Published February 1, 2020 | Version v1
Journal article

Antibacterial composite membranes of polycaprolactone/gelatin loaded with zinc oxide nanoparticles for guided tissue regeneration

  • 1. Facultad de Odontología, División de Estudios de Posgrado e Investigación, Universidad Nacional Autónoma de México. Circuito Exterior s/n, Ciudad Universitaria, 04510, CDMX, México (Mexico)
  • 2. Unidad de Ingeniería de Tejidos, Terapia Celular y Medicina Regenerativa, Instituto Nacional de Rehabilitación Luis Guillermo Ibarra Ibarra, Av. México Xochimilco No. 289 Col. Arenal de Guadalupe C.P. 14389, Ciudad de México, México (Mexico)
  • 3. School of Chemistry, University of East Anglia, Norwich (United Kingdom)
  • 4. Department of Chemistry 'G. Ciamician' and National Consortium of Materials Science and Technology (INSTM, Bologna RU), Alma Mater Studiorum - Università di Bologna, 40126 Bologna (Italy)
  • 5. Instituto de Investigaciones en Materiales, Universidad Nacional Autónoma de México, Ciudad Universitaria No. 3000, C.P. 04360, Ciudad de México, México (Mexico)
  • 6. Departamento de Estado Sólido, Instituto de Física, Universidad Nacional Autónoma de México, Ciudad Universitaria No. 3000, C.P. 04360, Ciudad de México, México (Mexico)

Description

The bacterial colonization of absorbable membranes used for guided tissue regeneration (GTR), as well as their rapid degradation that can cause their rupture, are considered the major reasons for clinical failure. To address this, composite membranes of polycaprolactone (PCL) and gelatin (Gel) loaded with zinc oxide nanoparticles (ZnO-NPs; 1, 3 and 6 wt% relative to PCL content) were fabricated by electrospinning. To fabricate homogeneous fibrillar membranes, acetic acid was used as a sole common solvent to enhance the miscibility of PCL and Gel in the electrospinning solutions. The effects of ZnO-NPs in the physico-chemical, mechanical and in vitro biological properties of composite membranes were studied. The composite membranes showed adequate mechanical properties to offer a satisfactory clinical manipulation and an excellent conformability to the defect site while their degradation rate seemed to be appropriate to allow successful regeneration of periodontal defects. The presence of ZnO-NPs in the composite membranes significantly decreased the planktonic and the biofilm growth of the Staphylococcus aureus over time. Finally, the viability of human osteoblasts and human gingival fibroblasts exposed to the composite membranes with 1 and 3 wt% of ZnO-NPs indicated that those membranes are not expected to negatively influence the ability of periodontal cells to repopulate the defect site during GTR treatments. The results here obtained suggest that composite membranes of PCL and Gel loaded with ZnO-NPs have the potential to be used as structurally stable GTR membranes with local antibacterial properties intended for enhancing clinical treatments. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1748-605X/ab70ef

Additional details

Identifiers

Publishing Information

Journal Title
Biomedical Materials (Bristol. Online)
Journal Volume
15
Journal Issue
3
Journal Page Range
[15 p.]
ISSN
1748-605X