UTA professors 3D print heart patch to support cardiac care
In an attempt to one day regenerate damaged cardiac muscle using advanced bioengineering
According to the University of Texas at Arlington (UTA), a bioengineering professor, with support from the National Institutes of Health, is developing a 3D printed heart patch that could one day regenerate damaged cardiac muscle – potentially saving lives and improving long-term recovery for heart attack survivors.
When heart muscle is damaged due to a lack of blood and oxygen, the tissue dies and cannot fully regenerate, often leading to serious complications later in life. But thanks to advanced 3D printing technology, Yi Hong, a distinguished research professor in the Department of Bioengineering, is working on a promising new approach to help the heart heal itself.
“Our goal is to create a smart, bioengineered patch that not only supports the heart structurally, but also promotes real regeneration of the damaged tissue,” said Dr. Hong. “This research could offer new hope to patients who currently have few options beyond managing symptoms.”
The researchers aim to combine biomaterials engineering, stem cell therapy, and advanced manufacturing to create a patch that closely mimics the heart’s natural environment and electrical activity. The patch’s conductive design will synchronize with the heartbeat, and the exosomes will deliver molecular signals that guide the body’s healing process.
“This is an exciting interdisciplinary effort that brings together some of the most innovative minds in cardiovascular repair,” said Hong. “We are not just repairing damage; we are actively guiding the heart to heal itself.”
The research has broad implications beyond heart attack recovery, potentially benefiting a range of cardiovascular conditions that result in muscle loss or weakening. If successful, it could pave the way for new standards in cardiac care and advance the field of regenerative medicine.
”Professor Hong continues to make significant advances in developing innovative tissue engineering solutions for heart tissue repair,” said Michael Cho, Chair of the Department of Bioengineering at UTA. “His latest NIH-funded project – focused on elastic exosome-releasing conductive patches for cardiac regeneration – highlights his pioneering and clinically impactful approach and offers promising new alternatives for treating myocardial infarction or heart attack, the leading cause of death worldwide.”
The grant supporting this work was awarded by the National Heart, Lung, and Blood Institute, a division of the National Institutes of Health. The project aligns with UTA’s strategic focus on health and the human condition.



