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May 10, 2026Communications Materials2 citationsOpen Access

Delivering biomedicines with stimuli‑responsive biomaterials

HSHemant SinghZDZenab DarbanAEAliakbar Ebrahimi

Key Points

  • The aim is to outline the design principles and applications of stimuli-responsive biomaterials for biomedicine delivery.
  • Synthesize principles of design, selection, and functionalization of stimuli-responsive biomaterials.
  • Classify triggering stimuli into physical, chemical, and biological cues, including multi-responsive systems.
  • Survey advancements in the delivery of various therapeutic agents such as small molecules, proteins, and DNA/RNA.
  • Demonstrated enhanced efficacy and reduced off-target toxicity of stimuli-responsive biomaterials in targeted therapy.
  • Highlighted challenges in safety, manufacturability, and reproducibility of these biomaterials.
  • Outlined future directions for intelligent, site-specific delivery systems.

Abstract

Stimuli‑responsive (smart) biomaterials are emerging as versatile platforms for the precision delivery of biotherapeutics. Engineered to sense internal or external cues, these materials undergo reversible physicochemical changes that trigger on‑demand payload release, thus improving efficacy while limiting off‑target toxicity. Here we synthesize the design principles that underpin materials’ selection, architecture, and functionalization and provide a systematic classification of triggering stimuli spanning physical (temperature, light, ultrasound), chemical (pH, redox potential, ionic strength), and biological (enzymes, glucose, reactive oxygen species) cues, including multi‑responsive systems that integrate signals for synergistic control. We describe mechanistic pathways of stimuli transduction and release that enable spatiotemporal dosing. We then survey recent advances in the delivery of small molecules, proteins and peptides, nucleic‑acid therapeutics (DNA, RNA, CRISPR components), vaccines and cells using these platforms, and evaluate their translational potential in targeted therapy and regenerative medicine. Finally, we discuss outstanding challenges, safety, manufacturability, and reproducibility, and outline directions for next‑generation biomaterials capable of intelligent, site‑specific delivery. Stimuli-responsive biomaterials are a versatile platform for the precision delivery of biotherapeutics. This Reviews surveys and discusses the design principles that underpin material selection, architecture, and functionalization, and classifies triggering stimuli.

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Cite This Study

Singh et al. (2026) studied this question.

synapsesocial.com/papers/6a0021fec8f74e3340f9cf14https://doi.org/10.1038/s43246-026-01163-4
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