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May 6, 2026Polymers0 citationsOpen Access

Poly(Lactic-Co-Glycolic Acid)-Based Systems in Implantology: Advances in Biomaterial Design, Drug Delivery, and Tissue Regeneration

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BPBogdan A. PopescuIBIonela BeluAMAndreea Gabriela Mocanu

Key Points

  • This review aims to analyze the applications of polylactic-co-glycolic acid (PLGA) in implantology, focusing on tissue regeneration and drug delivery systems.
  • Focused review of recent advancements in PLGA applications in dental and orthopedic implantology.
  • Evaluation of polymer composition and processing strategies in relation to biological outcomes.
  • Discussion of emerging technologies in PLGA systems and their clinical applicability.
  • Highlights multifunctional PLGA systems that improve antibacterial efficacy and osteogenesis.
  • Addresses key limitations including acidic degradation and burst release kinetics.
  • Proposes a framework for the development of next-generation PLGA-based implant systems.

Abstract

Poly(lactic-co-glycolic acid) (PLGA) is one of the most extensively investigated biodegradable polymers for biomedical applications, owing to its tunable degradation kinetics, established biocompatibility, and regulatory approval. In implantology, PLGA-based systems have emerged as versatile platforms for scaffolds, coatings, and localized drug delivery, aimed at enhancing osseointegration and tissue regeneration. This review provides a focused and up-to-date analysis of PLGA applications in dental and orthopedic implantology, with particular emphasis on advances reported over the past decade. Unlike previous reviews that predominantly address general drug delivery or broad tissue engineering applications, this work establishes a direct correlation between polymer composition (LA:GA ratio), processing strategies, and biological outcomes, including degradation behavior, mechanical performance, and host response. Special attention is given to multifunctional PLGA systems incorporating antibiotics, growth factors, and bioactive nanoparticles, highlighting their role in improving antibacterial efficacy and osteogenesis. Emerging technologies such as nanostructured composites, additive manufacturing, and stimuli-responsive delivery platforms are critically evaluated. Key limitations—including acidic degradation by-products, burst release kinetics, and translational barriers—are discussed in the context of clinical applicability. By integrating physicochemical design with biological performance and recent clinical trends (2024–2025), this review proposes a framework for the rational development of next-generation PLGA-based implant systems.

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Popescu et al. (2026) studied this question.

synapsesocial.com/papers/69fadad703f892aec9b1e903https://doi.org/10.3390/polym18091113
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