Publication

The minus-end actin capping protein, UNC-94/tropomodulin, regulates development of the Caenorhabditis elegans intestine

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Last modified
  • 05/15/2025
Type of Material
Authors
    Elisabeth Cox-Paulson, State University of New York College GeneseoVincent Cannataro, State University of New York College GeneseoThomas Gallagher, State University of New York College GeneseoCorey Hoffman, State University of New York College GeneseoGary Mantione, State University of New York College GeneseoMatthew Mcintosh, State University of New York College GeneseoMalan Silva, State University of New York College GeneseoNicole Vissichelli, State University of New York College GeneseoRachel Walker, State University of New York College GeneseoJeffrey Simske, Case Western Reserve UniversityShoichiro Ono, Emory UniversityHarold Hoops, State University of New York College Geneseo
Language
  • English
Date
  • 2014-06-01
Publisher
  • Wiley: 12 months
Publication Version
Copyright Statement
  • © 2014 Wiley Periodicals, Inc.
Final Published Version (URL)
Title of Journal or Parent Work
ISSN
  • 1058-8388
Volume
  • 243
Issue
  • 6
Start Page
  • 753
End Page
  • 764
Grant/Funding Information
  • Funding was provided by a grant from the National Institute of Child Health and Human Development (1R15HD059952-01) to E. Cox-Paulson; the SUNY Geneseo Biology Department; Geneseo Foundation; a Metrohealth Foundation award to J. Simske; and a grant from the National Institute of Arthritis and Musculoskeletal and Skin Diseases (2R01 AR048615-11A1) to S. Ono.
Supplemental Material (URL)
Abstract
  • Background: Tropomodulins are actin-capping proteins that regulate the stability of the slow-growing, minus-ends of actin filaments. The C. elegans tropomodulin homolog, UNC-94, has sequence and functional similarity to vertebrate tropomodulins. We investigated the role of UNC-94 in C. elegans intestinal morphogenesis. Results: In the embryonic C. elegans intestine, UNC-94 localizes to the terminal web, an actin- and intermediate filament-rich structure that underlies the apical membrane. Loss of UNC-94 function results in areas of flattened intestinal lumen. In worms homozygous for the strong loss-of-function allele, unc-94(tm724), the terminal web is thinner and the amount of F-actin is reduced, pointing to a role for UNC-94 in regulating the structure of the terminal web. The non-muscle myosin, NMY-1, also localizes to the terminal web, and we present evidence that increasing actomyosin contractility by depleting the myosin phosphatase regulatory subunit, mel-11, can rescue the flattened lumen phenotype of unc-94 mutants. Conclusions: The data support a model in which minus-end actin capping by UNC-94 promotes proper F-actin structure and contraction in the terminal web, yielding proper shape of the intestinal lumen. This establishes a new role for a tropomodulin in regulating lumen shape during tubulogenesis.
Author Notes
  • Elisabeth Cox-Paulson, Department of Biology, SUNY College at Geneseo, 1 College Circle, 332 Integrated Science Center, Geneseo, NY 14454, Tel: 607-377-0302, paulson.eac@gmail.com
Keywords
Research Categories
  • Biology, Anatomy
  • Health Sciences, Pathology

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