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Keren-Raifman, T.

Publications and source records attributed to Keren-Raifman, T..

2 recordsLinked to original sources

Live-cell quantitative monitoring reveals distinct, high-affinity Gβγ regulations of GIRK2 and GIRK1/2 channels

Gi/o protein-coupled receptors (GPCRs) inhibit cardiac and neuronal excitability via G protein-activated K+ channels (GIRK), assembled by combinations of GIRK1 - GIRK4 subunits. GIRKs are activated by direct binding of the G{beta}{gamma} dimer of inhibitory Gi/o proteins. However, key aspects of this textbook signaling pathway remain debated. Recent studies suggested no Gi/o-GIRK pre-coupling and low (>250 {micro}M) G{beta}{gamma}-GIRK interaction affinity, contradicting earlier sub-{micro}M estimates and implying low signaling efficiency. We show that G{gamma} prenylation, which mediates G{beta}{gamma} membrane attachment required for GIRK activation, also contributes to the G{beta}{gamma}-GIRK interaction, explaining the poor affinity obtained with non-prenylated G{beta}{gamma}. Using quantitative protein titration and electrophysiology in live Xenopus oocytes, G{beta}{gamma} affinity for homotetrameric GIRK2 ranged from 4-30 {micro}M. Heterotetrameric GIRK1/2 showed a higher G{beta}{gamma} apparent affinity due to unique G{beta}{gamma}-docking site (anchor) in GIRK1, which enriches G{beta}{gamma} at the channel. Biochemical approaches and molecular dynamic simulations revealed that the G{beta}{gamma} anchor is formed by interacting N-terminal and distal C-terminal domains of the GIRK1 subunits, distinct from the G{beta}{gamma}-binding "activation" site(s) underlying channel opening. Thus, the affinity of G{beta}{gamma}-GIRK interaction is within the expected physiological range, while dynamic pre-coupling of G{beta}{gamma} to GIRK1-containing channels through high-affinity interactions further enhances the GPCR-Gi/o-GIRK signaling efficiency.

physiology↗

Tripartite interactions of PKA catalytic subunit and C-terminal domains of cardiac Ca2+ channel modulate its β-adrenergic regulation

The adrenergic nervous system augments cardiac contraction by increasing the activity of L-type voltage-gated CaV1.2 channels. Dysregulation of this process is linked to severe cardiac dysfunctions. The signaling cascade involves activation of {beta}-adrenergic receptors, elevation of cAMP levels, separation of protein kinase A (PKA) regulatory subunit (PKAR) from catalytic subunit (PKAC), and phosphorylation of the inhibitory protein Rad leading to increased Ca2+ influx. In cardiomyocytes, the core subunit of CaV1.2 (1C) exists in two forms: full-length (FL) or proteolytically processed (truncated), lacking the distal C-terminus (dCT). Specificity and efficiency in the cascade are believed to emanate from unique protein-protein interactions, such as anchoring PKA (via PKAR) to 1C by A-kinase anchoring proteins (AKAPs). However, most AKAPs do not interact with the truncated 1C, and their role in {beta}AR regulation of cardiac CaV1.2 remains unclear. Here we show that PKAC, independently of PKAR or AKAPs, directly interacts with 1C at two domains in 1C-CT: the proximal and distal C-terminal regulatory domains (PCRD and DCRD), which also interact with each other. Furthermore, we find that DCRD competes with PCRD and reduces its interaction with PKAC. The physiological consequences of these complex interactions are incompletely understood; our data suggest that they may fine-tune the {beta}AR regulation of CaV1.2. We propose that the newly discovered interactions take part in governing colocalization of regulatory proteins within the {beta}AR-CaV1.2 multimolecular signaling complexes in cardiomyocytes.

biochemistry↗