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衰老过程中的脂肪组织微环境:对刺激脂肪分解的影响。

Adipose tissue microenvironments during aging: Effects on stimulated lipolysis.

机构信息

Institute on the Biology of Aging and Metabolism, Department of Biochemistry, Molecular Biology and Biophysics, University of Minnesota, Minneapolis, MN, United States of America.

出版信息

Biochim Biophys Acta Mol Cell Biol Lipids. 2022 May;1867(5):159118. doi: 10.1016/j.bbalip.2022.159118. Epub 2022 Feb 5.

Abstract

Adipose tissue is a critical organ for nutrient sensing, energy storage and maintaining metabolic health. The failure of adipose tissue homeostasis leads to metabolic disease that is seen during obesity or aging. Local metabolic processes are coordinated by interacting microenvironments that make up the complexity and heterogeneity of the adipose tissue. Catecholamine-induced lipolysis, a critical pathway in adipocytes that drives the release of stored triglyceride as free fatty acid after stimulation, is impaired during aging. The impairment of this pathway is associated with a failure to maintain a healthy body weight, core body-temperature during cold stress or mount an immune response. Along with impairments in aged adipocytes, aging is associated with an accumulation of inflammation, immune cell activation, and increased dysfunction in the nervous and lymphatic systems within the adipose tissue. Together these microenvironments support the initiation of stimulated lipolysis and the transport of free fatty acid under conditions of metabolic homeostasis. However, during aging, the defects in these cellular systems result in a reduction in ability to stimulate lipolysis. This review will focus on how the immune, nervous and lymphatic systems interact during tissue homeostasis, review areas that are impaired with aging and discuss areas of research that are currently unclear.

摘要

脂肪组织是营养感应、能量储存和维持代谢健康的关键器官。脂肪组织稳态的失败导致代谢疾病,这种疾病在肥胖或衰老时出现。局部代谢过程由相互作用的微环境协调,这些微环境构成了脂肪组织的复杂性和异质性。儿茶酚胺诱导的脂肪分解是脂肪细胞中的一个关键途径,在刺激后将储存的甘油三酯作为游离脂肪酸释放,在衰老过程中受到损害。这条途径的损伤与无法维持健康的体重、冷应激时的核心体温或产生免疫反应有关。随着衰老脂肪细胞的损伤,炎症、免疫细胞激活以及脂肪组织内神经系统和淋巴系统的功能障碍增加。这些微环境共同支持在代谢稳态条件下启动刺激脂肪分解和游离脂肪酸的运输。然而,在衰老过程中,这些细胞系统的缺陷导致刺激脂肪分解的能力降低。本综述将重点讨论免疫、神经和淋巴系统在组织稳态过程中的相互作用,回顾与衰老相关的受损区域,并讨论目前尚不清楚的研究领域。

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