Cell-carrying magnet-driven microrobots are easily affected by blood flow or body fluids during transportation in the body, and thus cells often fall off from the microrobots. To reduce the loss of loaded cells, we developed a microrobot with a bioactive nanostructured titanate surface (NTS), which enhances cell adhesion. The microrobot was fabricated using 3D laser lithography and coated with nickel for magnetic actuation. Then, the microrobot was coated with titanium for the external generation of an NTS through reactions in NaOH solution. Enhanced cell adhesion may be attributed to the changes in the surface wettability of the microrobot and in the morphology of the loaded cells. An experiment was performed on a microfluidic chip for the...
The morphology and the physical and chemical characteristics of four groups of TiO2-ZrO2-ZrTiO4 nano...
A major impediment in the clinical translation of stem cell therapy has been the inability to effici...
Titanium and titanium alloys exhibit a unique combination of strength and biocompatibility, which en...
Magnetically manipulated microrobots are demonstrated for targeted cell transportation. Full three‐d...
A great deal of research has focused on small-scale robots for biomedical applications and minimally...
With the rapid development of micro/nanomanufacturing technology, a variety of multifunctional micro...
Magnetically actuated microrobots showed increasing potential in various fields, especially in the b...
Here, we present a method for fabrication of full three-dimensional porous microstructures (microsca...
There is increasing demand for automated cell reprogramming in the fields of cell biology, biotechno...
Mobile microrobots with shape morphing capability show great advantages for conducting tasks in comp...
Current orthopedic implants are not conducive for optimal integration of the biomaterial with newly-...
Micro-/nanorobots (m-bots) have attracted significant interest due to their suitability for applicat...
The ability of living cells to sense and respond to mechanical cues from the surrounding environment...
Titanium (Ti) implants with enhanced biocompatibility and antibacterial property are highly desirabl...
Wireless micro- and nanorobots are biomedical devices with a potential use in high-precision minimal...
The morphology and the physical and chemical characteristics of four groups of TiO2-ZrO2-ZrTiO4 nano...
A major impediment in the clinical translation of stem cell therapy has been the inability to effici...
Titanium and titanium alloys exhibit a unique combination of strength and biocompatibility, which en...
Magnetically manipulated microrobots are demonstrated for targeted cell transportation. Full three‐d...
A great deal of research has focused on small-scale robots for biomedical applications and minimally...
With the rapid development of micro/nanomanufacturing technology, a variety of multifunctional micro...
Magnetically actuated microrobots showed increasing potential in various fields, especially in the b...
Here, we present a method for fabrication of full three-dimensional porous microstructures (microsca...
There is increasing demand for automated cell reprogramming in the fields of cell biology, biotechno...
Mobile microrobots with shape morphing capability show great advantages for conducting tasks in comp...
Current orthopedic implants are not conducive for optimal integration of the biomaterial with newly-...
Micro-/nanorobots (m-bots) have attracted significant interest due to their suitability for applicat...
The ability of living cells to sense and respond to mechanical cues from the surrounding environment...
Titanium (Ti) implants with enhanced biocompatibility and antibacterial property are highly desirabl...
Wireless micro- and nanorobots are biomedical devices with a potential use in high-precision minimal...
The morphology and the physical and chemical characteristics of four groups of TiO2-ZrO2-ZrTiO4 nano...
A major impediment in the clinical translation of stem cell therapy has been the inability to effici...
Titanium and titanium alloys exhibit a unique combination of strength and biocompatibility, which en...