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脂肪组织特异性敲除 Ces1d 导致小鼠代谢紊乱。

Adipose tissue-specific ablation of Ces1d causes metabolic dysregulation in mice.

机构信息

Center for Metabolic and Degenerative Diseases, The Brown Foundation Institute of Molecular Medicine for the Prevention of Human Diseases, University of Texas Health Science Center at Houston, Houston, TX, USA.

Center for Precision Health, School of Biomedical Informatics, University of Texas Health Science Center at Houston, Houston, TX, USA.

出版信息

Life Sci Alliance. 2022 Apr 22;5(8). doi: 10.26508/lsa.202101209. Print 2022 Aug.

Abstract

Carboxylesterase 1d (Ces1d) is a crucial enzyme with a wide range of activities in multiple tissues. It has been reported to localize predominantly in ER. Here, we found that Ces1d levels are significantly increased in obese patients with type 2 diabetes. Intriguingly, a high level of Ces1d translocates onto lipid droplets where it digests the lipids to produce a unique set of fatty acids. We further revealed that adipose tissue-specific Ces1d knock-out (FKO) mice gained more body weight with increased fat mass during a high fat-diet challenge. The FKO mice exhibited impaired glucose and lipid metabolism and developed exacerbated liver steatosis. Mechanistically, deficiency of Ces1d induced abnormally large lipid droplet deposition in the adipocytes, causing ectopic accumulation of triglycerides in other peripheral tissues. Furthermore, loss of Ces1d diminished the circulating free fatty acids serving as signaling molecules to trigger the epigenetic regulations of energy metabolism via lipid-sensing transcriptional factors, such as HNF4α. The metabolic disorders induced an unhealthy microenvironment in the metabolically active tissues, ultimately leading to systemic insulin resistance.

摘要

羧酸酯酶 1d(Ces1d)是一种在多种组织中具有广泛活性的关键酶。据报道,它主要定位于内质网。在这里,我们发现 2 型糖尿病肥胖患者的 Ces1d 水平显著升高。有趣的是,高水平的 Ces1d 易位到脂滴上,在那里它消化脂质产生一组独特的脂肪酸。我们进一步揭示,脂肪组织特异性 Ces1d 敲除(FKO)小鼠在高脂肪饮食挑战期间体重增加更多,脂肪量增加。FKO 小鼠表现出葡萄糖和脂质代谢受损,并发展出更严重的肝脂肪变性。在机制上,Ces1d 的缺乏导致脂肪细胞中异常大的脂滴沉积,导致甘油三酯在其他外周组织中的异位积累。此外,Ces1d 的缺失减少了作为信号分子的循环游离脂肪酸,通过脂质感应转录因子(如 HNF4α)触发能量代谢的表观遗传调节。代谢紊乱在代谢活跃的组织中引起不健康的微环境,最终导致全身胰岛素抵抗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/30c4/9034061/7a6525edf102/LSA-2021-01209_Fig1.jpg

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