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bioRxiv · 10.1101/2020.08.12.248674

Super-resolution imaging uncovers the nanoscopic segregation of polarity proteins in epithelia

Abstract

Epithelial tissues acquire their integrity and function through the apico-basal polarization of their constituent cells. Proteins of the PAR and Crumbs complexes are pivotal to epithelial polarization, but the mechanistic understanding of polarization is challenging to reach, largely because numerous potential interactions between these proteins and others have been found, without clear hierarchy in importance. We identify the regionalized and segregated organization of members of the PAR and Crumbs complexes at epithelial apical junctions by imaging endogenous proteins using STED microscopy on Caco-2 cells, human and murine intestinal samples. Proteins organize in submicrometric clusters, with PAR3 overlapping with the tight junction (TJ) while PALS1-PATJ and aPKC-PAR6{beta} form segregated clusters that are apical of the TJ and present in an alternated pattern related to actin organization. CRB3A is also apical of the TJ and weakly overlaps with other polarity proteins. This organization at the nanoscale level significantly simplifies our view on how polarity proteins could cooperate to drive and maintain cell polarity.

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BibTeXRIS

Mangeol, P., Massey-Harroche, D., Richard, F., Lenne, P.-F., Le Bivic, A.. 2020-08-12. Super-resolution imaging uncovers the nanoscopic segregation of polarity proteins in epithelia. https://doi.org/10.1101/2020.08.12.248674

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