Lipoprotein lipase

LPL
Identifiers
Aliases LPL, HDLCQ11, LIPD, lipoprotein lipase
External IDs OMIM: 609708 MGI: 96820 HomoloGene: 200 GeneCards: LPL
Genetically Related Diseases
disease of metabolism, lipid metabolism disorder[1]
RNA expression pattern


More reference expression data
Orthologs
Species Human Mouse
Entrez

4023

16956

Ensembl

ENSG00000175445

ENSMUSG00000015568

UniProt

P06858

P11152

RefSeq (mRNA)

NM_000237

NM_008509

RefSeq (protein)

NP_000228.1

NP_032535.2

Location (UCSC) Chr 8: 19.9 – 19.97 Mb Chr 8: 68.88 – 68.91 Mb
PubMed search [2] [3]
Wikidata
View/Edit HumanView/Edit Mouse
Lipoprotein lipase
Identifiers
EC number 3.1.1.34
CAS number 9004-02-8
Databases
IntEnz IntEnz view
BRENDA BRENDA entry
ExPASy NiceZyme view
KEGG KEGG entry
MetaCyc metabolic pathway
PRIAM profile
PDB structures RCSB PDB PDBe PDBsum
Gene Ontology AmiGO / EGO

Lipoprotein lipase (LPL) (EC 3.1.1.34) is a member of the lipase gene family, which includes pancreatic lipase, hepatic lipase, and endothelial lipase. It is a water-soluble enzyme that hydrolyzes triglycerides in lipoproteins, such as those found in chylomicrons and very low-density lipoproteins (VLDL), into three free fatty acids and one glycerol molecule. It is also involved in promoting the cellular uptake of chylomicron remnants, cholesterol-rich lipoproteins, and free fatty acids.[4][5][6] LPL requires ApoC-II as a cofactor.[7][8]

LPL is attached to the luminal surface of endothelial cells in capillaries by the protein glycosylphosphatidylinositol HDL-binding protein 1 (GPIHBP1) and by heparan sulfated proteoglycans.[9] It is most widely distributed in adipose, heart, and skeletal muscle tissue, as well as in lactating mammary glands.[10][11][12]

Synthesis

In brief, LPL is secreted from parenchymal cells as a glycosylated homodimer, after which it is translocated through the extracellular matrix and across endothelial cells to the capillary lumen. After translation, the newly synthesized protein is glycosylated in the endoplasmic reticulum. The glycosylation sites of LPL are Asn-43, Asn-257, and Asn-359.[4] Glucosidases then remove terminal glucose residues; it was once believed that this glucose trimming is responsible for the conformational change needed for LPL to form homodimers and become catalytically active.[4][12][13][14] In the Golgi apparatus, the oligosaccharides are further altered to result in either two complex chains, or two complex and one high-mannose chain.[4][12] In the final protein, carbohydrates account for about 12% of the molecular mass (55-58 kDa).[4][12][15]

Homodimerization is required before LPL can be secreted from cells.[15][16] After secretion, LPL is carried across endothelial cells and presented into the capillary lumen by the protein Glycosylphosphatidylinositol-anchored high-density lipoprotein-binding protein 1.[17][18]

Structure

The crystal structure of LPL has not been discovered; however, there are substantial experimental evidence and structural homology between members of the lipase family to predict the likely structure and functional regions of the enzyme.[14][19] LPL is composed of two distinct regions: the larger N-terminus domain that contains the lipolytic active site, and the smaller C-terminus domain. These two regions are attached by a peptide linker. The N-terminus domain has an α/β hydrolase fold, which is a globular structure containing a central β sheet surrounded by α helices. The C-terminus domain is a β sandwich formed by two β sheet layers, and resembles an elongated cylinder.

Mechanism

Image 1: The proposed LPL homodimer structure; N-terminal domains in blue, C-terminal domains in orange. Lid region blocking the active site is shown in dark blue. Triglyceride binds to the C-terminal domain and the lid region, inducing a conformation change in LPL to make the active site accessible.

The active site of LPL is composed of the conserved Ser-132, Asp-156, and His-241 triad. Other important regions of the N-terminal domain for catalysis includes an oxyanion hole (Trp-55, Leu-133), a lid region (residues 216-239), as well as a β5 loop (residues 54-64).[4][10][14] The ApoC-II binding site is currently unknown, but it is predicted that residues on both N-and C-terminal domains are necessary for this interaction to occur. The C-terminal domain appears to confer LPL’s substrate specificity; it has a higher affinity for large triacylglyceride-rich lipoproteins than cholesterol-rich lipoproteins.[20] The C-terminal domain is also important for binding to LDL’s receptors.[21] Both the N-and C-terminal domains contain heparin binding sites distal to the lipid binding sites; LPL therefore serves as a bridge between the cell surface and lipoproteins. Importantly, LPL binding to the cell surface or receptors is not dependent on its catalytic activity.[22]

The LPL non-covalent homodimer has a head-to-tail arrangement of the monomers. The Ser/Asp/His triad is contained in a hydrophobic groove that is blocked from solvent by the lid.[4][10] Upon binding to ApoC-II and lipid in the lipoprotein, the C-terminal domain presents the lipid substrate to the lid region. The lipid interacts with both the lid region and the hydrophobic groove at the active site; this causes the lid to move, providing access to the active site. The β5 loop folds back into the protein core, bringing one of the electrophiles of the oxyanion hole into position for lipolysis.[4] The glycerol backbone of the lipid is then able to enter the active site and is hydrolyzed.

Two molecules of ApoC-II can attach to each LPL dimer.[19] It is estimated that up to forty LPL dimers may act simultaneously on a single lipoprotein.[4] In regard to kinetics, it is believed that release of product into circulation is the rate-limiting step in the reaction.[10]

Function

LPL encodes lipoprotein lipase, which is expressed on endothelial cells in the heart, muscle, and adipose tissue. LPL functions as a homodimer, and has the dual functions of triglyceride hydrolase and ligand/bridging factor for receptor-mediated lipoprotein uptake. Through catalysis, VLDL is converted to IDL and then to LDL. Severe mutations that cause LPL deficiency result in type I hyperlipoproteinemia, while less extreme mutations in LPL are linked to many disorders of lipoprotein metabolism.[23]

Regulation

LPL is controlled transcriptionally and posttranscriptionally.[24] The circadian clock may be important in the control of Lpl mRNA levels in peripheral tissues.[25]

LPL isozymes are regulated differently depending on the tissue. For example, insulin is known to activate LPL in adipocytes and its placement in the capillary endothelium. By contrast, insulin has been shown to decrease expression of muscle LPL.[26] Muscle and myocardial LPL is instead activated by glucagon and adrenaline. This helps to explain why during fasting, LPL activity increases in muscle tissue and decreases in adipose tissue, whereas after a meal, the opposite occurs.[4][12]

Consistent with this, dietary macronutrients differentially affect adipose and muscle LPL activity. After 16 days on a high-carbohydrate or a high-fat diet, LPL activity increased significantly in both tissues 6 hours after a meal of either composition, but there was a significantly greater rise in adipose tissue LPL in response to the high-carbohydrate diet compared to the high-fat diet. There was no difference between the two diets' effects on insulin sensitivity or fasting LPL activity in either tissue.[27]

The concentration of LPL displayed on endothelial cell surface cannot be regulated by endothelial cells, as they neither synthesize nor degrade LPL. Instead, this regulation occurs by managing the flux of LPL arriving at the lipolytic site and by regulating the activity of LPL present on the endothelium. A key protein involved in controlling the activity of LPL is ANGPTL4, which serves as a local inhibitor of LPL. Induction of ANGPTL4 accounts for the inhibition of LPL activity in white adipose tissue during fasting. Growing evidence implicates ANGPTL4 in the physiological regulation of LPL activity in a variety of tissues.[28]

An ANGPTL3-4-8 model was proposed to explain the variations of LPL activity during the fed-fast cycle.[29] Specifically, feeding induces ANGPTL8, activating the ANGPTL8–ANGPTL3 pathway, which inhibits LPL in cardiac and skeletal muscles, thereby making circulating triglycerides available for uptake by white adipose tissue, in which LPL activity is elevated owing to diminished ANGPTL4; the reverse is true during fasting, which suppresses ANGPTL8 but induces ANGPTL4, thereby directing triglycerides to muscles. The model suggests a general framework for how triglyceride trafficking is regulated.[29]

Pathology

Lipoprotein lipase deficiency leads to hypertriglyceridemia (elevated levels of triglycerides in the bloodstream).[30] In mice, overexpression of LPL has been shown to affect insulin response[31][32] and to promote obesity.[25]

A high tissue LPL response to a high-carbohydrate diet may predispose toward fat gain. One study reported that subjects gained more body fat over the next four years if, after following a high-carbohydrate diet and partaking of a high-carbohydrate meal, they responded with an increase in adipose tissue LPL activity per adipocyte, or a decrease in skeletal muscle LPL activity per gram of tissue.[33]

Interactions

Lipoprotein lipase has been shown to interact with LRP1.[34][35][36] It is also a ligand for α2M, GP330, and VLDL receptors.[21] LPL has been shown to be a ligand for LRP2, albeit at a lower affinity than for other receptors; however, most of the LPL-dependent VLDL degradation can be attributed to the LRP2 pathway.[21] In each case, LPL serves as a bridge between receptor and lipoprotein. While LPL is activated by ApoC-II, it is inhibited by ApoCIII.[10]

In other organisms

The LPL gene is highly conserved across vertebrates. Lipoprotein lipase is involved in lipid transport in the placentae of live bearing lizards (Pseudemoia entrecasteauxii).[37]

Interactive pathway map

Click on genes, proteins and metabolites below to link to respective articles. [§ 1]

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Statin Pathway edit

  1. The interactive pathway map can be edited at WikiPathways: "Statin_Pathway_WP430".

References

  1. "Diseases that are genetically associated with LPL view/edit references on wikidata".
  2. "Human PubMed Reference:".
  3. "Mouse PubMed Reference:".
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  5. Rinninger F, Kaiser T, Mann WA, Meyer N, Greten H, Beisiegel U (July 1998). "Lipoprotein lipase mediates an increase in the selective uptake of high density lipoprotein-associated cholesteryl esters by hepatic cells in culture". J. Lipid Res. 39 (7): 1335–48. PMID 9684736.
  6. Ma Y, Henderson HE, Liu MS, Zhang H, Forsythe IJ, Clarke-Lewis I, Hayden MR, Brunzell JD (November 1994). "Mutagenesis in four candidate heparin binding regions (residues 279-282, 291-304, 390-393, and 439-448) and identification of residues affecting heparin binding of human lipoprotein lipase". J. Lipid Res. 35 (11): 2049–59. PMID 7868983.
  7. Kim SY, Park SM, Lee ST (January 2006). "Apolipoprotein C-II is a novel substrate for matrix metalloproteinases". Biochem. Biophys. Res. Commun. 339 (1): 47–54. doi:10.1016/j.bbrc.2005.10.182. PMID 16314153.
  8. Kinnunen PK, Jackson RL, Smith LC, Gotto AM, Sparrow JT (November 1977). "Activation of lipoprotein lipase by native and synthetic fragments of human plasma apolipoprotein C-II". Proc. Natl. Acad. Sci. U.S.A. 74 (11): 4848–51. doi:10.1073/pnas.74.11.4848. PMC 432053Freely accessible. PMID 270715.
  9. Meneghetti, Maria C. Z.; Hughes, Ashley J.; Rudd, Timothy R.; Nader, Helena B.; Powell, Andrew K.; Yates, Edwin A.; Lima, Marcelo A. (2015-09-06). "Heparan sulfate and heparin interactions with proteins". Journal of the Royal Society Interface. 12 (110): 20150589. doi:10.1098/rsif.2015.0589. ISSN 1742-5689. PMC 4614469Freely accessible. PMID 26289657.
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  16. Ong JM, Kern PA (February 1989). "The role of glucose and glycosylation in the regulation of lipoprotein lipase synthesis and secretion in rat adipocytes". J. Biol. Chem. 264 (6): 3177–82. PMID 2644281.
  17. Beigneux AP, Davies BS, Gin P, Weinstein MM, Farber E, Qiao X, Peale F, Bunting S, Walzem RL, Wong JS, Blaner WS, Ding ZM, Melford K, Wongsiriroj N, Shu X, de Sauvage F, Ryan RO, Fong LG, Bensadoun A, Young SG (2007). "Glycosylphosphatidylinositol-anchored high-density lipoprotein-binding protein 1 plays a critical role in the lipolytic processing of chylomicrons.". Cell Metabolism. 5 (4): 279–291. doi:10.1016/j.cmet.2007.02.002. PMC 1913910Freely accessible. PMID 17403372.
  18. Davies BS, Beigneux AP, Barnes RH 2nd, Tu Y, Gin P, Weinstein MM, Nobumori C, Nyrén R, Goldberg I, Olivecrona G, Bensadoun A, Young SG, Fong LG. (2010). "GPIHBP1, an endothelial cell transporter for lipoprotein lipase.". Cell Metabolism. 12 (1): 42–53. doi:10.1016/j.cmet.2010.04.016. PMID 20620994.
  19. 1 2 McIlhargey TL, Yang Y, Wong H, Hill JS (June 2003). "Identification of a lipoprotein lipase cofactor-binding site by chemical cross-linking and transfer of apolipoprotein C-II-responsive lipolysis from lipoprotein lipase to hepatic lipase". J. Biol. Chem. 278 (25): 23027–35. doi:10.1074/jbc.M300315200. PMID 12682050.
  20. Lookene A, Nielsen MS, Gliemann J, Olivecrona G (April 2000). "Contribution of the carboxy-terminal domain of lipoprotein lipase to interaction with heparin and lipoproteins". Biochem. Biophys. Res. Commun. 271 (1): 15–21. doi:10.1006/bbrc.2000.2530. PMID 10777674.
  21. 1 2 3 Medh JD, Bowen SL, Fry GL, Ruben S, Andracki M, Inoue I, Lalouel JM, Strickland DK, Chappell DA (July 1996). "Lipoprotein lipase binds to low density lipoprotein receptors and induces receptor-mediated catabolism of very low density lipoproteins in vitro". J. Biol. Chem. 271 (29): 17073–80. doi:10.1074/jbc.271.29.17073. PMID 8663292.
  22. Beisiegel U, Weber W, Bengtsson-Olivecrona G (October 1991). "Lipoprotein lipase enhances the binding of chylomicrons to low density lipoprotein receptor-related protein". Proc. Natl. Acad. Sci. U.S.A. 88 (19): 8342–6. doi:10.1073/pnas.88.19.8342. PMC 52504Freely accessible. PMID 1656440.
  23. "Entrez Gene: LPL lipoprotein lipase".
  24. Wang H, Eckel RH (2009). "Lipoprotein lipase: from gene to obesity.". Am J Physiol Endocrinol Metab. 297 (2): E271–88. doi:10.1152/ajpendo.90920.2008. PMID 19318514.
  25. 1 2 Delezie J, Dumont S, Dardente H, Oudart H, Gréchez-Cassiau A, Klosen P, et al. (2012). "The nuclear receptor REV-ERBα is required for the daily balance of carbohydrate and lipid metabolism.". FASEB J. 26 (8): 3321–35. doi:10.1096/fj.12-208751. PMID 22562834.
  26. Kiens B, Lithell H, Mikines KJ, Richter EA (October 1989). "Effects of insulin and exercise on muscle lipoprotein lipase activity in man and its relation to insulin action". J. Clin. Invest. 84 (4): 1124–9. doi:10.1172/JCI114275. PMC 329768Freely accessible. PMID 2677048.
  27. Yost TJ, Jensen DR, Haugen BR, Eckel RH (August 1998). "Effect of dietary macronutrient composition on tissue-specific lipoprotein lipase activity and insulin action in normal-weight subjects" (PDF). Am. J. Clin. Nutr. 68 (2): 296–302. PMID 9701186.
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