Antonio Pérez-Pérez, Javier Gil, Isabela Bueno-Bianchi, Loreto Monsalve-Guil, Iván Ortiz-Garcia, Alvaro Jiménez-Guerra, Enrique Núñez-Márquez, Eugenio Velasco-Ortega, José Luis Rondón Romero, Victor Sánchez-Margalet, Jesús Moreno-Muñoz
Guided bone regeneration (GBR) heavily relies on barrier membranes, with collagen being the clinical standard material. Human amniotic epithelial cells (hAECs) represent a promising, non-controversial stem cell source with substantial osteogenic and immunomodulatory potential. This study aimed to comparatively evaluate the structural characteristics of three commercial collagen membranes (Biocollagen®, Derma®, and VantyColl®) and their influence on the biological behavior, viability, and osteogenic differentiation of hAECs and hFOB 1.19 human fetal osteoblasts. The microarchitecture was assessed via scanning electron microscopy (SEM). Biological response was evaluated over 14 days, using MTT assays, calcium and phosphorus quantification, alkaline phosphatase (ALP) activity, and quantitative real-time PCR (qRT-PCR) for osteogenic markers (Runx2, Osterix, ALP, and OPN). SEM revealed a dense lamellar structure for Biocollagen®, a fibrillar and oriented architecture for Derma®, and a highly porous network for VantyColl®. Both cell types adhered to and proliferated on all membranes. Derma® provided the best long-term proliferative support for both lineages. Conversely, VantyColl® induced robust early osteoblastic differentiation, marked by exceptional upregulation of Osterix (24.93-fold) and Runx2 (2.64-fold), though it exhibited diminished long-term hAEC viability. Ultimately, collagen membrane microarchitecture dictates cell fate; dense fibrillar networks (Derma®) favor sustained growth and late matrix maturation (OPN), whereas high-porosity scaffolds (VantyColl®) amplify early osteoinductive cascades.