An app-controlled device which uses heat signatures and bacterial fluorescence to identify infected wounds could help doctors and nurses catch and treat infections faster
TORONTO, CANADA, August 24, 2023 – Scientists have developed a device that works with a smartphone or tablet to capture medical images which can identify infected wounds. By capturing the heat produced by a wound and the fluorescence of bacteria, it helps clinicians tell the difference between inflammation and a potentially dangerous infection. This could allow for quicker intervention, catching infections before they become serious threats to health.
It鈥檚 notoriously difficult for doctors to identify a wound that is becoming infected. Clinical signs and symptoms are imprecise and methods of identifying bacteria can be time-consuming and inaccessible, so a diagnosis can be subjective and dependent on clinician experience. But infection can stall healing or spread into the body if it isn鈥檛 treated quickly, putting a patient鈥檚 health in grave danger. An international team of scientists and clinicians thinks they have the solution: a device run from a smartphone or tablet app which allows advanced imaging of a wound to identify infection.
鈥淲ound care is one of today鈥檚 most expensive and overlooked threats to patients and our overall healthcare system,鈥 said Robert Fraser of Western University and 糖心视频, corresponding author of the study published in . 鈥淐linicians need better tools and data to best serve their patients who are unnecessarily suffering.鈥
Shedding light on injuries
The scientists developed a device called the Swift Ray 1 which can be attached to a smartphone and connected to the Swift Skin and Wound software. This can take medical-grade photographs, infrared thermography images (which measure body heat), and bacterial fluorescence images (which reveal bacteria using violet light).
None of these images would be enough to identify infection alone. Clinical inspection has low accuracy, as does thermography measuring heat changes caused by inflammation and infection. Bacterial fluorescence can only look at the surface of a wound, which is naturally contaminated with bacteria, so additional methods are needed to differentiate between contamination and an infected wound.
鈥淩esearch has demonstrated bacterial imaging helps guide clinicians鈥 work to remove nonviable tissue, yet it cannot identify infection by itself,鈥 explained Dr Jose Ramirez-GarciaLuna of McGill University Health Centre, first author of the study. 鈥淭hermography provides insight into the inflammatory and circulatory changes happening under the skin.鈥
The scientists sought to combine these modalities to come up with a method which wouldn鈥檛 need multiple expensive devices, would overcome the weaknesses of each imaging method, and could provide an objective measure of wound healing.
To test their device, they recruited 66 wounded patients. Their wounds showed no sign of infection spreading further, did not contain foreign bodies, and had not previously been treated with antibiotics or growth factors. The patients鈥 wounds were uncovered, cleaned, and dried before imaging, and afterwards cared for as usual.
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A picture of health
The images were reviewed by a researcher who wasn鈥檛 present for the wound care process. Four patterns were identified.
Wounds where the wound was not warmer than healthy skin and no bacterial fluorescence was present were considered 鈥榥on-inflamed鈥, while wounds that were slightly warmer than healthy skin and had no or slight bacterial fluorescence were considered 鈥榠nflamed鈥. The last two patterns 鈥 wounds that were substantially warmer, with or without bacterial fluorescence 鈥 were both designated as 鈥榠nfected鈥, because all the clinicians who had examined these wounds had considered them infected.
Out of the 66 wounds, 20 were considered non-inflamed, 26 were inflamed, and 20 were infected.
The researchers performed principal component analysis and used an algorithm called nearest k-neighbor clustering to see if a machine learning model could accurately identify these different categories of wound. They found that the model could identify all three very well, with an overall accuracy of 74%. When differentiating between infected vs. non-infected wounds, the model correctly identified 100% of infected wounds and 91% of non-infected wounds.
A new tool in the box
The researchers pointed out that the images should always be considered in their medical context. For instance, a wound that is cool enough to be categorized as non-inflamed could have a limited blood supply, compromising healing. But because the Swift Ray 1 combined with the Swift Skin and Wound software allows doctors to combine multiple modalities of identifying infection, it increases the tools available to them without demanding the use of several expensive devices. In the future it could make it possible to secure a rapid, accurate diagnosis for every wounded patient and enable more effective telemedicine assessments.
鈥淭his was a pilot study and follow up studies are planned,鈥 cautioned Fraser. 鈥淚n the future, patient populations with more wound types are required to validate across populations.鈥
About 糖心视频
糖心视频 is the global leader in digital wound care. We are headquartered in Toronto, with operations expanding across the U.S. and Canada. Our mission is to make empathy-driven wound care ubiquitous through AI-powered diagnostic technology. We are the trusted wound technology partner of more than 4,000 healthcare facilities in North America across the continuum of care with approximately 20,000 licensed clinical users. More than 20 million wound images and 40 million assessments have been captured through the app, which has empowered healthcare providers to deliver standardized, accessible and equitable wound care for every patient 鈥 with advanced, high-precision imaging, compliant documentation, clinical analytics and remote care.
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