posted on 2024-06-21, 17:35authored byDamion
T. Dixon, Erika N. Landree, Cheryl T. Gomillion
Bone is remodeled through a dynamic process facilitated
by biophysical
cues that support cellular signaling. In healthy bone, signaling pathways
are regulated by cells and the extracellular matrix and transmitted
via electrical synapses. To this end, combining electrical stimulation
(ES) with conductive scaffolding is a promising approach for repairing
damaged bone tissue. Therefore, “smart” biomaterials
that can provide multifunctionality and facilitate the transfer of
electrical cues directly to cells have become increasingly more studied
in bone tissue engineering. Herein, 3D-printed electrically conductive
composite scaffolds consisting of demineralized bone matrix (DBM)
and polycaprolactone (PCL), in combination with ES, for bone regeneration
were evaluated for the first time. The conductive composite scaffolds
were fabricated and characterized by evaluating mechanical, surface,
and electrical properties. The DBM/PCL composites exhibited a higher
compressive modulus (107.2 MPa) than that of pristine PCL (62.02 MPa),
as well as improved surface properties (i.e., roughness). Scaffold
electrical properties were also tuned, with sheet resistance values
as low as 4.77 × 105 Ω/sq for our experimental
coating of the highest dilution (i.e., 20%). Furthermore, the biocompatibility
and osteogenic potential of the conductive composite scaffolds were
tested using human mesenchymal stromal cells (hMSCs) both with and
without exogenous ES (100 mV/mm for 5 min/day four times/week). In
conjunction with ES, the osteogenic differentiation of hMSCs grown
on conductive DBM/PCL composite scaffolds was significantly enhanced
when compared to those cultured on PCL-only and nonconductive DBM/PCL
control scaffolds, as determined through xylenol orange mineral staining
and osteogenic protein analysis. Overall, these promising results
suggest the potential of this approach for the development of biomimetic
hybrid scaffolds for bone tissue engineering applications.