State Key Laboratory of Tree Genetics and Breeding, Northeast Forestry University, Hexing Road, Harbin 150040, China.
Qiqihar University, College of Life Sciences, Agriculture and Forestry, Qiqihar 161006 China.
Plant Sci. 2024 Oct;347:112182. doi: 10.1016/j.plantsci.2024.112182. Epub 2024 Jul 15.
Photosynthesis is the main source of energy for plants to sustain growth and development. Abnormalities in photosynthesis may cause defects in plant development. The elaborate regulatory mechanism underlying photosynthesis remains unclear. In this study, we identified a natural mutant from the Greater Khingan Mountains and named it as "1-T". This mutant had variegated leaf with irregular distribution of yellow and green. Chlorophyll contents and photosynthetic capacity of 1-T were significantly reduced compared to other poplar genotypes. Furthermore, a transcriptome analysis revealed 3269 differentially expressed genes (DEGs) in 1-T. The products of the DEGs were enriched in photosystem I and photosystem II. Three motifs were significantly enriched in the promoters of these DEGs. Yeast one-hybrid, Electrophoretic mobility shift assays and tobacco transient transformation experiments indicated that PdGLKs may bind to the three motifs. Further analysis indicated that these photosystem related genes were also significantly down-regulated in PdGLK-RNAi poplars. Therefore, we preliminarily concluded that the down-regulation of PdGLKs in 1-T may affect the expression of photosystem-related genes, resulting in abnormal photosystem development and thus affecting the growth and development. Our results provide new insights into the molecular mechanism of photosynthesis regulating plant growth.
光合作用是植物维持生长和发育的主要能量来源。光合作用的异常可能导致植物发育缺陷。光合作用的精细调控机制尚不清楚。在这项研究中,我们从大兴安岭地区鉴定出一个自然突变体,并将其命名为“1-T”。该突变体叶片斑驳,黄色和绿色分布不规则。与其他杨树基因型相比,1-T 的叶绿素含量和光合作用能力显著降低。此外,转录组分析显示 1-T 中有 3269 个差异表达基因(DEGs)。DEGs 的产物富集在光系统 I 和光系统 II 中。这些 DEGs 的启动子中显著富集了三个基序。酵母单杂交、电泳迁移率变动分析和烟草瞬时转化实验表明,PdGLKs 可能与这三个基序结合。进一步分析表明,这些与光合作用有关的基因在 PdGLK-RNAi 杨树上也显著下调。因此,我们初步得出结论,1-T 中 PdGLKs 的下调可能影响与光合作用相关基因的表达,导致异常的光合作用系统发育,从而影响生长和发育。我们的研究结果为光合作用调节植物生长的分子机制提供了新的见解。