Surfactants: physicochemical interactions with biological macromolecules

被引:0
作者
M. Aguirre-Ramírez
H. Silva-Jiménez
I. M. Banat
M. A. Díaz De Rienzo
机构
[1] Universidad Autónoma de Ciudad Juárez,Departamento de Ciencias Químico Biológicas, Instituto de Ciencias Biomédicas
[2] Universidad Autónoma de Baja California,Área de Oceanografía Química, Instituto de Investigaciones Oceanológicas
[3] University of Ulster,School of Biomedical Sciences
[4] Liverpool John Moores University,School of Pharmacy and Biomolecular Sciences
来源
Biotechnology Letters | 2021年 / 43卷
关键词
Surfactants; Macromolecules; Biological systems; Molecular interactions;
D O I
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中图分类号
学科分类号
摘要
Macromolecules are essential cellular components in biological systems responsible for performing a large number of functions that are necessary for growth and perseverance of living organisms. Proteins, lipids and carbohydrates are three major classes of biological macromolecules. To predict the structure, function, and behaviour of any cluster of macromolecules, it is necessary to understand the interaction between them and other components through basic principles of chemistry and physics. An important number of macromolecules are present in mixtures with surfactants, where a combination of hydrophobic and electrostatic interactions is responsible for the specific properties of any solution. It has been demonstrated that surfactants can help the formation of helices in some proteins thereby promoting protein structure formation. On the other hand, there is extensive research towards the use of surfactants to solubilize drugs and pharmaceuticals; therefore, it is evident that the interaction between surfactants with macromolecules is important for many applications which includes environmental processes and the pharmaceutical industry. In this review, we describe the properties of different types of surfactants that are relevant for their physicochemical interactions with biological macromolecules, from macromolecules–surfactant complexes to hydrophobic and electrostatic interactions.
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页码:523 / 535
页数:12
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