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Updated: Jun 29, 2025

Multi-target Parallel Processing Approach for Gene-to-structure Determination of the Influenza Polymerase PB2 Subunit
Published on: June 28, 2013
Structural characterization of methylation-independent PP2A assembly guides alphafold2Multimer prediction of
Franziska Wachter1, Radosław P Nowak2, Scott Ficarro3
1Department of Pediatric Oncology, Dana-Farber Cancer Institute, Boston, Massachusetts, USA; Department of Cancer Biology, Dana-Farber Cancer Institute, Boston, Massachusetts, USA; Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts, USA.
Abstract:
Dysregulation of phosphorylation-dependent signaling is a hallmark of tumorigenesis. Protein phosphatase 2 (PP2A) is an essential regulator of cell growth. One scaffold subunit (A) binds to a catalytic subunit (C) to form a core AC heterodimer, which together with one of many regulatory (B) subunits forms the active trimeric enzyme. The combinatorial number of distinct PP2A complexes is large, which results in diverse substrate specificity and subcellular localization. The detailed mechanism of PP2A assembly and regulation remains elusive and reports about an important role of methylation of the carboxy terminus of PP2A C are conflicting. A better understanding of the molecular underpinnings of PP2A assembly and regulation is critical to dissecting PP2A function in physiology and disease. Here, we combined biochemical reconstitution, mass spectrometry, X-ray crystallography, and functional assays to characterize the assembly of trimeric PP2A. In vitro studies demonstrated that methylation of the carboxy-terminus of PP2A C was dispensable for PP2A assembly in vitro. To corroborate these findings, we determined the X-ray crystal structure of the unmethylated PP2A Aα-B56ε-Cα trimer complex to 3.1 Å resolution. The experimental structure superimposed well with an Alphafold2Multimer prediction of the PP2A trimer. We then predicted models of all canonical PP2A complexes providing a framework for structural analysis of PP2A. In conclusion, methylation was dispensable for trimeric PP2A assembly and integrative structural biology studies of PP2A offered predictive models for all canonical PP2A complexes.
Insights
Methylation of Protein Phosphatase 2 (PP2A) C-terminus is not essential for PP2A assembly. Structural biology studies provide models for all PP2A complexes, aiding in understanding cell growth regulation.
Area of Science:
- Molecular biology
- Structural biology
- Biochemistry
Background:
- Protein Phosphatase 2 (PP2A) is crucial for regulating cell growth, with dysregulated signaling linked to cancer.
- PP2A functions as a trimeric enzyme composed of scaffold (A), catalytic (C), and regulatory (B) subunits, forming diverse complexes with varied functions.
- The precise mechanisms of PP2A assembly and regulation, particularly the role of C-terminal methylation, remain unclear.
Purpose of the Study:
- To investigate the role of carboxy-terminal methylation in PP2A assembly and regulation.
- To determine the structural basis of PP2A trimer formation.
- To develop predictive models for various PP2A complexes.
Main Methods:
- Biochemical reconstitution assays.
- Mass spectrometry.
- X-ray crystallography of the PP2A Aα-B56ε-Cα trimer.
- Functional assays.
- AlphaFold2Multimer prediction and integrative structural biology.
Main Results:
- In vitro studies confirmed that methylation of the PP2A C-terminus is dispensable for PP2A assembly.
- The X-ray crystal structure of the unmethylated PP2A Aα-B56ε-Cα trimer was determined at 3.1 Å resolution.
- The experimental structure closely matched AlphaFold2Multimer predictions, validating the modeling approach.
- Predictive models for all canonical PP2A complexes were generated.
Conclusions:
- Methylation of the PP2A C-terminus is not required for the assembly of the trimeric enzyme.
- Integrative structural biology approaches provide valuable predictive models for understanding diverse PP2A complexes.
- This research offers a framework for dissecting PP2A's role in physiology and disease.
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