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Application of RNAi and Heat-shock-induced Transcription Factor Expression to Reprogram Germ Cells to Neurons in C. elegans
Published on: January 1, 2018
Diverse chromatin remodeling genes antagonize the Rb-involved SynMuv pathways in C. elegans
Mingxue Cui1, E Bridget Kim, Min Han
1Howard Hughes Medical Institute and Department of Molecular, Cellular, and Developmental Biology, University of Colorado, Boulder, Colorado, USA.
Abstract:
In Caenorhabditis elegans, vulval cell-fate specification involves the activities of multiple signal transduction and regulatory pathways that include a receptor tyrosine kinase/Ras/mitogen-activated protein kinase pathway and synthetic multivulva (SynMuv) pathways. Many genes in the SynMuv pathways encode transcription factors including the homologs of mammalian Rb, E2F, and components of the nucleosome-remodeling deacetylase complex. To further elucidate the functions of the SynMuv genes, we performed a genome-wide RNA interference (RNAi) screen to search for genes that antagonize the SynMuv gene activities. Among those that displayed a varying degree of suppression of the SynMuv phenotype, 32 genes are potentially involved in chromatin remodeling (called SynMuv suppressor genes herein). Genetic mutations of two representative genes (zfp-1 and mes-4) were used to further characterize their positive roles in vulval induction and relationships with Ras function. Our analysis revealed antagonistic roles of the SynMuv suppressor genes and the SynMuv B genes in germline-soma distinction, RNAi, somatic transgene silencing, and tissue specific expression of pgl-1 and the lag-2/Delta genes. The opposite roles of these SynMuv B and SynMuv suppressor genes on transcriptional regulation were confirmed in somatic transgene silencing. We also report the identifications of ten new genes in the RNAi pathway and six new genes in germline silencing. Among the ten new RNAi genes, three encode homologs of proteins involved in both protein degradation and chromatin remodeling. Our findings suggest that multiple chromatin remodeling complexes are involved in regulating the expression of specific genes that play critical roles in developmental decisions.
Insights
This study identifies 32 new chromatin remodeling genes that regulate vulval cell-fate specification in C. elegans. These genes antagonize synthetic multivulva (SynMuv) pathways, revealing complex roles in development and gene expression.
Area of Science:
- Developmental Biology
- Genetics
- Molecular Biology
Background:
- Vulval cell-fate specification in C. elegans involves complex signaling pathways, including receptor tyrosine kinase/Ras/mitogen-activated protein kinase and synthetic multivulva (SynMuv) pathways.
- SynMuv pathway genes encode transcription factors and chromatin remodelers, crucial for developmental decisions.
Purpose of the Study:
- To identify genes that antagonize SynMuv pathway activity through a genome-wide RNA interference (RNAi) screen.
- To characterize the roles of identified SynMuv suppressor genes in vulval development and their relationship with Ras signaling.
Main Methods:
- Genome-wide RNA interference (RNAi) screen in Caenorhabditis elegans to identify suppressors of SynMuv phenotypes.
- Genetic analysis of representative suppressor genes (zfp-1, mes-4) to investigate their roles in vulval induction and Ras pathway interactions.
- Analysis of gene expression and silencing mechanisms, including germline-soma distinction and somatic transgene silencing.
Main Results:
- Identified 32 potential chromatin remodeling genes as SynMuv suppressors.
- Demonstrated antagonistic roles between SynMuv suppressor genes and SynMuv B genes in various processes like germline-soma distinction and gene silencing.
- Discovered ten new genes in the RNAi pathway and six in germline silencing, with some involved in both protein degradation and chromatin remodeling.
Conclusions:
- Multiple chromatin remodeling complexes play critical roles in regulating gene expression during developmental decisions.
- SynMuv suppressor genes and SynMuv B genes exhibit opposing regulatory functions impacting gene expression and developmental pathways.
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