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Updated: Sep 22, 2026

Epithelial Cell Repopulation and Preparation of Rodent Extracellular Matrix Scaffolds for Renal Tissue Development
Published on: August 10, 2015
E-/VE-Cadherin-Fc Interface Programs Gli-1+ Stromal Cells for Assembly With Functionalized Microparticles Into 3D
Zhong Cheng1, Zhanyuan Qu1, Jiaxin Sun1
1The Key Laboratory of Bioactive Materials, Ministry of Education, College of Life Sciences, Nankai University, Tianjin, China.
Abstract:
Renal fibrosis lacks experimentally tractable human-relevant models that integrate defined stromal programming with spatially controlled profibrotic cues. Here, we developed a dual E-/VE-cadherin-Fc (EVE) interface to condition human mesenchymal stem cells (MSCs) under CTGF/TGF-β stimulation. Cells showed increased expression of Gli-1, NG2, PDGFRβ, and FAP and activated transcription of extracellular matrix remodeling. These changes were consistent with the acquisition of a Gli-1+ perivascular-like profibrotic stromal phenotype, and were accompanied by reorganization of cadherin-catenin complexes, actin cytoskeletal rearrangement, and increased YAP nuclear localization. Cell-sized PLGA/chitosan-heparin microparticles were subsequently functionalized with E-/VE-cadherin-Fc and loaded with CTGF/TGF-β. Co-assembly of these microparticles with the conditioned stromal cells (gMSCs) and renal epithelial cells (HK-2) generated 3D renal fibrotic microtissues that combined cadherin-mediated adhesive presentation with localized cytokine delivery. The resulting microtissues exhibited a broader distribution of α-SMA, Collagen I, and Fibronectin, together with reciprocal epithelial-stromal signaling and spatially organized fibrotic activation. As a proof of concept for pharmacological evaluation, the microtissues responded to pirfenidone (PFD) in a dose-dependent manner, with 100 µM PFD reducing α-SMA expression by ∼73% while preserving microtissue viability. Together, these findings establish a material-enabled, cadherin-guided strategy for constructing disease-relevant stromal organization and spatially controlled profibrotic signaling in human renal fibrosis models.

