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March 3, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Ultrasound-responsive piezoelectric thermosensitive PNIPAM/STO hydrogel for minimally invasive antibacterial therapy of neurogenic bladder

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YWYangpeng Wu174th hospital of the People's Liberation ArmyXLXiaoying Lin174th hospital of the People's Liberation ArmyYHYanqian He174th hospital of the People's Liberation Army

Key Points

  • The hydrogel exhibits an antibacterial rate exceeding 80% against Escherichia coli, supporting its therapeutic potential.
  • Cytocompatibility tests show that over 90% of cells remain viable when exposed to the hydrogel.
  • Observational analysis reveals the hydrogel's rapid gel formation at physiological temperature, facilitating targeted treatment.
  • This technology may enable less invasive treatment options for neurogenic bladder, lowering systemic side effects.

Abstract

Abstract Neurogenic bladder secondary to spinal cord injury remains a significant clinical challenge, with current therapies limited by systemic side effects, invasiveness, or short-lived efficacy of single ultrasound intervention. This study developed a composite thermosensitive hydrogel, using poly(N-isopropylacrylamide as the matrix and strontium titanate piezoelectric nanoparticles as the functional component. At room temperature, the hydrogel exists as a flowable sol for minimally invasive bladder perfusion via catheter, at physiological temperature 37 °C, it rapidly forms a gel to adhere tightly to the bladder mucosa, avoiding flushing by urine. Triggered by low-frequency ultrasound, strontium titanate nanoparticles exhibit a piezoelectric effect inducing charge separation, which catalyzes reactive oxygen species generation to exert antibacterial effects. Cytocompatibility tests via CCK-8 showed high viability of cells, exceeding 90%. Antibacterial experiments demonstrated over 80% antibacterial rate against Escherichia coli and effective inhibition of biofilm formation. This ultrasound-responsive piezoelectric thermosensitive hydrogel provides a promising minimally invasive strategy for addressing neurogenic bladder-related issues.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/69a75dd7c6e9836116a281b2https://doi.org/10.1088/2053-1591/ae3f8b
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