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AbiEi 通过带正电荷的表面与 IV 型 abiE 毒素-抗毒素操纵子协同结合,导致 DNA 弯曲和负自动调节。

AbiEi Binds Cooperatively to the Type IV abiE Toxin-Antitoxin Operator Via a Positively-Charged Surface and Causes DNA Bending and Negative Autoregulation.

机构信息

Department of Microbiology and Immunology, University of Otago, PO Box 56, Dunedin 9054, New Zealand.

Department of Biosciences, Durham University, South Road, Durham DH1 3LE, UK.

出版信息

J Mol Biol. 2018 Apr 13;430(8):1141-1156. doi: 10.1016/j.jmb.2018.02.022. Epub 2018 Mar 6.

DOI:10.1016/j.jmb.2018.02.022
PMID:29518409
Abstract

Bacteria resist phage infection using multiple strategies, including CRISPR-Cas and abortive infection (Abi) systems. Abi systems provide population-level protection from phage predation, via "altruistic" cell suicide. It has recently been shown that some Abi systems function via a toxin-antitoxin mechanism, such as the widespread AbiE family. The Streptococcus agalactiae AbiE system consists of a bicistronic operon encoding the AbiEi antitoxin and AbiEii toxin, which function as a Type IV toxin-antitoxin system. Here we examine the AbiEi antitoxin, which belongs to a large family of transcriptional regulators with a conserved N-terminal winged helix-turn-helix domain. This winged helix-turn-helix is essential for transcriptional repression of the abiE operon. The function of the AbiEi C-terminal domain is poorly characterized, but it contributes to transcriptional repression and is sufficient for toxin neutralization. We demonstrate that a conserved charged surface on one face of the C-terminal domain assists sequence-specific DNA binding and negative autoregulation, without influencing antitoxicity. Furthermore, AbiEi binds cooperatively to two inverted repeats within the abiE promoter and bends the DNA by 72°. These findings demonstrate that the mechanism of DNA binding by the widespread family of AbiEi antitoxins and transcriptional regulators can contribute to negative autoregulation.

摘要

细菌使用多种策略来抵抗噬菌体感染,包括 CRISPR-Cas 和流产感染(Abi)系统。Abi 系统通过“利他”细胞自杀为群体提供免受噬菌体捕食的保护。最近已经表明,一些 Abi 系统通过毒素-抗毒素机制发挥作用,例如广泛存在的 AbiE 家族。酿脓链球菌 AbiE 系统由一个双顺反子操纵子编码,该操纵子编码 AbiEi 抗毒素和 AbiEii 毒素,作为一种 IV 型毒素-抗毒素系统发挥作用。在这里,我们研究了 AbiEi 抗毒素,它属于一个具有保守 N 端翼状螺旋-转角-螺旋结构域的转录调节因子大家族。该翼状螺旋-转角-螺旋对于 abiE 操纵子的转录抑制是必需的。AbiEi C 端结构域的功能尚未得到很好的描述,但它有助于转录抑制,并且足以中和毒素。我们证明 C 端结构域的一个保守带电表面有助于序列特异性 DNA 结合和负自调控,而不影响抗毒性。此外,AbiEi 与 abiE 启动子内的两个反向重复序列协同结合,并将 DNA 弯曲 72°。这些发现表明,广泛存在的 AbiEi 抗毒素和转录调节因子家族的 DNA 结合机制可以有助于负自调控。

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