Many wounds aren’t a big deal — generally, all you need to do is clean them, apply bandages and let them heal. However, chronic wounds that don’t heal on their own affect more than 8 million people in the United States and represent more than 15,000 in funding, due to the importance of finding a new mediator for the healing process and the potential to harness the serpin protein to open new methods for developing therapeutics to treat poorly healing wounds. And he’s proud to bring the award to ASU. “I’m a four-time Sun Devil — I received my Bachelor of Science and PhD, completed my second post-doctoral training and I am now an assistant research professor, all at ASU,” Yaron says. “It gives me tremendous pride to represent the ASU community and to bring this recognition home.” Borrowing from nature to bioengineer new treatments Yaron also explores how to use natural materials not already found in the human body to promote wound healing. In 2021, he was awarded a three-year, $308,954 K01 Mentored Research Scientist Career Development Award by the National Institutes of Health to explore a method to augment tissue repair through engineered biomaterials. Diabetes causes poor conditions for healing in wounds, including damaged blood vessels that result in limited blood flow, biochemical imbalances and dysregulated biological mechanisms of tissue repair. In addition to limiting natural healing, these conditions also limit the effectiveness of therapeutic treatments. Burns and infections can also hinder healing and treatment delivery. So, new engineered biomaterials are needed to deliver treatments that promote healing in these types of wounds. In this research, Yaron is exploring the use of silk fibroin from domestic silkworm cocoons and chitosan, a type of sugar, from shrimp and other shellfish shells for a timed, sustained-release method of delivering treatments for wound healing. A 3D confocal laser microscopy image of a composite bilayer film generated from chitosan from crustacean shells (dyed green) and silk fibroin from silkworm cocoons (dyed orange). The film is less than 200 micrometers thick. The two layers of the film have different drug release and degradation properties and can be used to generate a “smart wound dressing” that can release one drug quickly and another drug slowly, timed to the rate of wound healing. Image courtesy of Jordan Yaron “We chose these materials because they are natural polymers with very interesting biological and physicochemical properties,” Yaron says. Silk fibroin is mechanically tunable, compatible with living tissue and the researchers can control the rate at which it breaks down. The lab Yaron works within — the Rege Bioengineering Lab directed by Kaushal Rege , a professor of chemical engineering in the Fulton Schools — has also developed protocols to modify silk fibroin to further adjust its properties. Chitosan is also compatible with living tissue as well as biodegradable and can easily be modified to change its chemical properties. By leveraging the properties of each of these materials, Yaron and Rege Bioengineering Lab researchers are building a library or toolkit to load and release different drugs, composed of small molecules and proteins, at different rates from a composite material. They will tune the biology and physical chemistry of silk fibroin and chitosan to create composites and find combinations that optimally interact with healing wounds. “Our composite drug delivery platforms may have emergent properties that cannot be entirely predicted. By building several libraries of materials, we can screen a large set and identify the platform that exhibits the properties we have identified as necessary to best aid in wound healing,” Yaron says. “Our goal is to make a single ‘smart wound dressing’ that can release one drug quickly and another drug slowly with the goal to time the exposure of the drug to the phase of healing.” Yaron plans for the composite to carry drugs that will address different phases of the wound healing process, particularly transitioning from the inflammatory phase to the proliferation phase to wound closure. Diabetic wounds tend to have difficulty transitioning through these phases. First, he aims to deliver small molecule inhibitors of the inflammasome, an immune complex that drives inflammation and is important to healthy wound healing but dysfunctional in diabetic wounds. Then, a few days into the healing process, the composite would release growth factor nanoparticles to help push the wound into the next phases of healing — proliferation and then closure. “It’s like pushing a car up a hill,” Yaron says. “If a wound has a hard time getting to the top of the hill, the growth factor nanoparticles will get it there and then the wound should have less of a hard time progressing to closure, or going down the hill.” If his research is successful, Yaron hopes the new toolkit of smart dressings with a variety of bioactive cargo options will maximize our ability to “harness the healing process” and be used in a clinical setting. Because both naturally derived materials are Food and Drug Administration-approved and Generally Recognized as Safe materials, the composite package of this treatment method should be easy to gain approval. However, there is still a long road to getting the bioactive cargo through FDA approval to clinical application. “Translating from the bench to the bedside never happens overnight, but because we have strong science behind our molecular targets and a distinct readout goal in our preclinical models, we hope we will avoid the scenic route,” Yaron says. As part of the K01 mentored research award, Yaron is working with Rege, his primary mentor and an expert in developing innovative biomaterials for tissue repair, including through the use of gold, silk and lasers . To complement his expertise in cellular inflammation and tissue repair therapeutics development, he is also working with a strong team of mentors who have expertise in bioengineered nanomaterials, dermatopathology, biomaterial immune responses and translational therapeutics: Francois Berthiaume at Rutgers University, David J. DiCaudo at Mayo Clinic, and Tatiana Ugarova and Alexandra Lucas at ASU. “Working with Dr. Rege and the rest of my mentorship team in the innovative and scientifically robust environment at ASU provides an outstanding opportunity to bridge their worlds with mine and to hopefully emerge with something truly novel and impactful to the wound healing community,” he says. Related people Featured topics The post When time doesn’t heal all wounds appeared first on Engineering News .
When time doesn’t heal all wounds
Monique Clement

