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Kishida, A.

Publications and source records attributed to Kishida, A..

2 recordsLinked to original sources

Effect of luminal surface structure of decellularized aorta on thrombus formation and cell behavior

As the number of cardiovascular diseases increases, artificial heart valves and blood vessels have been developed. Although cardiovascular application using decellularized tissue have been studied, the mechanism of their functionality is still unknown. To find the important factor for preparing decellularized cardiovascular prothesis which shows good in vivo performance, the effect of luminal surface structure of decellularized aorta on thrombus formation and cell behavior was investigated. Various luminal surface structures of decellularized aorta were prepared by heating, drying and peeling. The luminal surface structure and collagen denaturation was evaluated by immunohistological staining, collagen hybridizing peptide (CHP) staining and scanning electron microscopy (SEM) analysis. To evaluate the effect of luminal surface structure of decellularized aorta on thrombus formation and cell behavior, blood clotting test and recellularization of endothelial cells and smooth muscular cells were performed. The results of blood clotting test showed that the closer the luminal surface structure is to native aorta, the higher the anti-coagulant property. From the result of cell seeding-test, it was suggested that vascular cells recognize the luminal surface structure and regulate adhesion, proliferation and functional expression. These results will provide important factor for preparing decellularized cardiovascular prothesis and lead to future development on decellularized cardiovascular applications.

bioengineering

In vivo recellularization of xenogeneic vascular grafts decellularized with high hydrostatic pressure method in a porcine carotid arterial interpose model

Autologous vascular grafts are widely used in revascularization surgeries for small caliber targets. However, the availability of autologous conduits might be limited due to prior surgeries or the quality of vessels. Xenogeneic decellularized vascular grafts from animals potentially substitute for autologous vascular grafts. Decellularization with high hydrostatic pressure (HHP) is reported to highly preserve extracellular matrix (ECM) which would be feasible for recellularization and vascular remodeling after implantation. In the present study, we conducted xenogeneic implantation of HHP-decellularized bovine vascular grafts from dorsalis pedis arteries to porcine carotid arteries then evaluated graft patency, ECM preservation and recellularization. Surgical procedure not to damage luminal surface of the grafts from drying significantly increased the graft patency at 4 weeks after implantation (P = 0.0079). After the technical improvement, all grafts (N = 5) were patent with mild stenosis due to intimal hyperplasia at 4 weeks after implantation. Neither aneurysmal change nor massive thrombosis was observed even without administration of anticoagulants nor anti-platelet agents. Elastica van Gieson and Sirius-red stainings revealed fair preservation of ECM proteins including elastin and collagen after implantation. Luminal surface of grafts was thoroughly covered with von Willebrand factor-positive endothelium. Scanning electron microscopy on luminal surface of implanted grafts exhibited cobblestone-like endothelial cell layer which is similar to native vascular endothelium. Recellularization of tunica media with alpha-smooth muscle actin-positive smooth muscle cells was partly observed. Thus, we confirmed that HHP-decellularized grafts are feasible for xenogeneic implantation accompanied by recellularization by recipient cells.

bioengineering