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Bdellovibrio bacteriovorus 鞭毛帽蛋白 FliD 的晶体结构。

Crystal structure of the flagellar cap protein FliD from Bdellovibrio bacteriovorus.

机构信息

Division of Biomedical Convergence, College of Biomedical Science, Kangwon National University, Chuncheon, 24341, Republic of Korea.

Division of Biomedical Convergence, College of Biomedical Science, Kangwon National University, Chuncheon, 24341, Republic of Korea.

出版信息

Biochem Biophys Res Commun. 2019 Nov 12;519(3):652-658. doi: 10.1016/j.bbrc.2019.09.024. Epub 2019 Sep 18.

DOI:10.1016/j.bbrc.2019.09.024
PMID:31542231
Abstract

Bdellovibrio bacteriovorus is a predator bacterial species of the Deltaproteobacteria class that requires flagellum-mediated motility to initiate the parasitization of other gram-negative bacteria. The flagellum is capped by FliD, which polymerizes flagellin into a flagellar filament. FliD has been reported to function as a species-specific oligomer, such as a tetramer, a pentamer, or a hexamer, in members of the Gammaproteobacteria class. However, the oligomeric state and structural features of FliD from bacterial species outside the Gammaproteobacteria class are unknown. Based on structural and biochemical analyses, we report here that B. bacteriovorus FliD (bbFliD) forms a tetramer. bbFliD tetramerizes in a circular head-to-tail arrangement by inserting the D2 domain of one subunit into the concave surface of the second subunit generated between the D2 and D3 domains as observed in Serratia marcescens FliD. However, bbFliD adopts a more compact and flat oligomeric structure, which exhibits a more extended tetramerization interface flanked by two additional surfaces due to different intersubunit and interdomain organizations as well as an elongated loop. In conclusion, FliD from B. bacteriovorus, which belongs to the Deltaproteobacteria class, also produces a tetramer similar to FliD from Gammaproteobacterial species but adopts a unique species-specific oligomeric structure.

摘要

蛭弧菌是一种噬菌的δ变形菌,需要通过鞭毛介导的运动来启动对其他革兰氏阴性菌的寄生。鞭毛由 FliD 帽化,FliD 将菌毛聚合成长鞭毛丝。据报道,FliD 在γ变形菌门成员中作为一种种特异性寡聚体发挥作用,如四聚体、五聚体或六聚体。然而,γ变形菌门以外的细菌种的 FliD 的寡聚状态和结构特征尚不清楚。基于结构和生化分析,我们在此报告 B. bacteriovorus FliD(bbFliD)形成四聚体。bbFliD 通过将一个亚基的 D2 结构域插入第二个亚基的 D2 和 D3 结构域之间形成的凹面中,以环形的头到尾方式四聚化,如观察到的粘质沙雷氏菌 FliD 中那样。然而,bbFliD 采用更紧凑和平坦的寡聚体结构,由于不同的亚基间和结构域间组织以及伸长的环,其展示了更扩展的四聚化界面,并由两个额外的表面环绕。总之,属于δ变形菌门的蛭弧菌的 FliD 也产生类似于γ变形菌门种的 FliD 的四聚体,但采用独特的种特异性寡聚体结构。

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