The natural blood protein fibrinogen is a highly potent precursor for the production of various biomaterials due to its supreme biocompatibility and cell interaction. To gain actual materials from fibrinogen, the protein needs to undergo fibrillogenesis, which is mostly triggered via enzymatic processing to fibrin, electrospinning, or drying processes. All of those techniques, however, strongly limit the available structures or the applicability of the material. To overcome the current issues of fibrin(ogen) as material, we herein present a highly feasible, quick, and inexpensive technique for self-assembly of fibrinogen in solution into defined, nanofibrous three-dimensional (3D) patterns. Upon interaction with specific anions in controll...
The rapid and tailored biofabrication of natural materials is of high interest for the field of tiss...
The rapid and tailored biofabrication of natural materials is of high interest for the field of tiss...
The architecture of self-organized three-dimensionally interconnected nanocrystal fibrillar networks...
The natural blood protein fibrinogen is a highly potent precursor for the production of various biom...
Fibrinogen has become highly attractive for tissue engineering scaffolds since it is a naturally occ...
3D bioprinting has been rising lately in importance due to the shortage of organs for transplants an...
The first results of electrospinning fibrinogen nanofibers for use as a tissue-engineering scaffold,...
As a key player in blood coagulation and tissue repair, fibrinogen has gained increasing attention t...
Fibrin polymerizes into the fibrous network that is the major structural component of blood clots an...
International audienceFibrin-based gels are used in clinics as biological glues but their applicatio...
Several proteins, including actin and fibrin, polymerize in vivo to form nanometre diameter fibers. ...
This review looks at the use of fibrin in vascular tissue engineering (VTE). Autologous fibrin is on...
AbstractBackgroundFibrin gels are a promising biomaterial for tissue engineering. However, current f...
Hydrogels as scaffolds in tissue engineering have gained increasing attention in recent years. Natur...
Several proteins, including actin and fibrin, polymerize in vivo to form nanometre diameter fibers. ...
The rapid and tailored biofabrication of natural materials is of high interest for the field of tiss...
The rapid and tailored biofabrication of natural materials is of high interest for the field of tiss...
The architecture of self-organized three-dimensionally interconnected nanocrystal fibrillar networks...
The natural blood protein fibrinogen is a highly potent precursor for the production of various biom...
Fibrinogen has become highly attractive for tissue engineering scaffolds since it is a naturally occ...
3D bioprinting has been rising lately in importance due to the shortage of organs for transplants an...
The first results of electrospinning fibrinogen nanofibers for use as a tissue-engineering scaffold,...
As a key player in blood coagulation and tissue repair, fibrinogen has gained increasing attention t...
Fibrin polymerizes into the fibrous network that is the major structural component of blood clots an...
International audienceFibrin-based gels are used in clinics as biological glues but their applicatio...
Several proteins, including actin and fibrin, polymerize in vivo to form nanometre diameter fibers. ...
This review looks at the use of fibrin in vascular tissue engineering (VTE). Autologous fibrin is on...
AbstractBackgroundFibrin gels are a promising biomaterial for tissue engineering. However, current f...
Hydrogels as scaffolds in tissue engineering have gained increasing attention in recent years. Natur...
Several proteins, including actin and fibrin, polymerize in vivo to form nanometre diameter fibers. ...
The rapid and tailored biofabrication of natural materials is of high interest for the field of tiss...
The rapid and tailored biofabrication of natural materials is of high interest for the field of tiss...
The architecture of self-organized three-dimensionally interconnected nanocrystal fibrillar networks...