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June 5, 2026Materials0 citationsOpen Access

MAPLE Deposition of Resorbable Calcium Phosphates on Electrospun Nylon Nanofibres for Bone Tissue Engineering

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ATAndreea TrifanGPGianina Popescu-PelinRPRoxana‐Cristina Popescu

Key Points

  • This study investigates how different calcium phosphate phases impact the effectiveness of nylon nanofibres for bone tissue engineering.
  • Synthesized five nylon fibre compositions and coated them with monetite, brushite, and cerium-doped phosphates.
  • Applied matrix-assisted pulsed laser evaporation (MAPLE) for calcium phosphate deposition at various temperatures (500–800 °C).
  • Assessed physicochemical properties using EDS, SEM, and biocompatibility via MC3T3 preosteoblast seeding.
  • Brushite-coated fibres showed the highest preosteoblast metabolic activity at 178±2% after 48 h (p < 0.001).
  • Monetite yielded uniform granular structures while cerium-doped phosphate produced dense aggregates at 800 °C.
  • Phase-specific effects on bone cell growth were confirmed, enhancing the bioactivity of the nylon fibres.

Abstract

One-dimensional fibrous scaffolds with tunable bioactivity offer promise for bone tissue regeneration, yet optimal calcium phosphate phases for enhancing osteogenic performance remain underexplored. This study aimed to evaluate the impact of monetite-, brushite-, and cerium-doped phosphate deposition on electrospun nylon nanofibres functionalised via matrix-assisted pulsed laser evaporation (MAPLE). Five nylon fibre compositions were synthesised, coated with three calcium phosphate phases, and calcined at varying temperatures (500–800 °C) before laser deposition. Physicochemical properties were assessed using energy-dispersive X-ray spectroscopy (EDS), scanning electron microscopy (SEM), and fibre diameter measurements, averaging 62.1±23.8 nm. Biocompatibility assays following MC3T3 preosteoblast seeding and incubation evaluated biological performance. EDX confirmed homogeneous phase deposition; SEM showed phase- and temperature-dependent morphology, with monetite yielding uniform granular structures and cerium-doped phosphate at 800 °C forming dense aggregates. Brushite-coated fibres exhibited superior preosteoblast metabolic activity, reaching 178±2% after 48 h (p < 0.001), indicating phase-specific stimulation of bone cell growth. These phosphate-functionalised nylon fibres retain structural integrity, hierarchical porosity, and enhanced bioactivity, providing a versatile electrospinning-MAPLE platform for customisable bone grafts with clinical potential.

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Cite This Study

Trifan et al. (2026) studied this question.

synapsesocial.com/papers/6a2268f9763171746d547775https://doi.org/10.3390/ma19112375
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