Researchers at The University of Alabama in Huntsville report that continuous low-intensity ultrasound can alter macrophage gene activity in ways consistent with moving these immune cells away from prolonged inflammation and toward a more tissue-repairing state. The findings, published in Scientific Reports, suggest a potential noninvasive strategy that could eventually be tested for reducing post-traumatic osteoarthritis risk after joint injury.
Researchers at The University of Alabama in Huntsville (UAH) say a form of continuous low-intensity ultrasound may help steer key immune cells toward a repair-oriented response after injury, a shift they argue could be relevant to post-traumatic osteoarthritis.
The study, published May 14, 2026 in Scientific Reports, examined macrophages—immune cells that can take on different functional states depending on their environment. The researchers focused on pro-inflammatory “M1” macrophages and evaluated whether ultrasound could nudge them toward an “M2-like” profile often associated with resolution of inflammation and tissue repair.
“Our findings suggest that continuous low-intensity ultrasound may help restore this balance by promoting a more reparative macrophage response,” said Anuradha Subramanian, a UAH professor of chemical and materials engineering who led the work.
To better approximate conditions after joint injury, the team used fibronectin fragments—molecules linked to matrix breakdown—rather than relying only on standard laboratory inflammatory triggers such as lipopolysaccharide (LPS), which the paper notes may not fully capture the joint-injury microenvironment.
Using transcriptomic profiling, the researchers reported that ultrasound exposure was associated with reduced expression patterns tied to inflammation and increased expression of markers described as consistent with an M2-like, reparative response. The study also introduced a computational approach the authors call “differential clustering” to identify coordinated shifts in gene co-expression that may not be apparent from conventional gene-by-gene comparisons.
The work was supported by the U.S. National Institutes of Health, according to the paper and UAH.
The researchers emphasized that the findings are at an early, laboratory stage. UAH said the next steps will include testing in animal models of early post-traumatic osteoarthritis to evaluate whether ultrasound-driven immune modulation translates into longer-term tissue-repair benefits in joint injury settings.