Optogenetic stimulation of cholinergic neurons in the inferior pulmonary vein-ganglionated plexus and noradrenergic neurons in the craniomedial right stellate ganglion specifically modulated heart rate in mice.
Optogenetic mapping of cardiac circuits reveals that the heart rate response to optogenetic versus electrical stimulation of the vagus nerve displays different temporal characteristics, providing new insights into the peripheral neural regulation of heart rate.
Heart rate is under the precise control of the autonomic nervous system. However, the wiring of peripheral neural circuits that regulate heart rate is poorly understood. Here, we develop a clearing-imaging-analysis pipeline to visualize innervation of intact hearts in 3D and employed a multi-technique approach to map parasympathetic and sympathetic neural circuits that control heart rate in mice. We identify cholinergic neurons and noradrenergic neurons in an intrinsic cardiac ganglion and the stellate ganglia, respectively, that project to the sinoatrial node. We also report that the heart rate response to optogenetic versus electrical stimulation of the vagus nerve displays different temporal characteristics and that vagal afferents enhance parasympathetic and reduce sympathetic tone to the heart via central mechanisms. Our findings provide new insights into neural regulation of heart rate, and our methodology to study cardiac circuits can be readily used to interrogate neural control of other visceral organs.
Rajendran et al. (Fri,) conducted a other in Healthy (neural circuit mapping). Optogenetic stimulation vs. Electrical stimulation / baseline was evaluated on Heart rate response. Optogenetic stimulation of cholinergic neurons in the inferior pulmonary vein-ganglionated plexus and noradrenergic neurons in the craniomedial right stellate ganglion specifically modulated heart rate in mice.
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