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Modification of the zonal elution method for detection of transient protein-protein interactions involving ligand exchange.修改区域洗脱法检测涉及配体交换的瞬时蛋白-蛋白相互作用。
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本文引用的文献

1
Mutations targeting the C-terminal domain of FliG can disrupt motor assembly in the Na(+)-driven flagella of Vibrio alginolyticus.靶向 FliG C 端结构域的突变可破坏 Alginate 噬菌运动菌 Na(+)-驱动的鞭毛马达组装。
J Mol Biol. 2011 Nov 18;414(1):62-74. doi: 10.1016/j.jmb.2011.09.019. Epub 2011 Oct 1.
2
Sodium-driven motor of the polar flagellum in marine bacteria Vibrio.海洋细菌 Vibrio 中极性鞭毛的钠离子驱动马达。
Genes Cells. 2011 Oct;16(10):985-99. doi: 10.1111/j.1365-2443.2011.01545.x. Epub 2011 Sep 5.
3
Structure of the flagellar motor protein complex PomAB: implications for the torque-generating conformation.鞭毛马达蛋白复合物 PomAB 的结构:对产生扭矩构象的影响。
J Bacteriol. 2011 Aug;193(15):3863-70. doi: 10.1128/JB.05021-11. Epub 2011 Jun 3.
4
A conserved residue, PomB-F22, in the transmembrane segment of the flagellar stator complex, has a critical role in conducting ions and generating torque.一个保守的残基 PomB-F22,位于鞭毛定子复合物的跨膜片段中,在传导离子和产生扭矩方面起着关键作用。
Microbiology (Reading). 2011 Aug;157(Pt 8):2422-2432. doi: 10.1099/mic.0.048488-0. Epub 2011 Jun 2.
5
Characterization of the periplasmic region of PomB, a Na+-driven flagellar stator protein in Vibrio alginolyticus.描述 Alg 海生菌 PomB 的周质区,一种 Na+驱动的鞭毛定子蛋白。
J Bacteriol. 2011 Aug;193(15):3773-84. doi: 10.1128/JB.00113-11. Epub 2011 May 20.
6
Conversion of mono-polar to peritrichous flagellation in Vibrio alginolyticus.在 Algolyticus 弧菌中,由单极到周生鞭毛的转换。
Microbiol Immunol. 2011 Feb;55(2):76-83. doi: 10.1111/j.1348-0421.2010.00290.x.
7
Functional transfer of an essential aspartate for the ion-binding site in the stator proteins of the bacterial flagellar motor.细菌鞭毛马达定子蛋白离子结合位点必需天冬氨酸的功能转移。
J Mol Biol. 2010 Apr 2;397(3):689-96. doi: 10.1016/j.jmb.2010.01.050. Epub 2010 Feb 1.
8
Interaction between Na+ ion and carboxylates of the PomA-PomB stator unit studied by ATR-FTIR spectroscopy.ATR-FTIR 光谱研究 Na+ 离子与 PomA-PomB 定子单元羧酸根的相互作用。
Biochemistry. 2009 Dec 15;48(49):11699-705. doi: 10.1021/bi901517n.
9
Sodium-dependent dynamic assembly of membrane complexes in sodium-driven flagellar motors.钠驱动鞭毛马达中膜复合物的钠依赖性动态组装。
Mol Microbiol. 2009 Feb;71(4):825-35. doi: 10.1111/j.1365-2958.2008.06569.x. Epub 2008 Dec 18.
10
Two different stator systems drive a single polar flagellum in Shewanella oneidensis MR-1.两种不同的定子系统驱动希瓦氏菌MR-1中的单极鞭毛。
Mol Microbiol. 2009 Feb;71(4):836-50. doi: 10.1111/j.1365-2958.2008.06570.x. Epub 2008 Dec 22.

研究了在 Alg 运动菌中,Na(+)-驱动鞭毛运动器功能组装缺陷的 PomA 突变体的特性。

Characterization of PomA mutants defective in the functional assembly of the Na(+)-driven flagellar motor in Vibrio alginolyticus.

机构信息

Division of Biological Science, Graduate School of Science, Nagoya University, Chikusa-ku, Nagoya, Japan.

出版信息

J Bacteriol. 2012 Apr;194(8):1934-9. doi: 10.1128/JB.06552-11. Epub 2012 Feb 17.

DOI:10.1128/JB.06552-11
PMID:22343296
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3318489/
Abstract

The polar flagellar motor of Vibrio alginolyticus rotates using Na(+) influx through the stator, which is composed of 2 subunits, PomA and PomB. About a dozen stators dynamically assemble around the rotor, depending on the Na(+) concentration in the surrounding environment. The motor torque is generated by the interaction between the cytoplasmic domain of PomA and the C-terminal region of FliG, a component of the rotor. We had shown previously that mutations of FliG affected the stator assembly around the rotor, which suggested that the PomA-FliG interaction is required for the assembly. In this study, we examined the effects of various mutations mainly in the cytoplasmic domain of PomA on that assembly. All mutant stators examined, which resulted in the loss of motor function, assembled at a lower level than did the wild-type PomA. A His tag pulldown assay showed that some mutations in PomA reduced the PomA-PomB interaction, but other mutations did not. Next, we examined the ion conductivity of the mutants using a mutant stator that lacks the plug domain, PomA/PomB(ΔL)(Δ41-120), which impairs cell growth by overproduction, presumably because a large amount of Na(+) is conducted into the cells. Some PomA mutations suppressed this growth inhibition, suggesting that such mutations reduce Na(+) conductivity, so that the stators could not assemble around the rotor. Only the mutation H136Y did not impair the stator formation and ion conductivity through the stator. We speculate that this particular mutation may affect the PomA-FliG interaction and prevent activation of the stator assembly around the rotor.

摘要

海洋发光杆菌的极性鞭毛马达通过定子中的 Na(+)流入来旋转,定子由 2 个亚基 PomA 和 PomB 组成。根据周围环境中 Na(+)浓度的不同,大约有十几个定子动态组装在转子周围。马达的扭矩是由 PomA 的细胞质结构域与转子组件 FliG 的 C 端区域之间的相互作用产生的。我们之前曾表明,FliG 的突变会影响围绕转子的定子组装,这表明 PomA-FliG 相互作用是组装所必需的。在这项研究中,我们研究了主要位于 PomA 细胞质结构域中的各种突变对这种组装的影响。所有检查的突变定子,导致失去马达功能,组装水平低于野生型 PomA。His 标签下拉测定表明,PomA 中的一些突变降低了 PomA-PomB 相互作用,但其他突变没有。接下来,我们使用缺乏插塞结构域的突变定子 PomA/PomB(ΔL)(Δ41-120)来检查突变体的离子电导率,该突变体通过过量产生会损害细胞生长,推测是因为大量的 Na(+)被导入细胞。一些 PomA 突变抑制了这种生长抑制,这表明这些突变降低了 Na(+)电导率,因此定子不能围绕转子组装。只有突变 H136Y 没有损害定子的形成和通过定子的离子电导率。我们推测,这种特殊的突变可能会影响 PomA-FliG 相互作用并阻止定子在转子周围的组装。