Optimized expression and purification of adipose triglyceride lipase improved hydrolytic and transacylation activities in vitro

脂肪甘油三酯脂肪酶 单酰甘油脂肪酶 生物化学 化学 二酰甘油激酶 二酰甘油脂肪酶 脂肪酶 内大麻素系统 受体 蛋白激酶C
作者
Natalia Kulminskaya,Claudia Radler,Roland Viertlmayr,Christoph Heier,Peter Hofer,Mariana Colaço-Gaspar,Raymond J. Owens,R. Zimmermann,Renate Schreiber,Rudolf Zechner,Monika Oberer
出处
期刊:Journal of Biological Chemistry [Elsevier BV]
卷期号:297 (4): 101206-101206 被引量:13
标识
DOI:10.1016/j.jbc.2021.101206
摘要

Adipose triglyceride lipase (ATGL) plays a key role in intracellular lipolysis, the mobilization of stored triacylglycerol. This work provides an important basis for generating reproducible and detailed data on the hydrolytic and transacylation activities of ATGL. We generated full-length and C-terminally truncated ATGL variants fused with various affinity tags and analyzed their expression in different hosts, namely E.coli, the insect cell line Sf9, and the mammalian cell line human embryonic kidney 293T. Based on this screen, we expressed a fusion protein of ATGL covering residues M1-D288 flanked with N-terminal and C-terminal purification tags. Using these fusions, we identified key steps in expression and purification protocols, including production in the E. coli strain ArcticExpress (DE3) and removal of copurified chaperones. The resulting purified ATGL variant demonstrated improved lipolytic activity compared with previously published data, and it could be stimulated by the coactivator protein comparative gene identification-58 and inhibited by the protein G0/G1 switch protein 2. Shock freezing and storage did not affect the basal activity but reduced coactivation of ATGL by comparative gene identification 58. In vitro, the truncated ATGL variant demonstrated acyl-CoA-independent transacylation activity when diacylglycerol was offered as substrate, resulting in the formation of fatty acid as well as triacylglycerol and monoacylglycerol. However, the ATGL variant showed neither hydrolytic activity nor transacylation activity upon offering of monoacylglycerol as substrate. To understand the role of ATGL in different physiological contexts, it is critical for future studies to identify all its different functions and to determine under what conditions these activities occur.
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