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Aviles, S. G.

Publications and source records attributed to Aviles, S. G..

2 recordsLinked to original sources

A Lipocalin and a Hedgehog-related protein are partners in the C. elegans pre-cuticle apical extracellular matrix

Apical extracellular matrices (aECMs) line exposed body surfaces to shape tissues and protect them from the environment. These aECMs often organize into complex patterns and structures, but how such matrices assemble remains poorly understood. Caenorhabditis elegans cuticle patterns initiate within the transient pre-cuticle, which then helps direct the placement of cuticle collagens. Pre-cuticle patterns arise through post-secretory sorting, which must involve specific molecular interactions among them. Consistent with such a model, Alphafold3 predicts a high confidence physical interaction between two pre-cuticle proteins, the lipocalin LPR-3 and the Hedgehog-related protein WRT-10, with a conserved N-terminal region of LPR-3 forming a {beta}-strand that incorporates into the {beta}-barrel-like structure of the WRT-10 WRT domain. Genetic studies showed that WRT-10 requires this LPR-3 region in order to become properly patterned in the pre-cuticle matrix. Furthermore, WRT-10 and the LPR-3 {beta}-strand region are required to pattern a specific cuticle substructure, the lateral alae ridges, but not for other LPR-3-dependent matrix roles. These data indicate that LPR-3 and WRT-10 are functional partners and support a "landing pad" model whereby physical interactions between them allow LPR-3 to recruit WRT-10 to specific aECM regions. Similar mechanisms may explain how other members of the C. elegans Hh-r family associate with the aECM. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=100 SRC="FIGDIR/small/739337v1_ufig1.gif" ALT="Figure 1"> View larger version (22K): org.highwire.dtl.DTLVardef@1fdaf57org.highwire.dtl.DTLVardef@2b752org.highwire.dtl.DTLVardef@51a91forg.highwire.dtl.DTLVardef@13665ad_HPS_FORMAT_FIGEXP M_FIG C_FIG Article SummaryAll animal skin is covered by a set of proteins, sugars and lipids that comprise the apical extracellular matrix (aECM). These matrix components can be organized into patterned ridges and other distinctive structures. This study addresses how such patterns form in the developing cuticle of the nematode C. elegans. The study provides evidence for a regulatory mechanism that enables one matrix protein to establish a pattern and then recruit a second protein into the same pattern.

developmental biology↗

Opposing roles for lipocalins and a CD36 family scavenger receptor in apical extracellular matrix-dependent protection of narrow tube integrity

All exposed epithelial surfaces, including the walls of internal tubes, are lined by a lipid and glycoprotein-rich apical extracellular matrix (aECM) that helps shape and protect the apical domain. Secreted lipocalins are lipid transporters frequently found within apical compartments. We show that loss of the C. elegans lipocalin LPR-1 disrupts the assembly of another lipocalin, LPR-3, within the pre-cuticle aECM that protects and shapes the narrow excretory duct and pore tubes. LPR-1 is apically secreted and colocalizes with LPR-3 in intracellular vesicles and lysosomes, but unlike LPR-3 it does not detectably incorporate into the aECM. Forward genetic screens for lpr-1 suppressors identified mutations in scav-2, which encodes a transmembrane protein of the CD36 scavenger receptor B family. Loss of scav-2 restored LPR-3 matrix localization and suppressed the lpr-1 tube shaping defect, as well as the tube-shaping defects of a subset of pre-cuticle mutants, but not lpr-3 mutants. A SCAV-2 fusion accumulated at apical surfaces of interfacial epithelial tubes, including the excretory duct and pore, and both tissue-specific suppression of lpr-1 matrix defects and tissue-specific rescue experiments support a local role for SCAV-2 within these tubes. These data demonstrate that LPR-1 and SCAV-2 have opposing effects on narrow tube integrity by altering the content and organization of that tubes luminal aECM, possibly by acting as transporters of an LPR-3 cofactor. These results have broadly relevant implications regarding the importance of lipocalins and scavenger receptors for aECM organization and integrity of the narrowest tubes in the body.

cell biology↗