State Key Laboratory of Food Science and Technology, Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu 214122, China.
College of Bioscience and Biotechnology, Yangzhou University, 88 Daxue South Road, Yangzhou, Jiangsu 225009, China.
FEMS Yeast Res. 2019 Jun 1;19(4). doi: 10.1093/femsyr/foz036.
Candida glabrata is a major cause of candidiasis and the second most frequent opportunistic yeast pathogen. Its infectious and antifungal mechanisms are globally regulated by the transcription systems of pathogenic fungi. In this study, we reconstructed the genome-scale transcriptional regulatory network (TRN) of C. glabrata, consisting of 6634 interactive relationships between 145 transcription factors and 3230 target genes, based on genomic and transcriptomic data. The C. glabrata TRN was found to have a typical topological structure and significant network cohesiveness. Moreover, this network could be functionally divided into several sub-networks, including networks involving carbon, nitrogen, growth-associated metabolic profiles, stress response to acidity, hyperosmosis, peroxidation, hypoxia and virulence. Furthermore, by integrating the genome-scale metabolic model of C. glabrata, six essential metabolites and eight related enzymes were systematically selected as drug targets. Overall, elucidation of the genome-scale TRN of C. glabrata has expanded our knowledge of the contents and structures of microbial regulatory networks and improved our understanding of the regulatory behaviors of growth, metabolism and gene expression programs in response to environmental stimuli.
光滑念珠菌是念珠菌病的主要病因,也是第二大常见的机会性酵母病原体。其感染和抗真菌机制在全球范围内受到致病真菌转录系统的调节。在这项研究中,我们基于基因组和转录组数据,重建了光滑念珠菌的基因组规模转录调控网络(TRN),其中包含 145 个转录因子和 3230 个靶基因之间的 6634 个相互作用关系。我们发现光滑念珠菌的 TRN 具有典型的拓扑结构和显著的网络内聚性。此外,该网络可以在功能上分为几个子网,包括涉及碳、氮、生长相关代谢谱、对酸度、高渗、过氧化、缺氧和毒力的应激反应的网络。此外,通过整合光滑念珠菌的基因组规模代谢模型,我们系统地选择了六种必需代谢物和八种相关酶作为药物靶点。总的来说,阐明光滑念珠菌的基因组规模 TRN 扩展了我们对微生物调控网络的内容和结构的认识,并提高了我们对环境刺激下生长、代谢和基因表达程序的调控行为的理解。