scholarly journals Vagus Nerve Stimulation for Blood Pressure and Heart Rate Regulation

Author(s):  
George D. O’Clock ◽  
Bruce H. KenKnight ◽  
Elena G. Tolkacheva

For more than 27 years, implanted vagus nerve stimulation (VNS) devices, with electric current outputs in the 1 to 3.5 mA range, have been developed for many health care applications, including epilepsy and heart disease [1]. Mechanical compression approaches for VNS were administered under surgical conditions, using forceps, in the 1800’s [2]. Outcomes such as Electrocardiogram (ECG) data, blood pressure (BP), and heart rate (HR) were evaluated. Also, non-invasive (NI) mechanical compression of the vagus nerve for various nervous system disorders using hand, thumb, finger and belt pressure was popular in the 1800’s [3]. Cyberonics (now LivaNova) received the first FDA clearance for a surgically implanted electrical VNS device to treat refractory epilepsy in 1997.

Author(s):  
Vinzent Wolf ◽  
Anne Kühnel ◽  
Vanessa Teckentrup ◽  
Julian Koenig ◽  
Nils B. Kroemer

AbstractNon-invasive brain stimulation techniques, such as transcutaneous auricular vagus nerve stimulation (taVNS), have considerable potential for clinical use. Beneficial effects of taVNS have been demonstrated on symptoms in patients with mental or neurological disorders as well as transdiagnostic dimensions, including mood and motivation. However, since taVNS research is still an emerging field, the underlying neurophysiological processes are not yet fully understood, and the replicability of findings on biomarkers of taVNS effects has been questioned. Here, we perform a living Bayesian random effects meta-analysis to synthesize the current evidence concerning the effects of taVNS on heart rate variability (HRV), a candidate biomarker that has, so far, received most attention in the field. To keep the synthesis of evidence transparent and up to date as new studies are being published, we developed a Shiny web app that regularly incorporates new results and enables users to modify study selection criteria to evaluate the robustness of the inference across potential confounds. Our analysis focuses on 17 single-blind studies comparing taVNS versus sham in healthy participants. These newly synthesized results provide strong evidence for the null hypothesis (g = 0.011, CIshortest = [−0.103, 0.125], BF01 = 25.587), indicating that acute taVNS does not alter HRV compared to sham. To conclude, based on a synthesis of the available evidence to date, there is no support for the hypothesis that HRV is a robust biomarker for acute taVNS. By increasing transparency and timeliness, we believe that the concept of living meta-analyses can lead to transformational benefits in emerging fields such as non-invasive brain stimulation.


2019 ◽  
Vol 24 (6) ◽  
pp. 674-683
Author(s):  
Ya. I. Poleshchenko ◽  
D. A. Oleynikov ◽  
V. Yu. Lukichev ◽  
D. A. Khromikhin ◽  
M. A. Krylova ◽  
...  

Background.Vagus nerve stimulation has been proposed for the treatment of a number of diseases. The positive effects of vagus nerve stimulation on ischemic and reperfusion myocardial injury has been tested in experimental models. However, the escape effect of vagus activation on heart rate and the methodology to overcome this effect have not been reported properly.Objective. The purpose of the study is to evaluate parameters of prolonged stimulation that decrease heart rate and allow overcoming the escape effect of vagus nerve activation.Design and methods. We used Wistar rats (n = 9). Cervical section was performed under general anesthesia. Left vagus nerve isolated from adjacent tissue was contacted with custom stimulation electrodes and a custom pulse generator. Blood pressure was measured in the right common carotid artery. Limb electrocardiogram was continuously recorded. First, stimulation parameters repeatedly evoking vagal reaction (decrease in heart rate) without nerve damage were evaluated. Second, parameters of intermittent stimulation that allowed repeat and consistent heart rate decrease were assessed.Results. During experiments, in 5 animals the following parameters leading to sustained 30 ± 20 % heart rate reduction were found: rectangular pulse, 30 Hz, 0,5 ms, 1–2 V (0,6– 0,8 mA). Stimulation with 50 Hz frequency led to nerve damage in 1 case. Stimulation with 20 Hz frequency led to heart rate over-suppression of heart rate and blood pressure. Intermittent nerve stimulation was tested in 4 animals and led to repeated heart rate decrease by 38 ± 15 %. The parameters which helped to avoid escape effect on heart rate change were the following: the length of stimulation episode of 45 s and interruption of stimulation for 15 s.Conclusion. Intermittent electrical stimulation evokes vagal reactions on heart rate and allows overcoming the escape effect of vagal activation. 


PLoS ONE ◽  
2017 ◽  
Vol 12 (10) ◽  
pp. e0186068 ◽  
Author(s):  
Hector M. Romero-Ugalde ◽  
Virginie Le Rolle ◽  
Jean-Luc Bonnet ◽  
Christine Henry ◽  
Alain Bel ◽  
...  

2014 ◽  
Vol 7 (6) ◽  
pp. 914-916 ◽  
Author(s):  
Didier Clarençon ◽  
Sonia Pellissier ◽  
Valérie Sinniger ◽  
Astrid Kibleur ◽  
Dominique Hoffman ◽  
...  

Author(s):  
Lisa Y Yang ◽  
Kiran Bhaskar ◽  
Jeffrey Thompson ◽  
Kelsey Duval ◽  
Michel Torbey ◽  
...  

2021 ◽  
pp. 1-11
Author(s):  
Magdalena Ferstl ◽  
Vanessa Teckentrup ◽  
Wy Ming Lin ◽  
Franziska Kräutlein ◽  
Anne Kühnel ◽  
...  

Abstract Background Mood plays an important role in our life which is illustrated by the disruptive impact of aberrant mood states in depression. Although vagus nerve stimulation (VNS) has been shown to improve symptoms of depression, the exact mechanism is still elusive, and it is an open question whether non-invasive VNS could be used to swiftly and robustly improve mood. Methods Here, we investigated the effect of left- and right-sided transcutaneous auricular VNS (taVNS) v. a sham control condition on mood after the exertion of physical and cognitive effort in 82 healthy participants (randomized cross-over design) using linear mixed-effects and hierarchical Bayesian analyses of mood ratings. Results We found that 90 min of either left-sided or right-sided taVNS improved positive mood [b = 5.11, 95% credible interval, CI (1.39–9.01), 9.6% improvement relative to the mood intercept, BF10 = 7.69, pLME = 0.017], yet only during the post-stimulation phase. Moreover, lower baseline scores of positive mood were associated with greater taVNS-induced improvements in motivation [r = −0.42, 95% CI (−0.58 to −0.21), BF10 = 249]. Conclusions We conclude that taVNS boosts mood after a prolonged period of effort exertion with concurrent stimulation and that acute motivational effects of taVNS are partly dependent on initial mood states. Collectively, our results show that taVNS may help quickly improve affect after a mood challenge, potentially by modulating interoceptive signals contributing to the reappraisal of effortful behavior. This suggests that taVNS could be a useful add-on to current behavioral therapies.


Seizure ◽  
2008 ◽  
Vol 17 (5) ◽  
pp. 469-472 ◽  
Author(s):  
Stephan A. Koenig ◽  
Elke Longin ◽  
Nellie Bell ◽  
Julia Reinhard ◽  
Thorsten Gerstner

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