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March 3, 2026Bioactive Materials3 citationsOpen Access

Body-responsive shape-memory polymers for biomedical applications

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ETEbrahim TajikNRNima ReihaniVKVahid Karamzadeh

Key Points

  • Body-responsive shape-memory polymers can change shape in response to physiological stimuli, enhancing biomedical intervention.
  • Temperature and water responsiveness are crucial for their application in tissue engineering and drug delivery systems.
  • Analysis focuses on the structural design and its role in governing the responsiveness of shape memory polymers.
  • Challenges in current designs highlight the need for future development to enhance functionality in clinical settings.

Abstract

Shape memory polymers (SMPs) have emerged as versatile and adaptive materials in healthcare, offering transformative solutions for tissue repair and biomedical device interfaces. Their ability to undergo controlled shape changes in response to external stimuli has driven significant interest in developing smart implants for minimally invasive procedures. Precise material design and engineering that leverage physiological conditions, such as body temperature and bodily fluids, can unlock their potential for biomedical applications. This review focuses explicitly on SMPs activated by physiological stimuli, referred to here as "body-responsive" SMPs. By categorizing SMPs into temperature-responsive, water-responsive, and dual-responsive variants, their shape memory behavior is analyzed, with an emphasis on how the structural design governs the body-responsiveness of the SMPs. Current biomedical applications, including tissue engineering, vascular interventions, bioelectronic devices, and targeted drug delivery, are also highlighted to demonstrate the practical relevance and versatility of body-responsive SMPs. Additionally, emerging fabrication technologies are discussed to provide insight into current scalable production methods suitable for SMPs. Finally, challenges in the design and performance of SMPs are explored, and a vision for future advancements is presented, outlining a roadmap for translating SMPs into biomedical applications within clinical settings.

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Cite This Study

Tajik et al. (2026) studied this question.

synapsesocial.com/papers/69a75d4bc6e9836116a2715chttps://doi.org/10.1016/j.bioactmat.2025.12.054
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