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Related Concept Videos

Blood Studies for Cardiovascular System I: Cardiac Biomarkers01:20

Blood Studies for Cardiovascular System I: Cardiac Biomarkers

Cardiac biomarkers are enzymes, proteins, and hormones released into the blood when cardiac cells are injured. They are powerful tools for triaging.
The essential diagnostic tools for detecting myocardial necrosis and monitoring individuals suspected of having acute coronary syndrome (ACS) include:
Troponins
Troponins, particularly cardiac troponins I and T, are the most precise and sensitive markers of myocardial injury. They are detectable within 4-6 hours of myocardial injury and remain...

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BeatProfiler: Multimodal In Vitro Analysis of Cardiac Function Enables Machine Learning Classification of Diseases

Youngbin Kim1, Kunlun Wang1, Roberta I Lock1

  • 1Department of Biomedical EngineeringColumbia University New York NY 10032 USA.

IEEE Open Journal of Engineering in Medicine and Biology
|April 12, 2024
PubMed
Summary

BeatProfiler offers a faster, more accurate way to analyze cardiac function and calcium handling in vitro. This tool aids in deep phenotyping and classifying cardiac diseases and drug responses with high accuracy.

Keywords:
Calcium handlingcardiac analysiscontractile functiondrug responsemachine learning (ML)

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Area of Science:

  • Cardiovascular Biology
  • Biophysics
  • Computational Biology

Background:

  • Cardiac contractile function and calcium handling are crucial for understanding heart physiology and disease.
  • Existing analytical methods for these metrics are often slow, error-prone, or require specialized resources.
  • There is a need for efficient and accurate tools for in vitro cardiac model analysis.

Purpose of the Study:

  • To develop and validate BeatProfiler, a suite of tools for quantifying cardiac contractile function and calcium handling in vitro.
  • To apply machine learning for deep phenotyping and classification of cardiac disease models and drug responses.
  • To improve the speed, accuracy, and robustness of cardiac function analysis.

Main Methods:

  • BeatProfiler was developed to analyze contractile and calcium signals from various in vitro cardiac models.
  • Benchmarking was performed against existing tools to assess accuracy, robustness, and speed.
  • Machine learning models, including feature-based ML and TCN-BiLSTM, were employed for classification tasks.
  • Grad-CAM was used to visualize drug perturbation signatures in calcium signals.

Main Results:

  • BeatProfiler demonstrated a 7 to 50-fold increase in analysis speed compared to existing methods.
  • It showed improved sensitivity and reduced false positives in signal detection.
  • BeatProfiler accurately classified restrictive cardiomyopathy models with 98% accuracy and cardiac drugs with 96% accuracy.
  • Key features distinguishing disease states and drug effects were identified.

Conclusions:

  • BeatProfiler significantly enhances the efficiency and accuracy of in vitro cardiac studies.
  • The tool facilitates rapid phenotyping and objective classification of cardiac diseases and drug responses.
  • BeatProfiler is expected to advance research into cardiac health, disease mechanisms, and therapeutic interventions.