Advances in Non-Invasive Neuromodulation: Designing Closed-Loop Devices for Respiratory-Controlled Transcutaneous Vagus Nerve Stimulation

Author:

de Faria Gabriella Maria1ORCID,Lopes Eugênia Gonzales1,Tobaldini Eleonora2,Montano Nicola2ORCID,Cunha Tatiana Sousa1ORCID,Casali Karina Rabello1,de Amorim Henrique Alves1

Affiliation:

1. Institute of Science and Technology, Universidade Federal de São Paulo, São José dos Campos 12231-280, Brazil

2. Department of Clinical Sciences and Community Health, Università degli Studi di Milano, 20122 Milan, Italy

Abstract

Studies suggest non-invasive transcutaneous auricular vagus nerve stimulation (taVNS) as a potential therapeutic option for various pathological conditions, such as epilepsy and depression. Exhalation-controlled taVNS, which synchronizes stimulation with internal body rhythms, holds promise for enhanced neuromodulation, but there is no closed-loop system in the literature capable of performing such integration in real time. In this context, the objective was to develop real-time signal processing techniques and an integrated closed-loop device with sensors to acquire physiological data. After a conditioning stage, the signal is processed and delivers synchronized electrical stimulation during the patient’s expiratory phase. Additional modules were designed for processing, software-controlled selectors, remote and autonomous operation, improved analysis, and graphical visualization. The signal processing method effectively extracted respiratory cycles and successfully attenuated signal noise. Heart rate variability was assessed in real time, using linear statistical evaluation. The prototype feedback stimulator device was physically constructed. Respiratory peak detection achieved an accuracy of 90%, and the real-time processing resulted in a small delay of up to 150 ms in the detection of the expiratory phase. Thus, preliminary results show promising accuracy, indicating the need for additional tests to optimize real-time processing and the application of the prototype in clinical studies.

Funder

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior—Brasil

National Council for Scientific and Technological Development

Publisher

MDPI AG

Subject

Health Information Management,Health Informatics,Health Policy,Leadership and Management

Reference29 articles.

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2. Bansal, D. (2021). Real-Time Data Acquisition in Human Physiology: Real-Time Acquisition, Processing, and Interpretation—A MATLAB-Based Approach, Academic Press. Available online: https://play.google.com/store/books/details?id=gksiEAAAQBAJ.

3. Current Directions in the Auricular Vagus Nerve Stimulation II—An Engineering Perspective;Kaniusas;Front. Neurosci.,2019

4. Treatment of chronic migraine with transcutaneous stimulation of the auricular branch of the vagal nerve (auricular t-VNS): A randomized, monocentric clinical trial;Straube;J. Headache Pain.,2015

5. Critical Review of Transcutaneous Vagus Nerve Stimulation: Challenges for Translation to Clinical Practice;Yap;Front. Neurosci.,2020

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