Authors
Amy Stimpson, Jerry Contreras, Bryce Roper, James W Caruana, Ifty Ahmed, Cordula Hege, Joseph Sefton, Abby R Whittington, Derek J Irvine
Published in
Biomacromolecules. Volume 27. Issue 9. Pages 5984-5996. Sep 14, 2026.
Abstract
This work reports a scalable strategy for producing polymeric medical devices with enhanced ultrasound (US) echogenicity via tailored dispersant design to support safer image-guided medical device placement. Real-time US imaging offers an alternative to X-ray imaging, reducing radiation exposure while enabling accurate device positioning/monitoring. Previous studies showed that including bioabsorbable phosphate-based glass (PBG) microspheres into thermoplastic polyurethane (TPU) could improve echogenicity. However, aggregation and processing defects limited the performance. To address this, two classes of acid-functionalized dispersants were synthesized to improve the microsphere dispersion and compatibility with TPU. These, i.e., dodecenylsuccinic diacid (DDSD) and oligomeric methacrylate/acrylates prepared using acid-functionalized chain-transfer agents, were grafted onto PBG microspheres via dip-coating and thermal treatment. Successful surface modification was confirmed by separation testing, SEM, and XPS. TPU composites containing the coated microspheres were then extruded into catheter-like structures and shown to demonstrate enhanced, more uniform echogenicity under clinical US imaging conditions without compromising the mechanical properties.
PMID:
42734263
Bibliographic data and abstract were imported from PubMed on 14 Sep 2026.
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