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June 3, 2026Molecules0 citationsOpen Access

Recent Advances in Extended Ocular Drug Delivery for the Ocular Surface

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YCYura ChoiMJMi‐Young JungEHEunsun Han

Key Points

  • This review aims to explore recent advancements in biopolymer-based systems for enhanced ocular drug delivery and their implications for eye treatment.
  • Comprehensive overview of natural biopolymers like polysaccharides and proteins used in ocular applications.
  • Discussion of various delivery platforms, including hydrogels, nanoparticles, contact lenses, and microneedles.
  • Evaluation of the integration of nanotechnology and bioinspired scaffolds in drug delivery efficiency.
  • Biopolymer systems exhibit improved mucoadhesion and biocompatibility, enhancing drug retention on the ocular surface.
  • Significant progress in developing smart, responsive systems capable of sustained drug release for effective therapy.
  • Challenges remain in the clinical translation of these advanced delivery methods.

Abstract

The unique anatomy and physiological barriers of the human eye—particularly rapid tear turnover and limited corneal permeability—present significant obstacles to achieving effective topical drug delivery. In response to these constraints, biopolymer-based extended-release systems have emerged as a promising and transformative class of ocular therapeutics. This review provides a comprehensive overview of recent advances in natural biopolymers, including polysaccharides and protein-derived polymers, for application on the ocular surface. These materials exhibit advantageous characteristics such as mucoadhesion, biocompatibility, and stimuli-responsive behavior, which collectively enhance precorneal residence time and enable controlled, sustained drug release. We further discuss diverse delivery platforms—ranging from in situ forming hydrogels and mucoadhesive nanoparticles to drug-eluting contact lenses and microneedle-based systems. In addition, we highlight how the integration of nanotechnology and bioinspired scaffolds can augment the delivery efficiency of therapeutic agents to ocular tissues. Overall, this review underscores the ongoing transition from conventional topical eye drops to sophisticated, functionalized delivery systems capable of maintaining therapeutic drug levels while simultaneously supporting tissue repair and wound healing. Finally, we outline the remaining challenges in clinical translation and consider the future potential of smart, responsive biopolymer systems in advancing the treatment of both anterior and posterior segment diseases.

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Cite This Study

Choi et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc49adee9eb8c0dce60f6https://doi.org/10.3390/molecules31111883
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