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Prokaryotic 鞭毛丝的超级卷曲中的融合进化
Mark A B Kreutzberger1, Ravi R Sonani1, Junfeng Liu2
1Department of Biochemistry and Molecular Genetics, University of Virginia School of Medicine, Charlottesville, VA 22903, USA.
Cell
|September 3, 2022
概括
细菌和古老的鞭毛丝超级卷轴的运动性. 原子结构揭示了这些独特的纤维如何实现稳定的超级卷,这表明微生物运动的融合进化.
科学领域:
- 微生物学
- 结构生物学
- 生物物理
背景情况:
- 细菌和古生物中的鞭毛纤维对于运动是必不可少的.
- 在结构上,古老的鞭毛丝与细菌的鞭毛丝不同,类似于细菌类型IV pili.
- 由于缺乏结构数据,这些纤维在扭力下形成稳定的超线圈的机制仍然不清楚.
研究的目的:
- 阐明超卷细菌和古生物鞭毛丝的原子结构.
- 了解 prokaryotic 移动性结构中的超级线圈的结构基础.
- 研究稳定的超螺旋几何形状的潜在融合进化.
主要方法:
- 使用冷电子显微镜 (cryo-EM) 来获得高分辨率结构.
- 对于细菌和古生物的鞭毛纤维构建和改进了原子模型.
- 进行了原纤维结构和原体间接口的分析.
主要成果:
- 超螺旋细菌鞭毛丝的原子结构显示了11种不同的原细菌丝形状和三种类型的互原体接口.
- 超绕的古老鞭毛细丝的原子结构显示了由10个原细丝组成的超绕几何形状,具有10种不同的构造.
- 在古老的鞭毛丝结构中发现了一种独特的protomer间不连续性.
结论:
- Cryo-EM提供了对鞭毛丝超的结构基础的原子层次见解.
- 尽管它们的功能相似,但细菌和古生物的鞭毛纤维中存在着不同的结构机制.
- 融合进化可能解释了稳定的超螺旋几何形状的发展,使微生物在生命的两个领域都能移动.
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