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Biomedical subjects

M J Begemann

Publications and source records attributed to M J Begemann.

7 recordsLinked to original sources

Inter- and intraindividual variations in shortening of ventricular effective refractory period after an abrupt decrease in pacing cycle length.

After an abrupt decrease in pacing cycle length (PCL), the ventricular effective refractory period (VERP) shortens. The pacing protocol needed to determine accurate and reproducible values for the VERP during this process is elaborate and time consuming. In this study, steady-state values of VERP at 800 and 350 msec PCL and dynamic values of VERP due to an abrupt change in PCL from 800 to 350 msec were determined. This was done for 11 different dogs to test the interindividual variation and repetitively in the same dog to test the intraindividual variation. The results for steady-state and dynamic values of the VERP show a wide range for both groups. This means that accurate prediction of steady-state and dynamic values of VERP based on previous measurements is not possible.

Animals

The A-R interval as exercise indicator: a new option for rate adaptation in single and dual chamber pacing.

We investigated the possibility to use the interval from an atrial stimulus to the ventricular R wave (A-R interval) as an indicator of physical stress, in 16 patients with pacemakers implanted for severe atrial bradycardia but with intact AV conduction. The A-R interval was studied during incremental atrial pacing at rest and during exercise with a constant workload. In addition, the atrial pacing rate was kept constant just above spontaneous sinus rate and the dynamics of the A-R interval were studied during exercise with a low constant workload and during a maximal exercise test with increasing workload. Incremental atrial pacing prolonged the A-R interval and this response was blunted during exercise (P less than 0.003). Atrial pacing at a constant rate and during a constant workload resulted in an almost direct shortening of the A-R interval. When the workload was increased but the atrial rate kept constant, a pronounced shortening of the A-R interval was noted (P less than 0.0001). It is concluded that changes of the A-R interval during different kinds of exercise were prompt and predictable in patients with sinus node dysfunction but intact AV conduction. In these patients the shortening of the A-R interval during exercise may be a suitable indicator for rate adaptive atrial pacing.

Adult

Improved pattern of rate responsiveness with dynamic slope setting for the QT sensing pacemaker.

We have recently described the electrophysiological basis of a new algorithm for the QT (TX) sensing rate responsive pacemaker. By using the new software program running on the standard programmer it has been possible to simulate the new algorithm in ten patients with complete heart block (seven patients had implanted TX units and three were paced with an external TX pacemaker) during routine exercise testing. In this way a single-blind, intra-patient comparison of the pattern of pacing rate change using both the existing and new algorithms was possible. In nine out of the ten cases the time taken to increase the pacing rate from 70 to 80 bpm was reduced significantly when the new algorithm was used (P = 0.037). Additionally, the correlation between the atrial and ventricular rates in those patients with normal sinus node function (seven patients) was determined. In all cases we have observed a significantly improved correlation between the atrial and ventricular paced rates during exercise with the new algorithm (P less than 0.001).

Adult

Automatic refractory period.

Pacemakers have become more and more complex over the years, whereby technological advances were used to create more and new possibilities in existing pacemaker applications. As a result a demand has grown for more automatic functions to reduce the time to program the pacemakers and eleviate follow-up procedures. One of the parameters which can be adjusted automatically is the refractory period. We measured the pacing threshold as a function of coupling interval between the stimulus and the previous paced complex and related this to the morphology of the paced evoked T-wave. When the stimulus falls far away from the T-wave the pacing threshold is constant. When it approaches the T-wave the threshold reduces slightly (superconductivity) and at the peak of the T-wave there is a sharp increase of the pacing threshold. The refractory period coincides with the period from the stimulus until the top of the T-wave (stim-T interval). This result is used in the Rhythmyx pacemaker where the stim-T interval is used to automatically adjust the pace refractory period. Automatically adjusting the refractory period has the extra advantage of higher allowable pacing rates as the refractory period shortens with increasing heart rates. Future applications will include use antitachycardia pacing where the stim-T interval can be used to prevent pacing in the refractory period or in the vulnerable zone.

Algorithms

Heart rate monitoring in implanted pacemakers.

Increasing pacemaker memory allows integration of heart rate monitoring into the pacemaker. Two main methods can be distinguished. 1. Heart rate monitoring in histograms. 2. Heart rate monitoring in the time domain (heart rate holter). Method 1 is useful in antitachycardia and diagnostic pacemakers when short specific events must be detected (tachycadia, bradycardia). For the analysis of a rate adaptive pacemaker this method is less appropriate as it does not give any information about the dynamics of rate changes or its time relations. For this purpose Method 2 will give more information about the functioning of the pacemaker as it does not only store the heart rate but also the timing of the heart rate so that changes in heart rate can be correlated to the activity of the patient. An algorithm was developed to store the average heart rate over 7.8 minute periods in a pacemaker. On interrogation of the pacemaker the information will always reveal the heart rate over the 24 hours prior to interrogation. This monitor can also be temporarily programmed to store the average heart rate in 20 second intervals to monitor the response to an exercise test for a period of 1 hour. The time needed for a standard follow-up procedure of a rate adaptive pacemaker can be dramatically reduced to a value close to the follow-up time of a standard VVI pacemaker.

Algorithms

Introduction of an automatic QT interval driven rate responsive pacemaker.

QT driven rate responsive pacemakers have been implanted since 1981. The more than 6 years experience and additional knowledge gained during several clinical studies have culminated in the design of an automatic rate responsive pacemaker. The adjustment of the rate responsive function to each individual patient is carried out automatically by the pacemaker, which therefore performs several measurements both at rest and during exercise. The results of these measurements are used to adapt the rate responsive parameters in order to optimize the rate response, even under changing circumstances.

Algorithms