[Effects of transcutaneous auricular vagus nerve stimulation on autonomic nervous function in rats with functional dyspepsia]. 2021

Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
Institute of Acupuncture and Moxibustion, China Academy of Chinese Medical Sciences, Beijing 100700, China.

OBJECTIVE To observe the effect of transcutaneous auricular vagus nerve stimulation (taVNS) on the autonomic nerve function in a rat model of functional dyspepsia (FD), so as to explore the mechanism of taVNS underlying regulation of FD. METHODS SD rats were randomly divided into normal control group(n=8) and FD model group(n=26).The FD model was replicated with iodoacetamide gavage. The FD model rats were randomly divided into model, taVNS, sham-taVNS and Zusanli(ST36) groups, with 6 rats in each group. Rats in the taVNS group received electrical stimulation of auricular concha,while the sham-taVNS group received no electrical stimulation and rats in the ST36 group received stimulation at ST36 for 30 min once daily for 14 consecutive days. Cervical trapezius electromyography score and abdominal withdrawal reflex (AWR) score were used to evaluate gastric sensitivity. Histopathological changes of the gastric antrum tissue were observed under microscope after H.E. staining. Autonomic nerve function in rats was recorded and assessed by heart rate variability(HRV). The content of acetylcholine (Ach) and the expression of Ach receptor M3R in gastric antrum was detect by ELISA and Western blot, separately. RESULTS Compared with the normal control group, the cervical trapezius electromyography and AWR scores of the model group increased (P<0.01, P<0.001), and there was no erosion in the gastric antral mucosa and muscle layer. The high-frequency power (HF) in HRV decreased (P<0.05), the ratio of low-frequency power/high-frequency power (LF/HF) increased (P<0.001), and the Ach content and its receptor M3R expression in gastric antrum tissue decreased (P<0.05). Following interventions, the cervical trapezius electromyography and AWR scores decreased (P<0.01,P<0.001, P<0.05), HF in HRV increased and LF/HF decreased(P<0.01,P<0.05,P<0.001), and the content of Ach in gastric antrum tissue and the expression of its receptor M3R increased (P<0.01, P<0.05) in both taVNS and ST36 groups relevant to the model group. CONCLUSIONS taVNS can increase the activity of the vagus nerve and regulate the balance of the autonomic nerve function, which may be one of the mechanisms of taVNS in reducing the gastric sensitivity of rats with FD. In regulating the vagus nerve function, taVNS and acupuncture at ST36 acupoint have the similar effects.

UI MeSH Term Description Entries
D004415 Dyspepsia Impaired digestion, especially after eating. Indigestion,Dyspepsias,Indigestions
D004561 Transcutaneous Electric Nerve Stimulation The use of specifically placed small electrodes to deliver electrical impulses across the SKIN to relieve PAIN. It is used less frequently to produce ANESTHESIA. Analgesic Cutaneous Electrostimulation,Electric Stimulation, Transcutaneous,Electroanalgesia,Percutaneous Electric Nerve Stimulation,TENS,Transdermal Electrostimulation,Electrical Stimulation, Transcutaneous,Percutaneous Electrical Nerve Stimulation,Percutaneous Electrical Neuromodulation,Percutaneous Neuromodulation Therapy,Transcutaneous Electrical Nerve Stimulation,Transcutaneous Nerve Stimulation,Cutaneous Electrostimulation, Analgesic,Electrical Neuromodulation, Percutaneous,Electrical Neuromodulations, Percutaneous,Electroanalgesias,Electrostimulation, Analgesic Cutaneous,Electrostimulation, Transdermal,Nerve Stimulation, Transcutaneous,Neuromodulation Therapy, Percutaneous,Neuromodulation, Percutaneous Electrical,Neuromodulations, Percutaneous Electrical,Percutaneous Electrical Neuromodulations,Percutaneous Neuromodulation Therapies,Stimulation, Transcutaneous Electric,Stimulation, Transcutaneous Nerve,Therapy, Percutaneous Neuromodulation,Transcutaneous Electric Stimulation,Transcutaneous Electrical Stimulation
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D014630 Vagus Nerve The 10th cranial nerve. The vagus is a mixed nerve which contains somatic afferents (from skin in back of the ear and the external auditory meatus), visceral afferents (from the pharynx, larynx, thorax, and abdomen), parasympathetic efferents (to the thorax and abdomen), and efferents to striated muscle (of the larynx and pharynx). Cranial Nerve X,Pneumogastric Nerve,Tenth Cranial Nerve,Nerve X,Nervus Vagus,Cranial Nerve, Tenth,Cranial Nerves, Tenth,Nerve X, Cranial,Nerve Xs,Nerve, Pneumogastric,Nerve, Tenth Cranial,Nerve, Vagus,Nerves, Pneumogastric,Nerves, Tenth Cranial,Nerves, Vagus,Pneumogastric Nerves,Tenth Cranial Nerves,Vagus Nerves,Vagus, Nervus
D017207 Rats, Sprague-Dawley A strain of albino rat used widely for experimental purposes because of its calmness and ease of handling. It was developed by the Sprague-Dawley Animal Company. Holtzman Rat,Rats, Holtzman,Sprague-Dawley Rat,Rats, Sprague Dawley,Holtzman Rats,Rat, Holtzman,Rat, Sprague-Dawley,Sprague Dawley Rat,Sprague Dawley Rats,Sprague-Dawley Rats
D051381 Rats The common name for the genus Rattus. Rattus,Rats, Laboratory,Rats, Norway,Rattus norvegicus,Laboratory Rat,Laboratory Rats,Norway Rat,Norway Rats,Rat,Rat, Laboratory,Rat, Norway,norvegicus, Rattus
D055536 Vagus Nerve Stimulation An adjunctive treatment for PARTIAL EPILEPSY and refractory DEPRESSION that delivers electrical impulses to the brain via the VAGUS NERVE. A battery implanted under the skin supplies the energy. Vagal Nerve Stimulation,Nerve Stimulation, Vagal,Nerve Stimulation, Vagus,Nerve Stimulations, Vagal,Nerve Stimulations, Vagus,Stimulation, Vagal Nerve,Stimulation, Vagus Nerve,Stimulations, Vagal Nerve,Stimulations, Vagus Nerve,Vagal Nerve Stimulations,Vagus Nerve Stimulations

Related Publications

Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
June 2022, Zhongguo zhen jiu = Chinese acupuncture & moxibustion,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
November 2019, Journal of clinical neurophysiology : official publication of the American Electroencephalographic Society,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
December 2021, Autonomic neuroscience : basic & clinical,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
September 2022, Autonomic neuroscience : basic & clinical,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
May 2024, Seizure,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
March 2022, Zhen ci yan jiu = Acupuncture research,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
January 2021, Brain stimulation,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
January 2023, General psychiatry,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
August 2022, Brain and nerve = Shinkei kenkyu no shinpo,
Li-Wei Hou, and Pei-Jing Rong, and Liang Li, and Wei Wei, and Ji-Liang Fang, and Jin-Ling Zhang, and Jun-Ying Wang
January 2018, Brain stimulation,
Copied contents to your clipboard!