SonoNeuroS · Wireless UltraSound Powered Diamond based Neural Stimulators
Horizon Europe — Marie Skłodowska-Curie Actions
- Duration
- 2023-01-11 → 2025-01-10
- EU contribution
- €195,915
- Participants
- 2
- Scheme
- HORIZON-TMA-MSCA-PF-EF
Lines connect the coordinator with its partners.
Results in brief
Wireless UltraSound Powered Diamond based Neural Stimulators
This project aims to develop wireless, battery-free, ultrasound-based stimulators using Piezoelectric Micro-machined Ultrasonic Transducer (p-MUT) technology by combining p-MUT and microelectrode arrays. A key focus is on developing wireless neural stimulators and to assess their efficiency using the mouse retinal explant model. Electrical stimulation of the nervous system including retinal neurons, the brain and spinal cord, has significant potential for both scientific research and therapeutic use. A core challenge in chronic applications is the power supply of the implant. For instance, the battery of Deep Brain Stimulators must be changed every 4 to 5 years for standard implant, inducing skin sacring and patient discomfort. Wireless systems using near-field power transfer could circumvent the issues with rechargeable batteries extending the replacement period to 15 years. Wireless and battery stimulators offers a transformative advantage over traditional battery-powered and wired microelectrode systems for implantable medical devices. In this context ultrasound-based wireless solutions provide a safer, less invasive, and more flexible alternative for powering implants. Our study was performed in collaboration with ESIEE Paris and CEA Grenoble, by the combining two different technologies pMUTs and microelectrodes array to provide neural stimulator, which is proof of concept to provide electrical stimulation pulses for future application of neural stimulator in Retinal ganglion cells. In the SonoNeuroS project, a micrometers-sized piezoelectric micromachined ultrasound transducer (pMUT) connected to microelectrodes for a wireless implantable neural stimulator that addresses these limitations, by investigates the feasibility to use micromachined ultrasound transducer pMUT array, resonating at 110-140 kHz, as a wireless neural stimulator. Electrical current flow between microelectrodes with varying impedance, connected to the pMUT terminals in a phosphate-buffered saline (PBS) solution, was measured to evaluate its performance. Preliminary results demonstrate that the pMUT is capable of delivering pulsed current with amplitudes up to 10 µA in PBS. These findings establish a critical step in advancing the design of a wireless neural stimulation device, with the potential for optimized current delivery across different microelectrode arrays. The results indicate that the pMUT-microelectrode combination holds substantial promise for efficient electrical stimulation. The proposed solution could enable the entire micro-implanted system to be integrated into a single device, advancing the development of a wireless implantable neural stimulator with improved biocompatibility, integration, and miniaturization. However, results are not perfectly aligned that was proposed in the project.
Data: CORDIS, © European Union
Project objective
The neurodegenerative diseases and neurological disordered in Central nervous system (CNS) are increasingly recognised as major causes of death and disability in the world, which eventually treatment cost is about 800 billion per year. The main reason behind the non-existence of efficient treatment is that unlike young neurons, mature neurons from the CNS lose the ability to regenerate their axons after injury. To understand the detailed mechanisms, remain not only unknown in Neuroscience but represents also a major challenge for public health and society. Neuro-stimulation is technique that stimulate the activity of neuron and provides solutions to fill the knowledge gap. Current neuro-stimulation techniques somehow limited to large neuron brain areas, rely on wires to powering system, and suffers from rejection by body inflammable. The emerging wireless and battery-free technologies based on ultrasonic communication allows to remove electrode connections to external source. The overall goal of SonoNeuroS project is to develop proof of concept of a fully wireless ultrasound-based powering of electrical stimulation technique with in sub-mm range with diamond electrode materials. This research proposal aims to develop and validate the proposed stimulators for sufficient amount fully wireless power communication, battery free with shrinking size for implantable within 100 m. We will use diamond due to interesting properties for chronic implantation is its high resistance to corrosion, very good biocompatibility. In this idea combining ultrasound powering with Piezoelectric Micro-Machined Ultrasonic Transducer (p-MUT) technology to diamond electrodes, in order to reduce the size results at a smaller scale axial resolution of single neuron activity. After develop wireless neural stimulators, we will have used it to study the effect of electrical stimulation on output of retinal ganglion cells (RGCs), which provides new way towards to visual prostheses.
Original text from CORDIS.
Participants
Links
- View on CORDIS
- DOI: 10.3030/101065427
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e510969187&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5168784d5&appId=PPGMS
Data: CORDIS, © European Union
