Three-dimensional (3D) micronano structures have attracted much attention in tissue engineering since they can better simulate the microenvironment in vivo. Two-photon polymerization (TPP) technique provides a powerful tool for printing arbitrary 3D structures with high precision. Here, the desired 3D biocompatible hydrogel microscaffolds (3D microscaffold) with structure design referring to fibroblasts L929 have been fabricated by TPP technology, particularly considering the relative size of cell seed (cell suspension), spread cell, strut and strut spacing of scaffold. Modulation of the cell behavior has been studied by adjusting the porosity from 69.7% to 89.3%. The cell culture experiment results reveal that the obvious modulation of F-a...
The evolution of microfabrication has greatly contributed to the advances in biology and medicine, a...
The design of scaffolds which mimic the stiffness, nanofiber structure, and biochemistry of the nati...
Cancer is a leading cause of death in the developed world, where up to 90% of cancer related deaths ...
Biomimicking biological niches of healthy tissues or tumors can be achieved by means of artificial m...
The natural extracellular matrix (ECM) represents a complex and dynamic environment. It provides num...
Abweichender Titel nach Übersetzung der Verfasserin/des VerfassersOne of the main challenges of curr...
The fabrication of high-precision scaffolds with excellent biocompatibility for tissue engineering h...
Hydrogels are widely used as matrices for cell growth due to the similarity of their mechanical and ...
During in vivo tissue regeneration, cell behavior is highly influenced by the surrounding environmen...
The application of hydrogels as a matrix for 3-dimensional cell cultures has become an indispensable...
Hydrogel-based artificial scaffolds play a vital role in shifting in vitro models from two-dimension...
Native tissues are characterized by spatially organized three-dimensional (3D) microscaled units whi...
Three-dimensional (3D) micro-engineered hydrogel biomaterials incorporating cells is a promising in ...
A strategy to modulate the behavior of stem cells in culture is to mimic structural aspects of the n...
The evolution of microfabrication has greatly contributed to the advances in biology and medicine, a...
The design of scaffolds which mimic the stiffness, nanofiber structure, and biochemistry of the nati...
Cancer is a leading cause of death in the developed world, where up to 90% of cancer related deaths ...
Biomimicking biological niches of healthy tissues or tumors can be achieved by means of artificial m...
The natural extracellular matrix (ECM) represents a complex and dynamic environment. It provides num...
Abweichender Titel nach Übersetzung der Verfasserin/des VerfassersOne of the main challenges of curr...
The fabrication of high-precision scaffolds with excellent biocompatibility for tissue engineering h...
Hydrogels are widely used as matrices for cell growth due to the similarity of their mechanical and ...
During in vivo tissue regeneration, cell behavior is highly influenced by the surrounding environmen...
The application of hydrogels as a matrix for 3-dimensional cell cultures has become an indispensable...
Hydrogel-based artificial scaffolds play a vital role in shifting in vitro models from two-dimension...
Native tissues are characterized by spatially organized three-dimensional (3D) microscaled units whi...
Three-dimensional (3D) micro-engineered hydrogel biomaterials incorporating cells is a promising in ...
A strategy to modulate the behavior of stem cells in culture is to mimic structural aspects of the n...
The evolution of microfabrication has greatly contributed to the advances in biology and medicine, a...
The design of scaffolds which mimic the stiffness, nanofiber structure, and biochemistry of the nati...
Cancer is a leading cause of death in the developed world, where up to 90% of cancer related deaths ...