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Published on: August 29, 2018
Phosphoproteomic profiling of human myocardial tissues distinguishes ischemic from non-ischemic end stage heart
Matthew A Schechter1, Michael K H Hsieh1, Linda W Njoroge1
1Department of Surgery, Duke University Medical Center, Durham, North Carolina, United States of America.
Insights
Molecular differences in heart failure are unclear. This study found distinct protein phosphorylation patterns, not protein levels, differentiate ischemic and non-ischemic heart failure, paving the way for targeted therapies.
Area of Science:
- Cardiovascular Biology
- Proteomics
- Molecular Medicine
Background:
- Ischemic (IF) and non-ischemic (NIF) heart failure etiologies have poorly defined molecular differences.
- Understanding these differences is crucial for developing targeted heart failure therapeutics.
Purpose of the Study:
- To compare proteomic and phosphoproteomic profiles of myocardial tissue from IF and NIF patients.
- To identify molecular distinctions that could inform etiology-specific treatments.
Main Methods:
- Proteomic and phosphoproteomic profiling of left ventricular myocardial tissue.
- Quantitative analysis using nanoscale capillary liquid chromatography and mass spectrometry.
- Enrichment of phosphopeptides using titanium dioxide chromatography.
Main Results:
- Protein abundance did not differentiate IF from NIF.
- Significant alterations (≥ 2-fold, p<0.05) in phosphorylation state were observed in 37 peptides (26 proteins) between IF and NIF.
- Altered phosphorylation was specific to heart failure etiology and involved proteins in transcriptional regulation, cytoskeleton, cell signaling, apoptosis, and metabolism.
Conclusions:
- Phosphoproteomic analysis reveals significant post-translational differences between IF and NIF.
- These phosphorylation alterations are key molecular distinctions impacting cellular processes in heart failure phenotypes.
- Targeting these etiology-specific phosphorylation changes offers a promising strategy for developing more effective heart failure therapies.
Abstract:
The molecular differences between ischemic (IF) and non-ischemic (NIF) heart failure are poorly defined. A better understanding of the molecular differences between these two heart failure etiologies may lead to the development of more effective heart failure therapeutics. In this study extensive proteomic and phosphoproteomic profiles of myocardial tissue from patients diagnosed with IF or NIF were assembled and compared. Proteins extracted from left ventricular sections were proteolyzed and phosphopeptides were enriched using titanium dioxide resin. Gel- and label-free nanoscale capillary liquid chromatography coupled to high resolution accuracy mass tandem mass spectrometry allowed for the quantification of 4,436 peptides (corresponding to 450 proteins) and 823 phosphopeptides (corresponding to 400 proteins) from the unenriched and phospho-enriched fractions, respectively. Protein abundance did not distinguish NIF from IF. In contrast, 37 peptides (corresponding to 26 proteins) exhibited a ≥ 2-fold alteration in phosphorylation state (p<0.05) when comparing IF and NIF. The degree of protein phosphorylation at these 37 sites was specifically dependent upon the heart failure etiology examined. Proteins exhibiting phosphorylation alterations were grouped into functional categories: transcriptional activation/RNA processing; cytoskeleton structure/function; molecular chaperones; cell adhesion/signaling; apoptosis; and energetic/metabolism. Phosphoproteomic analysis demonstrated profound post-translational differences in proteins that are involved in multiple cellular processes between different heart failure phenotypes. Understanding the roles these phosphorylation alterations play in the development of NIF and IF has the potential to generate etiology-specific heart failure therapeutics, which could be more effective than current therapeutics in addressing the growing concern of heart failure.
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