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Quantitative PCR-based Assay to Measure Sonic Hedgehog Signaling in Cellular Model of Ciliogenesis
Published on: January 31, 2025
MicroRNA Biogenesis and Hedgehog-Patched Signaling Cooperate to Regulate an Important Developmental Transition in
Lena Constantin1, Myrna Constantin2, Brandon J Wainwright3
1Institute for Molecular Bioscience, University of Queensland, St. Lucia, Queensland 4072, Australia l.constantin@uq.edu.au.
Abstract:
The Dicer1, Dcr-1 homolog (Drosophila) gene encodes a type III ribonuclease required for the canonical maturation and functioning of microRNAs (miRNAs). Subsets of miRNAs are known to regulate normal cerebellar granule cell development, in addition to the growth and progression of medulloblastoma, a neoplasm that often originates from granule cell precursors. Multiple independent studies have also demonstrated that deregulation of Sonic Hedgehog (Shh)-Patched (Ptch) signaling, through miRNAs, is causative of granule cell pathologies. In the present study, we investigated the genetic interplay between miRNA biogenesis and Shh-Ptch signaling in granule cells of the cerebellum by way of the Cre/lox recombination system in genetically engineered models of Mus musculus (mouse). We demonstrate that, although the miRNA biogenesis and Shh-Ptch-signaling pathways, respectively, regulate the opposing growth processes of cerebellar hypoplasia and hyperplasia leading to medulloblastoma, their concurrent deregulation was nonadditive and did not bring the growth phenotypes toward an expected equilibrium. Instead, mice developed either hypoplasia or medulloblastoma, but of a greater severity. Furthermore, some genotypes were bistable, whereby subsets of mice developed hypoplasia or medulloblastoma. This implies that miRNAs and Shh-Ptch signaling regulate an important developmental transition in granule cells of the cerebellum. We also conclusively show that the Dicer1 gene encodes a haploinsufficient tumor suppressor gene for Ptch1-induced medulloblastoma, with the monoallielic loss of Dicer1 more severe than biallelic loss. These findings exemplify how genetic interplay between pathways may produce nonadditive effects with a substantial and unpredictable impact on biology. Furthermore, these findings suggest that the functional dosage of Dicer1 may nonadditively influence a wide range of Shh-Ptch-dependent pathologies.
Insights
The Dicer1 gene, crucial for microRNA (miRNA) maturation, interacts with Sonic Hedgehog signaling in cerebellar development. Concurrent deregulation of these pathways leads to more severe hypoplasia or medulloblastoma in mice.
Area of Science:
- Developmental Biology
- Genetics
- Molecular Biology
Background:
- MicroRNAs (miRNAs) are essential for cerebellar granule cell development and are implicated in medulloblastoma.
- Sonic Hedgehog (Shh)-Patched (Ptch) signaling is frequently deregulated in granule cell pathologies, including medulloblastoma.
- The interplay between miRNA biogenesis and Shh-Ptch signaling in cerebellar development is not fully understood.
Purpose of the Study:
- To investigate the genetic interplay between miRNA biogenesis, mediated by Dicer1, and Shh-Ptch signaling in cerebellar granule cells.
- To determine the impact of concurrent deregulation of these pathways on cerebellar development and medulloblastoma formation.
- To elucidate the role of Dicer1 as a tumor suppressor in the context of Shh-Ptch-driven medulloblastoma.
Main Methods:
- Utilized the Cre/lox recombination system in genetically engineered mouse models (Mus musculus).
- Examined the effects of manipulating Dicer1 and Shh-Ptch signaling pathways.
- Assessed phenotypes including cerebellar hypoplasia, hyperplasia, and medulloblastoma development.
Main Results:
- Concurrent deregulation of miRNA biogenesis and Shh-Ptch signaling resulted in nonadditive, more severe phenotypes of either hypoplasia or medulloblastoma.
- Some genotypes exhibited bistability, leading to variable outcomes of hypoplasia or medulloblastoma.
- Dicer1 was identified as a haploinsufficient tumor suppressor gene for Ptch1-induced medulloblastoma, with monoallelic loss being more severe than biallelic loss.
Conclusions:
- miRNAs and Shh-Ptch signaling regulate a critical developmental transition in cerebellar granule cells.
- Genetic interplay between these pathways can produce nonadditive effects with unpredictable biological impacts.
- Functional dosage of Dicer1 may nonadditively influence Shh-Ptch-dependent pathologies, suggesting therapeutic implications.
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