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Updated: May 1, 2026

Generation of Alginate Microspheres for Biomedical Applications
Published on: August 12, 2012
Engineered injectable alginate hydrogel for radiotherapy spacing: Achieving controllable degradation and real-time
Ketong He1, Shaoqing Chen2, Rongjing Zhou3
1School of Pharmacy, Changzhou University, Changzhou, Jiangsu, 213164, China.
None:
Radiation therapy, a core cancer treatment, uses high-energy rays to kill tumor cells but damages surrounding healthy tissues, limiting efficacy and causing side effects. Thus, protecting normal tissues is key to better radiotherapy outcomes. Spacers form a physical barrier between normal and tumor tissues to reduce radiation to healthy cells, vital for protection. However, current spacers are non-degradable, lack imaging capabilities, or have poor biocompatibility, hindering monitoring during treatment and safe metabolism post-treatment. This study developed an injectable calcium alginate hydrogel. By adjusting calcium concentration, the optimal SA-Ca2+-3 was determined. Adding iodinated oil enables real-time CT monitoring of its position/status during treatment; introducing diethylenetriaminepentaacetic acid post-radiotherapy allows precise, controlled degradation, resolving metabolism issues. Tests in subcutaneous and prostate models confirmed SA-Ca2+-3 stays stable in vivo for 30 days with good biocompatibility and no obvious inflammation. With controllable degradation, visualized imaging, and optimized mechanics, it may become an ideal radiation spacer, offering a new strategy to boost radiotherapy safety and precision.
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