通过颗粒架构的水凝 - 组织粘附:对接口湿的敏感性和组织组成
Raphaël Michel1,2, Laurent Corté1,3
1Molecular, Macromolecular Chemistry, and Materials, ESPCI Paris, CNRS, PSL University, 10 rue Vauquelin, 75005, Paris, France. raphael.michel@cermav.cnrs.fr.
Soft matter
|June 19, 2024
概括
颗粒桥梁通过在水凝-组织接口上利用纳米颗粒来增强组织粘附性. 这种方法可以改善粘附性,特别是在水合条件下,为外科手术粘合剂提供了一个有希望的替代品.
科学领域:
- 生物材料科学 生物材料科学
- 粘附科学 粘附科学 粘附科学
- 组织工程是组织工程.
背景情况:
- 液凝与组织接口上的固体颗粒可以通过宏分子吸附形成粘合性关节.
- 了解影响粒子桥接粘附的因素对于开发有效的组织粘合剂至关重要.
研究的目的:
- 研究组织表面湿和组成异质性如何影响粒子桥接粘附.
- 评估纳米颗粒涂层水凝作为组织粘合剂的性能.
主要方法:
- 在猪肝组织上使用聚乙烯糖醇膜与纳米颗粒聚合物的ex vivo剥离实验.
- 对界面流体条件的系统变化,以研究湿效应.
- 在剥皮过程中对脱落机制的显微观测.
主要成果:
- 粘合过渡从滑到粘合接触,因为移除界面液体.
- 纳米粒子涂层增强粘附性,特别是在水合条件下.
- 与未涂层薄膜 (3.2 J m−2) 和烯酸粘合剂 (2.9 J m−2) 相比,涂层薄膜的粘合能显著更高 (7.7 J m−2).
- 脱离机制根据肝脏微解剖学而异,涉及粒子脱离或凝聚性组织骨折.
结论:
- 界面湿和组织组成显著影响粒子桥接粘附.
- 纳米粒子涂层提高了水凝对生物组织的粘附性.
- 粒子桥梁为设计先进的组织粘合剂提供了一个可调节的策略.
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