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PDGFRA in vascular adventitial MSCs promotes neointima formation in arteriovenous fistula in chronic kidney disease
Ke Song, Ying Qing, Qunying Guo, Eric K. Peden, Changyi Chen, William E. Mitch, Luan Truong, Jizhong Cheng
Ke Song, Ying Qing, Qunying Guo, Eric K. Peden, Changyi Chen, William E. Mitch, Luan Truong, Jizhong Cheng
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Research Article Nephrology Stem cells

PDGFRA in vascular adventitial MSCs promotes neointima formation in arteriovenous fistula in chronic kidney disease

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Abstract

Chronic kidney disease (CKD) induces the failure of arteriovenous fistulas (AVFs) and promotes the differentiation of vascular adventitial GLI1-positive mesenchymal stem cells (GMCs). However, the roles of GMCs in forming neointima in AVFs remain unknown. GMCs isolated from CKD mice showed increased potential capacity of differentiation into myofibroblast-like cells. Increased activation of expression of PDGFRA and hedgehog (HH) signaling were detected in adventitial cells of AVFs from patients with end-stage kidney disease and CKD mice. PDGFRA was translocated and accumulated in early endosome when sonic hedgehog was overexpressed. In endosome, PDGFRA-mediated activation of TGFB1/SMAD signaling promoted the differentiation of GMCs into myofibroblasts, extracellular matrix deposition, and vascular fibrosis. These responses resulted in neointima formation and AVF failure. KO of Pdgfra or inhibition of HH signaling in GMCs suppressed the differentiation of GMCs into myofibroblasts. In vivo, specific KO of Pdgfra inhibited GMC activation and vascular fibrosis, resulting in suppression of neointima formation and improvement of AVF patency despite CKD. Our findings could yield strategies for maintaining AVF functions.

Authors

Ke Song, Ying Qing, Qunying Guo, Eric K. Peden, Changyi Chen, William E. Mitch, Luan Truong, Jizhong Cheng

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Figure 6

HH signaling regulates PDGFRA and the GMC differentiation.

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HH signaling regulates PDGFRA and the GMC differentiation.
(A) Scheme of...
(A) Scheme of the targeting sites of the stimulator and inhibitors on HH signaling pathways. (B and C) Representative Western blot (WB) and densitometry graphs showing the effects of HH stimulator SAG (1 μM) on the level of PDGFRA, the activation of HH signaling, and the expression of myofibroblast markers in GMCs that were isolated from Ctl (GMCPA) and Pdgfra-KO (GMCPA–/–) mice. Protein expression was normalized to GAPDH and expressed as fold change of Ctl GMCs (C). Total replicates representing 3 independent experiments (n = 3). (D and E) Representative WB and densitometry graphs showing the effects of HH inhibitor cyclopamine (5 μM) or GANT61 (5 μM) on the level of PDGFRA, the activation of HH signaling, and the expression of myofibroblast markers in GMCs from Ctl (GMCPA) and Pdgfra-KO (GMCPA–/–) mice. Protein expression was normalized to GAPDH and expressed as fold change of Ctl GMCs (E). Total replicates representing 3 independent experiments (n = 3). Data are presented as mean ± SEM. Two-way ANOVA was used for statistical analysis. **P < 0.01 versus GMCPA Ctl group; ##P < 0.01 versus corresponding GMCPA–/– group. HH, hedgehog; GMCs, GLI1-positive mesenchymal stem cells; Ctl, control.

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