We describe herein a novel strategy for the fabrication of efficient 3D printed antibacterial scaffolds. For this purpose, both the surface topography as well as the chemical composition of 3D scaffolds fabricated by additive manufacturing were modified. The scaffolds were fabricated by fused deposition modeling (FDM) using high-impact polystyrene (HIPS) filaments. The surface of the objects was then topographically modified providing materials with porous surfaces by means of the Breath Figures approach. The strategy involves the immersion of the scaffold in a polymer solution during a precise period of time. This approach permitted the modification of the pore size varying the immersion time as well as the solution concentration. Moreover...
The selection of a scaffold-fabrication method becomes challenging due to the variety in manufacturi...
Tissue engineering is a multidisciplinary research field that aims to develop scaffolds, i.e., three...
The use of antibiotics to treat bacterial infections is becoming less and less effective year by yea...
We describe herein a novel strategy for the fabrication of efficient 3D printed antibacterial scaffo...
Herein, efficient antimicrobial porous surfaces were prepared by breath figures approach from polyme...
We designed and fabricated highly efficient and selective antibacterial substrates, i.e. surface non...
Three-dimensional (3D) printing technologies can be widely used for producing detailed geometries ba...
We describe a novel strategy to modify the surface topography as well as the chemical composition of...
Biocompatible three-dimensional porous scaffolds are widely used in multiple biomedical applications...
We report on the fabrication of efficient antibacterial substrates selective for bacteria, i.e., non...
We report on the fabrication of 3D printed pH-responsive and antimicrobial hydrogels with a microme...
Herein, for the first time is described the design of a novel porous zirconia scaffolds manufactured...
Bacterial biofilms are three-dimensional networks of cells entangled in a self-generated extracellul...
The development of antimicrobial surfaces has become a high priority in recent times. There are two ...
A wide variety of composite scaffolds with unique geometry, porosity and pore size can be fabricated...
The selection of a scaffold-fabrication method becomes challenging due to the variety in manufacturi...
Tissue engineering is a multidisciplinary research field that aims to develop scaffolds, i.e., three...
The use of antibiotics to treat bacterial infections is becoming less and less effective year by yea...
We describe herein a novel strategy for the fabrication of efficient 3D printed antibacterial scaffo...
Herein, efficient antimicrobial porous surfaces were prepared by breath figures approach from polyme...
We designed and fabricated highly efficient and selective antibacterial substrates, i.e. surface non...
Three-dimensional (3D) printing technologies can be widely used for producing detailed geometries ba...
We describe a novel strategy to modify the surface topography as well as the chemical composition of...
Biocompatible three-dimensional porous scaffolds are widely used in multiple biomedical applications...
We report on the fabrication of efficient antibacterial substrates selective for bacteria, i.e., non...
We report on the fabrication of 3D printed pH-responsive and antimicrobial hydrogels with a microme...
Herein, for the first time is described the design of a novel porous zirconia scaffolds manufactured...
Bacterial biofilms are three-dimensional networks of cells entangled in a self-generated extracellul...
The development of antimicrobial surfaces has become a high priority in recent times. There are two ...
A wide variety of composite scaffolds with unique geometry, porosity and pore size can be fabricated...
The selection of a scaffold-fabrication method becomes challenging due to the variety in manufacturi...
Tissue engineering is a multidisciplinary research field that aims to develop scaffolds, i.e., three...
The use of antibiotics to treat bacterial infections is becoming less and less effective year by yea...