Differential functions of multiple Wnts and receptors in cell polarity regulation in C. elegans
Hitoshi Sawa1,2, Masayo Asakawa1, Takefumi Negishi1,2
1Multicellular Organization Laboratory, Department of Gene Function and Phenomics, National Institute of Genetics, Research Organization of Information and Systems (ROIS), Mishima, Japan.
Abstract:
Metazoan species possess multiple Wnt ligands and receptor genes that regulate diverse developmental processes. Because these genes often act redundantly, analysis of single-gene mutants does not necessarily reveal the full roles of Wnt signaling. In C. elegans, three Wnt genes (cwn-1, egl-20, and cwn-2) and three receptor genes (lin-17/Fzd, mom-5/Fzd, and cam-1/Ror) redundantly regulate the polarity of asymmetrically dividing seam cells. Here, we comprehensively analyzed genetic interactions among these Wnt and receptor genes. In mom-5 mutant backgrounds, additional mutations in Wnt genes disrupted cell polarization. In contrast, in cam-1 mutant backgrounds, Wnt mutations frequently caused abnormal polarity orientation. These findings indicate that MOM-5 and CAM-1 play distinct roles in establishing cell polarization and determining its orientation, respectively. lin-17 mutations suppressed polarity reversal in multiple Wnt compound mutants, suggesting that LIN-17 may function as a molecular switch for polarity orientation. Although all three Wnt genes regulate polarity orientation in a gradient-independent manner in the absence of receptor mutations, in lin-17 mutant backgrounds, reversing the expression gradients of cwn-1 and egl-20, but not cwn-2, enhanced polarity reversal. This suggests that cwn-1 and egl-20 act not only permissively but also instructively to regulate polarity orientation. Together, our results reveal distinct and cooperative functions of multiple Wnt ligands and receptors that ensure robust control of cell polarity.
Insights
Wnt signaling controls cell polarity through redundant genes. This study reveals distinct roles for Wnt receptors MOM-5 and CAM-1 in cell polarization and orientation, ensuring robust developmental control.
Area of Science:
- Developmental Biology
- Cell Biology
- Genetics
Background:
- Metazoans utilize multiple Wnt genes and receptors for development.
- Redundancy in Wnt signaling complicates analysis of single-gene mutants.
- Wnt signaling regulates cell polarity in C. elegans seam cells.
Purpose of the Study:
- To comprehensively analyze genetic interactions among Wnt and receptor genes in C. elegans.
- To elucidate the distinct roles of Wnt receptors in cell polarization and orientation.
- To understand how Wnt ligands and receptors cooperate to control cell polarity.
Main Methods:
- Genetic analysis of Wnt and Fzd/Ror receptor gene interactions.
- Assessment of cell polarization and polarity orientation in mutant backgrounds.
- Investigation of Wnt gene expression gradients in relation to polarity reversal.
Main Results:
- MOM-5 and CAM-1 receptors play distinct roles in establishing and orienting cell polarity.
- LIN-17 acts as a molecular switch for polarity orientation, suppressing reversal.
- cwn-1 and egl-20 Wnt genes act instructively, not just permissively, in polarity orientation.
Conclusions:
- Distinct and cooperative functions of Wnt ligands and receptors ensure robust cell polarity control.
- MOM-5 is crucial for polarization, CAM-1 for orientation, and LIN-17 for switching orientation.
- Wnt signaling provides precise, redundant mechanisms for developmental patterning.
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