» Articles » PMID: 34780727

Expression and One-step Purification of Active LPL Contemplated by Biophysical Considerations

Overview
Journal J Lipid Res
Publisher Elsevier
Specialty Biochemistry
Date 2021 Nov 15
PMID 34780727
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

LPL is essential for intravascular lipid metabolism and is of high medical relevance. Since LPL is notoriously unstable, there is an unmet need for a robust expression system producing high quantities of active and pure recombinant human LPL (hLPL). We showed previously that bovine LPL purified from milk is unstable at body temperature (T is 34.8°C), but in the presence of the endothelial transporter glycosylphosphatidylinositol-anchored high density lipoprotein-binding protein 1 (GPIHBP1), LPL is stabile (T increases to 57.6°C). Building on this information, we now designed an expression system for hLPL using Drosophila Schneider 2 cells grown in suspension at high cell density and at an advantageous temperature of 25°C. We cotransfected Schneider 2 cells with hLPL, lipase maturation factor 1, and soluble GPIHBP1 to provide an efficient chaperoning and stabilization of LPL in all compartments during synthesis and after secretion into the conditioned medium. For LPL purification, we used heparin-Sepharose affinity chromatography, which disrupted LPL-GPIHBP1 complexes causing GPIHBP1 to elute with the flow-through of the conditioned media. This one-step purification procedure yielded high quantities of pure and active LPL (4-28 mg/l). Purification of several hLPL variants (furin cleavage-resistant mutant R297A, active-site mutant S132A, and lipid-binding-deficient mutant W390A-W393A-W394A) as well as murine LPL underscores the versatility and robustness of this protocol. Notably, we were able to produce and purify LPL containing the cognate furin cleavage site. This method provides an efficient and cost-effective approach to produce large quantities of LPL for biophysical and large-scale drug discovery studies.

Citing Articles

Competitive displacement of lipoprotein lipase from heparan sulfate is orchestrated by a disordered acidic cluster in GPIHBP1.

Biswas A, Arshid S, Kristensen K, Jorgensen T, Ploug M J Lipid Res. 2025; 66(2):100745.

PMID: 39814316 PMC: 11869522. DOI: 10.1016/j.jlr.2025.100745.


Distinct strategies for intravascular triglyceride metabolism in hearts of mammals and lower vertebrate species.

Nguyen L, Song W, Yang Y, Tran A, Weston T, Jung H JCI Insight. 2024; 9(20).

PMID: 39435661 PMC: 11529983. DOI: 10.1172/jci.insight.184940.


The lipoprotein lipase that is shuttled into capillaries by GPIHBP1 enters the glycocalyx where it mediates lipoprotein processing.

Song W, Beigneux A, Weston T, Chen K, Yang Y, Nguyen L Proc Natl Acad Sci U S A. 2023; 120(44):e2313825120.

PMID: 37871217 PMC: 10623010. DOI: 10.1073/pnas.2313825120.


Hypertriglyceridemia in Apoa5-/- mice results from reduced amounts of lipoprotein lipase in the capillary lumen.

Yang Y, Beigneux A, Song W, Nguyen L, Jung H, Tu Y J Clin Invest. 2023; 133(23).

PMID: 37824203 PMC: 10688983. DOI: 10.1172/JCI172600.


Inverse effects of APOC2 and ANGPTL4 on the conformational dynamics of lid-anchoring structures in lipoprotein lipase.

Kumari A, Gronnemose A, Kristensen K, Winther A, Young S, Jorgensen T Proc Natl Acad Sci U S A. 2023; 120(18):e2221888120.

PMID: 37094117 PMC: 10160976. DOI: 10.1073/pnas.2221888120.