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Self-powered Drug Delivery System Invented

“This technology represents a breakthrough addressing shortfalls of current drug delivery systems — one that could have important and sweeping implications for everything from the opioid epidemic to how cancer treatments are precisely delivered,” said Colin Franz, MD, PhD, physician-scientist at Shirley Ryan AbilityLab.

Current implantable drug delivery systems are used to treat medical conditions ranging from chronic pain and muscle spasticity to cancer and diabetes. Passive systems enable gradual release of drugs and don’t require extraction at the end of their use, but they cannot be actively controlled by the user (e.g., turning drug delivery off, up or down). Conversely, active systems that allow programmable drug release require power supplies and electronic parts, and eventually require a second surgery for device extraction.

To test this novel technology, researchers surgically implanted it into the right sciatic nerve of individual rats. Each device contained three drug reservoirs filled with lidocaine, a common nerve-pain-blocking drug. Then, three LEDs were placed over the implantation sites to trigger release of the drug. Subsequent testing showed marked pain relief among the rats. Moreover, researchers were able to achieve different patterns of pain relief depending on the LED color-light sequencing.

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“Additionally, it can be scaled. Although we used a combination of three LEDs in our proof-of-concept testing, moving forward we can potentially increase it up to 30 different LED wavelengths, offering many more programs for pain relief,” said Northwestern University’s John Rogers, PhD.

In future studies, the scientific team will review various safety elements prior to seeking U.S. Food and Drug Administration (FDA) clearance for human clinical trials.

“This technology has many promising implications in rehabilitation medicine and beyond, and the collaboration among physicians, material scientists and biomedical engineers at Shirley Ryan AbilityLab and Northwestern University is rapidly accelerating clinically relevant discoveries,” said Dr. Franz, who also is an assistant professor of Physical Medicine and Rehabilitation and Neurology at Northwestern University Feinberg School of Medicine.

This work was supported by the Kimberly K. Querrey and Louis A. Simpson Institute for Bioelectronics at Northwestern University and a generous philanthropic gift from the family of Belle Carnell, which established a regenerative neurorehabilitation fund for precision medicine in Dr. Franz’s lab.

Source: Eurekalert

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