TY - JOUR
T1 - Electrospun Fibers Encapsulating Triticum vulgare Extract as a Potential Scaffold for the Regeneration of Subepithelial Connective Tissue
AU - Figueroa-Ariza, Leydy Tatiana
AU - Cely-Veloza, Willy
AU - Coccaro, Miguelángel
AU - Gualtero, Diego Fernando
AU - Jiménez, Ronald Andrés
AU - Coy-Barrera, Ericsson
AU - Pinzón-García, Ana Delia
AU - Lesmes, Yamil
AU - Chambrone, Leandro
AU - Lafaurie, Gloria Inés
N1 - Publisher Copyright:
© 2026 by the authors.
PY - 2026/5
Y1 - 2026/5
N2 - Electrospun poly(ε-caprolactone) (PCL) membranes incorporating Triticum vulgare extract (TVE) were developed as biomimetic scaffolds for periodontal regeneration. Using a ternary solvent system, two experimental formulations (µF-P10 and µF-P10T1) were fabricated and compared against a commercial dermal matrix. SEM analysis revealed bimodal fiber distributions (0.77–1.74 µm) and a surface porosity of 29.86% for TVE-loaded membranes, significantly higher than that of the commercial control (25.26%). FT-IR confirmed that the PCL chemical integrity was preserved, while mechanical testing showed that extract incorporation reinforced the matrix, increasing the Young’s modulus from 2.90 × 103 Pa to 3.54 × 103 Pa. UHPLC–MS identified ferulic acid as the primary bioactive component (90%), with release kinetics following a first-order model (R2 = 0.998) over 48 h. Biological assays with human gingival fibroblasts (HGF) confirmed non-cytotoxicity (>70% viability). While both membranes supported healing, the µF-P10 formulation showed superior performance, with 80.2% proliferation and 60.6% wound closure, approaching control levels. These findings demonstrate that PCL-TVE electrospun scaffolds effectively combine favorable morphology and controlled release, offering a promising alternative for subepithelial connective tissue regeneration.
AB - Electrospun poly(ε-caprolactone) (PCL) membranes incorporating Triticum vulgare extract (TVE) were developed as biomimetic scaffolds for periodontal regeneration. Using a ternary solvent system, two experimental formulations (µF-P10 and µF-P10T1) were fabricated and compared against a commercial dermal matrix. SEM analysis revealed bimodal fiber distributions (0.77–1.74 µm) and a surface porosity of 29.86% for TVE-loaded membranes, significantly higher than that of the commercial control (25.26%). FT-IR confirmed that the PCL chemical integrity was preserved, while mechanical testing showed that extract incorporation reinforced the matrix, increasing the Young’s modulus from 2.90 × 103 Pa to 3.54 × 103 Pa. UHPLC–MS identified ferulic acid as the primary bioactive component (90%), with release kinetics following a first-order model (R2 = 0.998) over 48 h. Biological assays with human gingival fibroblasts (HGF) confirmed non-cytotoxicity (>70% viability). While both membranes supported healing, the µF-P10 formulation showed superior performance, with 80.2% proliferation and 60.6% wound closure, approaching control levels. These findings demonstrate that PCL-TVE electrospun scaffolds effectively combine favorable morphology and controlled release, offering a promising alternative for subepithelial connective tissue regeneration.
KW - Triticum vulgare extract
KW - drug release kinetics
KW - electrospinning
KW - fibroblasts
KW - periodontal regeneration
KW - polycaprolactone
KW - wound healing
KW - Tissue Engineering/methods
KW - Humans
KW - Triticum/chemistry
KW - Polyesters/chemistry
KW - Nanofibers/chemistry
KW - Fibroblasts/drug effects
KW - Gingiva/cytology
KW - Tissue Scaffolds/chemistry
KW - Connective Tissue/drug effects
KW - Regeneration/drug effects
KW - Cell Proliferation/drug effects
KW - Porosity
KW - Plant Extracts/chemistry
UR - https://www.scopus.com/pages/publications/105038547353
U2 - 10.3390/molecules31091505
DO - 10.3390/molecules31091505
M3 - Article
C2 - 42123870
AN - SCOPUS:105038547353
SN - 1420-3049
VL - 31
JO - Molecules
JF - Molecules
IS - 9
M1 - 1505
ER -