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游离脂肪酸从血浆到心肌内皮的转运:一项理论研究。

Transport of Free Fatty Acids from Plasma to the Endothelium of Cardiac Muscle: A Theoretical Study.

作者信息

Barta Efrath

机构信息

Bar-Code Computers Ltd., POB 2013, 3912001, Tirat-Carmel, Israel,

出版信息

J Membr Biol. 2015 Aug;248(4):783-93. doi: 10.1007/s00232-015-9795-8. Epub 2015 Apr 3.

DOI:10.1007/s00232-015-9795-8
PMID:25837993
Abstract

Fatty acids are transported in a multistep process from the plasma to the mitochondria, where they are oxidized in order to meet energy requirements of the myocardium. Some of those steps, mainly the crossing of the involved cells' membranes are far from being understood. Here, by means of mathematical modeling we address the problem of the fatty acid transport from the microvascular compartment to the endothelium. Values of parameters that are incorporated in the model are deduced from relevant experimental work. Concentration profiles are established as solutions of diffusion-reaction equations both numerically and using an analytical asymptotic approximation. The analytical solution accurately determines the fatty acid flux for any set of parameter values in contrast to off-the-shelf numerical solvers that fail under quite a few circumstances due to the stiffness of the differential equation system. Sensitivity analysis indicates that in spite of few uncertain parameter values, most of our conclusions are expected to be valid throughout the physiological range of operation. We find that in order to have an adequate fatty acid uptake rate it is essential for the luminal endothelial membrane to have very fast fatty acid transporters and/or specific sites that interact with the albumin-fatty acids complex.

摘要

脂肪酸通过一个多步骤过程从血浆转运至线粒体,在那里它们被氧化以满足心肌的能量需求。其中一些步骤,主要是穿过相关细胞膜的过程,目前还远未被理解。在此,我们通过数学建模来解决脂肪酸从微血管隔室向内皮细胞转运的问题。模型中纳入的参数值是从相关实验工作中推导出来的。浓度分布通过扩散 - 反应方程的解在数值上以及使用解析渐近近似法来确定。与现成的数值求解器相比,解析解能准确确定任何参数值集下的脂肪酸通量,因为现成的数值求解器由于微分方程系统的刚性在相当多情况下会失效。敏感性分析表明,尽管有一些不确定的参数值,但我们的大多数结论预计在整个生理操作范围内都是有效的。我们发现,为了有足够的脂肪酸摄取率,管腔内皮细胞膜必须具有非常快速的脂肪酸转运蛋白和/或与白蛋白 - 脂肪酸复合物相互作用的特定位点。

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本文引用的文献

1
Lipids and the endothelium: bidirectional interactions.脂质与内皮细胞:双向相互作用。
Curr Atheroscler Rep. 2013 Nov;15(11):365. doi: 10.1007/s11883-013-0365-1.
2
Capillary endothelial fatty acid binding proteins 4 and 5 play a critical role in fatty acid uptake in heart and skeletal muscle.毛细血管内皮脂肪酸结合蛋白 4 和 5 在心脏和骨骼肌中的脂肪酸摄取中发挥着关键作用。
Arterioscler Thromb Vasc Biol. 2013 Nov;33(11):2549-57. doi: 10.1161/ATVBAHA.113.301588. Epub 2013 Aug 22.
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Endothelial fatty acid transport: role of vascular endothelial growth factor B.
TNF-α 刺激内皮细胞棕榈酸的胞吞作用,并促进胰岛素抵抗。
Sci Rep. 2017 Mar 17;7:44659. doi: 10.1038/srep44659.
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Mathematical Models Suggest Facilitated Fatty Acids Crossing of the Luminal Membrane in the Cardiac Muscle.数学模型表明心肌中脂肪酸跨腔膜转运存在易化作用。
J Membr Biol. 2017 Feb;250(1):103-114. doi: 10.1007/s00232-016-9941-y. Epub 2016 Dec 3.
内皮脂肪酸转运:血管内皮生长因子 B 的作用。
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Fatty acid (FFA) transport in cardiomyocytes revealed by imaging unbound FFA is mediated by an FFA pump modulated by the CD36 protein.成像未结合的游离脂肪酸揭示了心肌细胞中的脂肪酸(FFA)转运是由 CD36 蛋白调节的 FFA 泵介导的。
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Membrane fatty acid transporters as regulators of lipid metabolism: implications for metabolic disease.膜脂肪酸转运蛋白作为脂质代谢的调节剂:对代谢性疾病的影响。
Physiol Rev. 2010 Jan;90(1):367-417. doi: 10.1152/physrev.00003.2009.
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Myocardial fatty acid metabolism in health and disease.心肌脂肪酸代谢在健康和疾病中的作用。
Physiol Rev. 2010 Jan;90(1):207-58. doi: 10.1152/physrev.00015.2009.
7
Albumin as fatty acid transporter.白蛋白作为脂肪酸转运蛋白。
Drug Metab Pharmacokinet. 2009;24(4):300-7. doi: 10.2133/dmpk.24.300.
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Incorporation of the fasting free fatty acid concentration into quantitative insulin sensitivity check index improves its association with insulin sensitivity in adults, but not in children.
Eur J Endocrinol. 2009 Jan;160(1):59-64. doi: 10.1530/EJE-08-0699. Epub 2008 Oct 3.
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New insights into the roles of proteins and lipids in membrane transport of fatty acids.蛋白质和脂质在脂肪酸膜转运中作用的新见解。
Prostaglandins Leukot Essent Fatty Acids. 2007 Nov-Dec;77(5-6):355-61. doi: 10.1016/j.plefa.2007.10.020. Epub 2007 Nov 26.
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Physiology (Bethesda). 2007 Feb;22:15-29. doi: 10.1152/physiologyonline.2007.22.1.15.