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Biomedical subjects

J G Groen

Publications and source records attributed to J G Groen.

3 recordsLinked to original sources

New insights into onset mechanisms of atrial fibrillation and flutter after coronary artery bypass graft surgery.

OBJECTIVE: To determine by means of a monitoring study the onset mechanisms of atrial fibrillation (AF) after coronary artery bypass graft surgery (CABG). PATIENTS AND DESIGN: During elective CABG, 81 patients had one bipolar atrial and one ventricular epicardial electrode attached. These were connected to a Vitatron 900E external pacing device, which monitored the patients for four consecutive days. 12 lead ECGs were obtained if AF was clinically detected and Holter ECGs were obtained in 8 (33%) of these patients. RESULTS: 24 patients (30%) developed paroxysmal AF (50%), atrial flutter (17%), or both (33%). The number of AF episodes varied from 1-169 a day (median 5) and were usually of short duration (median 2.25 minutes). Pacemaker diagnostics showed much intrapatient and interpatient variability in onset mechanisms but the majority of AF onsets (71%) were preceded by either short runs of AF or multiple atrial extrasystoles. The final trigger was a conducted atrial extrasystole in 72% of cases. There were no bradycardic triggers. The Holter ECGs confirmed the device's data. CONCLUSIONS: The onset mechanisms of post-CABG AF are dominated by atrial extrasystoles with multiple atrial extrasystoles and short runs of AF preceding the main AF onset in the majority of cases. These results have major implications for the development of new preventive pacing algorithms.

Angina Pectoris↗

The complexity of external acoustic detection of defects in Björk-Shiley convexoconcave heart valves.

Fractures in Björk-Shiley convexoconcave (BScc) heart valves have raised questions about the feasibility of early diagnosis of technical defects by means of acoustic assessment. Three laboratory tests were conducted. To establish acoustic fingerprints, 66 valves with a defect, such as single-leg fracture (SLF) or single-leg separation (SLS), or without a defect were connected with a contact sensor and excited by dropping a small metal ball onto the outlet strut. In the second test, we simulated the valve sound propagation within the thorax. In the third test, intact, SLF, and SLS valves were placed in a mock heart immersed in a large water tank. We observed a resonance frequency corresponding with valve size and presence of defects. The second test showed that both the chest wall and the lungs created numerous reflections. This led to a substantial overlap of the original pulse frequencies and the frequencies measured. The third test confirmed that submersion of the chest in water can significantly reduce chest wall reflections. Reliable noninvasive assessment of BScc valve clicks for the presence of defects of the outlet strut is hampered by complex sound propagation within the thorax and variability of valve excitation. Acoustic fingerprints to diagnose mechanical defects should be integrated in valve design.

Heart Valve Prosthesis↗