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基因调控与转录组学。

Gene Regulation and Transcriptomics.

机构信息

Division of Biological Sciences, University of Montana, Missoula, MT 59812, USA.

Department of Biology, University of Colorado, Colorado Springs, CO 80918, USA.

出版信息

Curr Issues Mol Biol. 2021;42:223-266. doi: 10.21775/cimb.042.223. Epub 2020 Dec 10.

Abstract

() , along with closely related species, is the etiologic agent of Lyme disease. The spirochete subsists in an enzootic cycle that encompasses acquisition from a vertebrate host to a tick vector and transmission from a tick vector to a vertebrate host. To adapt to its environment and persist in each phase of its enzootic cycle, wields three systems to regulate the expression of genes: the RpoN-RpoS alternative sigma factor cascade, the Hk1/Rrp1 two-component system and its product c-di-GMP, and the stringent response mediated by Rel and DksA. These regulatory systems respond to enzootic phase-specific signals and are controlled or fine- tuned by transcription factors, including BosR and BadR, as well as small RNAs, including DsrABb and Bb6S RNA. In addition, several other DNA-binding and RNA-binding proteins have been identified, although their functions have not all been defined. Global changes in gene expression revealed by high-throughput transcriptomic studies have elucidated various regulons, albeit technical obstacles have mostly limited this experimental approach to cultivated spirochetes. Regardless, we know that the spirochete, which carries a relatively small genome, regulates the expression of a considerable number of genes required for the transitions between the tick vector and the vertebrate host as well as the adaptation to each.

摘要

() 与密切相关的物种一起,是莱姆病的病原体。旋毛虫存在于一个包括从脊椎动物宿主到蜱媒介的获得、从蜱媒介到脊椎动物宿主的传播的地方性循环中。为了适应环境并在其地方性循环的每个阶段持续存在,旋毛虫利用三种系统来调节基因的表达:RpoN-RpoS 替代 sigma 因子级联、Hk1/Rrp1 双组分系统及其产物 c-di-GMP,以及由 Rel 和 DksA 介导的严格反应。这些调节系统对地方性阶段特异性信号作出反应,并受到转录因子(包括 BosR 和 BadR)以及小 RNA(包括 DsrABb 和 Bb6S RNA)的控制或微调。此外,已经鉴定出几种其他 DNA 结合和 RNA 结合蛋白,尽管它们的功能尚未全部定义。高通量转录组学研究揭示的基因表达全局变化阐明了各种调控子,尽管技术障碍大多将这种实验方法限制在培养的旋毛虫上。尽管如此,我们知道携带相对较小基因组的旋毛虫调节了大量基因的表达,这些基因对于在蜱媒介和脊椎动物宿主之间的转换以及对每个宿主的适应是必需的。

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