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Surgical Technique for the Implantation of Tissue Engineered Vascular Grafts and Subsequent In Vivo Monitoring
Published on: April 3, 2015
Vascular Damage and Repair - Are Small-Diameter Vascular Grafts Still the "Holy Grail" of Tissue Engineering?
L Bačáková1, J Chlupáč, E Filová
1Laboratory of Biomaterials and Tissue Engineering, Institute of Physiology of the Czech Academy of Sciences, Prague, Czech Republic. Lucie.Bacakova@fgu.cas.cz.
Insights
Tissue engineering aims to create functional small-diameter vascular grafts using 3D bioprinting and stem cells. Addressing sex-related differences is crucial for successful regenerative medicine approaches in cardiovascular disease treatment.
Area of Science:
- Biomedical Engineering
- Regenerative Medicine
- Cardiovascular Research
Background:
- Cardiovascular diseases are a leading cause of death, with small-diameter blood vessel occlusion causing significant morbidity.
- Current synthetic and biological grafts fail in small vessels due to cellular adhesion and lack of physiological layers.
- Existing treatments for small vessel damage are limited, highlighting the need for advanced vascular substitutes.
Purpose of the Study:
- To explore the potential of tissue engineering for creating functional small-diameter vascular grafts.
- To investigate the role of 3D bioprinting, electrospinning, and stem cells in vascular graft development.
- To consider sex-related differences in cellular behavior for improved graft design.
Main Methods:
- Utilizing advanced tissue engineering techniques like 3D bioprinting and electrospinning.
- Incorporating stem cells and pre-differentiated vascular cells for graft construction.
- Investigating the impact of sex-related differences on biomaterial degradation and cell behavior.
Main Results:
- Current synthetic grafts are unsuitable for small-diameter vessels, leading to failure.
- Tissue engineering offers promising avenues for developing cell-rich vascular grafts.
- Further research is needed to integrate technologies like 3D bioprinting with stem cells for functional grafts.
Conclusions:
- Functional small-diameter vascular grafts remain a significant challenge in regenerative medicine.
- 3D bioprinting, electrospinning, and stem cells offer new possibilities for vascular graft development.
- Accounting for sex-related differences is essential for optimizing tissue-engineered vascular grafts.
Abstract:
Cardiovascular diseases are the most important cause of morbidity and mortality in the civilized world. Stenosis or occlusion of blood vessels leads not only to events that are directly life-threatening, such as myocardial infarction or stroke, but also to a significant reduction in quality of life, for example in lower limb ischemia as a consequence of metabolic diseases. The first synthetic polymeric vascular replacements were used clinically in the early 1950s. However, they proved to be suitable only for larger-diameter vessels, where the blood flow prevents the attachment of platelets, pro-inflammatory cells and smooth muscle cells on their inner surface, whereas in smaller-diameter grafts (6 mm or less), these phenomena lead to stenosis and failure of the graft. Moreover, these polymeric vascular replacements, like biological grafts (decellularized or devitalized), are cell-free, i.e. there are no reconstructed physiological layers of the blood vessel wall, i.e. an inner layer of endothelial cells to prevent thrombosis, a middle layer of smooth muscle cells to perform the contractile function, and an outer layer to provide innervation and vascularization of the vessel wall. Vascular substitutes with these cellular components can be constructed by tissue engineering methods. However, it has to be admitted that even about 70 years after the first polymeric vascular prostheses were implanted into human patients, there are still no functional small-diameter vascular grafts on the market. The damage to small-diameter blood vessels has to be addressed by endovascular approaches or by autologous vascular substitutes, which leads to some skepticism about the potential of tissue engineering. However, new possibilities of this approach lie in the use of modern technologies such as 3D bioprinting and/or electrospinning in combination with stem cells and pre-vascularization of tissue-engineered vascular grafts. In this endeavor, sex-related differences in the removal of degradable biomaterials by the cells and in the behavior of stem cells and pre-differentiated vascular cells need to be taken into account. Key words: Blood vessel prosthesis, Regenerative medicine, Stem cells, Footprint-free iPSCs, sr-RNA, Dynamic bioreactor, Sex-related differences.

