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基因表达噪声的全基因组分析由. 的转录调控引起

Genome-Wide Analysis of Gene Expression Noise Brought About by Transcriptional Regulation in .

机构信息

Hefei National Research Center for Physical Sciences at the Microscale; Department of Polymer Science and Engineering, University of Science and Technology of Chinagrid.59053.3a, Hefei, China.

Department of Chemical Physics, University of Science and Technology of Chinagrid.59053.3a, Hefei, China.

出版信息

mSystems. 2022 Dec 20;7(6):e0096322. doi: 10.1128/msystems.00963-22. Epub 2022 Nov 15.

Abstract

The part of expression noise that is brought about by transcriptional regulation (represented here as NTR) is an important criterion for estimating the regulatory mode of a gene. However, characterization of NTR is an under-explored area, and there is little knowledge regarding the genome-wide NTR in the model pathogen Pseudomonas aeruginosa. Here, with a library of dual-color transcriptional reporters, we estimated the NTR for over 90% of the promoters in P. aeruginosa. Most promoters exhibit low NTR, while 42 and 115 promoters with high NTR were screened out in the exponential and the stationary growth phases, respectively. Specifically, a rearrangement of NTR was found in promoters involved in amino acid metabolism when bacteria enter the exponential phase. In addition, during the stationary phase, high NTR was found in a wide range of iron-related promoters involving siderophore synthesis and heme uptake, ExsA-regulated promoters involving bacterial virulence, and FleQ-regulated promoters involving biofilm development. We also found a large-scale negative dependence of transcriptional regulation between high-NTR promoters belonging to different functional categories. Our findings offer a global view of transcriptional heterogeneity in P. aeruginosa. The phenotypic diversity of Pseudomonas aeruginosa is frequently observed in research, suggesting that bacteria adopt strategies such as bet-hedging to survive ever-changing environments. Gene expression noise (GEN) is the major source of phenotypic diversity. Large GEN from transcriptional regulation (represented as NTR) represent an evolutionary necessity to maintain the copy number diversity of certain proteins in the population. Here, we provide a system-wide view of NTR in P. aeruginosa under nutrient-rich and stressed conditions. High NTR was found in genes involved in flagella biosynthesis and amino acid metabolism under both conditions. Specially, iron acquisition genes exhibited high NTR in the stressed condition, suggesting a great diversity of iron physiology in P. aeruginosa. We further revealed a global negative dependence of transcriptional regulation between those high-NTR genes under the stressed condition, suggesting a mutually exclusive relationship between different bacterial survival strategies.

摘要

表达噪声的一部分是由转录调控引起的(这里表示为 NTR),这是估计基因调控模式的一个重要标准。然而,NTR 的特征描述是一个探索不足的领域,关于模式病原体铜绿假单胞菌的全基因组 NTR 知之甚少。在这里,我们使用双色转录报告基因文库,估计了铜绿假单胞菌超过 90%的启动子的 NTR。大多数启动子表现出低 NTR,而在指数和静止生长阶段分别筛选出 42 和 115 个具有高 NTR 的启动子。具体来说,当细菌进入指数生长期时,发现参与氨基酸代谢的启动子的 NTR 发生了重排。此外,在静止期,涉及铁相关的启动子(包括铁载体合成和血红素摄取)、涉及细菌毒力的 ExsA 调节的启动子和涉及生物膜发育的 FleQ 调节的启动子中发现了广泛的高 NTR。我们还发现属于不同功能类别的高 NTR 启动子之间存在大规模的转录调控负相关。我们的研究结果提供了铜绿假单胞菌转录异质性的全局视图。铜绿假单胞菌的表型多样性在研究中经常被观察到,这表明细菌采用了贝叶斯博弈等策略来适应不断变化的环境。基因表达噪声(GEN)是表型多样性的主要来源。来自转录调控的大 GEN(表示为 NTR)代表了在种群中维持某些蛋白质拷贝数多样性的进化必要性。在这里,我们在营养丰富和应激条件下提供了铜绿假单胞菌 NTR 的系统视图。在这两种条件下,发现参与鞭毛生物合成和氨基酸代谢的基因的 NTR 较高。特别地,在应激条件下,铁获取基因表现出高 NTR,表明铜绿假单胞菌的铁生理学具有很大的多样性。我们进一步揭示了在应激条件下这些高 NTR 基因之间转录调控的全局负依赖关系,这表明不同细菌生存策略之间存在相互排斥的关系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f99/9765613/316af34fdb5a/msystems.00963-22-f001.jpg

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