4.6 Article

A transient apical extracellular matrix relays cytoskeletal patterns to shape permanent acellular ridges on the surface of adult C. elegans

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PLOS GENETICS
卷 18, 期 8, 页码 -

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PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.pgen.1010348

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资金

  1. National Science Foundation [IOS1258218]
  2. National Institutes of Health [R01GM125959, R35GM136315, OD010943, GM007185, T32 AR007465]
  3. UCLA Graduate Division

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In this study, the mechanisms involved in shaping acellular longitudinal ridges in the cuticle of adult C. elegans were investigated. The results revealed a collaboration between actin cytoskeleton and provisional matrix in sculpting these ridges, with actin patterning the provisional matrix into distinct zones of separation and adhesion that ultimately form the structure of the ridges and valleys.
Epithelial cells secrete apical extracellular matrices to form protruding structures such as denticles, ridges, scales, or teeth. The mechanisms that shape these structures remain poorly understood. Here, we show how the actin cytoskeleton and a provisional matrix work together to sculpt acellular longitudinal alae ridges in the cuticle of adult C. elegans. Transient assembly of longitudinal actomyosin filaments in the underlying lateral epidermis accompanies deposition of the provisional matrix at the earliest stages of alae formation. Actin is required to pattern the provisional matrix into longitudinal bands that are initially offset from the pattern of longitudinal actin filaments. These bands appear ultrastructurally as alternating regions of adhesion and separation within laminated provisional matrix layers. The provisional matrix is required to establish these demarcated zones of adhesion and separation, which ultimately give rise to alae ridges and their intervening valleys, respectively. Provisional matrix proteins shape the alae ridges and valleys but are not present within the final structure. We propose a morphogenetic mechanism wherein cortical actin patterns are relayed to the laminated provisional matrix to set up distinct zones of matrix layer separation and accretion that shape a permanent and acellular matrix structure.

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