ANGPTL3/8 is an atypical unfoldase that regulates intravascular lipolysis by catalyzing unfolding of lipoprotein lipase

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Anni Kumari, Sanne W. R. Larsen, Signe Bondesen, Yuewei Qian, Hao D. Tian, Sydney G. Walker, Brandon S. J. Davies, Alan T. Remaley, Stephen G. Young, Robert J. Konrad, Thomas J. D. Jørgensen, Michael Ploug
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Abstract

Lipoprotein lipase (LPL) carries out the lipolytic processing of triglyceride-rich lipoproteins (TRL) along the luminal surface of capillaries. LPL activity is regulated by the angiopoietin-like proteins (ANGPTL3, ANGPTL4, ANGPTL8), which control the delivery of TRL-derived lipid nutrients to tissues in a temporal and spatial fashion. This regulation of LPL mediates the partitioning of lipid delivery to adipose tissue and striated muscle according to nutritional status. A complex between ANGPTL3 and ANGPTL8 (ANGPTL3/8) inhibits LPL activity in oxidative tissues, but its mode of action has remained unknown. Here, we used biophysical techniques to define how ANGPTL3/8 and ANGPTL3 interact with LPL and how they drive LPL inactivation. We demonstrate, by mass photometry, that ANGPTL3/8 is a heterotrimer with a 2:1 ANGPTL3:ANGPTL8 stoichiometry and that ANGPTL3 is a homotrimer. Hydrogen–deuterium exchange mass spectrometry (HDX-MS) studies revealed that ANGPTL3/8 and ANGPTL3 use the proximal portion of their N-terminal α-helices to interact with sequences surrounding the catalytic pocket in LPL. That binding event triggers unfolding of LPL’s α/β -hydrolase domain and irreversible loss of LPL catalytic activity. The binding of LPL to its endothelial transporter protein (GPIHBP1) or to heparan-sulfate proteoglycans protects LPL from unfolding and inactivation, particularly against the unfolding triggered by ANGPTL3. Pulse-labeling HDX-MS studies revealed that ANGPTL3/8 and ANGPTL3 catalyze LPL unfolding in an ATP-independent fashion, which categorizes these LPL inhibitors as atypical unfoldases. The catalytic nature of LPL unfolding by ANGPTL3/8 explains why low plasma concentrations of ANGPTL3/8 are effective in inhibiting a molar excess of LPL in capillaries.
脂蛋白脂肪酶(LPL)沿毛细血管管腔表面对富含甘油三酯的脂蛋白(TRL)进行脂肪分解处理。LPL 的活性受血管生成素样蛋白(ANGPTL3、ANGPTL4 和 ANGPTL8)的调控,这些蛋白在时间和空间上控制着 TRL 衍生的脂质营养物质向组织的输送。LPL 的这种调节介导了根据营养状况向脂肪组织和横纹肌输送脂质的分配。ANGPTL3 和 ANGPTL8(ANGPTL3/8)之间的复合物可抑制氧化组织中 LPL 的活性,但其作用模式一直不明。在这里,我们使用生物物理技术来确定 ANGPTL3/8 和 ANGPTL3 如何与 LPL 相互作用,以及它们如何驱动 LPL 失活。我们通过质量光度法证明,ANGPTL3/8 是一种异源三聚体,ANGPTL3:ANGPTL8 的化学计量为 2:1,而 ANGPTL3 是一种同源三聚体。氢-氘交换质谱(HDX-MS)研究显示,ANGPTL3/8 和 ANGPTL3 利用其 N 端 α-螺旋的近端部分与 LPL 催化袋周围的序列相互作用。这种结合会导致 LPL 的 α/β -水解酶结构域展开,并不可逆转地丧失 LPL 的催化活性。LPL 与其内皮转运蛋白(GPIHBP1)或硫酸肝素蛋白多糖结合可保护 LPL 免受折叠和失活,尤其是免受 ANGPTL3 引发的折叠。脉冲标记 HDX-MS 研究显示,ANGPTL3/8 和 ANGPTL3 以一种不依赖 ATP 的方式催化 LPL 展开,这将这些 LPL 抑制剂归类为非典型展开酶。ANGPTL3/8 对 LPL 展开的催化性质解释了为什么低血浆浓度的 ANGPTL3/8 能有效抑制毛细血管中摩尔过量的 LPL。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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