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Structure of a PKA RIα Recurrent Acrodysostosis Mutant Explains Defective cAMP-Dependent Activation
Jessica Gh Bruystens1, Jian Wu2, Audrey Fortezzo1
1Department of Chemistry and Biochemistry, University of California at San Diego, La Jolla, CA 92093, USA.
Abstract:
Most disease-related mutations that impair cAMP protein kinase A (PKA) signaling are present within the regulatory (R) PKA RI alpha-subunit (RIα). Although mutations in the PRKAR1A gene are linked to Carney complex (CNC) disease and, more recently, to acrodysostosis-1 (ACRDYS1), the two diseases show contrasting phenotypes. While CNC mutations cause increased PKA activity, ACRDYS1 mutations result in decreased PKA activity and cAMP resistant holoenzymes. Mapping the ACRDYS1 disease mutations reveals their localization to the second of two tandem cAMP-binding (CNB) domains (CNB-B), and here, we characterize a recurrent deletion mutant where the last 14 residues are missing. The crystal structure of a monomeric form of this mutant (RIα92-365) bound to the catalytic (C)-subunit reveals the dysfunctional regions of the RIα subunit. Beyond the missing residues, the entire capping motif is disordered (residues 357-379) and explains the disrupted cAMP binding. Moreover, the effects of the mutation extend far beyond the CNB-B domain and include the active site and N-lobe of the C-subunit, which is in a partially open conformation with the C-tail disordered. A key residue that contributes to this crosstalk, D267, is altered in our structure, and we confirmed its functional importance by mutagenesis. In particular, the D267 interaction with Arg241, a residue shown earlier to be important for allosteric regulation, is disrupted, thereby strengthening the interaction of D267 with the C-subunit residue Arg194 at the R:C interface. We see here how the switch between active (cAMP-bound) and inactive (holoenzyme) conformations is perturbed and how the dynamically controlled crosstalk between the helical domains of the two CNB domains is necessary for the functional regulation of PKA activity.
Insights
Acaracterization of a protein kinase A (PKA) regulatory subunit RIα deletion mutant reveals how mutations disrupt cAMP binding and PKA activity, impacting diseases like acrodysostosis-1.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Mutations in the PRKAR1A gene, encoding the PKA RIα subunit, are linked to Carney complex and acrodysostosis-1, presenting distinct PKA activity phenotypes.
- ACRDYS1 mutations, specifically in the CNB-B domain of RIα, lead to decreased PKA activity and cAMP-resistant holoenzymes.
Purpose of the Study:
- To characterize a recurrent deletion mutant (RIα92-365) of the PKA RIα subunit lacking the final 14 residues.
- To elucidate the structural basis for disrupted cAMP binding and PKA regulation in ACRDYS1 disease.
Main Methods:
- Crystal structure determination of the RIα92-365 mutant bound to the catalytic (C)-subunit.
- Site-directed mutagenesis to confirm the functional importance of key residues.
Main Results:
- The deletion mutant exhibits a disordered capping motif, explaining impaired cAMP binding.
- Structural analysis reveals altered interactions within the RIα subunit and with the C-subunit, including a partially open C-subunit conformation.
- Mutagenesis confirmed the critical role of residue D267 in mediating crosstalk and regulating PKA activity.
Conclusions:
- The study provides structural insights into how ACRDYS1 mutations perturb the PKA holoenzyme conformation and regulation.
- Disruption of dynamic crosstalk between cAMP-binding domains is essential for PKA functional regulation.
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