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铜绿假单胞菌外排基因调节剂 MexR 的关键生物物理特性受赋予多药耐药性的突变靶向。

Critical biophysical properties in the Pseudomonas aeruginosa efflux gene regulator MexR are targeted by mutations conferring multidrug resistance.

机构信息

Division of Molecular Biotechnology, Department of Physics, Chemistry and Biology, Linköping University, SE-58183 Linköping, Sweden.

出版信息

Protein Sci. 2010 Apr;19(4):680-92. doi: 10.1002/pro.343.

Abstract

The self-assembling MexA-MexB-OprM efflux pump system, encoded by the mexO operon, contributes to facile resistance of Pseudomonas aeruginosa by actively extruding multiple antimicrobials. MexR negatively regulates the mexO operon, comprising two adjacent MexR binding sites, and is as such highly targeted by mutations that confer multidrug resistance (MDR). To understand how MDR mutations impair MexR function, we studied MexR-wt as well as a selected set of MDR single mutants distant from the proposed DNA-binding helix. Although DNA affinity and MexA-MexB-OprM repression were both drastically impaired in the selected MexR-MDR mutants, MexR-wt bound its two binding sites in the mexO with high affinity as a dimer. In the MexR-MDR mutants, secondary structure content and oligomerization properties were very similar to MexR-wt despite their lack of DNA binding. Despite this, the MexR-MDR mutants showed highly varying stabilities compared with MexR-wt, suggesting disturbed critical interdomain contacts, because mutations in the DNA-binding domains affected the stability of the dimer region and vice versa. Furthermore, significant ANS binding to MexR-wt in both free and DNA-bound states, together with increased ANS binding in all studied mutants, suggest that a hydrophobic cavity in the dimer region already shown to be involved in regulatory binding is enlarged by MDR mutations. Taken together, we propose that the biophysical MexR properties that are targeted by MDR mutations-stability, domain interactions, and internal hydrophobic surfaces-are also critical for the regulation of MexR DNA binding.

摘要

MexA-MexB-OprM 自组装外排泵系统由 mexO 操纵子编码,通过主动外排多种抗生素,有助于铜绿假单胞菌的易耐药性。MexR 负调控 mexO 操纵子,包含两个相邻的 MexR 结合位点,因此极易受到赋予多药耐药性 (MDR) 的突变的靶向。为了了解 MDR 突变如何削弱 MexR 功能,我们研究了 MexR-wt 以及一组远离拟议 DNA 结合螺旋的选定 MDR 单突变体。尽管在选定的 MexR-MDR 突变体中,DNA 亲和力和 MexA-MexB-OprM 抑制都严重受损,但 MexR-wt 作为二聚体以高亲和力结合其 mexO 中的两个结合位点。在 MexR-MDR 突变体中,尽管缺乏 DNA 结合,但二级结构含量和寡聚化特性与 MexR-wt 非常相似。尽管如此,与 MexR-wt 相比,MexR-MDR 突变体表现出高度变化的稳定性,这表明关键的结构域间接触受到干扰,因为 DNA 结合结构域中的突变影响二聚体区域的稳定性,反之亦然。此外,在游离和 DNA 结合状态下 MexR-wt 与显著的 ANS 结合,以及所有研究突变体中增加的 ANS 结合,表明已经显示出参与调节结合的二聚体区域中的疏水腔被 MDR 突变扩大。总之,我们提出 MDR 突变靶向的 MexR 生物物理特性——稳定性、结构域相互作用和内部疏水表面——对于 MexR DNA 结合的调节也至关重要。

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