Title | Mechanism of polarized lysosome exocytosis in epithelial cells. |
Publication Type | Journal Article |
Year of Publication | 2012 |
Authors | Xu J, Toops KA, Diaz F, Carvajal-Gonzalez JMaria, Gravotta D, Mazzoni F, Schreiner R, Rodriguez-Boulan E, Lakkaraju A |
Journal | J Cell Sci |
Volume | 125 |
Issue | Pt 24 |
Pagination | 5937-43 |
Date Published | 2012 Dec 15 |
ISSN | 1477-9137 |
Keywords | Actins, Adaptor Protein Complex 1, Animals, Calcium, Cholesterol, Dogs, Epithelial Cells, Exocytosis, Lysosomes, Madin Darby Canine Kidney Cells |
Abstract | <p>Fusion of lysosomes with the plasma membrane is a calcium-dependent process that is crucial for membrane repair, limiting pathogen entry and clearing cellular debris. In non-polarized cells, lysosome exocytosis facilitates rapid resealing of torn membranes. Here, we investigate the mechanism of lysosome exocytosis in polarized epithelia, the main barrier between the organism and the external environment and the first line of defense against pathogens. We find that in polarized Madin-Darby canine kidney (MDCK) cells, calcium ionophores or pore-forming toxins cause lysosomes to fuse predominantly with the basolateral membrane. This polarized exocytosis is regulated by the actin cytoskeleton, membrane cholesterol and the clathrin adaptor AP-1. Depolymerization of actin, but not microtubules, causes apical lysosome fusion, supporting the hypothesis that cortical actin is a barrier to exocytosis. Overloading lysosomes with cholesterol inhibits exocytosis, suggesting that excess cholesterol paralyzes lysosomal traffic. The clathrin adaptor AP-1 is responsible for accurately targeting syntaxin 4 to the basolateral domain. In cells lacking either the ubiquitous AP-1A or the epithelial-specific AP-1B, syntaxin 4 is non-polar. This causes lysosomes to fuse with both the apical and basolateral membranes. Consistent with these findings, RNAi-mediated depletion of syntaxin 4 inhibits basolateral exocytosis in wild-type MDCK, and both apical and basolateral exocytosis in cells lacking AP-1A or AP-1B. Our results provide fundamental insight into the molecular machinery involved in membrane repair in polarized epithelia and suggest that AP-1 is a crucial regulator of this process.</p> |
DOI | 10.1242/jcs.109421 |
Alternate Journal | J Cell Sci |
PubMed ID | 23038769 |
PubMed Central ID | PMC3585513 |
Grant List | R01 GM034107 / GM / NIGMS NIH HHS / United States P30 EY016665 / EY / NEI NIH HHS / United States P30EY016665 / EY / NEI NIH HHS / United States EY08538 / EY / NEI NIH HHS / United States R01 EY008538 / EY / NEI NIH HHS / United States |