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Updated: Sep 24, 2025

Monitoring Protein-RNA Interaction Dynamics In Vivo at High Temporal Resolution Using χCRAC
Published on: May 9, 2020
Regulation of CLB6 expression by the cytoplasmic deadenylase Ccr4 through its coding and 3' UTR regions
Jastin Edrian Cocuangco Revilleza1,2, Megumi Sato1, Kaoru Irie1
1Faculty of Medicine, Department of Molecular Cell Biology, University of Tsukuba, Tsukuba, Japan.
Abstract:
RNA stability control contributes to the proper expression of gene products. Messenger RNAs (mRNAs) in eukaryotic cells possess a 5' cap structure and the 3' poly(A) tail which are important for mRNA stability and efficient translation. The Ccr4-Not complex is a major cytoplasmic deadenylase and functions in mRNA degradation. The CLB1-6 genes in Saccharomyces cerevisiae encode B-type cyclins which are involved in the cell cycle progression together with the cyclin-dependent kinase Cdc28. The CLB genes consist of CLB1/2, CLB3/4, and CLB5/6 whose gene products accumulate at the G2-M, S-G2, and late G1 phase, respectively. These Clb protein levels are thought to be mainly regulated by the transcriptional control and the protein stability control. Here we investigated regulation of CLB1-6 expression by Ccr4. Our results show that all CLB1-6 mRNA levels were significantly increased in the ccr4Δ mutant compared to those in wild-type cells. Clb1, Clb4, and Clb6 protein levels were slightly increased in the ccr4Δ mutant, but the Clb2, Clb3, and Clb5 protein levels were similar to those in wild-type cells. Since both CLB6 mRNA and Clb6 protein levels were most significantly increased in the ccr4Δ mutant, we further analyzed the cis-elements for the Ccr4-mediated regulation within CLB6 mRNA. We found that there were destabilizing sequences in both coding sequence and 3' untranslated region (3' UTR). The destabilizing sequences in the coding region were found to be both within and outside the sequences corresponding the cyclin domain. The CLB6 3' UTR was sufficient for mRNA destabilization and decrease of the reporter GFP gene and this destabilization involved Ccr4. Our results suggest that CLB6 expression is regulated by Ccr4 through the coding sequence and 3' UTR of CLB6 mRNA.
Insights
The Ccr4-Not complex regulates gene expression by controlling messenger RNA (mRNA) stability. This study found Ccr4 influences CLB6 mRNA stability through its coding sequence and 3' untranslated region (3' UTR).
Area of Science:
- Molecular Biology
- Gene Regulation
- Cell Cycle Control
Background:
- Messenger RNA (mRNA) stability is crucial for gene expression, influenced by 5' cap and 3' poly(A) tail structures.
- The Ccr4-Not complex is a key cytoplasmic deadenylase involved in mRNA degradation.
- B-type cyclins (CLB1-6) in Saccharomyces cerevisiae regulate cell cycle progression with cyclin-dependent kinase Cdc28.
Purpose of the Study:
- To investigate the role of the Ccr4-Not complex in regulating the expression of CLB1-6 genes in Saccharomyces cerevisiae.
- To identify cis-acting elements within CLB6 mRNA responsible for Ccr4-mediated regulation.
Main Methods:
- Comparison of CLB1-6 mRNA and protein levels in wild-type and ccr4Δ mutant yeast strains.
- Analysis of cis-regulatory elements within the CLB6 mRNA coding sequence and 3' untranslated region (3' UTR).
- Reporter gene assays using Green Fluorescent Protein (GFP) to assess mRNA destabilization.
Main Results:
- All CLB1-6 mRNA levels were significantly increased in the ccr4Δ mutant.
- Clb1, Clb4, and Clb6 protein levels showed slight increases, while Clb2, Clb3, and Clb5 protein levels remained similar to wild-type.
- Destabilizing sequences were identified in both the coding sequence and 3' UTR of CLB6 mRNA, with the 3' UTR being sufficient for Ccr4-dependent destabilization.
Conclusions:
- Ccr4 plays a significant role in regulating CLB1-6 mRNA levels, particularly CLB6.
- CLB6 expression is controlled by Ccr4 through destabilizing elements located in both its coding sequence and 3' UTR.
- These findings highlight the importance of mRNA stability in controlling cell cycle gene expression.
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