Illustration of the human nervous system

Researchers have developed tiny, flexible devices that can wrap around individual nerve fibres without damaging them.

探花直播ability to make an implant that can change shape through electrical activation opens up a range of future possibilities for highly targeted treatments

George Malliaras

探花直播researchers, from the 探花直播 of Cambridge, combined flexible electronics and soft robotics techniques to develop the devices, which could be used for the diagnosis and treatment of a range of disorders, including epilepsy and chronic pain, or the control of prosthetic limbs.

Current tools for interfacing with the peripheral nerves 鈥 the 43 pairs of motor and sensory nerves that connect the brain and the spinal cord 鈥 are outdated, bulky and carry a high risk of nerve injury. However, the robotic nerve 鈥榗uffs鈥 developed by the Cambridge team are sensitive enough to grasp or wrap around delicate nerve fibres without causing any damage.

Tests of the nerve cuffs in rats showed that the devices only require tiny voltages to change shape in a controlled way, forming a self-closing loop around nerves without the need for surgical sutures or glues.

探花直播researchers say the combination of soft electrical actuators with neurotechnology could be an answer to minimally invasive monitoring and treatment for a range of neurological conditions. 探花直播 are reported in the journal Nature Materials.

Electric nerve implants can be used to either stimulate or block signals in target nerves. For example, they might help relieve pain by blocking pain signals, or they could be used to restore movement in paralysed limbs by sending electrical signals to the nerves. Nerve monitoring is also standard surgical procedure when operating in areas of the body containing a high concentration of nerve fibres, such as anywhere near the spinal cord.

These implants allow direct access to nerve fibres, but they come with certain risks. 鈥淣erve implants come with a high risk of nerve injury,鈥 said Professor George Malliaras from Cambridge鈥檚 Department of Engineering, who led the research. 鈥淣erves are small and highly delicate, so anytime you put something large, like an electrode, in contact with them, it represents a danger to the nerves.鈥

鈥淣erve cuffs that wrap around nerves are the least invasive implants currently available, but despite this they are still too bulky, stiff and difficult to implant, requiring significant handling and potential trauma to the nerve,鈥 said co-author Dr Damiano Barone from Cambridge鈥檚 Department of Clinical Neurosciences.

探花直播researchers designed a new type of nerve cuff made from conducting polymers, normally used in soft robotics. 探花直播ultra-thin cuffs are engineered in two separate layers. Applying tiny amounts of electricity 鈥 just a few hundred millivolts 鈥 causes the devices to swell or shrink.

探花直播cuffs are small enough that they could be rolled up into a needle and injected near the target nerve. When activated electrically, the cuffs will change their shape to wrap around the nerve, allowing nerve activity to be monitored or altered.

鈥淭o ensure the safe use of these devices inside the body, we have managed to reduce the voltage required for actuation to very low values,鈥 said Dr Chaoqun Dong, the paper鈥檚 first author. 鈥淲hat's even more significant is that these cuffs can change shape in both directions and be reprogrammed. This means surgeons can adjust how tightly the device fits around a nerve until they get the best results for recording and stimulating the nerve.鈥

Tests in rats showed that the cuffs could be successfully placed without surgery, and formed a self-closing loop around the target nerve. 探花直播researchers are planning further testing of the devices in animal models, and are hoping to begin testing in humans within the next few years.

鈥淯sing this approach, we can reach nerves that are difficult to reach through open surgery, such as the nerves that control, pain, vision or hearing, but without the need to implant anything inside the brain,鈥 said Barone. 鈥 探花直播ability to place these cuffs so they wrap around the nerves makes this a much easier procedure for surgeons, and it鈥檚 less risky for patients.鈥

鈥 探花直播ability to make an implant that can change shape through electrical activation opens up a range of future possibilities for highly targeted treatments,鈥 said Malliaras. 鈥淚n future, we might be able to have implants that can move through the body, or even into the brain 鈥 it makes you dream how we could use technology to benefit patients in future.鈥

探花直播research was supported in part by the Swiss National Science Foundation, the Cambridge Trust, and the Engineering and Physical Sciences Research Council (EPSRC), part of UK Research and Innovation (UKRI).

Reference:
Chaoqun Dong et al. 鈥.鈥 Nature Materials (2024). DOI: 10.1038/s41563-024-01886-0



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