| Literature DB >> 35476939 |
Robert J Huebner1, Shinuo Weng1, Chanjae Lee1, Sena Sarıkaya1, Ophelia Papoulas1, Rachael M Cox1, Edward M Marcotte1, John B Wallingford2.
Abstract
The design of an animal's body plan is encoded in the genome, and the execution of this program is a mechanical progression involving coordinated movement of proteins, cells, and whole tissues. Thus, a challenge to understanding morphogenesis is connecting events that occur across various length scales. Here, we describe how a poorly characterized adhesion effector, Arvcf catenin, controls Xenopus head-to-tail axis extension. We find that Arvcf is required for axis extension within the intact organism but not within isolated tissues. We show that the organism-scale phenotype results from a defect in tissue-scale force production. Finally, we determine that the force defect results from the dampening of the pulsatile recruitment of cell adhesion and cytoskeletal proteins to membranes. These results provide a comprehensive understanding of Arvcf function during axis extension and produce an insight into how a cellular-scale defect in adhesion results in an organism-scale failure of development.Entities:
Keywords: Arvcf; biomechanics; cadherin; catenin; cell adhesion; convergent extension; morphogenesis
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Year: 2022 PMID: 35476939 PMCID: PMC9308970 DOI: 10.1016/j.devcel.2022.04.001
Source DB: PubMed Journal: Dev Cell ISSN: 1534-5807 Impact factor: 13.417