ArticleThe Journal of physiology2025
Firing properties of single axons with cardiac rhythmicity in the human cervical vagus nerve.
Article in The Journal of physiology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers, 1 of them a synthesis that pooled it.
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Who cites it
13 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Vagus Nerve Stimulation in Movement Disorders, from Principles to a Systematic Review of Evidence.Movement disorders : official journal of the Movement Disorder Society · 2025Pooled it
- Guidelines for rigor and reproducibility of heart rate variability within human cardiovascular research.American journal of physiology. Heart and circulatory physiology · 2026Review
- First in-human microelectrode recordings of vagus nerve activity in heart failure.The Journal of physiology · 2026Article
- Why The Polyvagal Theory Is Untenable: An international expert evaluation of the polyvagal theory and commentary upon Porges, S.W. (2025). Polyvagal theory: current status, clinical applications, and future directions. Clin. Neuropsychiatry, 22(3), 169-184.Clinical neuropsychiatry · 2026Article
- Microelectrode recordings from the human cervical vagus nerve during maximal breath-holds.Experimental physiology · 2026Article
- Tracing Human Sympathetic Cardiovascular Control Mechanism in the Brain.Current hypertension reports · 2025Review
- Redefining respiratory sinus arrhythmia as respiratory heart rate variability: an international Expert Recommendation for terminological clarity.Nature reviews. Cardiology · 2025Review
- Dysregulated neural coding in the vagus nerve during long sepsis.Brain, behavior, & immunity - health · 2025Article
- Biophysical characterization of the recording of unmyelinated and myelinated fiber activity with peripheral interfaces.iScience · 2025Article
- Risk of bradycardia and asystole during microelectrode recordings from the human vagus nerve.Clinical autonomic research : official journal of the Clinical Autonomic Research Society · 2025Article
- Direction from the wanderer: insight into cardiac neural control from single axons within the vagus nerve.The Journal of physiology · 2025Article
- Next generation bioelectronic medicine: making the case for non-invasive closed-loop autonomic neuromodulation.Bioelectronic medicine · 2025Review
- Midlife heart rate variability and cognitive decline: A large longitudinal cohort study.International journal of clinical and health psychology : IJCHPArticle
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Authors and funding
11 authors.
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Abstract
Microneurographic recordings of the human cervical vagus nerve have revealed the presence of multi-unit neural activity with measurable cardiac rhythmicity. This suggests that the physiology of vagal neurones with cardiovascular regulatory function can be studied using this method. Here, the activity of cardiac rhythmic single units was discriminated from human cervical vagus nerve recordings using template-based waveform matching. The activity of 44 cardiac rhythmic neurones (22 with myelinated axons and 22 with unmyelinated axons) was isolated. By consideration of each unit's firing pattern with respect to the cardiac and respiratory cycles, the functional identification of each unit was attempted. Of note is the observation of seven cardiac rhythmic neurones with myelinated axons whose activity was recruited or enhanced by slow, deep breathing, was maximal during the nadir of respiratory sinus arrhythmia, and showed an expiratory peak. This is characteristic of cardioinhibitory efferent neurones, which are responsible for respiratory sinus arrhythmia. The remaining 15 cardiac rhythmic neurones with myelinated axons were categorised as cardiopulmonary receptors or arterial baroreceptors based on the position of their peak in firing with respect to the R-wave of the cardiac cycle. This latter method is not viable for neurones with unmyelinated axons due to their slow and unknown conduction velocities. With the exception of three neurones whose expiratory modulation implicates them as cardiac-projecting efferent neurones, this population is likely dominated by arterial baroreceptors. In conclusion, the activity of single units with cardiovascular function has been discriminated within the human cervical vagus, enabling their systematic study. KEY POINTS: Recordings of the electrical activity of the vagus nerve have recently been made at the level of the neck in humans. Examination of the gross activity of this nerve reveals subpopulations of neurones whose activity fluctuates in time with the heart's beat, suggesting that the neurones that monitor or modify cardiac function can be studied using this method. Here, the activity of individual cardiac rhythmic neurones was isolated from human vagus nerve recordings using template-based spike sorting. The relationship between this activity and the cardiac and respiratory cycles was used as a means of classifying each neurone. Neuronal firing patterns that are consistent with that of neurones that modify cardiac function, including heart-slowing 'cardioinhibitory' neurones, as well as neurones that inform the brain of cardiovascular status were observed. This approach enables, for the first time, the systematic study of the function of these neurones in humans in both health and disease.
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