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甾烷萜 hopene 位于膜的内部并影响其性质。

Hopanoid Hopene Locates in the Interior of Membranes and Affects Their Properties.

机构信息

Department of Physics, UNESP-São Paulo State University, IBILCE, São José do Rio Preto, 15054-000 São Paulo, Brazil.

Facultad de Ciencias Químicas, Departamento de Química Biológica Ranwel Caputto, Universidad Nacional de Córdoba, X5000HUA Córdoba, Argentina.

出版信息

Langmuir. 2021 Oct 12;37(40):11900-11908. doi: 10.1021/acs.langmuir.1c02030. Epub 2021 Sep 29.

Abstract

Hopanoids are proposed as sterol surrogates in some bacteria, and it has been proved that some hopanoids are able to induce a liquid-order phase state in lipid membranes. The members of this group of molecules have diverse structures, and not all of them have been studied in detail yet. Here, we study membranes with the hopanoid hopene (hop-22 (29)-ene or diploptene), which is the product of the cycling of squalene by squalene-hopene cyclase, and thus is present in the first step of hopanoid biosynthesis. Hopene is particularly interesting because it lacks a polar head group, which opens the question of how does this molecule accommodate in a lipid membrane, and what are the effects promoted by its presence. In order to get an insight into this, we prepared monolayers and bilayers of a phospholipid with hopene and studied their properties in comparison with pure phospholipid membranes, and with the sterol cholesterol or the hopanoid diplopterol. Film stiffness, shear viscosity, and bending dynamics were very affected by the presence of hopene, while zeta-potential, generalized polarization of Laurdan, and conductivity were affected moderately by this molecule. The results suggest that at very low percentages, hopene locates parallel to the phospholipid molecules, while the excess of the hopene molecules stays between leaflets, as previously proposed using molecular dynamics simulations.

摘要

藿烷类化合物被认为是某些细菌中固醇的替代物,并且已经证明某些藿烷类化合物能够在脂质膜中诱导形成液晶相。该分子群具有多种结构,其中并非所有结构都已得到详细研究。在这里,我们研究了具有藿烯(hop-22(29)-烯或双萜烯)的膜,藿烯是鲨烯通过鲨烯-藿烯环化酶循环的产物,因此存在于藿烷类生物合成的第一步。藿烯特别有趣,因为它缺乏极性头部基团,这就提出了一个问题,即这个分子如何适应脂质膜,以及其存在会带来什么影响。为了深入了解这一点,我们用藿烯制备了单层和双层磷脂,并将其性质与纯磷脂膜以及固醇胆固醇或藿烷类二孢醇进行了比较。膜的刚性、剪切黏度和弯曲动力学都受到藿烯存在的强烈影响,而 ζ-电位、Laurdan 的广义极化和电导率则受到该分子的适度影响。结果表明,在极低的百分比下,藿烯平行于磷脂分子定位,而过量的藿烯分子则留在双层之间,如先前使用分子动力学模拟所提出的那样。

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