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表面活性剂致溶血——综述。

Hemolysis by surfactants--A review.

机构信息

Horiba Medical, Parc Euromédecine, Rue du caducée BP 7290, 31484 Montpellier Cedex 4, France; Institut des Biomolécules Max Mousseron, UMR 5247, Université de Montpellier, 15 avenue Charles Flahault, 34093 Montpellier Cedex, France.

Horiba Medical, Parc Euromédecine, Rue du caducée BP 7290, 31484 Montpellier Cedex 4, France.

出版信息

Adv Colloid Interface Sci. 2016 Feb;228:1-16. doi: 10.1016/j.cis.2015.10.011. Epub 2015 Nov 11.

Abstract

An overview of the use of surfactants for erythrocyte lysis and their cell membrane action mechanisms is given. Erythrocyte membrane characteristics and its association with the cell cytoskeleton are presented in order to complete understanding of the erythrocyte membrane distortion. Cell homeostasis disturbances caused by surfactants might induce changes starting from shape modification to cell lysis. Two main mechanisms are hypothesized in literature which are osmotic lysis and lysis by solubilization even if the boundary between them is not clearly defined. Another specific mechanism based on the formation of membrane pores is suggested in the particular case of saponins. The lytic potency of a surfactant is related to its affinity for the membrane and the modification of the lipid membrane curvature. This is to be related to the surfactant shape defined by its hydrophobic and hydrophilic moieties but also by experimental conditions. As a consequence, prediction of the hemolytic potency of a given surfactant is challenging. Several studies are focused on the relation between surfactant erythrolytic potency and their physico-chemical parameters such as the critical micellar concentration (CMC), the hydrophile-lipophile balance (HLB), the surfactant membrane/water partition coefficient (K) or the packing parameter (P). The CMC is one of the most important factors considered even if a lytic activity cut-off effect points out that the only consideration of CMC not enough predictive. The relation K.CMC must be considered in addition to the CMC to predict the surfactant lytic capacity within the same family of non ionic surfactant. Those surfactant structure/lytic activity studies demonstrate the requirement to take into account a combination of physico-chemical parameters to understand and foresee surfactant lytic potency.

摘要

介绍了用于红细胞裂解的表面活性剂的使用及其细胞膜作用机制。为了全面了解红细胞膜的变形,介绍了红细胞膜的特性及其与细胞质骨架的关系。表面活性剂引起的细胞内环境紊乱可能会导致从形态改变到细胞裂解的一系列变化。文献中假设了两种主要的机制,即渗透裂解和溶解裂解,尽管它们之间的界限并不明确。在皂苷的特殊情况下,还提出了一种基于形成膜孔的特定机制。表面活性剂的裂解能力与其对膜的亲和力和脂质膜曲率的改变有关。这与表面活性剂的疏水和亲水部分定义的形状有关,但也与实验条件有关。因此,预测给定表面活性剂的溶血能力具有挑战性。许多研究集中在表面活性剂的红细胞裂解能力与其物理化学参数之间的关系,如临界胶束浓度(CMC)、亲水亲油平衡(HLB)、表面活性剂膜/水分配系数(K)或堆积参数(P)。CMC 是最重要的考虑因素之一,尽管存在裂解活性截止效应表明仅考虑 CMC 是不够的。必须考虑 K.CMC 的关系,以预测同一非离子表面活性剂家族中的表面活性剂的裂解能力。这些表面活性剂结构/裂解活性研究表明,需要综合考虑物理化学参数来理解和预测表面活性剂的裂解能力。

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