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Crystal structure and functional properties of the human CCR4-CAF1 deadenylase complex
Ying Chen1, Elena Khazina1, Elisa Izaurralde1
1Department of Biochemistry, Max Planck Institute for Developmental Biology, Max-Planck-Ring 5, D-72076 Tübingen, Germany.
Abstract:
The CCR4 and CAF1 deadenylases physically interact to form the CCR4-CAF1 complex and function as the catalytic core of the larger CCR4-NOT complex. Together, they are responsible for the eventual removal of the 3'-poly(A) tail from essentially all cellular mRNAs and consequently play a central role in the posttranscriptional regulation of gene expression. The individual properties of CCR4 and CAF1, however, and their respective contributions in different organisms and cellular environments are incompletely understood. Here, we determined the crystal structure of a human CCR4-CAF1 complex and characterized its enzymatic and substrate recognition properties. The structure reveals specific molecular details affecting RNA binding and hydrolysis, and confirms the CCR4 nuclease domain to be tethered flexibly with a considerable distance between both enzyme active sites. CCR4 and CAF1 sense nucleotide identity on both sides of the 3'-terminal phosphate, efficiently differentiating between single and consecutive non-A residues. In comparison to CCR4, CAF1 emerges as a surprisingly tunable enzyme, highly sensitive to pH, magnesium and zinc ions, and possibly allowing distinct reaction geometries. Our results support a picture of CAF1 as a primordial deadenylase, which gets assisted by CCR4 for better efficiency and by the assembled NOT proteins for selective mRNA targeting and regulation.
Insights
The CCR4-CAF1 complex
Area of Science:
- Biochemistry
- Molecular Biology
- Gene Expression Regulation
Background:
- The CCR4-CAF1 complex is crucial for mRNA deadenylation, a key step in gene expression regulation.
- Understanding the individual roles and properties of CCR4 and CAF1 is essential for comprehending posttranscriptional control.
Purpose of the Study:
- To determine the crystal structure of the human CCR4-CAF1 complex.
- To characterize the enzymatic and substrate recognition properties of CCR4 and CAF1.
Main Methods:
- X-ray crystallography
- Enzymatic assays
- Substrate specificity analysis
Main Results:
- The crystal structure revealed molecular details of RNA binding and hydrolysis, with flexible tethering between CCR4 and CAF1 active sites.
- Both CCR4 and CAF1 can differentiate nucleotide identity near the 3'-poly(A) tail.
- CAF1 exhibits tunable enzymatic activity sensitive to pH and metal ions (Mg2+, Zn2+).
Conclusions:
- CAF1 may represent a primordial deadenylase, with CCR4 enhancing efficiency and the NOT complex providing regulatory targeting.
- The findings provide insights into the distinct yet cooperative roles of CCR4 and CAF1 in mRNA deadenylation.
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