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February 24, 20261 citationsOpen Access

Biological and Biophysical Characterization of Hybrid PLCL Nanofibers Incorporating Stem Cell-Derived Secretome

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TSTanya StoyanovaLTLora TopalovaDGDencho Gugutkov

Key Points

  • The study aims to evaluate the impact of hybrid PLCL nanofibers enriched with stem cell secretome on cellular responses and tissue regeneration.
  • Fabricated hybrid nanofibrous scaffolds via co-electrospinning of PLCL and WJ-MSC secretome.
  • Characterized scaffold morphology using light microscopy, SEM, and AFM.
  • Quantified fiber orientation using FFT analysis.
  • Assessed the biocompatibility and cell-material interactions with human AD-MSCs.
  • Aligned nanofibers had fiber diameters of 542.9 ± 62.3 nm with predominant orientation within 20° of the principal axis.
  • AD-MSCs on aligned fibers showed smaller spreading areas (~320 μm²) compared to random nanofibers (~500 μm²).
  • Proliferation was significantly higher on aligned fibers, with shorter cell-doubling time (~25 h) than on random (~130 h) or control substrates (~70 h).
  • Migration rates were faster on aligned nanofibers (~5000 μm²/h) compared to random (~770 μm²/h) and controls (~1800 μm²/h).

Abstract

The design of multifunctional biomaterials that offer both structural support and biochemical cues is essential for enhancing tissue regeneration. In this study, hybrid nanofibrous scaffolds composed of poly(L-lactide-co-ε-caprolactone) (PLCL) and bioactive factors secreted by Wharton’s jelly-derived mesenchymal stem cells (WJ-MSCs) were fabricated via co-electrospinning. Nanofibers were produced in aligned and random configurations following an optimized protocol developed at the Institute for Bioengineering of Catalonia (IBEC). Their morphology and topography were characterized by light microscopy, scanning electron microscopy (SEM), and atomic force microscopy (AFM), and fiber orientation was quantified via Fast Fourier Transform (FFT) analysis. The scaffolds showed fiber diameters of 542.9 ± 62.3 nm, with aligned fibers predominantly oriented within 20° of the principal axis. Human AD-MSCs were used to assess biocompatibility and cell–material interactions. Aligned and random nanofiber architectures elicited distinct cellular responses. AD-MSCs on aligned fibers exhibited smaller spreading areas (~320 μm2) vs. on random nanofibers (~500 μm2) and substantially higher proliferation, resulting in a shorter cell-doubling time (~25 h) than those on random nanofibers (~130 h) or control substrates (~70 h). In addition, aligned nanofibers promoted markedly faster migration, reaching rates of ~5000 μm2/h surface coverage, compared with random nanofibers (~770 μm2/h) and controls (~1800 μm2/h). Together, the results show that nanofiber alignment and biochemical functionalization jointly influence MSC behavior and improve regeneration, highlighting the potential of these PLCL-based hybrid secretome/PLCL nanofibers for advanced wound healing.

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Cite This Study

Stoyanova et al. (2026) studied this question.

synapsesocial.com/papers/699d3fc8de8e28729cf648ffhttps://doi.org/10.3390/polym18040528
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