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Updated: May 19, 2026

Defining Substrate Specificities for Lipase and Phospholipase Candidates
Published on: November 23, 2016
Structure/function relationships of adipose phospholipase A2 containing a cys-his-his catalytic triad
Xiao-Yan Pang1, Jian Cao2, Linsee Addington1
1Department of Pharmacology and Toxicology, School of Pharmacy, University of Kansas, Lawrence, Kansas 66045.
Abstract:
Adipose phospholipase A(2) (AdPLA or Group XVI PLA(2)) plays an important role in the onset of obesity by suppressing adipose tissue lipolysis. As a consequence, AdPLA-deficient mice are resistant to obesity induced by a high fat diet or leptin deficiency. It has been proposed that AdPLA mediates its antilipolytic effects by catalyzing the release of arachidonic acid. Based on sequence homology, AdPLA is part of a small family of acyltransferases and phospholipases related to lecithin:retinol acyltransferase (LRAT). To better understand the enzymatic mechanism of AdPLA and LRAT-related proteins, we solved the crystal structure of AdPLA. Our model indicates that AdPLA bears structural similarity to proteins from the NlpC/P60 family of cysteine proteases, having its secondary structure elements configured in a circular permutation of the classic papain fold. Using both structural and biochemical evidence, we demonstrate that the enzymatic activity of AdPLA is mediated by a distinctive Cys-His-His catalytic triad and that the C-terminal transmembrane domain of AdPLA is required for the interfacial catalysis. Analysis of the enzymatic activity of AdPLA toward synthetic and natural substrates indicates that AdPLA displays PLA(1) in addition to PLA(2) activity. Thus, our results provide insight into the enzymatic mechanism and biochemical properties of AdPLA and LRAT-related proteins and lead us to propose an alternate mechanism for AdPLA in promoting adipose tissue lipolysis that is not contingent on the release of arachidonic acid and that is compatible with its combined PLA(1)/A(2) activity.
Insights
Adipose phospholipase A(2) (AdPLA) suppresses fat breakdown, promoting obesity. Understanding its structure and dual PLA(1)/PLA(2) activity reveals new insights into lipolysis regulation.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Adipose phospholipase A(2) (AdPLA) is implicated in obesity by inhibiting adipose tissue lipolysis.
- AdPLA deficiency confers resistance to diet- and leptin-deficiency-induced obesity.
- Arachidonic acid release was previously proposed as AdPLA's antilipolytic mechanism.
Purpose of the Study:
- To elucidate the enzymatic mechanism and biochemical properties of AdPLA and related proteins.
- To understand the structural basis of AdPLA's function.
- To investigate AdPLA's role in lipolysis beyond arachidonic acid release.
Main Methods:
- Crystal structure determination of AdPLA.
- Biochemical assays to assess enzymatic activity.
- Analysis of AdPLA's interaction with synthetic and natural substrates.
Main Results:
- AdPLA shares structural similarity with NlpC/P60 cysteine proteases, featuring a circular permutation of the papain fold.
- A Cys-His-His catalytic triad mediates AdPLA's enzymatic activity.
- The C-terminal transmembrane domain is crucial for interfacial catalysis.
- AdPLA exhibits both phospholipase A(1) and A(2) activities.
Conclusions:
- AdPLA's structure and catalytic triad provide insight into its mechanism.
- The transmembrane domain is essential for its function in lipid metabolism.
- AdPLA's combined PLA(1)/A(2) activity suggests an alternative mechanism for promoting lipolysis, independent of arachidonic acid release.
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