Personalized Models of Human Atrial Electrophysiology Derived From Endocardial Electrograms

IEEE Trans Biomed Eng. 2017 Apr;64(4):735-742. doi: 10.1109/TBME.2016.2574619. Epub 2016 May 30.

Abstract

Objective: Computational models represent a novel framework for understanding the mechanisms behind atrial fibrillation (AF) and offer a pathway for personalizing and optimizing treatment. The characterization of local electrophysiological properties across the atria during procedures remains a challenge. The aim of this work is to characterize the regional properties of the human atrium from multielectrode catheter measurements.

Methods: We propose a novel method that characterizes regional electrophysiology properties by fitting parameters of an ionic model to conduction velocity and effective refractory period restitution curves obtained by a s1-s2 pacing protocol applied through a multielectrode catheter. Using an in-silico dataset we demonstrate that the fitting method can constrain parameters with a mean error of 21.9 ± 16.1% and can replicate conduction velocity and effective refractory curves not used in the original fitting with a relative error of 4.4 ± 6.9%.

Results: We demonstrate this parameter estimation approach on five clinical datasets recorded from AF patients. Recordings and parametrization took approx. 5 and 6 min, respectively. Models fitted restitution curves with an error of ~ 5% and identify a unique parameter set. Tissue properties were predicted using a two-dimensional atrial tissue sheet model. Spiral wave stability in each case was predicted using tissue simulations, identifying distinct stable (2/5), meandering and breaking up (2/5), and unstable self-terminating (1/5) spiral tip patterns for different cases.

Conclusion and significance: We have developed and demonstrated a robust and rapid approach for personalizing local ionic models from a clinically tractable.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Algorithms
  • Atrial Fibrillation / diagnosis
  • Atrial Fibrillation / physiopathology
  • Atrial Function*
  • Body Surface Potential Mapping / methods*
  • Computer Simulation
  • Diagnosis, Computer-Assisted / methods*
  • Electrophysiologic Techniques, Cardiac / methods*
  • Endocardium / physiopathology
  • Heart Conduction System / physiopathology*
  • Humans
  • Models, Cardiovascular*
  • Reproducibility of Results
  • Sensitivity and Specificity