4.6 Article

Annexin A2 Regulates β1 Integrin Internalization and Intestinal Epithelial Cell Migration

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 288, 期 21, 页码 15229-15239

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M112.440909

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资金

  1. National Institutes of Health [R01 DK072564, R01 DK061379, R01 DK079392, R01 DK055679, DK059888]
  2. Morphology and Tissue Culture Support from Digestive Diseases Minicenter Grant [R24 DK064399]

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The gastrointestinal epithelium functions as an important barrier that separates luminal contents from the underlying tissue compartment and is vital in maintaining mucosal homeostasis. Mucosal wounds in inflammatory disorders compromise the critical epithelial barrier. In response to injury, intestinal epithelial cells (IECs) rapidly migrate to reseal wounds. We have previously observed that a membrane-associated, actin binding protein, annexin A2 (AnxA2), is up-regulated in migrating IECs and plays an important role in promoting wound closure. To identify the mechanisms by which AnxA2 promotes IEC movement and wound closure, we used a loss of function approach. AnxA2-specific shRNA was utilized to generate IECs with stable down-regulation of AnxA2. Loss of AnxA2 inhibited IEC migration while promoting enhanced cell-matrix adhesion. These functional effects were associated with increased levels of beta 1 integrin protein, which is reported to play an important role in mediating the cell-matrix adhesive properties of epithelial cells. Because cell migration requires dynamic turnover of integrin-based adhesions, we tested whether AnxA2 modulates internalization of cell surface beta 1 integrin required for forward cell movement. Indeed, pulse-chase biotinylation experiments in IECs lacking AnxA2 demonstrated a significant increase in cell surface beta 1 integrin that was accompanied by decreased beta 1 integrin internalization and degradation. These findings support an important role of AnxA2 in controlling dynamics of beta 1 integrin at the cell surface that in turn is required for the active turnover of cell-matrix associations, cell migration, and wound closure.

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