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RACK-1 regulates let-7 microRNA expression and terminal cell differentiation in Caenorhabditis elegans
Yu-De Chu1, Wei-Chieh Wang1, Shi-An A Chen2
1Graduate Institute of Microbiology; College of Medicine; National Taiwan University; Taipei, Taiwan.
Abstract:
The let-7 microRNA (miRNA) regulates cell cycle exit and terminal differentiation in the C. elegans heterochronic gene pathway. Low expression of let-7 results in retarded vulva and hypodermal cell development in C. elegans and has been associated with several human cancers. Previously, the versatile scaffold protein receptor for activated C kinase 1 (RACK1) was proposed to facilitate recruitment of the miRNA-induced silencing complex (miRISC) to the polysome and to be required for miRNA function in C. elegans and humans. Here, we show that depletion of C. elegans RACK-1 by RNAi increases let-7 miRNA levels and suppresses the retarded terminal differentiation of lateral hypodermal seam cells in mutants carrying the hypomorphic let-7(n2853) allele or lacking the let-7 family miRNA genes mir-48 and mir-241. Depletion of RACK-1 also increases the levels of precursor let-7 miRNA. When Dicer is knocked down and pre-miRNA processing is inhibited, depletion of RACK-1 still leads to increased levels of pre-let-7, suggesting that RACK-1 affects a biogenesis mechanism upstream of Dicer. No changes in the activity of the let-7 promoter or the levels of primary let-7 miRNA are associated with depletion of RACK-1, suggesting that RACK-1 affects let-7 miRNA biogenesis at the post-transcriptional level. Interestingly, rack-1 knockdown also increases the levels of a few other precursor miRNAs. Our results reveal that RACK-1 controls the biogenesis of a subset of miRNAs, including let-7, and in this way plays a role in the heterochronic gene pathway during C. elegans development.
Insights
Receptor for activated C kinase 1 (RACK1) protein depletion enhances let-7 microRNA (miRNA) levels and promotes proper cell development in C. elegans. RACK1 influences miRNA biogenesis upstream of Dicer, impacting the heterochronic pathway.
Area of Science:
- Developmental Biology
- Molecular Biology
- Genetics
Background:
- The let-7 microRNA (miRNA) is crucial for cell cycle exit and terminal differentiation in C. elegans.
- Low let-7 miRNA levels cause developmental defects and are linked to human cancers.
- Receptor for activated C kinase 1 (RACK1) was previously implicated in miRNA function.
Purpose of the Study:
- To investigate the role of RACK1 in let-7 miRNA biogenesis and its impact on C. elegans development.
- To determine the mechanism by which RACK1 affects miRNA levels.
Main Methods:
- RNA interference (RNAi) to deplete RACK-1 in C. elegans.
- Analysis of let-7 miRNA and precursor miRNA levels.
- Genetic analysis of let-7 pathway mutants and Dicer knockdown.
Main Results:
- RACK-1 depletion increased let-7 miRNA levels and rescued developmental defects in let-7 pathway mutants.
- RACK-1 depletion elevated precursor let-7 miRNA levels, even when Dicer activity was inhibited.
- RACK-1 appears to regulate let-7 miRNA biogenesis post-transcriptionally and upstream of Dicer.
Conclusions:
- RACK1 plays a critical role in regulating the biogenesis of let-7 miRNA and potentially other miRNAs.
- RACK1's function in miRNA biogenesis is essential for the C. elegans heterochronic gene pathway and normal development.
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