Insights into therapeutic targets and biomarkers using integrated multi-'omics' approaches for dilated and ischemic

Austė Kanapeckaitė1, Neringa Burokienė2

  • 1Algorithm379, Laisvės g. 7, Vilnius LT-12007, Lithuania.

Insights

This study integrates multi-omics data to reveal heart failure (HF) networks and therapeutic targets. It develops a machine learning approach to identify biomarkers and understand disease mechanisms in cardiomyopathies.

Area of Science:

  • Cardiovascular Research
  • Genomics and Proteomics
  • Computational Biology

Background:

  • Current heart failure (HF) treatments manage symptoms based on left ventricle dysfunction severity.
  • A lack of systemic 'omics' studies hinders understanding of HF's heterogeneous mechanisms, necessitating network-centric and data mining approaches.

Purpose of the Study:

  • To integrate bulk and single-cell RNA sequencing with proteomics to identify HF-specific networks and potential therapeutic targets or biomarkers.
  • To address challenges with limited sample sizes using statistical models, data enrichment, and machine learning.
  • To differentiate mechanisms in dilated cardiomyopathies (DCs) and ischemic cardiomyopathies (ICs) using multi-omics data.

Main Methods:

  • Integrated analysis of bulk and single-cell RNA sequencing and proteomics from human heart tissue.
  • Application of statistical models and enrichment with public datasets.
  • Development and use of a two-step machine learning algorithm with a novel scoring system for target/biomarker tractability prediction.

Main Results:

  • Uncovered HF-specific gene expression profiles and networks.
  • Identified potential therapeutic targets and biomarkers for HF.
  • Differentiated subtle molecular changes between dilated and ischemic cardiomyopathies at single-cell, proteomic, and transcriptomic levels.
  • Highlighted the role of non-cardiomyocyte cell populations and identified tissue remodeling and inflammatory processes.

Conclusions:

  • The integrated multi-omics and machine learning methodology aids in pre-clinical target/biomarker selection and evaluation for HF.
  • The study provides new insights into the complex etiology of HF, distinguishing between DC and IC.
  • Findings support targeted pharmacological management based on specific cardiomyopathies and identified cellular processes.

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