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大肠杆菌中化学感受器曲率分选的起源。

Origins of chemoreceptor curvature sorting in Escherichia coli.

机构信息

Biophysics Graduate Group and Department of Physics, University of California, Berkeley, California 94720, USA.

Bioengineering, Shriram Center for Bioengineering &Chemical Engineering, Stanford University, Stanford, California 94305, USA.

出版信息

Nat Commun. 2017 Mar 21;8:14838. doi: 10.1038/ncomms14838.

Abstract

Bacterial chemoreceptors organize into large clusters at the cell poles. Despite a wealth of structural and biochemical information on the system's components, it is not clear how chemoreceptor clusters are reliably targeted to the cell pole. Here, we quantify the curvature-dependent localization of chemoreceptors in live cells by artificially deforming growing cells of Escherichia coli in curved agar microchambers, and find that chemoreceptor cluster localization is highly sensitive to membrane curvature. Through analysis of multiple mutants, we conclude that curvature sensitivity is intrinsic to chemoreceptor trimers-of-dimers, and results from conformational entropy within the trimer-of-dimers geometry. We use the principles of the conformational entropy model to engineer curvature sensitivity into a series of multi-component synthetic protein complexes. When expressed in E. coli, the synthetic complexes form large polar clusters, and a complex with inverted geometry avoids the cell poles. This demonstrates the successful rational design of both polar and anti-polar clustering, and provides a synthetic platform on which to build new systems.

摘要

细菌化学感受器在细胞极处形成大的簇。尽管有大量关于该系统成分的结构和生化信息,但化学感受器簇如何可靠地靶向细胞极尚不清楚。在这里,我们通过在弯曲的琼脂微室中人工变形生长中的大肠杆菌细胞,定量测量了活细胞中化学感受器的曲率依赖性定位,发现化学感受器簇的定位对膜曲率非常敏感。通过对多个突变体的分析,我们得出结论,曲率敏感性是化学感受器三聚体二聚体的固有特性,源于三聚体二聚体几何形状内的构象熵。我们使用构象熵模型的原理将曲率敏感性设计到一系列多组分合成蛋白复合物中。当在大肠杆菌中表达时,合成复合物形成大的极性簇,而具有反转几何形状的复合物则避开细胞极。这证明了极性和反极性聚类的成功合理设计,并提供了一个可以构建新系统的合成平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01d0/5364426/cec968b1c8b4/ncomms14838-f1.jpg

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