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February 8, 2026Polymers for Advanced Technologies0 citationsOpen Access

Assessment of Methacrylated Poly(ε‐Caprolactone)/Silanized Hydroxyapatite Composite Resin for High‐Resolution Scaffolds via Vat Photopolymerization 3D Printing

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TPThiago Nunes PalharesJLJoão Fiore Parreira LovoGRGabriela Costa Rodrigues

Key Points

  • This research aims to evaluate the mechanical and biological properties of methacrylated poly(ε-caprolactone) composite resins.
  • Formulated composite resins with varying concentrations of silanized hydroxyapatite and additives.
  • Characterized mechanical properties through compression tests on 3D-printed samples.
  • Performed in vitro biological assays using human primary fibroblasts to assess cell adhesion.
  • Composite PCLMA10S showed enhanced mechanical performance compared to PCLMA.
  • Biological assays confirmed effective cell adhesion on HAp and HAp-Si surfaces.
  • Inclusion of Orange II improved high-resolution printability with well-defined pore structures.

Abstract

ABSTRACT High‐resolution, biocompatible scaffolds are essential for reproducible tissue engineering and remain challenging to fabricate with vat photopolymerization due to cure‐depth control and limited bioactivity of neat polymers. This work investigated the mechanical, surface, and biological properties, as well as the high‐resolution 3D printability, of methacrylated poly(ε‐caprolactone) (PCLMA) composite resins incorporating silanized hydroxyapatite (HAp‐Si) and a photoabsorber additive. Formulations of PCLMA, PCLMA10 (10% HAp), PCLMA10S (10% HAp‐Si), and PCLMA10SOr (10% HAp‐Si + 0.1% Orange II) were prepared. NMR confirmed successful functionalization of PCLMA and HAp‐Si. Cured samples were characterized by wettability (contact angle) and Shore A hardness. Mechanical compression tests were performed on 3D‐printed cylindrical samples, while in vitro biological assays, including cell adhesion, were performed using human primary fibroblasts. The incorporation of HAp‐Si enhanced the mechanical properties, with PCLMA10S exhibiting higher performance compared to PCLMA. Biological assays further demonstrated cell adhesion, underscoring the potential bioactivity and biocompatibility on HAp/HAp‐Si‐containing surfaces. Complex Gyroid scaffolds were 3D printed to assess high‐resolution printability. Importantly, the inclusion of Orange II enabled well‐defined pore architectures, overcoming printability limitations observed in formulations without the photoabsorber. These findings highlight the potential of tailored PCLMA‐based composite resins for mechanical, biocompatible, and precise structured scaffolds, for tissue engineering applications.

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Cite This Study

Palhares et al. (2026) studied this question.

synapsesocial.com/papers/698827c90fc35cd7a8846ba9https://doi.org/10.1002/pat.70523
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