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Published on: April 12, 2021
Molecular basis of human poly(A) polymerase recruitment by mPSF
Sofia Todesca1, Felix Sandmeir2, Achim Keidel1
1Department of Structural Cell Biology, Max Planck Institute of Biochemistry, 82152 Martinsried, Germany.
Abstract:
3' end processing of most eukaryotic precursor-mRNAs (pre-mRNAs) is a crucial cotranscriptional process that generally involves the cleavage and polyadenylation of the precursor transcripts. Within the human 3' end processing machinery, the four-subunit mammalian polyadenylation specificity factor (mPSF) recognizes the polyadenylation signal (PAS) in the pre-mRNA and recruits the poly(A) polymerase α (PAPOA) to it. To shed light on the molecular mechanisms of PAPOA recruitment to mPSF, we used a combination of cryogenic-electron microscopy (cryo-EM) single-particle analysis, computational structure prediction, and in vitro biochemistry to reveal an intricate interaction network. A short linear motif in the mPSF subunit FIP1 interacts with the structured core of human PAPOA, with a binding mode that is evolutionarily conserved from yeast to human. In higher eukaryotes, however, PAPOA contains a conserved C-terminal motif that can interact intramolecularly with the same residues of the PAPOA structured core used to bind FIP1. Interestingly, using biochemical assay and cryo-EM structural analysis, we found that the PAPOA C-terminal motif can also directly interact with mPSF at the subunit CPSF160. These results show that PAPOA recruitment to mPSF is mediated by two distinct intermolecular connections and further suggest the presence of mutually exclusive interactions in the regulation of 3' end processing.
Insights
Polyadenylation specificity factor (mPSF) recruits poly(A) polymerase α (PAPOA) to pre-mRNA via conserved and novel interactions. These findings reveal dual mechanisms regulating this crucial step in gene expression.
Area of Science:
- Molecular Biology
- Structural Biology
- Biochemistry
Background:
- 3' end processing of precursor-mRNAs (pre-mRNAs) is vital for eukaryotic gene expression.
- The mammalian polyadenylation specificity factor (mPSF) complex recruits poly(A) polymerase α (PAPOA) to the polyadenylation signal on pre-mRNAs.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying PAPOA recruitment to mPSF.
- To investigate the structural basis of the interaction network involved in 3' end processing.
Main Methods:
- Cryogenic-electron microscopy (cryo-EM) single-particle analysis.
- Computational structure prediction.
- In vitro biochemical assays.
Main Results:
- A conserved short linear motif in the mPSF FIP1 subunit binds the structured core of PAPOA.
- In higher eukaryotes, PAPOA's C-terminal motif interacts intramolecularly with its structured core.
- PAPOA's C-terminal motif also interacts with the mPSF CPSF160 subunit, suggesting dual recruitment pathways.
Conclusions:
- PAPOA recruitment to mPSF involves at least two distinct intermolecular connections.
- Mutually exclusive interactions likely regulate PAPOA binding and 3' end processing.
- The study reveals conserved and novel interaction modes in a fundamental gene expression process.
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