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Epithelial JAM-A is fundamental for intestinal wound repair in vivo
Shuling Fan, Kevin Boerner, Chithra K. Muraleedharan, Asma Nusrat, Miguel Quiros, Charles A. Parkos
Shuling Fan, Kevin Boerner, Chithra K. Muraleedharan, Asma Nusrat, Miguel Quiros, Charles A. Parkos
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Research Article Cell biology Gastroenterology

Epithelial JAM-A is fundamental for intestinal wound repair in vivo

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Abstract

Junctional adhesion molecule-A (JAM-A) is expressed in several cell types, including epithelial and endothelial cells, as well as some leukocytes. In intestinal epithelial cells (IEC), JAM-A localizes to cell junctions and plays a role in regulating barrier function. In vitro studies with model cell lines have shown that JAM-A contributes to IEC migration; however, in vivo studies investigating the role of JAM-A in cell migration–dependent processes such as mucosal wound repair have not been performed. In this study, we developed an inducible intestinal epithelial–specific JAM-A–knockdown mouse model (Jam-aERΔIEC). While acute induction of IEC-specific loss of JAM-A did not result in spontaneous colitis, such mice had significantly impaired mucosal healing after chemically induced colitis and after biopsy colonic wounding. In vitro primary cultures of JAM-A–deficient IEC demonstrated impaired migration in wound healing assays. Mechanistic studies revealed that JAM-A stabilizes formation of protein signaling complexes containing Rap1A/Talin/β1 integrin at focal adhesions of migrating IECs. Loss of JAM-A in primary IEC led to decreased Rap1A activity and protein levels of Talin and β1 integrin, and it led to a reduction in focal adhesion structures. These findings suggest that epithelial JAM-A plays a critical role in controlling mucosal repair in vivo through dynamic regulation of focal adhesions.

Authors

Shuling Fan, Kevin Boerner, Chithra K. Muraleedharan, Asma Nusrat, Miguel Quiros, Charles A. Parkos

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Figure 5

JAM-A promotes focal adhesion formation in primary IECs during cell migration and wound repair.

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JAM-A promotes focal adhesion formation in primary IECs during cell migr...
pIEC were treated with tamoxifen prior to inducing acute loss of epithelial JAM-A in Jam-aERΔIEC-derived cells. (A) Lysates of spreading pIEC derived from Jam-afl/fl and Jam-aERΔIEC mice were subjected to immunoblot for focal adhesion molecules known to be associated with regulation of β1 integrin-dependent cell adhesion. Loss of JAM-A revealed decreased β1 integrin protein expression and reduced phosphorylation of FAKY861, p130CASY410, and paxillinY118 in cells derived from Jam-aERΔIEC mice. (B) Binding capacity of freshly isolated murine crypts from Jam-afl/fl and Jam-aERΔIEC to different extracellular matrixes. (C) Lamellipodia of migrating Jam-aERΔIEC–derived pIEC exhibited fewer FAKY861-positive focal adhesions and displayed less organized distribution of FAKY861-positive focal adhesions when compared with Jam-afl/fl controls. Scale bar: 50 μm. (D) Lamellipodia of migrating Jam-aERΔIEC–derived pIEC demonstrated reduced number of p130CasY410-positive focal adhesions when compared with Jam-afl/fl controls. Scale bars: 50 μm. (E) Confocal microscopy of lamellipodia of migrating primary epithelial cells generated from Jam-aERΔIEC mice revealed reduced expression and disrupted colocalization of the associated focal adhesion proteins β1 integrin and paxillin compared with Jam-afl/fl cells. Scale bars: 25 μm. (F) pIEC generated from Jam-afl/fl and Jam-aERΔIEC mice were subjected to a scratch wound and imaged by confocal microscopy 6 hours after injury. pIEC immediately adjacent to the wound showed reduced expression and disrupted colocalization of the associated focal adhesion proteins β1 integrin and paxillin in Jam-aERΔIEC cells compared with Jam-afl/fl cells (inset). Scale bars: 25 μm. All results are representative of 3 independent experiments; data are expressed as mean ± SEM. *P < 0.05,***P < 0.001, ****P < 0.0001 by 2-way ANOVA (B) and 2-tailed Student’s t test (C–F). Col, collagen; FN, fibronectin; LN, laminin; TN, tenascin; VT, vitronectin.

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