technology, University of Jinan, Jinan 250022, China.
School of Biological Science and Technology, University of Jinan, Jinan 250022, China; School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, China.
Plant Sci. 2024 Nov;348:112208. doi: 10.1016/j.plantsci.2024.112208. Epub 2024 Jul 31.
Chloroplast development underpins plant growth, by facilitating not only photosynthesis but also other essential biochemical processes. Nonetheless, the regulatory mechanisms and functional components of chloroplast development remain largely uncharacterized due to their complexity. In our study, we identified a plastid-targeted gene, ATYCO/RP8/CDB1, as a critical factor in early chloroplast development in Arabidopsis thaliana. YCO knock-out mutant (yco) exhibited a seedling-lethal, albino phenotype, resulting from dysfunctional chloroplasts lacking thylakoid membranes. Conversely, YCO knock-down mutants produced a chlorophyll-deficient cotyledon and normal leaves when supplemented with sucrose. Transcription analysis also revealed that YCO deficiency could be partially compensated by sucrose supplementation, and that YCO played different roles in the cotyledons and the true leaves. In YCO knock-down mutants, the transcript levels of plastid-encoded RNA polymerase (PEP)-dependent genes and nuclear-encoded photosynthetic genes, as well as the accumulation of photosynthetic proteins, were significantly reduced in the cotyledons. Moreover, the chlorophyll-deficient phenotype in YCO knock-down line can be effectively suppressed by inhibition of PSI cyclic electron transport activity, implying an interaction between YCO and PSI cyclic electron transport. Taken together, our findings de underscore the vital role of YCO in early chloroplast development and photosynthesis.
叶绿体发育是植物生长的基础,不仅促进光合作用,还促进其他重要的生化过程。然而,由于其复杂性,叶绿体发育的调控机制和功能组件在很大程度上仍未被阐明。在我们的研究中,我们鉴定了一个质体靶向基因 ATYCO/RP8/CDB1,它是拟南芥早期叶绿体发育的关键因素。YCO 敲除突变体(yco)表现出幼苗致死、白化表型,这是由于功能失调的叶绿体缺乏类囊体膜所致。相反,YCO 敲低突变体在补充蔗糖时产生叶绿素缺乏的子叶和正常叶片。转录分析还表明,蔗糖补充可以部分补偿 YCO 的缺乏,并且 YCO 在子叶和真叶中发挥不同的作用。在 YCO 敲低突变体中,质体编码 RNA 聚合酶(PEP)依赖性基因和核编码光合基因的转录本水平,以及光合蛋白的积累,在子叶中显著降低。此外,PSI 循环电子传递活性抑制可有效抑制 YCO 敲低系的叶绿素缺乏表型,表明 YCO 与 PSI 循环电子传递之间存在相互作用。总之,我们的研究结果强调了 YCO 在早期叶绿体发育和光合作用中的重要作用。