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1.
PLoS Biol ; 18(12): e3001018, 2020 12.
Artículo en Inglés | MEDLINE | ID: mdl-33370777

RESUMEN

When the J-domain of the heat shock protein DnaJB1 is fused to the catalytic (C) subunit of cAMP-dependent protein kinase (PKA), replacing exon 1, this fusion protein, J-C subunit (J-C), becomes the driver of fibrolamellar hepatocellular carcinoma (FL-HCC). Here, we use cryo-electron microscopy (cryo-EM) to characterize J-C bound to RIIß, the major PKA regulatory (R) subunit in liver, thus reporting the first cryo-EM structure of any PKA holoenzyme. We report several differences in both structure and dynamics that could not be captured by the conventional crystallography approaches used to obtain prior structures. Most striking is the asymmetry caused by the absence of the second cyclic nucleotide binding (CNB) domain and the J-domain in one of the RIIß:J-C protomers. Using molecular dynamics (MD) simulations, we discovered that this asymmetry is already present in the wild-type (WT) RIIß2C2 but had been masked in the previous crystal structure. This asymmetry may link to the intrinsic allosteric regulation of all PKA holoenzymes and could also explain why most disease mutations in PKA regulatory subunits are dominant negative. The cryo-EM structure, combined with small-angle X-ray scattering (SAXS), also allowed us to predict the general position of the Dimerization/Docking (D/D) domain, which is essential for localization and interacting with membrane-anchored A-Kinase-Anchoring Proteins (AKAPs). This position provides a multivalent mechanism for interaction of the RIIß holoenzyme with membranes and would be perturbed in the oncogenic fusion protein. The J-domain also alters several biochemical properties of the RIIß holoenzyme: It is easier to activate with cAMP, and the cooperativity is reduced. These results provide new insights into how the finely tuned allosteric PKA signaling network is disrupted by the oncogenic J-C subunit, ultimately leading to the development of FL-HCC.


Asunto(s)
Carcinoma Hepatocelular/genética , Subunidad RIIbeta de la Proteína Quinasa Dependiente de AMP Cíclico/metabolismo , Proteínas del Choque Térmico HSP40/metabolismo , Adenosina Trifosfato/metabolismo , Regulación Alostérica , Carcinoma Hepatocelular/metabolismo , Microscopía por Crioelectrón/métodos , AMP Cíclico/metabolismo , Subunidad RIIbeta de la Proteína Quinasa Dependiente de AMP Cíclico/genética , Subunidad RIIbeta de la Proteína Quinasa Dependiente de AMP Cíclico/ultraestructura , Subunidad RIalfa de la Proteína Quinasa Dependiente de AMP Cíclico/metabolismo , Proteínas Quinasas Dependientes de AMP Cíclico/genética , Proteínas Quinasas Dependientes de AMP Cíclico/metabolismo , Proteínas del Choque Térmico HSP40/genética , Proteínas del Choque Térmico HSP40/ultraestructura , Holoenzimas/metabolismo , Humanos , Neoplasias Hepáticas/genética , Simulación de Dinámica Molecular , Unión Proteica , Subunidades de Proteína/metabolismo , Proteínas Recombinantes de Fusión/genética , Dispersión del Ángulo Pequeño , Difracción de Rayos X/métodos
2.
J Mol Biol ; 428(24 Pt B): 4890-4904, 2016 12 04.
Artículo en Inglés | MEDLINE | ID: mdl-27825928

RESUMEN

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.


Asunto(s)
Subunidad RIalfa de la Proteína Quinasa Dependiente de AMP Cíclico/química , Subunidad RIalfa de la Proteína Quinasa Dependiente de AMP Cíclico/genética , AMP Cíclico/metabolismo , Disostosis/genética , Disostosis/patología , Discapacidad Intelectual/genética , Discapacidad Intelectual/patología , Proteínas Mutantes/química , Proteínas Mutantes/genética , Osteocondrodisplasias/genética , Osteocondrodisplasias/patología , Cristalografía por Rayos X , Subunidad RIalfa de la Proteína Quinasa Dependiente de AMP Cíclico/metabolismo , Humanos , Modelos Moleculares , Proteínas Mutantes/metabolismo , Unión Proteica , Conformación Proteica , Eliminación de Secuencia
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