All-in-one porous membrane enables full protection in guided bone regeneration.
Shuyi WuShulu LuoZongheng CenQianqian LiLuwei LiWeiran LiZhike HuangWenyi HeGuobin LiangDingcai WuMinghong ZhouYan LiPublished in: Nature communications (2024)
The sophisticated hierarchical structure that precisely combines contradictory mechanical and biological characteristics is ideal for biomaterials, but it is challenging to achieve. Herein, we engineer a spatiotemporally hierarchical guided bone regeneration (GBR) membrane by rational bilayer integration of densely porous N-halamine functionalized bacterial cellulose nanonetwork facing the gingiva and loosely porous chitosan-hydroxyapatite composite micronetwork facing the alveolar bone. Our GBR membrane asymmetrically combine stiffness and flexibility, ingrowth barrier and ingrowth guiding, as well as anti-bacteria and cell-activation. The dense layer has a mechanically matched space maintenance capacity toward gingiva, continuously blocks fibroblasts, and prevents bacterial invasion with multiple mechanisms including release-killing, contact-killing, anti-adhesion, and nanopore-blocking; the loose layer is ultra-soft to conformally cover bone surfaces and defect cavity edges, enables ingrowth of osteogenesis-associated cells, and creates a favorable osteogenic microenvironment. As a result, our all-in-one porous membrane possesses full protective abilities in GBR.
Keyphrases
- bone regeneration
- metal organic framework
- tissue engineering
- mesenchymal stem cells
- highly efficient
- stem cells
- drug delivery
- induced apoptosis
- biofilm formation
- single cell
- cell therapy
- high resolution
- mass spectrometry
- cell cycle arrest
- staphylococcus aureus
- single molecule
- mouse model
- quantum dots
- oxidative stress
- simultaneous determination