Pre-cuticle DPY 6 acts as a blueprint for aECM periodic organization in C. elegans
Apical extracellular matrices (aECMs) are essential for tissue integrity and function in multicellular organisms, but there is limited understanding of how such matrices are assembled and organized in the extracellular environment. The Caenorhabditis elegans cuticle, a model aECM that undergoes morphogenesis during each of the worms four larval molts, requires periodic circumferential furrows for structural integrity and immune regulation. Here, we show that furrow collagens must be cleaved from their N-terminal transmembrane domain for secretion and depend on the mucin-like pre-cuticle protein DPY-6 for their periodic assembly. While DPY-6 is dispensable for initial embryonic furrow formation, it acts as a mold during subsequent molts, ensuring pattern replication via its C-terminal cysteine cradle domain. These results reveal a central role for a transient matrix factor in organizing a complex periodically structured aECM. Author SummaryIn multicellular organisms, the extracellular matrix (ECM) provides structural support and regulates tissue function. Using the free-living worm Caenorhabditis elegans, we investigated how its apical ECM, the cuticle, forms a precise, repeating pattern of ridges called furrows. The cuticle is rebuilt at each of the worms four larval stages, providing a unique opportunity to study matrix morphogenesis in real time. We discovered that a transient protein, DPY-6, acts as a molecular mold to guide the self-organization of the matrix outside the epidermal cells. DPY-6 ensures that newly secreted proteins assemble into the correct periodic pattern during each rebuilding phase. Without DPY-6, the furrows lose their organization, leading to structural defects and immune system activation. Our findings reveal how a temporary scaffold can template the assembly of a complex, self-organizing structure. This work provides new insights into how biological matrices are built and maintained, with broader implications for understanding ECM assembly in health and disease.