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SMOC2 promotes partial epithelial-mesenchymal transition and maladaptive repair in renal tubular epithelial cells
Schrodinger Cenatus, Peng Gao, Nathalie Henley, Caroline Lamarche, Xue-Song Liu, Frédérick A. Mallette, Jonatan Barrera-Chimal, Casimiro Gerarduzzi
Schrodinger Cenatus, Peng Gao, Nathalie Henley, Caroline Lamarche, Xue-Song Liu, Frédérick A. Mallette, Jonatan Barrera-Chimal, Casimiro Gerarduzzi
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Research Article Cell biology Nephrology

SMOC2 promotes partial epithelial-mesenchymal transition and maladaptive repair in renal tubular epithelial cells

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Abstract

Chronic kidney disease is a global health concern characterized by maladaptive repair processes that lead to kidney fibrosis. Following injury, early alterations in the extracellular matrix precede the development of kidney fibrosis and represent potential therapeutic targets to improve kidney repair. In this context, studies from our laboratory and others have shown that the matricellular protein SMOC2 can be targeted to decrease inflammation and tubulointerstitial fibrosis after kidney injury. Tubular epithelial cells (TECs), which are abundant and particularly susceptible to injury, play a central role in maladaptive repair; however, whether SMOC2 affects their function after kidney injury has not been explored. In this study, we showed that SMOC2 localized to the basement membrane of injured TECs across 3 murine models of kidney injury. Our in vitro studies demonstrate that SMOC2 induced a partial epithelial-to-mesenchymal (EMT) transition in TECs. We further demonstrated that its extracellular calcium-binding domain mediated binding to the decellularized extracellular matrix and accounted for most of its effects on TECs. Mechanistically, SMOC2 promoted partial EMT through an integrin-dependent pathway. Together, these findings provide mechanistic insight into how SMOC2 drives maladaptive repair by modulating TEC behavior and identify its calcium-binding domain as a key functional mediator.

Authors

Schrodinger Cenatus, Peng Gao, Nathalie Henley, Caroline Lamarche, Xue-Song Liu, Frédérick A. Mallette, Jonatan Barrera-Chimal, Casimiro Gerarduzzi

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Figure 17

SMOC2 promotes an epithelial-fibroblast crosstalk during fibrogenesis.

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SMOC2 promotes an epithelial-fibroblast crosstalk during fibrogenesis.
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(A) Picrosirius red (PSR) staining depicting the burden of fibrosis after 7 days of folic acid (FA), ischemia-reperfusion (IR), and 8 days of UUO in mice kidneys. (B) Immunofluorescence indicating the localization of SMOC2 and the myofibroblast marker α-SMA in the cortex and medulla of injured mice in all 3 models of kidney injury. The arrows indicate kidney regions where SMOC2 and α-SMA are colocalized; the dashed boxes indicate the magnified areas. Images were taken using a 10× objective. (C) Diagram depicting the experimental design of the conditioned media treatment. HK-2 cells were stimulated with rhSMOC2 or vehicle-treated for 48 hours. The secreted factors were enriched for 24 hours, and NRK-49F cells were treated with the conditioned media for 24 and 48 hours. (D) Western blots showing the protein levels of fibronectin, α-SMA, collagen I, periostin, and the activated form of TGF-β1 in NRK-49F stimulated with conditioned media from vehicle-treated (C for control) or rhSMOC2-treated (SM for SMOC2) HK-2 cells for the indicated times. (E) Quantification of the Western blots in D for NRK-49F cells stimulated with the conditioned media (CM) from rhSMOC2-treated or control HK-2 cells. Unpaired 2-tailed Student’s t test with Welch’s correction. *P < 0.05, **P < 0.01; n = 3 per condition. The total original magnification is ×100; scale bar for A: 100 µm; scale bar for B: 50 μm.

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