Aug 2026· JCI Insight· Vol 11· 0 citations· 62 references
Medicine
TL;DR
It is shown that SMOC2 localized to the basement membrane of injured TECs across 3 murine models of kidney injury and induced a partial epithelial-to-mesenchymal (EMT) transition in TECs, and its extracellular calcium-binding domain mediated binding to the decellularized extracellular matrix accounted for most of its effects on TECs.
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.
Proximal tubular epithelial cells (PTECs) are more susceptible to damage due to their high energy requirements. The apoptosis of PTECs has been thought as the main cause of diabetic kidney disease (DKD). However, the reported apoptotic rate was around 5%-25%, suggesting that apoptosis alone cannot fully explain disease...
Lei Chen, Fei Wang, Tian-Yi Lv et al.· Frontiers in Endocrinology· 0 citations
The lung epithelium is continuously exposed to injury via pathogens and pollutants and its capacity for healthy, non-pathological repair is essential to maintain structure and function. In homeostatic repair, type 2 alveolar epithelial (AT2) cells - the stem cells of the alveolar epithelium - differentiate into type 1...
J. Masso-Silva, A. Kumar· American Journal of Physiolo...· 0 citations
BACKGROUND
Maladaptive repair following acute kidney injury leads to CKD, but the underlying molecular drivers remain incompletely understood. Krüppel-like factor 5 (Klf5), a zinc finger transcription factor, is upregulated in kidney diseases. However, its role and regulation in post-injury kidney repair are unknown....
Zhengwei Ma, Xiaoru Hu, S. Manicassamy et al.· Journal of the American Soci...· 0 citations
Background: Acute lung injury/acute respiratory distress syndrome (ALI/ARDS), a common complication of sepsis, is critically characterized by disruption of the alveolar–capillary barrier. The use of mesenchymal stem cells (MSCs) has emerged as a promising therapeutic strategy for ARDS owing to their potent paracrine ef...
ABSTRACT Renal fibrosis is a final common pathway in chronic kidney disease (CKD), yet available therapies rarely reverse established scarring. T lymphocytes are now recognized as dynamic regulators of this process rather than simple inflammatory bystanders. This Review integrates evidence from experimental kidney inju...
Qian-Hui Li, Jun-Ting Guan, Yi-Fan Song et al.· Advancement of science· 0 citations
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