Mayer Rashtian
About
Mayer Rashtian, M.D., F.A.C.C., F.H.R.S., is a cardiologist and clinical cardiac electrophysiologist practicing in Pasadena, California, where he is affiliated with Foothill Cardiology. His clinical focus encompasses cardiac rhythm disorders and device-based therapies, with particular depth in leadless pacing systems.
His peer-reviewed research, published across journals including Heart Rhythm, Circulation, Circulation: Arrhythmia and Electrophysiology, the Journal of Cardiovascular Electrophysiology, and Europace, spans more than two dozen publications. Recent work addresses dual-chamber leadless pacemakers, including studies on atrioventricular synchrony, battery conservation through novel pacing modes, helix-fixation implant experience, one-year safety and performance outcomes, temperature-based rate response, and retrieval of chronically implanted devices in animal models.
Dr. Rashtian has served as a retained expert in federal litigation. Court records from the United States Court of Federal Claims reflect his engagement as a petitioner's expert in a vaccine injury proceeding, where he submitted an expert report and supporting medical literature in his capacity as a cardiologist and electrophysiologist. He is licensed in California.
Credentials
Publications
- Upgrading expandable leadless pacemakers from single- to dual-chamber.
- Atrioventricular synchrony maintained by a dual-chamber leadless pacemaker in real-world conditions.
- Novel Pacing Mode Conserves Battery in Dual-Chamber Leadless Pacemakers.
- Commercial Implant Experience of a Helix-Fixation Dual-Chamber Leadless Pacemaker.
- One-Year Safety and Performance of a Dual-Chamber Leadless Pacemaker.
- Temperature-based rate response in a leadless pacemaker system.
- Atrioventricular Synchrony Delivered by a Dual-Chamber Leadless Pacemaker System.
- Retrieval of Chronically Implanted Dual-chamber Leadless Pacemakers in an Ovine Model.
- A Dual-Chamber Leadless Pacemaker.
- Dual-chamber leadless pacing: Atrioventricular synchrony in preclinical models of normal or blocked atrioventricular conduction.
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