TY - JOUR
T1 - Dickkopf-1 promotes hyperglycemia-induced accumulation of mesangial matrix and renal dysfunction
AU - Lin, Chun Liang
AU - Wang, Jeng Yi
AU - Ko, Jih Yang
AU - Huang, Yu Ting
AU - Kuo, Yu Hsia
AU - Wang, Feng Sheng
PY - 2010/1
Y1 - 2010/1
N2 - Wnt/β-catenin signaling mediates renal fibrosis in several model systems including diabetic nephropathy. Dickkopf-1 (DKK-1) is an endogenous inhibitor of Wnt/β-catenin signaling, but whether DKK-1 modulates diabetic nephropathy is unknown. Here, we studied whether DKK-1 participates in high glucose (HG)-induced expression of profibrotic factors and renal damage. In vitro, HG increased expression of DKK1, receptor Kremen-2, TGF-β1, and fibronectin in mesangial cells. Loss and gain of DKK1 function modulated HG-mediated c-Jun, TGF-β1, and fibronectin expression. DKK1 mediated HG-induced phosphorylation of Ser45-β-catenin and reduction of nuclear β-catenin levels, but not phosphorylation of ERK kinase. Wnt3a protein and the β-catenin (Δ45) mutation increased nuclear β-catenin but abrogated HG-induced DKK1 and fibronectin expression. Exogenous DKK1 antisense oligonucleotide attenuated the increase in both serum DKK1 and urinary protein excretion in streptozotocin-induced diabetic rats. Knocking down DKK1 inhibited mesangial expression of TGF-β1 and fibronectin and reduced both the glomerular volume and deposition of mesangial matrix in diabetic kidneys. Taken together, DKK1 mediates HG-induced destabilization of β-catenin and matrix accumulation in mesangial cells. Knocking down DKK1 prevents diabetes-induced renal dysfunction and microstructure deterioration, suggesting that inhibition of DKK1offers therapeutic potential for diabetic nephropathy.
AB - Wnt/β-catenin signaling mediates renal fibrosis in several model systems including diabetic nephropathy. Dickkopf-1 (DKK-1) is an endogenous inhibitor of Wnt/β-catenin signaling, but whether DKK-1 modulates diabetic nephropathy is unknown. Here, we studied whether DKK-1 participates in high glucose (HG)-induced expression of profibrotic factors and renal damage. In vitro, HG increased expression of DKK1, receptor Kremen-2, TGF-β1, and fibronectin in mesangial cells. Loss and gain of DKK1 function modulated HG-mediated c-Jun, TGF-β1, and fibronectin expression. DKK1 mediated HG-induced phosphorylation of Ser45-β-catenin and reduction of nuclear β-catenin levels, but not phosphorylation of ERK kinase. Wnt3a protein and the β-catenin (Δ45) mutation increased nuclear β-catenin but abrogated HG-induced DKK1 and fibronectin expression. Exogenous DKK1 antisense oligonucleotide attenuated the increase in both serum DKK1 and urinary protein excretion in streptozotocin-induced diabetic rats. Knocking down DKK1 inhibited mesangial expression of TGF-β1 and fibronectin and reduced both the glomerular volume and deposition of mesangial matrix in diabetic kidneys. Taken together, DKK1 mediates HG-induced destabilization of β-catenin and matrix accumulation in mesangial cells. Knocking down DKK1 prevents diabetes-induced renal dysfunction and microstructure deterioration, suggesting that inhibition of DKK1offers therapeutic potential for diabetic nephropathy.
UR - http://www.scopus.com/inward/record.url?scp=75149137022&partnerID=8YFLogxK
U2 - 10.1681/ASN.2008101059
DO - 10.1681/ASN.2008101059
M3 - 文章
C2 - 20019166
AN - SCOPUS:75149137022
SN - 1046-6673
VL - 21
SP - 124
EP - 135
JO - Journal of the American Society of Nephrology
JF - Journal of the American Society of Nephrology
IS - 1
ER -