Publications
189
Citations
2,259
Est. group size
~12
Recurring co-author estimate
Active years
60
Publishing since 1967
Seth H. Weinberg's research uses computational and mathematical models to understand how heart cells generate and coordinate their electrical activity, including how this can go wrong in arrhythmias (irregular heartbeats) such as Long QT syndrome. His work also touches on related bioelectric processes in other cell types, such as calcium signaling in cancer cells and cell migration mechanics. Much of the work combines simulation, data assimilation (a technique for estimating hidden model parameters from data), and biophysical experiments to link ion channel behavior to whole-cell and tissue-level heart function.
Publication output rose from single digits in 2017 to a peak around 2021-2023, then has tapered off somewhat in the most recent years (2024-2026), averaging about 13 papers per year over the last five years.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- BPS2026 – Reconstructing cardiac dynamics and model parameters using data assimilation
Biophysical Journal · 2026
- BPS2026 – Computational modeling of pediatric atrial electrophysiology: Age-dependent biomarkers and the role of patient-specific heart rates
Biophysical Journal · 2026
- BPS2026 - Predicting long QT type 3 arrhythmia risk for variable extracellular ionic concentrations
Biophysical Journal · 2026
- Dissecting Gap Junctional and Ephaptic Contributions to Electrical Conduction in a Novel Cardiomyocyte Pair Model
bioRxiv (Cold Spring Harbor Laboratory) · 2026
- EN-527957-005 A NOVEL PAIRED–MYOCYTE MODEL TO INVESTIGATE TWO PRIMARY MECHANISMS OF CARDIAC ELECTRICAL CONDUCTION
Heart Rhythm · 2026
- A Step Forward in Translating Sex-Specific Differences in Cardiac Electrophysiology
JACC. Clinical electrophysiology · 2025
- Hypernatremia Enhances Transient Outward Potassium and Late Sodium Currents in a Mouse Model of Long QT Syndrome Type 3
bioRxiv (Cold Spring Harbor Laboratory) · 2025
- The bioelectric mechanisms of local calcium dynamics in cancer cell proliferation: an extension of the A549 in silico cell model
Frontiers in Molecular Biosciences · 2024
- Sequence‐Dependent Repolarization Is Modulated by Endogenous Action Potential Duration Gradients Rather Than Electrical Coupling in Ventricular Myocardium
Journal of the American Heart Association · 2024
- Reconstructing ventricular cardiomyocyte dynamics and parameter estimation using data assimilation
Biophysical Journal · 2024
- The Arp2/3 complex enhances cell migration on elastic substrates
Molecular Biology of the Cell · 2023
- Role of ephaptic coupling in discordant alternans domain sizes and action potential propagation in the heart
Physical review. E · 2023
- Ephaptic Coupling as a Resolution to the Paradox of Action Potential Wave Speed and Discordant Alternans Spatial Scales in the Heart
Physical Review Letters · 2023
- Sodium channel subpopulations with distinct biophysical properties and subcellular localization enhance cardiac conduction
The Journal of General Physiology · 2023
- Bacterial sodium channels as gene therapy for cardiac arrhythmia: slow (activation and inactivation kinetics) and steady wins the race
American Journal of Physiology-Heart and Circulatory Physiology · 2023
- Biophysical Journal×51
- bioRxiv (Cold Spring Harbor Laboratory)×13
- VCU Scholars Compass (Virginia Commonwealth University)×8
- JACC. Clinical electrophysiology×7
- American Journal of Physiology-Heart and Circulatory Physiology×6
- Sándor Györke
Medicine · The Ohio State University
- Isabelle Deschênes
Medicine · The Ohio State University
- Nicolae Moise
Medicine · The Ohio State University
- Rengasayee Veeraraghavan
Medicine · The Ohio State University
- Dmitry Terentyev
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