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May 14, 2026Polymers1 citationsOpen Access

Engineering Porous PET-RAFT Scaffolds with PLGA–Insulin Nanoparticles: Advancing Bone Tissue Regeneration Through Additive Manufacturing

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FRFernando E. Rodríguez-UmanzorMSMauricio A. Sarabia‐VallejosNANicolas F. Acuña-Ruiz

Key Points

  • This study aims to develop multifunctional scaffolds for bone tissue engineering using a 3D printing approach.
  • Porous 3D scaffolds were fabricated via digital light processing (DLP) using PET-RAFT resin.
  • Insulin-loaded PLGA nanoparticles were embedded in the scaffolds for osteoinduction.
  • Cytocompatibility was assessed using various cell lines, and scaffold properties were analyzed through micro-CT.
  • Scaffolds showed a total porosity of 57.0 ± 6.98% with interconnected pores averaging 70.7 ± 24.7 μm.
  • Cytocompatibility assays indicated cell viability above 80% after 7 days.
  • Dynamic culture enhanced RUNX2 expression, indicating osteoinductive potential.

Abstract

Multifunctional scaffolds that combine structural support with the controlled delivery of bioactive agents remain a major challenge in tissue engineering. To extend the use of these devices in biomedicine, 3D printing is presented as an alternative that enables the manufacture of complex devices tailored to each patient, thereby solving specific problems in a timely and efficient manner. In this study, porous 3D scaffolds were fabricated via digital light processing (DLP) using a PET-RAFT resin composed of 2-(dimethylamino)ethyl methacrylate (DMAEMA) and poly(ethylene glycol) diacrylate (PEGDA575). Sodium chloride (NaCl) was incorporated as a porogen, while insulin-loaded poly(lactic-co-glycolic acid) (PLGA) nanoparticles were embedded as osteoinductive agents. The printed constructs exhibited high-resolution, reproducible trabecular-like architectures, as confirmed by micro-computed tomography (micro-CT), with interconnected pores averaging 70.7 ± 24.7 μm and a total porosity of 57.0 ± 6.98%. Thermal and chemical analyses confirmed scaffold stability and controlled degradability. Cytocompatibility assays using MC3T3-E1, C2C12, hGMSCs, and C166-GFP cells showed viability above 80% after 7 days (ISO 10993-5). Insulin-loaded nanoparticles enabled sustained release, characterized by an initial burst followed by gradual release up to 72 h. Dynamic bioreactor culture enhanced cell adhesion and RUNX2 expression, confirming the osteoinductive potential of the hybrid scaffold for advanced BTE applications. This study introduces an innovative PET-RAFT-derived resin that combines structural reinforcement with spatiotemporal regulation of insulin release, offering a potential strategy for enhanced biomaterial tissue engineering and tailored therapeutic interventions.

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Cite This Study

Rodríguez-Umanzor et al. (2026) studied this question.

synapsesocial.com/papers/6a0567d2a550a87e60a200achttps://doi.org/10.3390/polym18101184
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