Vertical bone augmentation to create host bone prior to implant placement is one of the most challenging regenerative procedures. The objective of this study is to evaluate the capacity of a UV-photofunctionalized titanium microfiber scaffold to recruit osteoblasts, generate intra-scaffold bone, and integrate with host bone in a vertical augmentation model with unidirectional, limited blood supply. Scaffolds were fabricated by molding and sintering grade 1 commercially pure titanium microfibers (20 μm diameter) and treated with UVC light (200–280 nm wavelength) emitted from a low-pressure mercury lamp for 20 min immediately before experiments. The scaffolds had an even and dense fiber network with 87% porosity and 20–50 mm inter-fiber dista...
This study examined the effect of photofunctionalization on bioactivity and osteoconductivity of tit...
Objectives: The aims of this study were to create a new surface topography using simulated body flui...
Extracellular Vesicles (EVs) are considered promising nanoscale therapeutics for bone regeneration. ...
Vertical bone augmentation to create host bone prior to implant placement is one of the most challen...
There are significant challenges in regenerating large volumes of bone tissue, and titanium implant ...
It is a significant challenge for a titanium implant, which is a bio-inert material, to recruit oste...
Purpose: The aim of this study was to evaluate whether photofunctionalization of titanium mesh enhan...
The objective of this study was to evaluate the effect of ultraviolet light treatment, known as phot...
Although there are several studies of the ultraviolet (UV) light-mediated photofunctionalization of ...
Three-dimensional (3D)-printed porous Ti6Al4V implants play an important role in the reconstruction ...
The objective of this study was to evaluate the effect of ultraviolet light treatment, known as phot...
Although there are several studies of the ultraviolet (UV) light-mediated photofunctionalization of ...
Purpose: Ultraviolet-mediated photofunctionalization is a new technology to improve bone and titaniu...
Dept. of Dental Science/박사Purpose: The conversion of implant surface from bioinert to bioactive by U...
Makiko Saita,1 Takayuki Ikeda,1,2 Masahiro Yamada,1,3 Katsuhiko Kimoto,4 Masaichi Chang-Il Lee,5 Tak...
This study examined the effect of photofunctionalization on bioactivity and osteoconductivity of tit...
Objectives: The aims of this study were to create a new surface topography using simulated body flui...
Extracellular Vesicles (EVs) are considered promising nanoscale therapeutics for bone regeneration. ...
Vertical bone augmentation to create host bone prior to implant placement is one of the most challen...
There are significant challenges in regenerating large volumes of bone tissue, and titanium implant ...
It is a significant challenge for a titanium implant, which is a bio-inert material, to recruit oste...
Purpose: The aim of this study was to evaluate whether photofunctionalization of titanium mesh enhan...
The objective of this study was to evaluate the effect of ultraviolet light treatment, known as phot...
Although there are several studies of the ultraviolet (UV) light-mediated photofunctionalization of ...
Three-dimensional (3D)-printed porous Ti6Al4V implants play an important role in the reconstruction ...
The objective of this study was to evaluate the effect of ultraviolet light treatment, known as phot...
Although there are several studies of the ultraviolet (UV) light-mediated photofunctionalization of ...
Purpose: Ultraviolet-mediated photofunctionalization is a new technology to improve bone and titaniu...
Dept. of Dental Science/박사Purpose: The conversion of implant surface from bioinert to bioactive by U...
Makiko Saita,1 Takayuki Ikeda,1,2 Masahiro Yamada,1,3 Katsuhiko Kimoto,4 Masaichi Chang-Il Lee,5 Tak...
This study examined the effect of photofunctionalization on bioactivity and osteoconductivity of tit...
Objectives: The aims of this study were to create a new surface topography using simulated body flui...
Extracellular Vesicles (EVs) are considered promising nanoscale therapeutics for bone regeneration. ...