These synchronized PLGA coatings provide a reliable, multifunctional platform for long-term therapeutic delivery in next-generation medical implants and found a near-perfect linear correlation between the reduction in molecular weight, mass loss and cumulative drug release, confirming synchronized kinetics.
Abstract
Biodegradable polymeric coatings improve metallic implant biofunctionality through sustained drug delivery. While Poly (Lactic-Co-Glycolic Acid) (PLGA) is widely used for its biocompatibility, synchronizing polymer degradation with drug release remains a critical challenge to prevent premature drug loss or insufficient efficacy. This research aimed to examine the degradation behavior and release synchronicity of paclitaxel-loaded PLGA coatings on Ti-6Al-4V substrates. Researchers utilized dip-coating for fabrication, characterizing the samples via Nuclear Magnetic Resonance (NMR), X-ray Diffraction (XRD), and Scanning Electron Microscopy (SEM). Degradation was evaluated through mass loss and molecular weight evolution in physiological conditions, while hemocompatibility was assessed via platelet adhesion. Results demonstrated that drug incorporation significantly influenced structural and thermal properties. Notably, the research found a near-perfect linear correlation between the reduction in molecular weight [Formula: see text], mass loss [Formula: see text] and cumulative drug release, confirming synchronized kinetics. Furthermore, the coatings exhibited excellent hemocompatibility with minimal platelet activation. In conclusion, these synchronized PLGA coatings provide a reliable, multifunctional platform for long-term therapeutic delivery in next-generation medical implants.
Poor aqueous solubility can limit drug release from biodegradable implants. We developed a multifunctional dual-jet electrospun drug-delivery system (DDS) designed to accelerate the release of poorly water-soluble bioactive substances. Its principle is based on introducing the drug-carrying matrix and release-rate modi...
J. Wlodarczyk, Natalia Kurowska, M. Musiał-Kulik et al.· European journal of pharmace...· 0 citations
Biodegradable polymer implants offer long-acting drug delivery, yet the roles of polymer chemistry and drug properties in governing release remain incompletely understood. We hypothesized that polymer viscosity and end-group chemistry regulate water uptake, glass-transition, and chain mobility, thereby controlling im...
Dong-Yue Yu, Ryan V. Schroder, Arnold Teo et al.· Molecular Pharmaceutics· 0 citations
Application of biodegradable polymer coatings is a general strategy for addressing rapid corrosion and insufficient biocompatibility of biomedical magnesium (Mg) alloys. In this work, three typical polymer coatings, including silk fibroin (SF), poly(L-lactic acid) (PLLA), and poly(trimethylene carbonate) (PTMC), were f...
Qian-Ying Jia, Jia-Yu Yang, Nai-Zhong Zhang et al.· International Journal of Bio...· 0 citations
Poly(ε-caprolactone) (PCL) and poly(lactic acid) (PLA) are widely used biodegradable polyesters for orthopaedic fixation, craniofacial reconstruction, soft-tissue scaffolds, and drug delivery because of their biocompatibility, processability, and tuneable degradation. However, their chemically static structures lack dy...
Biodegradable polymeric scaffolds incorporating bioactive mineral phases are a promising approach for dentin-pulp tissue engineering. Although poly(lactic-co-glycolic acid) (PLGA) microparticles have been widely used as scaffolds due to their biocompatibility and tunable degradation profile, their inherent bioactivity...
S. H. Raouf, V. Platania, Argyro Lamprou et al.· Journal of Functional Biomat...· 0 citations
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