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本文引用的文献

1
All-atom empirical potential for molecular modeling and dynamics studies of proteins.蛋白质分子建模和动力学研究的全原子经验势。
J Phys Chem B. 1998 Apr 30;102(18):3586-616. doi: 10.1021/jp973084f.
2
Membrane protein folding: how important are hydrogen bonds?膜蛋白折叠:氢键有多重要?
Curr Opin Struct Biol. 2011 Feb;21(1):42-9. doi: 10.1016/j.sbi.2010.10.003. Epub 2010 Nov 12.
3
Formation of salt bridges mediates internal dimerization of myosin VI medial tail domain.盐桥的形成介导肌球蛋白 VI 中尾部结构域的内部二聚化。
Structure. 2010 Nov 10;18(11):1443-9. doi: 10.1016/j.str.2010.09.011.
4
Experimental evidence that the membrane-spanning helix of PufX adopts a bent conformation that facilitates dimerisation of the Rhodobacter sphaeroides RC-LH1 complex through N-terminal interactions.实验证据表明,PufX的跨膜螺旋呈弯曲构象,通过N端相互作用促进球形红细菌RC-LH1复合体的二聚化。
Biochim Biophys Acta. 2011 Jan;1807(1):95-107. doi: 10.1016/j.bbabio.2010.10.003. Epub 2010 Oct 16.
5
Applications of the molecular dynamics flexible fitting method.分子动力学柔性拟合方法的应用。
J Struct Biol. 2011 Mar;173(3):420-7. doi: 10.1016/j.jsb.2010.09.024. Epub 2010 Oct 12.
6
Native architecture of the photosynthetic membrane from Rhodobacter veldkampii.源自荚膜红细菌光合膜的天然结构。
J Struct Biol. 2011 Jan;173(1):138-45. doi: 10.1016/j.jsb.2010.08.010. Epub 2010 Aug 24.
7
Dimerisation of the Rhodobacter sphaeroides RC-LH1 photosynthetic complex is not facilitated by a GxxxG motif in the PufX polypeptide.球形红杆菌RC-LH1光合复合体的二聚化并非由PufX多肽中的GxxxG基序所促进。
Biochim Biophys Acta. 2010 Nov;1797(11):1812-9. doi: 10.1016/j.bbabio.2010.07.007. Epub 2010 Jul 17.
8
Self-assembly of photosynthetic membranes.光合膜的自组装。
Chemphyschem. 2010 Apr 26;11(6):1154-9. doi: 10.1002/cphc.200900911.
9
Structural model and excitonic properties of the dimeric RC-LH1-PufX complex from Rhodobacter sphaeroides.球形红细菌二聚体RC-LH1-PufX复合物的结构模型和激子特性
Chem Phys. 2009 Feb 23;357(1-3):188-197. doi: 10.1016/j.chemphys.2009.01.003.
10
Intermonomer hydrogen bonds enhance GxxxG-driven dimerization of the BNIP3 transmembrane domain: roles for sequence context in helix-helix association in membranes.单体间氢键增强 BNIP3 跨膜结构域 GxxxG 驱动的二聚化:序列环境在膜中螺旋-螺旋缔合中的作用。
J Mol Biol. 2010 Mar 5;396(4):924-36. doi: 10.1016/j.jmb.2009.12.023. Epub 2009 Dec 21.

光合作用核心复合物的寡聚状态与跨膜螺旋的二聚化亲和力相关。

Oligomerization state of photosynthetic core complexes is correlated with the dimerization affinity of a transmembrane helix.

机构信息

Department of Physics and Beckman Institute for Advanced Science and Engineering, University of Illinois at Urbana-Champaign, 61801, United States.

出版信息

J Am Chem Soc. 2011 Sep 7;133(35):14071-81. doi: 10.1021/ja204869h. Epub 2011 Aug 12.

DOI:10.1021/ja204869h
PMID:21790140
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3168531/
Abstract

In the Rhodobacter (Rba.) species of photosynthetic purple bacteria, a single transmembrane α-helix, PufX, is found within the core complex, an essential photosynthetic macromolecular assembly that performs the absorption and the initial processing of light energy. Despite its structural simplicity, many unresolved questions surround PufX, the most important of which is its location within the photosynthetic core complex. One proposed placement of PufX is at the center of a core complex dimer, where two PufX helices associate in the membrane and form a homodimer. Inability for PufX of certain Rba. species to form a homodimer is thought to lead to monomeric core complexes. In the present study, we employ a combination of computational and experimental techniques to test the hypothesized homodimerization of PufX. We carry out a systematic investigation to measure the dimerization affinity of PufX from four Rba. species, Rba. blasticus , Rba. capsulatus , Rba. sphaeroides , and Rba. veldkampii , using a molecular dynamics-based free-energy method, as well as experimental TOXCAT assays. We found that the four PufX helices have substantially different dimerization affinities. Both computational and experimental techniques demonstrate that species with dimeric core complexes have PufX that can potentially form a homodimer, whereas the one species with monomeric core complexes has a PufX with little to no dimerization propensity. Our analysis of the helix-helix interface revealed a number of positions that may be important for PufX dimerization and the formation of a hydrogen-bond network between these GxxxG-containing helices. Our results suggest that the different oligomerization states of core complexes in various Rba. species can be attributed, among other factors, to the different propensity of its PufX helix to homodimerize.

摘要

在光合紫色细菌罗氏菌(Rba.)物种中,单个跨膜α-螺旋 PufX 存在于核心复合物中,核心复合物是执行光能吸收和初始处理的必需光合大分子组装体。尽管其结构简单,但围绕 PufX 仍存在许多未解之谜,其中最重要的是其在光合核心复合物中的位置。PufX 的一种可能位置是在核心复合物二聚体的中心,其中两个 PufX 螺旋在膜中相互关联并形成同源二聚体。某些罗氏菌(Rba.)物种的 PufX 无法形成同源二聚体被认为导致单体核心复合物的形成。在本研究中,我们采用计算和实验技术的组合来测试 PufX 假设的同源二聚化。我们使用基于分子动力学的自由能方法以及实验 TOXCAT 测定法,对来自四个罗氏菌(Rba.)物种的 PufX 的二聚化亲和力进行了系统研究,这四个物种分别是 Rba. blasticus 、Rba. capsulatus 、Rba. sphaeroides 和 Rba. veldkampii 。我们发现四个 PufX 螺旋具有显著不同的二聚化亲和力。计算和实验技术都表明,具有二聚体核心复合物的物种的 PufX 具有潜在的形成同源二聚体的能力,而具有单体核心复合物的一个物种的 PufX 几乎没有二聚化倾向。我们对螺旋-螺旋界面的分析揭示了一些可能对 PufX 二聚化和这些含有 GxxxG 螺旋之间形成氢键网络很重要的位置。我们的结果表明,不同罗氏菌(Rba.)物种核心复合物的不同寡聚化状态可以归因于其 PufX 螺旋形成同源二聚体的倾向不同等因素。