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Generation and Grafting of Tissue-engineered Vessels in a Mouse Model
Published on: March 18, 2015
Development of tissue-engineered vascular grafts from decellularized parsley stems
1Department of Biotechnology, Graduate School of Education, Izmir Institute of Technology, 35430, Izmir, Turkey.
Insights
Researchers developed novel tissue-engineered vascular grafts (TEVGs) using decellularized parsley stems. These plant-based scaffolds show promise for creating functional vascular replacements, addressing limitations of current treatments for cardiovascular diseases.
Area of Science:
- Biomaterials Science
- Tissue Engineering
- Regenerative Medicine
Background:
- Cardiovascular diseases are a leading cause of global mortality, often requiring vascular grafts for treatment.
- Autologous grafts are preferred but limited; synthetic grafts face high failure rates due to thrombosis and other complications.
- Tissue-engineered vascular grafts (TEVGs) offer a promising alternative, with recent focus on plant-based biomaterials.
Purpose of the Study:
- To fabricate and evaluate decellularized parsley stems as a novel biomaterial for tissue-engineered vascular grafts (TEVGs).
- To assess the suitability of these plant-derived scaffolds for recellularization with human endothelial cells.
Main Methods:
- Parsley stems underwent chemical decellularization to remove native plant DNA and create tubular scaffolds.
- The decellularized scaffolds were recellularized with human endothelial cells.
- Mechanical and biological properties of the scaffolds were evaluated.
Main Results:
- Successful removal of native plant DNA and fabrication of soft, tubular biomaterials from parsley stems.
- Decellularized parsley stems exhibited suitable mechanical and biological properties for TEVG applications.
- The scaffolds supported human endothelial cell attachment and the formation of a pseudo-endothelium.
Conclusions:
- Decellularized parsley stems represent a novel, promising biomaterial for developing tissue-engineered vascular grafts.
- This plant-based approach offers a potential solution to overcome limitations associated with current vascular grafting techniques.
- This study pioneers the use of parsley stems as a TEVG biomaterial.
Abstract:
Cardiovascular diseases are mostly associated with narrowing or blockage of blood vessels, and it is the most common cause of death worldwide. The use of vascular grafts is a promising approach to bypass or replace the blocked vessels for long-term treatment. Although autologous arteries or veins are the most preferred tissue sources for vascular bypass, the limited presence and poor quality of autologous vessels necessitate seeking alternative biomaterials. Recently, synthetic grafts have gained attention as an alternative to autologous grafts. However, the high failure rate of synthetic grafts has been reported primarily due to thrombosis, atherosclerosis, intimal hyperplasia, or infection. Thrombosis, the main reason for failure upon implantation, is associated with damage or absence of endothelial cell lining in the vascular graft's luminal surface. To overcome this, tissue-engineered vascular grafts (TEVGs) have come into prominence. Alongside the well-established scaffold manufacturing techniques, decellularized plant-based constructs have recently gained significant importance and are an emerging field in tissue engineering and regenerative medicine. Accordingly, in this study, we demonstrated the fabrication of tubular scaffolds from decellularized parsley stems and recellularized them with human endothelial cells to be used as a potential TEVG. Our results suggested that the native plant DNA was successfully removed, and soft tubular biomaterials were successfully manufactured via the chemical decellularization of the parsley stems. The decellularized parsley stems showed suitable mechanical and biological properties to be used as a TEVG material, and they provided a suitable environment for the culture of human endothelial cells to attach and create a pseudo endothelium prior to implantation. This study is the first one to demonstrate the potential of the parsley stems to be used as a potential TEVG biomaterial.

