TY - JOUR
T1 - Hierarchical Chitin Nanocrystal-Based 3D Printed Dual-Layer Membranes Hydrogels
T2 - A Dual Drug Delivery Nano-Platform for Periodontal Tissue Regeneration
AU - dos Santos, Danilo Martins
AU - Moon, Jae I.
AU - Kim, Da Seul
AU - Bassous, Nicole Joy
AU - Marangon, Crisiane Aparecida
AU - Campana-Filho, Sergio Paulo
AU - Correa, Daniel Souza
AU - Kang, Min Ho
AU - Kim, Woo Jin
AU - Shin, Su Ryon
N1 - Publisher Copyright:
© 2024 American Chemical Society
PY - 2024/9/3
Y1 - 2024/9/3
N2 - Periodontitis, a prevalent chronic inflammatory disease caused by bacteria, poses a significant challenge to current treatments by merely slowing their progression. Herein, we propose an innovative solution in the form of hierarchical nanostructured 3D printed bilayer membranes that serve as dual-drug delivery nanoplatforms and provide scaffold function for the regeneration of periodontal tissue. Nanocomposite hydrogels were prepared by combining lipid nanoparticle-loaded grape seed extract and simvastatin, as well as chitin nanocrystals, which were then 3D printed into a bilayer membrane that possesses antimicrobial properties and multiscale porosity for periodontal tissue regeneration. The constructs exhibited excellent mechanical properties by adding chitin nanocrystals and provided a sustained release of distinct drugs over 24 days. We demonstrated that the bilayer membranes are cytocompatible and have the ability to induce bone-forming markers in human mesenchymal stem cells, while showing potent antibacterial activity against pathogens associated with periodontitis. In vivo studies further confirmed the efficacy of bilayer membranes in enhancing alveolar bone regeneration and reducing inflammation in a periodontal defect model. This approach suggests promising avenues for the development of implantable constructs that not only combat infections, but also promote the regeneration of periodontal tissue, providing valuable insights into advanced periodontitis treatment strategies.
AB - Periodontitis, a prevalent chronic inflammatory disease caused by bacteria, poses a significant challenge to current treatments by merely slowing their progression. Herein, we propose an innovative solution in the form of hierarchical nanostructured 3D printed bilayer membranes that serve as dual-drug delivery nanoplatforms and provide scaffold function for the regeneration of periodontal tissue. Nanocomposite hydrogels were prepared by combining lipid nanoparticle-loaded grape seed extract and simvastatin, as well as chitin nanocrystals, which were then 3D printed into a bilayer membrane that possesses antimicrobial properties and multiscale porosity for periodontal tissue regeneration. The constructs exhibited excellent mechanical properties by adding chitin nanocrystals and provided a sustained release of distinct drugs over 24 days. We demonstrated that the bilayer membranes are cytocompatible and have the ability to induce bone-forming markers in human mesenchymal stem cells, while showing potent antibacterial activity against pathogens associated with periodontitis. In vivo studies further confirmed the efficacy of bilayer membranes in enhancing alveolar bone regeneration and reducing inflammation in a periodontal defect model. This approach suggests promising avenues for the development of implantable constructs that not only combat infections, but also promote the regeneration of periodontal tissue, providing valuable insights into advanced periodontitis treatment strategies.
KW - 3D printing
KW - antimicrobial property
KW - bone regeneration
KW - chitin nanocrystal
KW - nanocomposite hydrogel
KW - periodontal regeneration
KW - simvastatin
UR - http://www.scopus.com/inward/record.url?scp=85201676154&partnerID=8YFLogxK
U2 - 10.1021/acsnano.4c05558
DO - 10.1021/acsnano.4c05558
M3 - Article
C2 - 39163106
AN - SCOPUS:85201676154
SN - 1936-0851
VL - 18
SP - 24182
EP - 24203
JO - ACS Nano
JF - ACS Nano
IS - 35
ER -