In situ cardiovascular tissue engineering is emerging as a promising approach for replacing diseased or damaged components of the cardiovascular system by the use of biodegradable synthetic grafts. Functional porous scaffolds are implanted to create in vivo complex tissues that are functionally similar to their native counterparts. A biodegradable starter matrix permits cell infiltration and tissue formation at the site of implantation, while maintaining tissue mechanical and biological function. This chapter elaborates on the fabrication of porous scaffolds via the electrospinning technique, including advantages, as well as limitations of various approaches, like single-nozzle, dual-nozzle, and coaxial-nozzle electrospinning. 442The added ...
Cardiac cell therapy holds a real promise for improving heart function and especially of the chronic...
Aiming to develop a scaffold architecture mimicking morphological and mechanically that of a blood v...
The process of electrospinning has seen a resurgence of interest in the last few decades which has l...
In situ cardiovascular tissue engineering is emerging as a promising approach for replacing diseased...
New opportunities for the design of artificial tissue structures via ice templating and electrospinn...
Tissue engineering (TE) is envisaged to play a vital role in improving the quality of life by restor...
The successful replacement of small-diameter blood vessels, affected by cardiovascular disease, with...
In this review, various achievements in the field of development of tissue-engineered scaffolds with...
Significant challenges must be overcome before the true benefit and economic impact of vascular tiss...
Tissue engineering involves fabrication of three-dimensional scaffolds to support cellular in-growth...
There is a growing demand for off-the-shelf tissue engineered vascular grafts (TEVGs) for the replac...
An emerging area of interest in tissue engineering is to fabricate biomimetic constructs that closel...
Cardiac cell therapy holds a real promise for improving heart function and especially of the chronic...
Aiming to develop a scaffold architecture mimicking morphological and mechanically that of a blood v...
The process of electrospinning has seen a resurgence of interest in the last few decades which has l...
In situ cardiovascular tissue engineering is emerging as a promising approach for replacing diseased...
New opportunities for the design of artificial tissue structures via ice templating and electrospinn...
Tissue engineering (TE) is envisaged to play a vital role in improving the quality of life by restor...
The successful replacement of small-diameter blood vessels, affected by cardiovascular disease, with...
In this review, various achievements in the field of development of tissue-engineered scaffolds with...
Significant challenges must be overcome before the true benefit and economic impact of vascular tiss...
Tissue engineering involves fabrication of three-dimensional scaffolds to support cellular in-growth...
There is a growing demand for off-the-shelf tissue engineered vascular grafts (TEVGs) for the replac...
An emerging area of interest in tissue engineering is to fabricate biomimetic constructs that closel...
Cardiac cell therapy holds a real promise for improving heart function and especially of the chronic...
Aiming to develop a scaffold architecture mimicking morphological and mechanically that of a blood v...
The process of electrospinning has seen a resurgence of interest in the last few decades which has l...