4.8 Article

Single nucleotide polymorphisms alter kinase anchoring and the subcellular targeting of A-kinase anchoring proteins

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1816614115

Keywords

AKAPs; PKA; proximity labeling; kinase anchoring; nucleus

Funding

  1. National Institutes of Health [5R01DK105542, 1R01DK119192, R01HL098200, R01HL121059]
  2. NATIONAL HEART, LUNG, AND BLOOD INSTITUTE [R01HL121059, R01HL098200] Funding Source: NIH RePORTER
  3. NATIONAL INSTITUTE OF DIABETES AND DIGESTIVE AND KIDNEY DISEASES [R01DK119192, R01DK105542, T32DK007247] Funding Source: NIH RePORTER
  4. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [T32GM007750] Funding Source: NIH RePORTER
  5. OFFICE OF THE DIRECTOR, NATIONAL INSTITUTES OF HEALTH [S10OD021502] Funding Source: NIH RePORTER

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A-kinase anchoring proteins (AKAPs) shape second-messenger signaling responses by constraining protein kinase A (PKA) at precise intracellular locations. A defining feature of AKAPs is a helical region that binds to regulatory subunits (RII) of PKA. Mining patient-derived databases has identified 42 nonsynonymous SNPs in the PKA-anchoring helices of five AKAPs. Solid-phase RII binding assays confirmed that 21 of these amino acid substitutions disrupt PKA anchoring. The most deleterious side-chain modifications are situated toward C-termini of AKAP helices. More extensive analysis was conducted on a valine-to-methionine variant in the PKA-anchoring helix of AKAP18. Molecular modeling indicates that additional density provided by methionine at position 282 in the AKAP18 gamma isoform deflects the pitch of the helical anchoring surface outward by 6.6 degrees. Fluorescence polarization measurements show that this subtle topological change reduces RII-binding affinity 8.8-fold and impairs cAMP responsive potentiation of L-type Ca2+ currents in situ. Live-cell imaging of AKAP18 gamma V282M-GFP adducts led to the unexpected discovery that loss of PKA anchoring promotes nuclear accumulation of this polymorphic variant. Targeting proceeds via a mechanism whereby association with the PKA holoenzyme masks a polybasic nuclear localization signal on the anchoring protein. This led to the discovery of AKAP18 epsilon: an exclusively nuclear isoform that lacks a PKA-anchoring helix. Enzyme-mediated proximity-proteomics reveal that compartment-selective variants of AKAP18 associate with distinct binding partners. Thus, naturally occurring PKA-anchoringdefective AKAP variants not only perturb dissemination of local second-messenger responses, but also may influence the intracellular distribution of certain AKAP18 isoforms.

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