Vielight Vagus – Vielight Inc https://www.vielight.com Advancing brain photobiomodulation technology. Fri, 25 Jul 2025 20:53:20 +0000 en-US hourly 1 https://wordpress.org/?v=6.8.3 https://www.vielight.com/wp-content/uploads/2025/06/cropped-Vielight-Favicon-General-1-32x32.webp Vielight Vagus – Vielight Inc https://www.vielight.com 32 32 Vielight Vagus: Scientific Foundations and Applications of Vagus Nerve Stimulation https://www.vielight.com/blog/vielight-vagus-scientific-foundations-and-applications-of-vagus-nerve-stimulation/ Mon, 12 May 2025 19:08:51 +0000 https://www.vielight.com/?p=48073

Introduction

The vagus nerve plays a central role in autonomic regulation, inflammation control, mood modulation, and overall homeostasis. Vagus nerve stimulation (VNS) is a promising approach for enhancing autonomic balance, reducing systemic inflammation, improving mental health, and supporting neuroplasticity.

The Vielight Vagus presents an innovative, non-invasive alternative using photobiomodulation (PBM) to target the cervical vagus nerve branches with pulsed near-infrared light. Controlled clinical studies are being planned to evaluate its efficacy.

Disclaimer

The Vielight Vagus is marketed as a low-risk general wellness device without medical claims. This white paper provides biological and mechanistic context for its design.

Device Overview

  • Target: Bilateral cervical vagus nerve branches under the sternocleidomastoid (SCM) muscles
  • Delivery: Hands-free headset for consistent anatomical placement
  • Website: Vielight Vagus Device
  • Patent: Patent Information

Early Experimental Outcomes

Experiments using 810 nm PBM at 50 mW/cm² demonstrated a notable increase in vagal tone at 100 Hz pulse frequency, aligning with results from electrical VNS studies (Sclocco et al., 2020; Yokota et al., 2022).

Scientific Rationale and Mechanisms of Action

Foundational Mechanisms

PBM stimulates afferent vagal fibers via mitochondrial activation, calcium signaling, and ROS modulation [Hamblin, 2016; Karu, 1999].

Distinct from Electrical Stimulation

PBM does not rely on electrical depolarization but works through photoactivation of ion channels and metabolic support [Zhang et al., 2024; Yan et al., 2025; Farazi et al., 2024].

Potentially Shared Outcomes

  • NTS Activation: fMRI studies show cervical VNS activates the NTS, DMNV, and PAG [Yakunina et al., 2020; Benarroch, 2012]
  • HRV Modulation: Non-invasive VNS improves HRV, a marker for mental health resilience [Bretherton et al., 2022; Shaffer & Ginsberg, 2017]

Other Advantages of the Vielight Vagus

  • 100 Hz Pulsing: Aligned with gamma frequencies for cognitive support [Herrmann et al., 2010; Yokota et al., 2022]

Helpful PBM Mechanisms of Action

  • Mitochondrial upregulation via cytochrome c oxidase
  • Increased ATP and nitric oxide release
  • Modulation of calcium channels and ion transport
  • Systemic anti-inflammatory effects

Future VNS Applications for PBM Investigation

  • HRV and autonomic balance enhancement
  • Stress and anxiety support

Conclusion

The Vielight Vagus device introduces a next-generation approach to non-invasive VNS. By combining the benefits of photobiomodulation with cervical vagus nerve stimulation, it offers a safe, comfortable, and effective alternative to traditional VNS methods. Its design supports home-based clinical research and HRV enhancement with minimal user burden. Vielight’s upcoming investigations aim to validate and expand its potential therapeutic applications.

References

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