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Updated: Jun 11, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Regulator of g protein signaling 3 modulates wnt5b calcium dynamics and somite patterning
Christina M Freisinger1, Rory A Fisher, Diane C Slusarski
1Department of Biology, University of Iowa, Iowa City, Iowa, United States of America.
Abstract:
Vertebrate development requires communication among cells of the embryo in order to define the body axis, and the Wnt-signaling network plays a key role in axis formation as well as in a vast array of other cellular processes. One arm of the Wnt-signaling network, the non-canonical Wnt pathway, mediates intracellular calcium release via activation of heterotrimeric G proteins. Regulator of G protein Signaling (RGS) proteins can accelerate inactivation of G proteins by acting as G protein GTPase-activating proteins (GAPs), however, the possible role of RGS proteins in non-canonical Wnt signaling and development is not known. Here, we identify rgs3 as having an overlapping expression pattern with wnt5b in zebrafish and reveal that individual knockdown of either rgs3 or wnt5b gene function produces similar somite patterning defects. Additionally, we describe endogenous calcium release dynamics in developing zebrafish somites and determine that both rgs3 and wnt5b function are required for appropriate frequency and amplitude of calcium release activity. Using rescue of gene knockdown and in vivo calcium imaging assays, we demonstrate that the activity of Rgs3 requires its ability to interact with Galpha subunits and function as a G protein GAP. Thus, Rgs3 function is necessary for appropriate frequency and amplitude of calcium release during somitogenesis and is downstream of Wnt5 activity. These results provide the first evidence for an essential developmental role of RGS proteins in modulating the duration of non-canonical Wnt signaling.
Insights
Regulator of G protein Signaling (RGS) proteins modulate non-canonical Wnt signaling during vertebrate development. RGS3 is essential for calcium signaling and somite patterning in zebrafish, acting downstream of Wnt5 signaling.
Area of Science:
- Developmental biology
- Cell signaling
- Molecular genetics
Background:
- Wnt signaling is crucial for vertebrate embryonic development and body axis formation.
- Non-canonical Wnt pathways regulate intracellular calcium release via G protein activation.
- The role of Regulator of G protein Signaling (RGS) proteins in Wnt signaling and development remains largely unknown.
Purpose of the Study:
- To investigate the role of RGS proteins in non-canonical Wnt signaling during vertebrate development.
- To determine if RGS3 interacts with Wnt5b signaling in zebrafish somitogenesis.
- To elucidate the mechanism by which RGS3 regulates calcium signaling in developing embryos.
Main Methods:
- Zebrafish gene knockdown of rgs3 and wnt5b.
- In vivo calcium imaging to monitor calcium release dynamics.
- Rescue assays to confirm RGS3 function and G protein interaction.
Main Results:
- rgs3 and wnt5b exhibit overlapping expression patterns in zebrafish embryos.
- Knockdown of either rgs3 or wnt5b results in similar somite patterning defects.
- Both rgs3 and wnt5b are required for normal frequency and amplitude of calcium release during somitogenesis.
- Rgs3 functions as a G protein GTPase-activating protein (GAP) downstream of Wnt5 activity.
Conclusions:
- RGS proteins play an essential role in modulating non-canonical Wnt signaling duration during development.
- RGS3 is a key regulator of calcium signaling necessary for proper somitogenesis in zebrafish.
- This study reveals a novel function for RGS proteins in developmental signaling pathways.
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