Depth-Dependent Organization and Dynamics of Archaeal and Eukaryotic Membranes: Development of Membrane Anisotropy Gradient with Natural Evolution

Chakraborty, Hirak ; Haldar, Sourav ; Chong, Parkson Lee-Gau ; Kombrabail, Mamata ; Krishnamoorthy, G. ; Chattopadhyay, Amitabha (2015) Depth-Dependent Organization and Dynamics of Archaeal and Eukaryotic Membranes: Development of Membrane Anisotropy Gradient with Natural Evolution Langmuir, 31 (42). pp. 11591-11597. ISSN 0743-7463

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Official URL: http://doi.org/10.1021/acs.langmuir.5b02760

Related URL: http://dx.doi.org/10.1021/acs.langmuir.5b02760

Abstract

The lipid composition of archaea is unique and has been correlated with increased stability under extreme environmental conditions. In this article, we have focused on the evolution of membrane organization and dynamics with natural evolution. Dynamic anisotropy along the membrane normal (i.e., gradients of mobility, polarity, and heterogeneity) is a hallmark of fluid phase diester or diether phospholipid membranes. We monitored gradients of mobility, polarity, and heterogeneity along the membrane normal in membranes made of a representative archaeal lipid using a series of membrane depth-dependent fluorescent probes, and compared them to membranes prepared from a typical diether lipid from higher organisms (eukaryotes). Our results show that the representative dynamic anisotropy gradient along the membrane normal is absent in membranes made from archaeal lipids. We hypothesize that the dynamic gradient observed in membranes of diester and diether phospholipids is a consequence of natural evolution of membrane lipids in response to the requirement of carrying out complex cellular functions by membrane proteins.

Item Type:Article
Source:Copyright of this article belongs to American Chemical Society
ID Code:134919
Deposited On:16 Jan 2023 10:44
Last Modified:16 Jan 2023 10:44

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