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类异戊二烯醌和异戊烯醇在古菌膜中的位置和构象集合体,以及蛋白质-脂类的调节作用。

Location and Conformational Ensemble of Menaquinone and Menaquinol, and Protein-Lipid Modulations in Archaeal Membranes.

机构信息

Department of Biological Sciences, Lehigh University, Bethlehem, Pennsylvania 18015, United States.

Department of Chemistry and Biochemistry, Chemistry Program, University of Maryland, College Park, Maryland 20742, United States.

出版信息

J Phys Chem B. 2021 May 13;125(18):4714-4725. doi: 10.1021/acs.jpcb.1c01930. Epub 2021 Apr 29.

Abstract

Halobacteria, a type of archaea in high salt environments, have phytanyl ether phospholipid membranes containing up to 50% menaquinone. It is not understood why a high concentration of menaquinone is required and how it influences membrane properties. In this study, menaquinone-8 headgroup and torsion parameters of isoprenoid tail are optimized in the CHARMM36 force field. Molecular dynamics simulations of archaeal bilayers containing 0 to 50% menaquinone characterize the distribution of menaquinone-8 and menaquinol-8, as well as their effects on mechanical properties and permeability. Menaquinone-8 segregates to the membrane midplane above concentrations of 10%, favoring an extended conformation in a fluid state. Menaquinone-8 increases the bilayer thickness but does not significantly alter the area compressibility modulus and lipid chain ordering. Counterintuitively, menaquinone-8 increases water permeability because it lowers the free energy barrier in the midplane. The thickness increase due to menaquinone-8 may help halobacteria ameliorate hyper-osmotic pressure by increasing the membrane bending constant. Simulations of the archaeal membranes with archaerhodopsin-3 show that the local membrane surface adjusts to accommodate the thick membranes. Overall, this study delineates the biophysical landscape of 50% menaquinone in the archaeal bilayer, demonstrates the mixing of menaquinone and menaquinol, and provides atomistic details about menaquinone configurations.

摘要

嗜盐菌是一种生活在高盐环境中的古菌,其质膜含有多达 50%的植烷型醚脂类,其中含有辅酶 Q10。目前尚不清楚为什么需要高浓度的辅酶 Q10,以及它如何影响膜的性质。在这项研究中,我们在 CHARMM36 力场中对类异戊二烯尾的辅酶 Q10 头基和扭转参数进行了优化。含有 0 至 50%辅酶 Q10 的古菌双层膜的分子动力学模拟,描述了辅酶 Q10 和辅酶 Q10-8 的分布,以及它们对机械性能和通透性的影响。辅酶 Q10 在浓度高于 10%时会分离到膜的中间平面,有利于在流体状态下伸展构象。辅酶 Q10 增加了双层膜的厚度,但对面积压缩模量和脂质链有序性没有显著影响。出人意料的是,辅酶 Q10 增加了水的通透性,因为它降低了中间平面的自由能势垒。由于辅酶 Q10 的厚度增加,可能有助于嗜盐菌通过增加膜弯曲常数来缓解高渗透压。模拟含有古菌视紫红质-3 的古菌膜表明,局部膜表面会进行调整以适应较厚的膜。总的来说,本研究描绘了 50%辅酶 Q10 在古菌双层膜中的生物物理景观,展示了辅酶 Q10 和辅酶 Q10-8 的混合,并提供了辅酶 Q10 构象的原子细节。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b8c7/8379905/8a40d746b9fe/nihms-1733582-f0002.jpg

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