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

A Anni Kumari (Finsen Laboratory, Copenhagen University Hospital - Rigshospitalet) S Sanne W. R. Larsen (Finsen Laboratory, Biotechnology Research and Innovation Centre, University of Copenhagen) S Signe Bondesen (Finsen Laboratory, Biotechnology Research and Innovation Centre, University of Copenhagen) Y Yuewei Qian (Lilly Research Laboratories, Eli Lilly and Company) H Hao D. Tian (Laboratory of Lipoprotein Metabolism, Translational Vascular Medicine Branch, National Heart, Lung, and Blood Institute, NIH) S Sydney G. Walker (Department of Biochemistry and Molecular Biology, University of Iowa) B Brandon S. J. Davies (Department of Biochemistry and Molecular Biology, University of Iowa) A Alan T. Remaley (Laboratory of Lipoprotein Metabolism, Translational Vascular Medicine Branch, National Heart, Lung, and Blood Institute, NIH) S Stephen G. Young (Department of Medicine, David Geffen School of Medicine, University of California Los Angeles) R Robert J. Konrad (Lilly Research Laboratories, Eli Lilly and Company) T Thomas J. D. Jørgensen (Department of Biochemistry and Molecular Biology, University of Southern Denmark) M Michael Ploug (Finsen Laboratory, Copenhagen University Hospital - Rigshospitalet)

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.

Article Details

Volume / Issue Vol. 122, Issue 12
Published March 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

A

Anni Kumari

Finsen Laboratory, Copenhagen University Hospital - Rigshospitalet

S

Sanne W. R. Larsen

Finsen Laboratory, Biotechnology Research and Innovation Centre, University of Copenhagen

S

Signe Bondesen

Finsen Laboratory, Biotechnology Research and Innovation Centre, University of Copenhagen

Y

Yuewei Qian

Lilly Research Laboratories, Eli Lilly and Company

H

Hao D. Tian

Laboratory of Lipoprotein Metabolism, Translational Vascular Medicine Branch, National Heart, Lung, and Blood Institute, NIH

S

Sydney G. Walker

Department of Biochemistry and Molecular Biology, University of Iowa

B

Brandon S. J. Davies

Department of Biochemistry and Molecular Biology, University of Iowa

A

Alan T. Remaley

Laboratory of Lipoprotein Metabolism, Translational Vascular Medicine Branch, National Heart, Lung, and Blood Institute, NIH

S

Stephen G. Young

Department of Medicine, David Geffen School of Medicine, University of California Los Angeles

R

Robert J. Konrad

Lilly Research Laboratories, Eli Lilly and Company

T

Thomas J. D. Jørgensen

Department of Biochemistry and Molecular Biology, University of Southern Denmark

M

Michael Ploug

Finsen Laboratory, Copenhagen University Hospital - Rigshospitalet