Role of the sodium-dependent phosphate cotransporter, Pit-1, in vascular smooth muscle cell calcification

被引:354
作者
Li, XW [1 ]
Yang, HY [1 ]
Giachelli, CM [1 ]
机构
[1] Univ Washington, Dept Bioengn, Seattle, WA 98195 USA
关键词
sodium-dependent phosphate cotransporter; Pit-1; vascular calcification; smooth muscle cell;
D O I
10.1161/01.RES.0000216409.20863.e7
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Vascular calcification is associated with cardiovascular morbidity and mortality. Hyperphosphatemia is an important contributor to vascular calcification. Our previous studies demonstrated that elevated phosphate induces calcification of smooth muscle cells (SMC) in vitro. Inhibition of phosphate transport by phosphonoformic acid blocked phosphate-induced calcification, implicating sodium-dependent phosphate cotransporters in this process. In the present study, we have investigated the role of the type III sodium-dependent phosphate cotransporter, Pit-1, in SMC calcification in vitro. Human SMC stably expressing Pit-1 small interfering double-stranded RNA (SMC-iRNA) were established using a retroviral system. SMC-iRNA had decreased Pit-1 mRNA and protein levels and sodium-dependent phosphate transport activity compared with the control transduced cells (SMC-CT) (2.9 versus 9.78 nmol/mg protein per 30 minutes, respectively). Furthermore, phosphate-induced SMC calcification was significantly inhibited in SMC-iRNA compared with SMC-CT at all time points examined. Overexpression of Pit-1 restored phosphate uptake and phosphate-induced calcification in Pit-1 deficient cells. Mechanistically, although Pit-1-mediated SMC calcification was not associated with apoptosis or cell-derived vesicles, inhibition of phosphate uptake in Pit-1 knockdown cells blocked the induction of the osteogenic markers Cbfa-1 and osteopontin. Our results indicate that phosphate uptake through Pit-1 is essential for SMC calcification and phenotypic modulation in response to elevated phosphate.
引用
收藏
页码:905 / 912
页数:8
相关论文
共 37 条
[1]  
Alfrey A C, 1978, Adv Exp Med Biol, V103, P187
[2]   Matrix vesicles and calcification. [J].
H. Clarke Anderson .
Current Rheumatology Reports, 2003, 5 (3) :222-226
[3]   Association of serum phosphorus and calcium x phosphate product with mortality risk in chronic hemodialysis patients: A national study [J].
Block, GA ;
Hulbert-Shearon, TE ;
Levin, NW ;
Port, FK .
AMERICAN JOURNAL OF KIDNEY DISEASES, 1998, 31 (04) :607-617
[4]   Phosphorus and uremic serum up-regulate osteopontin expression in vascular smooth muscle cells [J].
Chen, NX ;
O'Neill, KD ;
Duan, D ;
Moe, SM .
KIDNEY INTERNATIONAL, 2002, 62 (05) :1724-1731
[5]   Vascular calcification [J].
Christian, RC ;
Fitzpatrick, LA .
CURRENT OPINION IN NEPHROLOGY AND HYPERTENSION, 1999, 8 (04) :443-448
[6]   Authentic matrix vesicles contain active metalloproteases (MMP) -: A role for matrix vesicle-associated MMP-13 in activation of transforming growth factor-β [J].
D'Angelo, M ;
Billings, PC ;
Pacifici, M ;
Leboy, PS ;
Kirsch, T .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (14) :11347-11353
[7]   Vascular calcification and osteoporosis: inflammatory responses to oxidized lipids [J].
Demer, LL .
INTERNATIONAL JOURNAL OF EPIDEMIOLOGY, 2002, 31 (04) :737-741
[8]   Vascular calcification: In vitro evidence for the role of inorganic phosphate [J].
Giachelli, CM .
JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2003, 14 (09) :S300-S304
[9]   Coronary-artery calcification in young adults with end-stage renal disease who are undergoing dialysis [J].
Goodman, WG ;
Goldin, J ;
Kuizon, BD ;
Yoon, C ;
Gales, B ;
Sider, D ;
Wang, Y ;
Chung, J ;
Emerick, A ;
Greaser, L ;
Elashoff, RM ;
Salusky, IB .
NEW ENGLAND JOURNAL OF MEDICINE, 2000, 342 (20) :1478-1483
[10]   Phosphate regulation of vascular smooth muscle cell calcification [J].
Jono, S ;
McKee, MD ;
Murry, CE ;
Shioi, A ;
Nishizawa, Y ;
Mori, K ;
Morii, H ;
Giachelli, CM .
CIRCULATION RESEARCH, 2000, 87 (07) :E10-E17