Completed Bones, Joints & Muscles Engineering

Surgery enabled by ultrasonics

In plain English

AI plain-English summary

Ultrasonic surgical tools that can both cut tissue and promote healing are being designed to snake through the body on flexible, tentacle-like robots. Most surgical instruments for cutting or fragmenting tissue have barely changed in millennia, and existing ultrasonic devices are too bulky and limited for many minimally invasive procedures. This project aims to shrink those devices and give them a dual function—precise dissection alongside the ability to aid tissue regeneration—so they can reach deep, tortuous surgical sites such as the skull base or spine. The team will combine ultra-high-speed imaging, biophysical analysis, and clinical assessment to measure exactly how ultrasonic energy affects tissue, from cutting precision to thermal damage and healing potential. If successful, the work could shift many procedures from inpatient stays to day surgery, reducing recovery times and healthcare costs. It also promises surgeons unprecedented control in delicate operations where preserving nerves or blood vessels is critical, without the need for large incisions.

View original technical description
The range of surgical tools for interventional procedures that dissect or fragment tissue has not changed significantly for millennia. There is huge potential for ultrasonic devices to enable new minimal access surgeries, offering higher precision, much lower force, better preservation of delicate structures, low thermal damage and, importantly, enabling more procedures to be carried out on an out-patient or day surgery basis. To realise this potential, and deliver our vision of ultrasonics being the technology of choice for minimal access interventional surgery, a completely new approach to device design is required, to achieve miniaturisation and to incorporate both a cutting and healing capability in the devices. By integrating with innovative flexible, tentacle-like surgical robots, we will bring ultrasonic devices deep into the human body, along tortuous pathways to the surgical site, to deliver unparalleled precision. Unsurpassed precision in challenging neurological, skull-base and spinal procedures as well as in general surgery is attainable through tailoring the robotic-ultrasonic devices to deliver the exact ultrasonic energy to the exact locations required to optimise the surgery. We will achieve this by quantifying the effects of the ultrasonic excitations typical of surgical devices in tissues, at and surrounding the site of surgery, in terms of precision cutting, tissue damage (mechanical damage, thermal necrosis, cavitation) but also the potential to aid regeneration. We will make world-leading advances in ultra-high speed imaging measurements and biophysical analysis, complementing advances in histology and clinical assessment, to develop a combined approach to the characterisation of both damage and regeneration of tissue. Through this holistic approach to device design, we will create integrated robotic-ultrasonic surgical devices tailored for optimised surgery.

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Researchers

Damien Walmsley (Co-Investigator)Fabrice Pierron (Co-Investigator)Hamish Simpson (Co-Investigator)Margaret Lucas (Principal Investigator)Pietro Valdastri (Co-Investigator)Sandy Cochran (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Miniature Ultrasonic Cutting Devices for High Precision Minimal Access Orthopaedic Surgical Procedures
AMNIUS: Advancing Tissue Adaptivity with Additively Manufactured Nitinol Ultrasonic Transducers in Robot-Assisted Surgery
High-speed imaging based study of ultrasonic tissue cutting for surgery
Miniaturised ultrasonic scalpel for robotic surgical procedures
Miniaturisation and Optimisation of Ultrasonic Scalpels for Robotic Surgery

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.