Pulsed-field catheter ablation is a promising new treatment method for patients with atrial fibrillation. The mechanism of cell damage here is different from that of classic catheter ablation, in which the ganglion plexuses around the pulmonary veins are also damaged and thus changes in the autonomic nervous system occur. The aim of the work is to find out, using heart rate variability, whether the autonomic system is less affected during pulsed field ablation than in classic radiofrequency ablation.
Catheter ablation for pulmonary vein isolation (PVI) is the most effective treatment method for atrial fibrillation (AF). For a long time, radiofrequency energy (RFA) was dominantly used for ablation, which leads to tissue heating and thus thermal damage. The methodology of pulsed-field ablation, or irreversible electroporation, has been completely newly developed. This form of energy does not lead to thermal tissue damage (as is the case with radiofrequency energy), but with the help of high-intensity nanopulses of electrical energy, the ion channels of cardiomyocytes are permanently opened, the concentration gradient of ions is canceled and thus their irreversible destruction. In addition to the electrical isolation of the pulmonary vein, standard radiofrequency isolation of the pulmonary veins leads to the ablation of collateral ganglion plexuses and thus to the influence of the autonomic nervous system. This is very positive, an imbalance between sympathetic and parasympathetic innervating the left atrium is considered a risk factor for AF induction, and its damage with standard RFA is considered part of the RFA ablation effect. Available studies suggest that PFA probably induces significantly weaker and less permanent suppression of cardiac autonomic regulation compared to RF energy used for PVI. Measuring heart rate variability is a simple non-invasive method. A regular ECG Holter recorder can be used for the measurement. Patients will be fitted with a 24-hour Holter ECG on admission to determine the original heart rate variability. Catheter ablation will take place the next day. Patients will be treated using one of two methods of pulmonary vein isolation - RFA or PFA. One month after the catheterization procedure, a 24-hour Holter ECG will be used again to detect changes in HRV compared to preoperative values.
Study Type
OBSERVATIONAL
Enrollment
60
24 hours Holter EKG - 1 day before ablation
Pulmonary vein isolation using radiofrequency ablation
Pulmonary vein isolation using pulsed field ablation
Cardiocenter, 3rd Medical School, Charles University and University Hospital Kralovske Vinohrady
Prague, Czechia
RECRUITINGMean RR interval (ms)
Time domain parameter
Time frame: 1 month
SDNN (ms)
Standard deviation of RR intervals - time domain parameter
Time frame: 1 month
RMSSD (ms)
root mean square of successive differences - time domain parameter
Time frame: 1 month
pNN50 (%)
the number of successive intervals differing more than 50 ms or the corresponding relative amount - time domain parameter
Time frame: 1 month
peak frequency (Hz)
The frequency-domain measures extracted from a spectrum estimate for each frequency band (very low, low and high)
Time frame: 1 month
power (ms2)
A parameter obtained from the estimation of the frequency spectrum
Time frame: 1 month
LF/HF ratio
Ratio between low frequency and high frequency band powers
Time frame: 1 month
SD1 (ms)
In Poincaré plot, the standard deviation perpendicular to the line-of-identity
Time frame: 1 month
SD2 (ms)
In Poincaré plot, the standard deviation along the line-of-identity
Time frame: 1 month
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24 hours Holter EKG 1 month after ablation
SD2/SD1
Ratio between SD2 and SD1
Time frame: 1 month
ApEn
Approximate entropy
Time frame: 1 month
Correlation dimension
The correlation dimension is expected to give information on the minimum number of dynamic variables needed to model the underlying system
Time frame: 1 month