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1.
Colloids Surf B Biointerfaces ; 240: 113988, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38810467

ABSTRACT

Confronted with the profound threat of cardiovascular diseases to health, vascular tissue engineering presents potential beyond the limitations of autologous and allogeneic grafts, offering a promising solution. This study undertakes an initial exploration into the impact of a natural active protein, elastin, on vascular cell behavior, by incorporating with polycaprolactone to prepare fibrous tissue engineering scaffold. The results reveal that elastin serves to foster endothelial cell adhesion and proliferation, suppress smooth muscle cell proliferation, and induce macrophage polarization. Furthermore, the incorporation of elastin contributes to heightened scaffold strength, compliance, and elongation, concomitantly lowering the elastic modulus. Subsequently, a bilayer oriented polycaprolactone (PCL) scaffold infused with elastin is proposed. This design draws inspiration from the cellular arrangement of native blood vessels, leveraging oriented fibers to guide cell orientation. The resulting fiber scaffold exhibits commendable mechanical properties and cell infiltration capacity, imparting valuable insights for the rapid endothelialization of vascular scaffolds.


Subject(s)
Cell Adhesion , Cell Proliferation , Nanofibers , Polyesters , Tissue Engineering , Tissue Scaffolds , Tissue Scaffolds/chemistry , Nanofibers/chemistry , Polyesters/chemistry , Polyesters/pharmacology , Cell Proliferation/drug effects , Humans , Cell Adhesion/drug effects , Animals , Myocytes, Smooth Muscle/drug effects , Myocytes, Smooth Muscle/cytology , Elastin/chemistry , Human Umbilical Vein Endothelial Cells/drug effects , Human Umbilical Vein Endothelial Cells/cytology , Mice , Cells, Cultured , Endothelial Cells/drug effects , Endothelial Cells/cytology
2.
ACS Biomater Sci Eng ; 10(6): 3631-3654, 2024 06 10.
Article in English | MEDLINE | ID: mdl-38815169

ABSTRACT

The transplantation of vascular grafts has emerged as a prevailing approach to address vascular disorders. However, the development of small-diameter vascular grafts is still in progress, as they serve in a more complicated mechanical environment than their counterparts with larger diameters. The biocompatibility and functional characteristics of small-diameter vascular grafts have been well developed; however, mismatch in mechanical properties between the vascular grafts and native arteries has not been accomplished, which might facilitate the long-term patency of small-diameter vascular grafts. From a point of view in mechanics, mimicking the nonlinear elastic mechanical behavior exhibited by natural blood vessels might be the state-of-the-art in designing vascular grafts. This review centers on elucidating the nonlinear elastic behavior of natural blood vessels and vascular grafts. The biological functionality and limitations associated with as-reported vascular grafts are meticulously reviewed and the future trajectory for fabricating biomimetic small-diameter grafts is discussed. This review might provide a different insight from the traditional design and fabrication of artificial vascular grafts.


Subject(s)
Blood Vessel Prosthesis , Blood Vessels , Elasticity , Humans , Blood Vessels/physiology , Animals , Biocompatible Materials/chemistry
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