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PubMed · 3441247

Present state and future trends in electrical heart stimulation.

Abstract

Examples of electrical heart stimulation techniques are presented to illustrate for the physician and biomedical engineer the technical feasibility of realizing many therapeutic concepts by means of microelectronics. Because of the life-supporting applications, extremely high system reliabilty must be guaranteed. The usual methods of enhancing safety by providing redundancy cannot be used, and the service life requirements can be met only by appropriate adaptation of the current consumption due to the limited battery capacity. Based on the practical experience gained in the manufacture of more than 100,000 implantable devices, it can be reported that by rigid application of, and adherence to, quality assurance measures reliability values can be achieved of lambda = 10(-7)h-1 at a confidence level of 90% for the hybrid components and of lambda = 10(-9)h-1 for integrated circuits and passive components. The requirement for technical reliability of the implantable device for patient safety requires a thorough understanding of all technical and medical details of the therapeutic device. The success of future developments (e.g. the automatically-controlled systems which are meant to substitute for the multiprogrammable pacemakers) will not only require utilization of currently available technologies but also will depend to a great extent on active participation of the physicians in the development process itself.

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BibTeXRIS

M Schaldach. 1987. Present state and future trends in electrical heart stimulation.. https://pubmed.ncbi.nlm.nih.gov/3441247/

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Fetuses with congenital heart disease demonstrate signs of decreased cerebral impedance.

OBJECTIVE: The purpose of this study was to determine whether fetuses with a congenital heart defect demonstrate changes in cerebrovascular impedance. STUDY DESIGN: Fetal echocardiograms from January 2001 to May 2005 were reviewed. Cases had sonographically diagnosed congenital heart defects; control subjects were gestational age-matched fetuses with normal echocardiograms. The pulsatility index in the middle cerebral artery was used to measure impedance to cerebral blood flow. Abnormal middle cerebral artery pulsatility index was defined as less than the 5th percentile. Cases were subgrouped into mixing versus nonmixing lesions. RESULTS: Of 142 total fetuses, there were significantly more abnormal middle cerebral artery pulsatility indices in the cases (5/71) than in the control subjects (0/71; P = .023); all abnormal middle cerebral artery pulsatility indices occurred in the fetuses with admixing cardiac lesions. CONCLUSION: Fetuses with congenital heart defect are significantly more likely to have decreased cerebrovascular impedance. This may represent a marker of cerebral hypoxemia that is due to intracardiac mixing of oxygenated and deoxygenated blood. Theoretically, this hypoxemia may contribute to the cause of abnormal neurologic development in these infants.

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