Phospho-Proteomic Analysis of Cardiac Dyssynchrony and Resynchronization Therapy.

Proteomics

Department of Cell and Molecular Physiology, Stritch School of Medicine, Loyola University Chicago, Maywood, IL, USA.

Published: October 2018

AI Article Synopsis

  • Cardiac dyssynchrony in heart failure (HF) leads to increased morbidity and mortality due to conduction problems, and cardiac resynchronization therapy (CRT) aims to improve heart function but its underlying mechanisms are not well understood.
  • Researchers examined how HF affects the phospho-proteome (the phosphorylation of proteins) and how CRT influences this by analyzing samples from dog models with control, HF, and CRT conditions, revealing 209 regulated phospho-sites.
  • The study found that HF leads to hyper-phosphorylation, particularly in tyrosine phosphorylation, with CK2 signaling being significantly involved, suggesting potential therapeutic targets that could enhance the effectiveness of CRT in future treatments.

Article Abstract

Cardiac dyssynchrony arises from conduction abnormalities during heart failure and worsens morbidity and mortality. Cardiac resynchronization therapy (CRT) re-coordinates contraction using bi-ventricular pacing, but the cellular and molecular mechanisms involved remain largely unknown. The aim is to determine how dyssynchronous heart failure (HF ) alters the phospho-proteome and how CRT interacts with this unique phospho-proteome by analyzing Ser/Thr and Tyr phosphorylation. Phospho-enriched myocardium from dog models of Control, HF , and CRT is analyzed via MS. There were 209 regulated phospho-sites among 1761 identified sites. Compared to Con and CRT, HF is hyper-phosphorylated and tyrosine phosphorylation is more likely to be involved in signaling that increased with HF and was exacerbated by CRT. For each regulated site, the most-likely targeting-kinase is predicted, and CK2 is highly specific for sites that are "fixed" by CRT, suggesting activation of CK2 signaling occurs in HF that is reversed by CRT, which is supported by western blot analysis. These data elucidate signaling networks and kinases that may be involved and deserve further study. Importantly, a possible role for CK2 modulation in CRT has been identified. This may be harnessed in the future therapeutically to compliment CRT, improving its clinical effects.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6417799PMC
http://dx.doi.org/10.1002/pmic.201800079DOI Listing

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