Javascript must be enabled to continue!
Towards technically controlled bioreactor maturation of tissue-engineered heart valves
View through CrossRef
Abstract
Bioreactors are important tools for the pre-conditioning of tissue-engineered heart valves. The current state of the art mostly provides for timed, physical and biochemical stimulation in the bioreactor systems according to standard protocols (SOP). However, this does not meet to the individual biological variability of living tissue-engineered constructs. To achieve this, it is necessary to implement (i) sensory systems that detect the actual status of the implant and (ii) controllable bioreactor systems that allow patient-individualized pre-conditioning. During the maturation process, a pulsatile transvalvular flow of culture medium is generated within the bioreactor. For the improvement of this conditioning procedure, the relationship between the mechanical and biochemical stimuli and the corresponding tissue response has to be analyzed by performing reproducible and comparable experiments. In this work, a technological framework for maturation experiments of tissue-engineered heart valves in a pulsating bioreactor is introduced. The aim is the development of a bioreactor system that allows for continuous control and documentation of the conditioning process to increase reproducibility and comparability of experiments. This includes hardware components, a communication structure and software including online user communication and supervision. Preliminary experiments were performed with a tissue-engineered heart valve to evaluate the function of the new system. The results of the experiment proof the adequacy of the setup. Consequently, the concept is an important step for further research towards controlled maturation of tissue-engineered heart valves. The integration of molecular and histological sensor systems will be the next important step towards a fully automated, self-controlled preconditioning system.
Title: Towards technically controlled bioreactor maturation of tissue-engineered heart valves
Description:
Abstract
Bioreactors are important tools for the pre-conditioning of tissue-engineered heart valves.
The current state of the art mostly provides for timed, physical and biochemical stimulation in the bioreactor systems according to standard protocols (SOP).
However, this does not meet to the individual biological variability of living tissue-engineered constructs.
To achieve this, it is necessary to implement (i) sensory systems that detect the actual status of the implant and (ii) controllable bioreactor systems that allow patient-individualized pre-conditioning.
During the maturation process, a pulsatile transvalvular flow of culture medium is generated within the bioreactor.
For the improvement of this conditioning procedure, the relationship between the mechanical and biochemical stimuli and the corresponding tissue response has to be analyzed by performing reproducible and comparable experiments.
In this work, a technological framework for maturation experiments of tissue-engineered heart valves in a pulsating bioreactor is introduced.
The aim is the development of a bioreactor system that allows for continuous control and documentation of the conditioning process to increase reproducibility and comparability of experiments.
This includes hardware components, a communication structure and software including online user communication and supervision.
Preliminary experiments were performed with a tissue-engineered heart valve to evaluate the function of the new system.
The results of the experiment proof the adequacy of the setup.
Consequently, the concept is an important step for further research towards controlled maturation of tissue-engineered heart valves.
The integration of molecular and histological sensor systems will be the next important step towards a fully automated, self-controlled preconditioning system.
Related Results
Opening up "containment": Technological and social dimensions of biocontainment for genetically engineered organisms designed for deliberate release
Opening up "containment": Technological and social dimensions of biocontainment for genetically engineered organisms designed for deliberate release
Advances in engineering biology, together with growing interest and investment in supporting a bio-based economy in the US, are fueling research and development efforts into geneti...
new insights into the pathophysiology of rheumatic valve disease based on different genetic and proteomics profiles
new insights into the pathophysiology of rheumatic valve disease based on different genetic and proteomics profiles
Abstract
Introduction
Rheumatic heart disease (RHD) pathogenesis is not fully understood. Purpose The protein profile in rheumat...
Early In Vivo Experience With Tissue-Engineered Trileaflet Heart Valves
Early In Vivo Experience With Tissue-Engineered Trileaflet Heart Valves
Background
—Tissue engineering is a new approach in which techniques are being developed to transplant autologous cells onto biodegradable scaffolds to ultimately form ...
Short Intussusception Valves Prevent Reflux After Jejunal Interposition Bilioduodenal Anastomosis
Short Intussusception Valves Prevent Reflux After Jejunal Interposition Bilioduodenal Anastomosis
Short whole circumference and semi‐circumference intussusception valves were created in interposition
cholecysto‐jejunal‐duodenal conduits in pigs to determine which method best pr...
Structure and Rheological Properties of Bovine Aortic Heart Valve and Pericardium Tissue: Implications in Bioprosthetic and Tissue-Engineered Heart Valves
Structure and Rheological Properties of Bovine Aortic Heart Valve and Pericardium Tissue: Implications in Bioprosthetic and Tissue-Engineered Heart Valves
Heart valve (HV) diseases are among the leading causes of cardiac failure and deaths. Of the various HV diseases, damaged HV leaflets are among the primary culprits. In many cases,...
Comparison of Two In vitro Maturation Media in Their Efficiency for Production of Competent Alpaca Oocytes
Comparison of Two In vitro Maturation Media in Their Efficiency for Production of Competent Alpaca Oocytes
Oocyte maturation is the most critical process in in vitro culture, since the oocyte acquires competence for future processes, which involve the resumption of meiosis, epigenetic r...
P–690 Clinical predictors of a high oocyte maturation rate in IVF treatment cycles
P–690 Clinical predictors of a high oocyte maturation rate in IVF treatment cycles
Abstract
Study question
Which clinical parameters predict a high oocyte maturation rate in patients undergoing IVF treatment?
...

