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Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study

Detergents are extensively used for membrane protein manipulation. Membrane proteins solubilized in conventional detergents are prone to denaturation and aggregation, rendering downstream characterization of these bio-macromolecules difficult. Although many amphiphiles have been developed to overcom...

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Autores principales: Lee, Ho Jin, Ehsan, Muhammad, Zhang, Xiang, Katsube, Satoshi, Munk, Chastine F., Wang, Haoqing, Ahmed, Waqar, Kumar, Ashwani, Byrne, Bernadette, Loland, Claus J., Guan, Lan, Liu, Xiangyu, Chae, Pil Seok
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9116450/
https://www.ncbi.nlm.nih.gov/pubmed/35694361
http://dx.doi.org/10.1039/d2sc00539e
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author Lee, Ho Jin
Ehsan, Muhammad
Zhang, Xiang
Katsube, Satoshi
Munk, Chastine F.
Wang, Haoqing
Ahmed, Waqar
Kumar, Ashwani
Byrne, Bernadette
Loland, Claus J.
Guan, Lan
Liu, Xiangyu
Chae, Pil Seok
author_facet Lee, Ho Jin
Ehsan, Muhammad
Zhang, Xiang
Katsube, Satoshi
Munk, Chastine F.
Wang, Haoqing
Ahmed, Waqar
Kumar, Ashwani
Byrne, Bernadette
Loland, Claus J.
Guan, Lan
Liu, Xiangyu
Chae, Pil Seok
author_sort Lee, Ho Jin
collection PubMed
description Detergents are extensively used for membrane protein manipulation. Membrane proteins solubilized in conventional detergents are prone to denaturation and aggregation, rendering downstream characterization of these bio-macromolecules difficult. Although many amphiphiles have been developed to overcome the limited efficacy of conventional detergents for protein stabilization, only a handful of novel detergents have so far proved useful for membrane protein structural studies. Here, we introduce 1,3-acetonedicarboxylate-derived amphiphiles (ACAs) containing three glucose units and two alkyl chains as head and tail groups, respectively. The ACAs incorporate two different patterns of alkyl chain attachment to the core detergent unit, generating two sets of amphiphiles: ACA-As (asymmetrically alkylated) and ACA-Ss (symmetrically alkylated). The difference in the attachment pattern of the detergent alkyl chains resulted in minor variation in detergent properties such as micelle size, critical micelle concentration, and detergent behaviors toward membrane protein extraction and stabilization. In contrast, the impact of the detergent alkyl chain length on protein stability was marked. The two C11 variants (ACA-AC11 and ACA-SC11) were most effective at stabilizing the tested membrane proteins. The current study not only introduces new glucosides as tools for membrane protein study, but also provides detergent structure–property relationships important for future design of novel amphiphiles.
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spelling pubmed-91164502022-06-10 Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study Lee, Ho Jin Ehsan, Muhammad Zhang, Xiang Katsube, Satoshi Munk, Chastine F. Wang, Haoqing Ahmed, Waqar Kumar, Ashwani Byrne, Bernadette Loland, Claus J. Guan, Lan Liu, Xiangyu Chae, Pil Seok Chem Sci Chemistry Detergents are extensively used for membrane protein manipulation. Membrane proteins solubilized in conventional detergents are prone to denaturation and aggregation, rendering downstream characterization of these bio-macromolecules difficult. Although many amphiphiles have been developed to overcome the limited efficacy of conventional detergents for protein stabilization, only a handful of novel detergents have so far proved useful for membrane protein structural studies. Here, we introduce 1,3-acetonedicarboxylate-derived amphiphiles (ACAs) containing three glucose units and two alkyl chains as head and tail groups, respectively. The ACAs incorporate two different patterns of alkyl chain attachment to the core detergent unit, generating two sets of amphiphiles: ACA-As (asymmetrically alkylated) and ACA-Ss (symmetrically alkylated). The difference in the attachment pattern of the detergent alkyl chains resulted in minor variation in detergent properties such as micelle size, critical micelle concentration, and detergent behaviors toward membrane protein extraction and stabilization. In contrast, the impact of the detergent alkyl chain length on protein stability was marked. The two C11 variants (ACA-AC11 and ACA-SC11) were most effective at stabilizing the tested membrane proteins. The current study not only introduces new glucosides as tools for membrane protein study, but also provides detergent structure–property relationships important for future design of novel amphiphiles. The Royal Society of Chemistry 2022-04-19 /pmc/articles/PMC9116450/ /pubmed/35694361 http://dx.doi.org/10.1039/d2sc00539e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lee, Ho Jin
Ehsan, Muhammad
Zhang, Xiang
Katsube, Satoshi
Munk, Chastine F.
Wang, Haoqing
Ahmed, Waqar
Kumar, Ashwani
Byrne, Bernadette
Loland, Claus J.
Guan, Lan
Liu, Xiangyu
Chae, Pil Seok
Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study
title Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study
title_full Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study
title_fullStr Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study
title_full_unstemmed Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study
title_short Development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (ACAs) for membrane protein study
title_sort development of 1,3-acetonedicarboxylate-derived glucoside amphiphiles (acas) for membrane protein study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9116450/
https://www.ncbi.nlm.nih.gov/pubmed/35694361
http://dx.doi.org/10.1039/d2sc00539e
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