4.6 Article

Shape memory polyurethane potentially used for vascular stents with water-induced stiffening and improved hemocompatibility

Journal

JOURNAL OF MATERIALS CHEMISTRY B
Volume 10, Issue 43, Pages 8918-8930

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2tb01681h

Keywords

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Funding

  1. National Natural Science Foundation of China [51973134, 51873122, 51733005]

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A novel SMPU was developed with full hard segments on the main chains and hydrophilic tertiary amine soft segments on the side chains, which when immersed in water, dramatically separated the segments to form densely packed hard domains, leading to improved Young's modulus and shape recovery ratio. Additionally, the hydrophilic side chains migrated to the surface driven by the segmental rearrangement in water, promoting adhesion and growth of vascular endothelial cells while inhibiting coagulation system activation. The unique structural design provided SMPUs with sufficient mechanical strength and hemocompatibility for potential use in self-expanding vascular stents.
Shape memory polymers (SMPs) with multiple functionalities have great potential in implantable biomedical devices, especially vascular stents. However, stents made of SMPs are generally faced with the problem of insufficient radial support due to the sharp decline of the modulus after shape recovery. Therefore, it is necessary to improve the modulus of SMPs after opening the narrow part by other means. In this study, the novel SMPs available for vascular stents were developed with impressive water-induced stiffening when shape recovered in a physiological environment. Herein, a series of shape memory polyurethanes (SMPUs) containing full hard segments on the main chains and bearing hydrophilic tertiary amine soft segments on the side chains were synthesized. When immersed in water, the soft segments were dramatically separated from the hard segments, which were aggregated more to form densely packed hard domains with stronger hydrogen bonding and higher crystallinity. Both Young's modulus and the shape recovery ratio were thus promoted due to the segmental rearrangement in water. At the same time, hydrophilic side chains migrated to the surface driven by the segmental rearrangement in water, which promotes the adhesion and growth of vascular endothelial cells and inhibits the activation of the coagulation system. The ingenious structural design provided SMPUs with adequate mechanical strength and hemocompatibility to qualify for potential applications in self-expanding vascular stents.

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