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May 17, 2026Materials1 citationsOpen Access

3D-Printed PLA/HA Composite Scaffolds: Balancing Mechanical Properties for Bone Tissue Engineering

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MBMuhamad Naseh Sajadi BudiMKMuhammad Agus KariemBDBrilliant Dwinata

Key Points

  • The study aims to enhance the mechanical properties of PLA scaffolds by incorporating hydroxyapatite for bone tissue engineering applications.
  • Fabricated PLA scaffolds using fused-deposition modeling with four lattice structures.
  • Incorporated hydroxyapatite at varying concentrations (0, 10, 20, 30 wt%) via injection molding.
  • Evaluated mechanical properties through compression, three-point bending, and tensile testing.
  • Thirty wt% HA led to a 70.8% reduction in bending strength from 58.60 MPa to 17.07 MPa.
  • At 10 wt% HA, tensile strength decreased by 46.1% from 37.54 MPa to 20.23 MPa.
  • Rectangular lattice provided superior load-to-weight ratio and greater plastic deformation capacity compared to other structures.

Abstract

Bone tissue engineering requires biomimetic materials; however, pure polylactic acid (PLA) exhibits limited osteoinductivity and produces acidic byproducts upon degradation. To address these limitations, this study fabricated PLA scaffolds using fused-deposition modeling (FDM) with four distinct lattice structures (rectangular, triangular, gyroid, and 3D honeycomb) and incorporated hydroxyapatite (HA) at 0, 10, 20, and 30 wt% via injection molding. Mechanical properties were evaluated via compression, three-point bending, and tensile testing. The results revealed that increasing HA content significantly reduced structural strength and increased brittleness across all test modes. Specifically, specimens with 30 wt% HA exhibited a 70.8% reduction in bending strength relative to pure PLA (from 58.60 MPa to 17.07 MPa), while tensile strength decreased by 46.1% at just 10 wt% HA (from 37.54 MPa to 20.23 MPa). Although the triangular lattice achieved the highest absolute compressive load, the rectangular lattice provided a superior load-to-weight ratio and greater plastic deformation capacity before fracture. Consequently, these findings indicate that the rectangular pattern at 70% infill density combined with HA addition limited to ≤10 wt% represents the most mechanically balanced design for bone defect repair applications. Based on the mechanical characterization performed in this study, and drawing on published evidence regarding the biological properties of PLA/HA composites, these scaffolds represent a mechanically promising candidate for further evaluation in bone tissue regeneration. Biological validation through in vitro and in vivo studies is required before clinical relevance can be established.

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Cite This Study

Budi et al. (2026) studied this question.

synapsesocial.com/papers/6a095c5d7880e6d24efe26ddhttps://doi.org/10.3390/ma19102083
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