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新月柄杆菌 GcrA 转录激活的结构机制。

The structural mechanism for transcription activation by Caulobacter crescentus GcrA.

机构信息

Key Laboratory of Synthetic Biology, Center for Excellence in Molecular Plant Sciences, Shanghai Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai 200032, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Nucleic Acids Res. 2023 Feb 28;51(4):1960-1970. doi: 10.1093/nar/gkad016.

Abstract

Canonical bacterial transcription activators bind to their cognate cis elements at the upstream of transcription start site (TSS) in a form of dimer. Caulobacter crescentus GcrA, a non-canonical transcription activator, can activate transcription from promoters harboring its cis element at the upstream or downstream of TSS in a form of monomer. We determined two cryo-EM structures of C. crescentus GcrA-bound transcription activation complexes, GcrA TACU and GcrA TACD, which comprise GcrA, RNAP, σ70 and promoter DNA with GcrA cis elements at either the upstream or downstream of TSS at 3.6 and 3.8 Å, respectively. In the GcrA-TACU structure, GcrA makes bipartite interactions with both σ70 domain 2 (σ702) and its cis element, while in the GcrA-TACD structure, GcrA retains interaction with σ702 but loses the interaction with its cis element. Our results suggest that GcrA likely forms a functionally specialized GcrA-RNAP-σA holoenzyme, in which GcrA first locates its cis element and then facilitates RNAP to load on core promoter at its proximal region. The sequence-specific interaction of GcrA and DNA is disrupted either at the stage of RPo formation or promoter escape depending on the location of GcrA cis elements relative to TSS.

摘要

经典的细菌转录激活因子以二聚体的形式结合到转录起始位点 (TSS) 上游的同源顺式元件上。新月柄杆菌非经典转录激活因子 GcrA 可以以单体的形式在 TSS 的上游或下游的启动子上激活含有其顺式元件的转录。我们确定了两个新月柄杆菌 GcrA 结合转录激活复合物的低温电镜结构,GcrA TACU 和 GcrA TACD,它们分别包含 GcrA、RNAP、σ70 和带有 GcrA 顺式元件的启动子 DNA,GcrA 顺式元件位于 TSS 的上游或下游,分辨率分别为 3.6Å 和 3.8Å。在 GcrA-TACU 结构中,GcrA 与 σ70 结构域 2(σ702)及其顺式元件形成二部分相互作用,而在 GcrA-TACD 结构中,GcrA 保留与 σ702 的相互作用,但失去与顺式元件的相互作用。我们的结果表明,GcrA 可能形成一种功能特化的 GcrA-RNAP-σA 全酶,其中 GcrA 首先定位其顺式元件,然后促进 RNAP 在其近端核心启动子上加载。GcrA 和 DNA 的序列特异性相互作用要么在 RPo 形成阶段被破坏,要么在启动子逃避阶段被破坏,这取决于 GcrA 顺式元件相对于 TSS 的位置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e02/9976885/db5e621959e0/gkad016fig1.jpg

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