Vagal contributions to fetal heart rate variability: an omics approach
arXiv:1901.06431 · doi:10.1088/1361-6579/ab21ae
Abstract
Fetal heart rate variability (fHRV) is an important indicator of health and disease, yet its physiological origins, neural contributions in particular, are not well understood. We aimed to develop novel experimental and data analytical approaches to identify fHRV measures reflecting the vagus nerve contributions to fHRV. In near-term ovine fetuses, a comprehensive set of 46 fHRV measures was computed from fetal pre-cordial electrocardiogram recorded during surgery and 72 hours later without (n=24) and with intra-surgical bilateral cervical vagotomy (n=15). The fetal heart rate did not change due to vagotomy. We identify fHRV measures specific to the vagal modulation of fHRV: Multiscale time irreversibility asymmetry index (AsymI), Detrended fluctuation analysis (DFA) alpha1, Kullback-Leibler permutation entropy (KLPE) and Scale dependent Lyapunov exponent slope (SDLE alpha). We provide a systematic delineation of vagal contributions to fHRV across signal-analytical domains which should be relevant for the emerging field of bioelectronic medicine and the deciphering of the vagus code. Our findings also have clinical significance for in utero monitoring of fetal health during surgery.
Cited by in corpus (6)
- The role of the vagus nerve during fetal development and its relationship with the environment
- Heart rate variability code: Does it exist and can we hack it?
- Impact of chronic fetal hypoxia and inflammation on cardiac pacemaker cell development
- Distance to healthy cardiovascular dynamics from fetal heart rate scale-dependent features in pregnant sheep model of human labor predicts cardiovascular decompensation
- Recording and manipulation of vagus nerve electrical activity in chronically instrumented unanesthetized near term fetal sheep
- Multimodal pathophysiological dataset of gradual cerebral ischemia in a cohort of juvenile pigs