Sequence of the SARS-CoV-2 Spike Transmembrane Domain Encodes Conformational Dynamics.

IF 2.9 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry B Pub Date : 2025-01-09 Epub Date: 2024-12-18 DOI:10.1021/acs.jpcb.4c05270
Sahil Lall, Padmanabhan Balaram, M K Mathew, Shachi Gosavi
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Abstract

The homotrimeric SARS-CoV-2 spike protein enables viral infection by undergoing a large conformational transition, which facilitates the fusion of the viral envelope with the host cell membrane. The spike protein is anchored to the SARS-CoV-2 envelope by its transmembrane domain (TMD), composed of three TM helices, each contributed by one of the protomers of spike. Although the TMD is known to be important for viral fusion, whether it is a passive anchor of the spike or actively promotes fusion remains unknown. Specifically, it is unclear if the TMD and its dynamics facilitate the prefusion to postfusion conformational transition of the spike. Here, we computationally study the dynamics and self-assembly of the SARS-CoV-2 spike TMD in homogeneous POPC and cholesterol containing membranes. Atomistic simulations of a long TM helix-containing protomer segment show that the membrane-embedded segment bobs, tilts and gains and loses helicity, locally thinning the membrane. Coarse-grained multimerization simulations using representative TM helix structures from the atomistic simulations exhibit diverse trimer populations whose architecture depends on the structure of the TM helix protomer. While a symmetric conformation reflects the symmetry of the resting spike, an asymmetric TMD conformation could promote membrane fusion through the stabilization of a fusion intermediate. Together, our simulations demonstrate that the sequence and length of the SARS-CoV-2 spike TM segment make it inherently dynamic, that trimerization does not abrogate these dynamics and that the various observed TMD conformations may enable viral fusion.

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SARS-CoV-2刺突跨膜结构域序列编码构象动力学
同源三聚体SARS-CoV-2刺突蛋白通过大的构象转变使病毒感染,从而促进病毒包膜与宿主细胞膜的融合。刺突蛋白通过其跨膜结构域(TMD)锚定在SARS-CoV-2包膜上,该结构域由三个TM螺旋组成,每个螺旋由刺突的一个原聚体贡献。虽然已知TMD对病毒融合很重要,但它是刺突的被动锚点还是主动促进融合仍然未知。具体来说,尚不清楚TMD及其动力学是否促进了尖峰的预融合到融合后的构象转变。在这里,我们计算研究了SARS-CoV-2刺突TMD在均相POPC和含胆固醇膜中的动力学和自组装。对含有长螺旋的TM原聚体片段的原子模拟表明,嵌入膜的片段摆动、倾斜、获得和失去螺旋度,使膜局部变薄。使用来自原子模拟的具有代表性的TM螺旋结构的粗粒度多聚模拟显示出不同的三聚体种群,其结构取决于TM螺旋原聚体的结构。虽然对称构象反映了静息峰的对称性,但不对称的TMD构象可以通过稳定融合中间体来促进膜融合。总之,我们的模拟表明,SARS-CoV-2刺突TM片段的序列和长度使其具有内在的动态性,三聚化不会取消这些动力学,并且观察到的各种TMD构象可能使病毒融合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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