National R&D Center for Citrus Preservation, Key Laboratory of Horticultural Plant Biology, Ministry of Education, Huazhong Agricultural University, Wuhan 430070, China.
Max-Planck-Institut für Molekulare Pflanzenphysiologie, Potsdam-Golm 14476, Germany.
Plant Cell. 2022 Jan 20;34(1):557-578. doi: 10.1093/plcell/koab251.
Dark-induced senescence provokes profound metabolic shifts to recycle nutrients and to guarantee plant survival. To date, research on these processes has largely focused on characterizing mutants deficient in individual pathways. Here, we adopted a time-resolved genome-wide association-based approach to characterize dark-induced senescence by evaluating the photochemical efficiency and content of primary and lipid metabolites at the beginning, or after 3 or 6 days in darkness. We discovered six patterns of metabolic shifts and identified 215 associations with 81 candidate genes being involved in this process. Among these associations, we validated the roles of four genes associated with glycine, galactinol, threonine, and ornithine levels. We also demonstrated the function of threonine and galactinol catabolism during dark-induced senescence. Intriguingly, we determined that the association between tyrosine contents and TYROSINE AMINOTRANSFERASE 1 influences enzyme activity of the encoded protein and transcriptional activity of the gene under normal and dark conditions, respectively. Moreover, the single-nucleotide polymorphisms affecting the expression of THREONINE ALDOLASE 1 and the amino acid transporter gene AVT1B, respectively, only underlie the variation in threonine and glycine levels in the dark. Taken together, these results allow us to present a very detailed model of the metabolic aspects of dark-induced senescence, as well as the process itself.
暗诱导衰老会引发深刻的代谢转变,以回收营养物质并保证植物的生存。迄今为止,对这些过程的研究主要集中在表征单个途径缺陷的突变体上。在这里,我们采用了一种基于时间分辨的全基因组关联的方法,通过评估光化学效率和初级代谢物和脂质代谢物的含量,在黑暗开始时、3 天后或 6 天后,来描述暗诱导衰老。我们发现了六种代谢转变模式,并鉴定了 215 个与 81 个候选基因参与该过程的关联。在这些关联中,我们验证了与甘氨酸、半乳糖醇、苏氨酸和鸟氨酸水平相关的四个基因的作用。我们还证明了苏氨酸和半乳糖醇分解代谢在暗诱导衰老中的作用。有趣的是,我们确定了酪氨酸含量与酪氨酸氨基转移酶 1 之间的关联,分别影响编码蛋白的酶活性和基因在正常和黑暗条件下的转录活性。此外,分别影响苏氨酸醛缩酶 1 和氨基酸转运体基因 AVT1B 表达的单核苷酸多态性,仅在黑暗条件下导致苏氨酸和甘氨酸水平的变化。总之,这些结果使我们能够呈现暗诱导衰老的代谢方面以及该过程本身的非常详细的模型。