Departamento de Bioquímica Vegetal y Biología Molecular, Universidad de Sevilla, 41012 Sevilla, Spain.
Instituto de Bioquímica Vegetal y Fotosíntesis (Universidad de Sevilla, Consejo Superior de Investigaciones Científicas), 41092 Sevilla, Spain.
Plant Physiol. 2024 Jul 31;195(4):2921-2936. doi: 10.1093/plphys/kiae101.
Thioredoxins play an essential role in regulating enzyme activity in response to environmental changes, especially in photosynthetic organisms. They are crucial for metabolic regulation in cyanobacteria, but the key redox-regulated central processes remain to be determined. Physiological, metabolic, and transcriptomic characterization of a conditional mutant of the essential Synechocystis sp. PCC 6803 thioredoxin trxA gene (STXA2) revealed that decreased TrxA levels alter cell morphology and induce a dormant-like state. Furthermore, TrxA depletion in the STXA2 strain inhibited protein synthesis and led to changes in amino acid pools and nitrogen/carbon reserve polymers, accompanied by oxidation of the elongation factor-Tu. Transcriptomic analysis of TrxA depletion in STXA2 revealed a robust transcriptional response. Downregulated genes formed a large cluster directly related to photosynthesis, ATP synthesis, and CO2 fixation. In contrast, upregulated genes were grouped into different clusters related to respiratory electron transport, carotenoid biosynthesis, amino acid metabolism, and protein degradation, among others. These findings highlight the complex regulatory mechanisms that govern cyanobacterial metabolism, where TrxA acts as a critical regulator that orchestrates the transition from anabolic to maintenance metabolism and regulates carbon and nitrogen balance.
硫氧还蛋白在调节酶活性以响应环境变化方面起着至关重要的作用,尤其是在光合生物中。它们对蓝藻的代谢调控至关重要,但关键的氧化还原调节中心过程仍有待确定。对必需的集胞藻 PCC 6803 硫氧还蛋白 trxA 基因(STXA2)条件突变体的生理学、代谢和转录组学特征进行了研究,结果表明 TrxA 水平的降低改变了细胞形态并诱导休眠样状态。此外,STXA2 菌株中 TrxA 的耗竭抑制了蛋白质合成,并导致氨基酸池和氮/碳储备聚合物发生变化,同时伸长因子-Tu 被氧化。STXA2 中 TrxA 耗竭的转录组分析显示出强烈的转录响应。下调的基因形成了一个与光合作用、ATP 合成和 CO2 固定直接相关的大簇。相比之下,上调的基因被分成不同的簇,与呼吸电子传递、类胡萝卜素生物合成、氨基酸代谢和蛋白质降解等有关。这些发现强调了控制蓝藻代谢的复杂调节机制,其中 TrxA 作为一个关键的调节剂,协调从合成代谢到维持代谢的转变,并调节碳氮平衡。