Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 5 de 5
Filter
Add more filters










Database
Language
Publication year range
1.
Mol Cell ; 84(8): 1570-1584.e7, 2024 Apr 18.
Article in English | MEDLINE | ID: mdl-38537638

ABSTRACT

Spatiotemporal regulation of intracellular signaling molecules, such as the 3',5'-cyclic adenosine monophosphate (cAMP)-dependent protein kinase (PKA), ensures proper cellular function. Liquid-liquid phase separation (LLPS) of the ubiquitous PKA regulatory subunit RIα promotes cAMP compartmentation and signaling specificity. However, the molecular determinants of RIα LLPS remain unclear. Here, we reveal that two separate dimerization interfaces, combined with the cAMP-induced unleashing of the PKA catalytic subunit (PKA-C) from the pseudosubstrate inhibitory sequence, drive RIα condensate formation in the cytosol of mammalian cells, which is antagonized by docking to A-kinase anchoring proteins. Strikingly, we find that the RIα pseudosubstrate region is critically involved in forming a non-canonical R:C complex, which recruits active PKA-C to RIα condensates to maintain low basal PKA activity in the cytosol. Our results suggest that RIα LLPS not only facilitates cAMP compartmentation but also spatially restrains active PKA-C, thus highlighting the functional versatility of biomolecular condensates in driving signaling specificity.


Subject(s)
Cyclic AMP-Dependent Protein Kinase RIalpha Subunit , Phase Separation , Animals , Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/genetics , Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/chemistry , Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/metabolism , Signal Transduction , Cyclic AMP/metabolism , Cyclic AMP-Dependent Protein Kinases/metabolism , Mammals/metabolism
2.
bioRxiv ; 2023 Dec 11.
Article in English | MEDLINE | ID: mdl-38168176

ABSTRACT

Spatiotemporal regulation of intracellular signaling molecules, such as the 3',5'-cyclic adenosine monophosphate (cAMP)-dependent protein kinase (PKA), ensures the specific execution of various cellular functions. Liquid-liquid phase separation (LLPS) of the ubiquitously expressed PKA regulatory subunit RIα was recently identified as a major driver of cAMP compartmentation and signaling specificity. However, the molecular determinants of RIα LLPS remain unclear. Here, we reveal that two separate dimerization interfaces combined with the cAMP-induced release of the PKA catalytic subunit (PKA-C) from the pseudosubstrate inhibitory sequence are required to drive RIα condensate formation in cytosol, which is antagonized by docking to A-kinase anchoring proteins. Strikingly, we find that the RIα pseudosubstrate region is critically involved in the formation of a non-canonical R:C complex, which serves to maintain low basal PKA activity in the cytosol by enabling the recruitment of active PKA-C to RIα condensates. Our results suggest that RIα LLPS not only facilitates cAMP compartmentation but also spatially restrains active PKA-C, thus highlighting the functional versatility of biomolecular condensates in driving signaling specificity.

3.
J Biol Chem ; 296: 100746, 2021.
Article in English | MEDLINE | ID: mdl-33957122

ABSTRACT

It is difficult to imagine where the signaling community would be today without the Protein Data Bank. This visionary resource, established in the 1970s, has been an essential partner for sharing information between academics and industry for over 3 decades. We describe here the history of our journey with the protein kinases using cAMP-dependent protein kinase as a prototype. We summarize what we have learned since the first structure, published in 1991, why our journey is still ongoing, and why it has been essential to share our structural information. For regulation of kinase activity, we focus on the cAMP-binding protein kinase regulatory subunits. By exploring full-length macromolecular complexes, we discovered not only allostery but also an essential motif originally attributed to crystal packing. Massive genomic data on disease mutations allows us to now revisit crystal packing as a treasure chest of possible protein:protein interfaces where the biological significance and disease relevance can be validated. It provides a new window into exploring dynamic intrinsically disordered regions that previously were deleted, ignored, or attributed to crystal packing. Merging of crystallography with cryo-electron microscopy, cryo-electron tomography, NMR, and millisecond molecular dynamics simulations is opening a new world for the signaling community where those structure coordinates, deposited in the Protein Data Bank, are just a starting point!


Subject(s)
Cyclic AMP-Dependent Protein Kinases/chemistry , Cyclic AMP-Dependent Protein Kinases/history , Animals , Cryoelectron Microscopy , History, 20th Century , History, 21st Century , Humans , Molecular Dynamics Simulation , Nuclear Magnetic Resonance, Biomolecular , Protein Structure, Quaternary , Structure-Activity Relationship
4.
J Biol Chem ; 291(12): 6182-99, 2016 Mar 18.
Article in English | MEDLINE | ID: mdl-26797121

ABSTRACT

Morphology of migrating cells is regulated by Rho GTPases and fine-tuned by protein interactions and phosphorylation. PKA affects cell migration potentially through spatiotemporal interactions with regulators of Rho GTPases. Here we show that the endogenous regulatory (R) subunit of type I PKA interacts with P-Rex1, a Rac guanine nucleotide exchange factor that integrates chemotactic signals. Type I PKA holoenzyme interacts with P-Rex1 PDZ domains via the CNB B domain of RIα, which when expressed by itself facilitates endothelial cell migration. P-Rex1 activation localizes PKA to the cell periphery, whereas stimulation of PKA phosphorylates P-Rex1 and prevents its activation in cells responding to SDF-1 (stromal cell-derived factor 1). The P-Rex1 DEP1 domain is phosphorylated at Ser-436, which inhibits the DH-PH catalytic cassette by direct interaction. In addition, the P-Rex1 C terminus is indirectly targeted by PKA, promoting inhibitory interactions independently of the DEP1-PDZ2 region. A P-Rex1 S436A mutant construct shows increased RacGEF activity and prevents the inhibitory effect of forskolin on sphingosine 1-phosphate-dependent endothelial cell migration. Altogether, these results support the idea that P-Rex1 contributes to the spatiotemporal localization of type I PKA, which tightly regulates this guanine exchange factor by a multistep mechanism, initiated by interaction with the PDZ domains of P-Rex1 followed by direct phosphorylation at the first DEP domain and putatively indirect regulation of the C terminus, thus promoting inhibitory intramolecular interactions. This reciprocal regulation between PKA and P-Rex1 might represent a key node of integration by which chemotactic signaling is fine-tuned by PKA.


Subject(s)
Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/metabolism , Guanine Nucleotide Exchange Factors/metabolism , Cell Membrane/enzymology , Cell Movement , Chemokine CXCL12/physiology , Cyclic AMP-Dependent Protein Kinase Catalytic Subunits/chemistry , Cyclic AMP-Dependent Protein Kinase Catalytic Subunits/metabolism , Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/chemistry , Endothelial Cells/physiology , Guanine Nucleotide Exchange Factors/chemistry , HEK293 Cells , Humans , Phosphorylation , Protein Binding , Protein Interaction Domains and Motifs , Protein Processing, Post-Translational , Protein Transport , Signal Transduction , Two-Hybrid System Techniques
5.
Structure ; 22(1): 59-69, 2014 Jan 07.
Article in English | MEDLINE | ID: mdl-24316401

ABSTRACT

The regulatory (R) subunit is the cAMP receptor of protein kinase A. Following cAMP binding, the inactive PKA holoenzyme complex separates into two active catalytic (C) subunits and a cAMP-bound R dimer. Thus far, only monomeric R structures have been solved, which fell short in explaining differences of cAMP binding for the full-length protein as compared to the truncated R subunits. Here we solved a full-length R-dimer structure that reflects the biologically relevant conformation, and this structure agrees well with small angle X-ray scattering. An isoform-specific interface is revealed between the protomers. This interface acts as an intermolecular sensor for cAMP and explains the cooperative character of cAMP binding to the RIα dimer. Mutagenesis of residues on this interface not only leads to structural and biochemical changes, but is also linked to Carney complex disease.


Subject(s)
Carney Complex/metabolism , Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/chemistry , Cyclic AMP/chemistry , Amino Acid Sequence , Animals , Carney Complex/genetics , Carney Complex/pathology , Catalytic Domain , Cattle , Crystallography, X-Ray , Cyclic AMP/metabolism , Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/genetics , Cyclic AMP-Dependent Protein Kinase RIalpha Subunit/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Expression Regulation , Humans , Models, Molecular , Molecular Sequence Data , Mutation , Protein Binding , Protein Multimerization , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Signal Transduction
SELECTION OF CITATIONS
SEARCH DETAIL
...