Acosta Sergio, Chaskovska Viktoriya, El-Maachi Ikram, Englert Jenny, Puertas-Bartolomé María, Jockenhoevel Stefan, Rodríguez-Cabello José Carlos, Rodriguez-Emmenegger César, Fernández-Colino Alicia
Department of Biohybrid & Medical Textiles (BioTex), AME - Institute of Applied Medical Engineering, Helmholtz Institute, RWTH Aachen University, 52074 Aachen, Germany.
Bioforge Laboratory (Group for Advanced Materials and Nanobiotechnology), Laboratory for Disruptive Interdisciplinary Science (LaDIS), CIBER-BBN, Edificio LUCIA, Universidad de Valladolid, 47002 Valladolid, Spain.
ACS Appl Mater Interfaces. 2025 Sep 10;17(36):50279-50291. doi: 10.1021/acsami.5c10327. Epub 2025 Sep 1.
Medical devices such as vascular grafts, stents, and catheters are crucial for patient treatment but often suffer suboptimal integration with host tissues due to the nature of their surfaces. The materials commonly used, including metals and synthetic polymers, frequently lead to undesired immune responses and device failure. In this context, coating their surfaces with designer proteins has arisen as a promising strategy to improve the device's biointegration. Here, we present a bioinspired method for coating biomaterial surfaces with protein-engineered polymers designed to mimic tailored functions from the native extracellular matrix (ECM). Combining mussel-inspired catechol chemistry with bioorthogonal click chemistry, we developed a modular grafting method for the surface functionalization of metallic and polymeric implants using a bifunctional peptide containing azide and DOPA (3,4-dihydroxyphenylalanine) groups. This simple dip-coating process enabled the fabrication of bioactive elastin-like coatings with precise peptide presentation. The results reveal enhanced bioactivity and cytocompatibility, as evidenced by improved endothelial cell adhesion, proliferation, and heparin-binding capacity on coated surfaces. The versatility and effectiveness of this bioorthogonal coating method suggest significant potential for creating implant surfaces tailored to diverse clinical applications.
血管移植物、支架和导管等医疗设备对患者治疗至关重要,但由于其表面性质,它们与宿主组织的整合往往不理想。常用材料,包括金属和合成聚合物,常常会引发不良免疫反应并导致设备故障。在这种情况下,用定制蛋白质对其表面进行涂层已成为一种有前景的改善设备生物整合的策略。在此,我们提出一种受生物启发的方法,用设计用来模拟天然细胞外基质(ECM)特定功能的蛋白质工程聚合物对生物材料表面进行涂层。将受贻贝启发的儿茶酚化学与生物正交点击化学相结合,我们开发了一种模块化接枝方法,用于使用含有叠氮化物和多巴(3,4-二羟基苯丙氨酸)基团的双功能肽对金属和聚合物植入物进行表面功能化。这种简单的浸涂工艺能够制造出具有精确肽呈现的生物活性弹性蛋白样涂层。结果显示生物活性和细胞相容性增强,这在涂层表面上内皮细胞粘附、增殖和肝素结合能力的改善中得到证明。这种生物正交涂层方法的多功能性和有效性表明,为各种临床应用定制植入物表面具有巨大潜力。