Publications
65
Citations
886
Est. group size
~8
Recurring co-author estimate
Active years
32
Publishing since 1995
Nicolae Moise studies the electrical activity of heart cells using computational models, focusing on how tiny structural features between cells, calcium regulation, and genetic variability contribute to heart rhythm problems like atrial fibrillation and long QT syndrome. This work combines simulation-based modeling with insights from cell biology to understand conditions such as heart failure and pediatric heart development. The research is aimed at explaining why some people are more prone to dangerous heart rhythms than others.
Publication output grew sharply starting around 2021 and has remained steady at a high level (roughly 8-9 papers per year) through 2024, after minimal activity earlier in the decade.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- BPS2026 - Intercalated disc nanostructure regulates local ionic currents and cardiac conduction
Biophysical Journal · 2026
- BPS2026 - Sinoatrial node network structure emerges from adaptive gap junction plasticity
Biophysical Journal · 2026
- Interplay between variability in intrinsic cellular properties and heart failure-associated remodeling in a simulated population with human heart failure
Journal of Molecular and Cellular Cardiology · 2025
- Electrodiffusion in cardiac intercalated disc nanostructures alters cell–cell action potential transmission via ephaptic coupling: A model study
The Journal of Physiology · 2025
- Calcium Homeostatic Feedback Control Predicts Atrial Fibrillation Initiation, Remodeling, and Progression
JACC. Clinical electrophysiology · 2025
- The influence of intercalated disk nanostructure on local ionic currents and cardiac conduction
Biophysical Journal · 2025
- Connecting transcriptomics with computational modeling to reveal developmental adaptations in pediatric human atrial tissue
American Journal of Physiology-Heart and Circulatory Physiology · 2024
- Atrial fibrillation initiation and organization in a mechanistic model of atrial remodeling and calcium homeostatic regulation
Biophysical Journal · 2024
- Connecting Transcriptomics with Computational Modeling to Reveal Developmental Adaptations in the Human Pediatric Myocardium
bioRxiv (Cold Spring Harbor Laboratory) · 2024
- Interplay between beta-adrenergic signaling and ion channel expression elucidate remodeling and arrhythmia risk in a simulated population of human ventricular myocytes with heart failure
Biophysical Journal · 2024
- Changes in cardiac maturation from birth through adolescence: Effects on cardiac electrophysiology
Biophysical Journal · 2024
- Calcium homeostatic feedback control predicts atrial fibrillation initiation, remodeling, and progression
bioRxiv (Cold Spring Harbor Laboratory) · 2024
- Emergent activity, heterogeneity, and robustness in a calcium feedback model of the sinoatrial node
Biophysical Journal · 2023
- Modeling incomplete penetrance in long QT syndrome type 3 (LQT3) through ion channel heterogeneity: An in silico population study
Biophysical Journal · 2023
- Emergent pacemaking and tissue heterogeneity in a calcium feedback regulatory model of the sinoatrial node
Biophysical Journal · 2023
- Biophysical Journal×16
- bioRxiv (Cold Spring Harbor Laboratory)×6
- JACC. Clinical electrophysiology×4
- Journal of Theoretical Biology×3
- The Journal of Physiology×3
- Przemysław Radwański
Medicine · The Ohio State University
- Rengasayee Veeraraghavan
Medicine · The Ohio State University
- Heather L. Struckman
Medicine · The Ohio State University
- Isabelle Deschênes
Medicine · The Ohio State University
- Sándor Györke
Medicine · The Ohio State University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
Claim or correct this profile