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April 17, 2026ACS Nano1 citations

Neuroimmune-Metabolic Regulation by a Wireless Biodegradable Neuromodulator for Cardiovascular Therapy in a Mouse Model

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WWWei WangRSRenyuan SunWLWenliang Liu

Key Points

  • The research aims to develop a biodegradable device for effective vagus nerve stimulation in cardiovascular therapy.
  • Developed a miniaturized biodegradable vagus-nerve stimulator for murine models.
  • Utilized focused ultrasound for wireless power delivery and stimulation.
  • Assessed the impact on the neuroimmune-metabolic axis in an atherosclerosis mouse model.
  • Chronic stimulation suppressed inflammatory activation and enhanced autophagy.
  • Improved lipid metabolism was observed.
  • Reduced plaque burden was achieved in the murine atherosclerosis model.

Abstract

Bioelectronic modulation of the vagus nerve offers a promising strategy for treating cardiovascular disease. Murine models that recapitulate neuroimmune-metabolic dysregulation are indispensable for preclinical neuromodulation research; however, the murine vagus nerve is extremely small, fragile, and difficult to interface with, making it challenging for existing devices to achieve the miniaturization, performance, and chronic biocompatibility required for long-term studies. Herein, we present a miniaturized, focused-ultrasound-driven, fully biodegradable vagus-nerve stimulator (UBVS) specifically engineered for murine application, enabling reliable and safe wireless neuromodulation. UBVS integrates a fully biodegradable triboelectric energy harvester and a self-adherent neural interface, achieving stable, suture-free chronic coupling without local neural injury. On-demand focused ultrasound provides spatiotemporally controlled, transcutaneous wireless power to the UBVS, allowing for precise stimulation of the cervical vagus nerve located in deep tissue. In a murine atherosclerosis model, chronic UBVS-mediated vagus nerve stimulation reprogrammed the neuroimmune-metabolic axis by suppressing inflammatory activation, enhancing autophagy-efferocytosis and remodeling lipid metabolism, thereby reducing plaque burden. These innovations achieve neurocompatible, long-term stimulation of delicate peripheral nerves, advancing wireless electroceutical therapies for cardiovascular and other chronic diseases.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69e1cfcb5cdc762e9d858be0https://doi.org/10.1021/acsnano.5c20688
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