Quantitative Assessment of Autonomic Regulation of the Cardiac System.
Jian Kang WuZhipei HuangZhiqiang ZhangWendong XiaoHong JiangPublished in: Journal of healthcare engineering (2019)
Autonomic neural system (ANS) regulates the circulation to provide optimal perfusion of every organ in accordance with its metabolic needs, and the quantitative assessment of autonomic regulation is crucial for personalized medicine in cardiovascular diseases. In this paper, we propose the Dystatis to quantitatively evaluate autonomic regulation of the human cardiac system, based on homeostatis and probabilistic graphic model, where homeostatis explains ANS regulation while the probability graphic model systematically defines the regulation process for quantitative assessment. The indices and measurement methods for three well-designed scenarios are also illustrated to evaluate the proposed Dystatis: (1) heart rate variability (HRV), blood pressure variability (BPV), and respiration synchronization (Synch) in resting situation; (2) chronotropic competence indices (CCI) in graded exercise testing; and (3) baroreflex sensitivity (BRS), sympathetic nerve activity (SNA), and parasympathetic nerve activity (PNA) in orthostatic testing. The previous clinical results have shown that the proposed method and indices for autonomic cardiac system regulation have great potential in prediction, diagnosis, and rehabilitation of cardiovascular diseases, hypertension, and diabetes.
Keyphrases
- heart rate variability
- heart rate
- blood pressure
- cardiovascular disease
- left ventricular
- type diabetes
- heart failure
- endothelial cells
- high resolution
- physical activity
- adipose tissue
- neuropathic pain
- computed tomography
- mass spectrometry
- risk assessment
- coronary artery disease
- atrial fibrillation
- hypertensive patients
- metabolic syndrome
- spinal cord injury
- induced pluripotent stem cells
- peripheral nerve