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脂质的膜运输和酶促加工中的酰基链的结构和动力学。

Structure and Dynamics of the Acyl Chains in the Membrane Trafficking and Enzymatic Processing of Lipids.

机构信息

Department of Biology , University of Fribourg , Chemin du Musée 10 , 1700 Fribourg , Switzerland.

Université Côte d'Azur , CNRS, IPMC , 06560 Valbonne , France.

出版信息

Acc Chem Res. 2019 Nov 19;52(11):3087-3096. doi: 10.1021/acs.accounts.9b00134. Epub 2019 Jul 31.

Abstract

The regulatory chemical mechanisms of lipid trafficking and degradation are involved in many pathophysiological processes, being implicated in severe pain, inflammation, and cancer. In addition, the processing of lipids is also relevant for industrial and environmental applications. However, there is poor understanding of the chemical features that control lipid membrane trafficking and allow lipid-degrading enzymes to efficiently select and hydrolyze specific fatty acids from a complex cellular milieu of bioactive lipids. This is particularly true for lipid acyl chains, which have diverse structures that can critically affect the many complex reactions needed to elongate, desaturate, or transport fatty acids. Building upon our own contributions in this field, we will discuss how molecular simulations, integrated with experimental evidence, have revealed that the structure and dynamics of the lipid tail are actively involved in modulating membrane trafficking at cellular organelles, and enzymatic reactions at cell membranes. Further evidence comes from recent crystal structures of lipid receptors and remodeling enzymes. Taken together, these recent works have identified those structural features of the lipid acyl chain that are crucial for the regioselectivity and stereospecificity of essential desaturation reactions. In this context, we will first illustrate how atomistic and coarse-grained simulations have elucidated the structure-function relationships between the chemical composition of the lipid's acyl chains and the molecular properties of lipid bilayers. Particular emphasis will be given to the prominent chemical role of the number of double carbon-carbon bonds along the lipid acyl chain, that is, discriminating between saturated, monounsaturated, and polyunsaturated lipids. Different levels of saturation in fatty acid molecules dramatically influence the biophysical properties of lipid assemblies and their interaction with proteins. We will then discuss the processing of lipids by membrane-bound enzymes. Our focus will be on lipids such as anandamide and 2-arachidonoylglycerol. These are the main molecules that act as neurotransmitters in the endocannabinoid system. Specifically, recent findings indicate a crucial interplay between the level of saturation of the lipid tail, its energetically and sterically favored conformations, and the hydrophobic accessory cavities in lipid-degrading enzymes, which help form catalytically active conformations of the selected substrate. This Account will emphasize how the specific chemical structure of acyl chains affects the molecular mechanisms for modulating membrane trafficking and selective hydrolysis. The results examined here show that, by using molecular simulations to investigate lipid plasticity and substrate flexibility, researchers can enrich their interpretation of experimental results about the structure-function relationships of lipids. This could positively impact chemical and biological studies in the field and ultimately support protein engineering studies and structure-based drug discovery to target lipid-processing enzymes.

摘要

脂质转运和降解的调控化学机制涉及许多病理生理过程,与严重疼痛、炎症和癌症有关。此外,脂质的加工对于工业和环境应用也很重要。然而,对于控制脂质膜转运并使脂质降解酶能够从生物活性脂质的复杂细胞环境中有效选择和水解特定脂肪酸的化学特征,我们的了解还很有限。对于脂质酰基链尤其如此,它们具有多种结构,这些结构会极大地影响延长、去饱和或转运脂肪酸所需的许多复杂反应。在我们自己在该领域的贡献的基础上,我们将讨论分子模拟如何与实验证据相结合,揭示了脂质尾部的结构和动力学如何积极参与调节细胞器中的膜转运以及细胞膜上的酶反应。最近脂质受体和重塑酶的晶体结构提供了进一步的证据。总之,这些最近的工作确定了脂质酰基链的结构特征对于必需去饱和反应的区域选择性和立体选择性至关重要。在这种情况下,我们将首先说明原子和粗粒模拟如何阐明脂质酰基链的化学成分与脂质双层的分子性质之间的结构-功能关系。特别强调的是脂质酰链上的双键数量的突出化学作用,即区分饱和、单不饱和和多不饱和脂质。脂肪酸分子的不同饱和度极大地影响脂质组装体的生物物理性质及其与蛋白质的相互作用。然后我们将讨论膜结合酶对脂质的加工。我们的重点将是大麻素和 2-花生四烯酸甘油等脂质。这些是内源性大麻素系统中作为神经递质的主要分子。具体而言,最近的发现表明脂质尾部的饱和度、其能量和空间上有利的构象以及脂质降解酶中的疏水性辅助腔之间存在关键相互作用,这有助于形成所选底物的催化活性构象。本报告将强调酰基链的特定化学结构如何影响调节膜转运和选择性水解的分子机制。这里检查的结果表明,通过使用分子模拟研究脂质的可塑性和底物的灵活性,研究人员可以丰富他们对脂质结构-功能关系的实验结果的解释。这可能会对该领域的化学和生物学研究产生积极影响,并最终支持针对脂质加工酶的蛋白质工程研究和基于结构的药物发现。

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