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乳糖神经酰胺:与胆固醇的侧向相互作用。

Lactosylceramide: lateral interactions with cholesterol.

作者信息

Zhai Xiuhong, Li Xin-Min, Momsen Maureen M, Brockman Howard L, Brown Rhoderick E

机构信息

University of Minnesota, Hormel Institute, Austin, Minnesota, USA.

出版信息

Biophys J. 2006 Oct 1;91(7):2490-500. doi: 10.1529/biophysj.106.084921. Epub 2006 Jul 7.

Abstract

Lactosylceramide (LacCer) is a key intermediate in glycosphingolipid metabolism and is highly enriched in detergent-resistant biomembrane fractions associated with microdomains, i.e., rafts and caveolae. Here, the lateral interactions of cholesterol with LacCers containing various homogeneous saturated (8:0, 16:0, 18:0, 24:0) or monounsaturated acyl chains (18:1, 24:1) have been characterized using a Langmuir-type film balance. Cholesterol-induced changes in lateral packing were assessed by measuring changes in average molecular area, i.e., area condensations, and in lateral elasticity, i.e., surface compressional moduli (C S(-1)) with emphasis on high surface pressures (> or = 30 mN/m) that mimic biomembrane conditions. Cholesterol most dramatically affected the lateral packing elasticity of LacCers with long saturated acyl chains at sterol mole fractions > or = 0.3, consistent with liquid-ordered (LO) phase formation. The lateral elasticity within the LacCer-cholesterol LO-phase was much lower than that observed within pure LacCer condensed, i.e., gel, phase. The magnitude of the cholesterol-induced reduction in lateral elasticity was strongly mitigated by cis monounsaturation in the LacCer acyl chain. At identical high sterol mole fractions, higher lateral elasticity was observed within LacCer-cholesterol mixtures compared with galactosylceramide-cholesterol and sphingomyelin-cholesterol mixtures. The results show how changes to sphingolipid headgroup and acyl chain structure contribute to the modulation of lateral packing elasticity in sphingolipid-cholesterol LO-phases.

摘要

乳糖神经酰胺(LacCer)是糖鞘脂代谢中的关键中间体,高度富集于与微结构域(即筏和小窝)相关的抗去污剂生物膜组分中。在此,使用朗缪尔型膜天平对胆固醇与含有各种均一饱和(8:0、16:0、18:0、24:0)或单不饱和酰基链(18:1、24:1)的乳糖神经酰胺的侧向相互作用进行了表征。通过测量平均分子面积的变化(即面积凝聚)和侧向弹性(即表面压缩模量(C S(-1)))来评估胆固醇引起的侧向堆积变化,重点关注模拟生物膜条件的高表面压力(≥30 mN/m)。在甾醇摩尔分数≥0.3时,胆固醇对具有长饱和酰基链的乳糖神经酰胺的侧向堆积弹性影响最为显著,这与液晶相(LO)的形成一致。乳糖神经酰胺 - 胆固醇液晶相内的侧向弹性远低于在纯乳糖神经酰胺凝聚相(即凝胶相)中观察到的弹性。乳糖神经酰胺酰基链中的顺式单不饱和作用极大地减轻了胆固醇诱导的侧向弹性降低的程度。在相同的高甾醇摩尔分数下,与半乳糖神经酰胺 - 胆固醇和鞘磷脂 - 胆固醇混合物相比,在乳糖神经酰胺 - 胆固醇混合物中观察到更高的侧向弹性。结果表明了鞘脂头部基团和酰基链结构的变化如何有助于调节鞘脂 - 胆固醇液晶相中的侧向堆积弹性。

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本文引用的文献

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Toward understanding the dynamics of membrane-raft-based molecular interactions.
Biochim Biophys Acta. 2005 Dec 30;1746(3):234-51. doi: 10.1016/j.bbamcr.2005.10.001. Epub 2005 Nov 7.
3
Universal behavior of membranes with sterols.
Biophys J. 2006 Mar 1;90(5):1639-49. doi: 10.1529/biophysj.105.067652. Epub 2005 Dec 2.
4
Influence of chain length and unsaturation on sphingomyelin bilayers.
Biophys J. 2006 Feb 1;90(3):851-63. doi: 10.1529/biophysj.105.067371. Epub 2005 Nov 11.
5
The glycosphingolipid, lactosylceramide, regulates beta1-integrin clustering and endocytosis.
Cancer Res. 2005 Sep 15;65(18):8233-41. doi: 10.1158/0008-5472.CAN-05-0803.
7
Miscibility of ternary mixtures of phospholipids and cholesterol in monolayers, and application to bilayer systems.
Biophys J. 2005 Jan;88(1):269-76. doi: 10.1529/biophysj.104.048439. Epub 2004 Oct 8.
8
Membrane domains.
Annu Rev Cell Dev Biol. 2004;20:839-66. doi: 10.1146/annurev.cellbio.20.010403.095451.
9
Structure and dynamics of sphingomyelin bilayer: insight gained through systematic comparison to phosphatidylcholine.
Biophys J. 2004 Nov;87(5):2976-89. doi: 10.1529/biophysj.104.048702. Epub 2004 Aug 17.
10
Jumping to rafts: gatekeeper role of bilayer elasticity.
Trends Biochem Sci. 2004 Jun;29(6):325-30. doi: 10.1016/j.tibs.2004.04.002.

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