Abstract

Matrix gamma-carboxyglutamic acid protein (MGP) is a member of the vitamin K-dependent protein family with unique structural and physical properties. MGP has been shown to be an inhibitor of arterial wall and cartilage calcification. One inhibitory mechanism is thought to be binding of bone morphogenetic protein-2. Binding has been shown to be dependent upon the vitamin K-dependent gamma-carboxylation modification of MGP. Since MGP is an insoluble matrix protein, this work has focused on intracellular processing and transport of MGP to become an extracellular binding protein for bone morphogenetic protein-2. Human vascular smooth muscle cells (VSMCs) were infected with an adenovirus carrying the MGP construct, which produced non-gamma-carboxylated MGP and fully gamma-carboxylated MGP. Both forms of MGP were found in the cytosolic and microsomal fractions obtained from the cells by differential centrifugation. The crude microsomal fraction was shown to contain an additional, more acidic Ser-phosphorylated form of MGP believed to be the product of Golgi casein kinase. The data suggest that phosphorylation of MGP dictates different transport routes for MGP in VSMCs. A proteomic approach failed to identify a larger soluble precursor of MGP or an intracellular carrier protein for MGP. Evidence is presented for a receptor-mediated uptake mechanism for fetuin by cultured human VSMCs. Fetuin, shown by mass spectrometry not to contain MGP, was found to be recognized by anti-MGP antibodies. Fetuin uptake and secretion by proliferating and differentiating cells at sites of calcification in the arterial wall may represent an additional protective mechanism against arterial calcification.

Highlights

  • Matrix ␥-carboxyglutamic acid protein (MGP) is a member of the vitamin K-dependent protein family with unique structural and physical properties

  • We demonstrated by ligand blotting that a binding interaction exists between MGP and bone morphogenetic protein-2 (BMP-2) [4], a potent growth factor [5] that transforms undifferentiated cells and subpopulations of vascular smooth muscle cells (VSMCs) into bone-forming cells (6 – 8)

  • 1 The abbreviations used are: Gla, ␥-carboxyglutamic acid; MGP, matrix Gla protein; BMP-2, bone morphogenetic protein-2; VSMCs, vascular smooth muscle cells; Gla-MGP, fully ␥-carboxylated MGP; Glu-MGP, non␥-carboxylated or incompletely ␥-carboxylated MGP that cannot attain the secondary structure of fully ␥-carboxylated MGP in the presence of Ca2ϩ; PBS, phosphate-buffered saline; RIPA, radioimmune precipitation assay; CHAPS, 3-[(3-cholamidopropyl)dimethylammonio]-1-propanesulfonic acid; HPLC, high pressure liquid chromatography; microcapillary reverse-phase HPLC/nanospray tandem mass spectrometry (MS/MS), tandem mass spectrometry; TRITC, tetramethylrhodamine isothiocyanate

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Summary

The abbreviations used are

Gla, ␥-carboxyglutamic acid; MGP, matrix Gla protein; BMP-2, bone morphogenetic protein-2; VSMCs, vascular smooth muscle cells; Gla-MGP, fully ␥-carboxylated MGP; Glu-MGP, non␥-carboxylated or incompletely ␥-carboxylated MGP that cannot attain the secondary structure of fully ␥-carboxylated MGP in the presence of Ca2ϩ; PBS, phosphate-buffered saline; RIPA, radioimmune precipitation assay; CHAPS, 3-[(3-cholamidopropyl)dimethylammonio]-1-propanesulfonic acid; HPLC, high pressure liquid chromatography; MS/MS, tandem mass spectrometry; TRITC, tetramethylrhodamine isothiocyanate. This finding raises concerns about antibody-based assays used to quantify MGP in serum and tissue extracts

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