MEPE's Diverse Effects on Mineralization

被引:46
作者
Boskey, Adele L. [1 ]
Chiang, Phyllis [1 ]
Fermanis, Alexis [1 ]
Brown, Jared [1 ]
Taleb, Hayat [1 ]
David, Valentin [2 ]
Rowe, Peter S. N. [2 ]
机构
[1] Hosp Special Surg, Musculoskeletal Integr Program, New York, NY 10021 USA
[2] Univ Kansas, Med Ctr, Kidney Inst, Kansas City, KS 66160 USA
关键词
Matrix extracellular phosphoglycoprotein; Mineralization; Posttranslational modification; ASARM peptide; MATRIX EXTRACELLULAR PHOSPHOGLYCOPROTEIN; IN-VITRO; HYDROXYAPATITE FORMATION; BONE SIALOPROTEIN; ASARM; BIOMINERALIZATION; INHIBITION; NUCLEATION; GROWTH; PHEX;
D O I
10.1007/s00223-009-9313-z
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Matrix extracellular phosphoglycoprotein (MEPE) is an inhibitor of mineralization in situ and in cell cultures where altered expression is associated with oncogenic osteomalacia and hypophosphatemic rickets. The purpose of this study was to determine whether the intact protein or the peptide(s) originating from this protein was responsible for the inhibition. The ability of the intact protein and the acidic, serine- and aspartate-rich MEPE-associated motif (ASARM) peptide to promote or inhibit de novo hydroxyapatite formation and growth of hydroxyapatite seed crystals, in both phosphorylated and dephosphorylated forms, was assessed at room temperature in a dynamic gel diffusion system at 3.5 and 5 days. The most effective nucleator concentration was also examined when associated with fibrillar type I collagen. The phosphorylated intact protein was an effective promoter of mineralization in the gelatin gel diffusion system, while the ASARM peptide was an effective inhibitor. When dephosphorylated both the intact protein and the ASARM peptide had no effect on mineralization. Associated with collagen fibrils, some of the effect of the intact protein was lost. This study demonstrates the importance of posttranslational modification for the site-specific activity of MEPE and its ASARM peptide.
引用
收藏
页码:42 / 46
页数:5
相关论文
共 29 条
[1]   MEPE-ASARM peptides control extracellular matrix mineralization by binding to hydroxyapatite: An inhibition regulated by PHEX cleavage of ASARM [J].
Addison, William N. ;
Nakano, Yukiko ;
Loisel, Thomas ;
Crine, Phillippe ;
McKee, Marc D. .
JOURNAL OF BONE AND MINERAL RESEARCH, 2008, 23 (10) :1638-1649
[2]   MEPE, the gene encoding a tumor-secreted protein in oncogenic hypophosphatemic osteomalacia, is expressed in bone [J].
Argiro, L ;
Desbarats, M ;
Glorieux, FH ;
Ecarot, B .
GENOMICS, 2001, 74 (03) :342-351
[3]   Bone sialoprotein-collagen interaction promotes hydroxyapatite nucleation [J].
Baht, Gurpreet S. ;
Hunter, Graeme K. ;
Goldberg, Harvey A. .
MATRIX BIOLOGY, 2008, 27 (07) :600-608
[4]   Dentin sialoprotein (DSP) has limited effects on in vitro apatite formation and growth [J].
Boskey, A ;
Spevak, L ;
Tan, M ;
Doty, SB ;
Butler, WT .
CALCIFIED TISSUE INTERNATIONAL, 2000, 67 (06) :472-478
[5]   OSTEOPONTIN-HYDROXYAPATITE INTERACTIONS IN-VITRO - INHIBITION OF HYDROXYAPATITE FORMATION AND GROWTH IN A GELATIN-GEL [J].
BOSKEY, AL ;
MARESCA, M ;
ULLRICH, W ;
DOTY, SB ;
BUTLER, WT ;
PRINCE, CW .
BONE AND MINERAL, 1993, 22 (02) :147-159
[6]   CONCENTRATION-DEPENDENT EFFECTS OF DENTIN PHOSPHORYN IN THE REGULATION OF INVITRO HYDROXYAPATITE FORMATION AND GROWTH [J].
BOSKEY, AL ;
MARESCA, M ;
DOTY, S ;
SABSAY, B ;
VEIS, A .
BONE AND MINERAL, 1990, 11 (01) :55-65
[7]   Matrix Extracellular Phosphoglycoprotein (MEPE) Is a New Bone Renal Hormone and Vascularization Modulator [J].
David, Valentin ;
Martin, Aline ;
Hedge, Anne-Marie ;
Rowe, Peter S. N. .
ENDOCRINOLOGY, 2009, 150 (09) :4012-4023
[8]   Matrix macromolecules in hard tissues control the nucleation and hierarchical assembly of hydroxyapatite [J].
Gajjeraman, Sivakumar ;
Narayanan, Karthikeyan ;
Hao, Jianjun ;
Qin, Chunlin ;
George, Anne .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (02) :1193-1204
[9]   Importance of phosphorylation for osteopontin regulation of biomineralization [J].
Gericke, A ;
Qin, C ;
Spevak, L ;
Fujimoto, Y ;
Butler, WT ;
Sorensen, ES ;
Boskey, AL .
CALCIFIED TISSUE INTERNATIONAL, 2005, 77 (01) :45-54
[10]   Targeted disruption of the osteoblast/osteocyte factor 45 gene (OF45) results in increased bone formation and bone mass [J].
Gowen, LC ;
Petersen, DN ;
Mansolf, AL ;
Qi, H ;
Stock, JL ;
Tkalcevic, GT ;
Simmons, HA ;
Crawford, DT ;
Chidsey-Frink, KL ;
Ke, HZ ;
McNeish, JD ;
Brown, TA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (03) :1998-2007