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Fluorophosphonate-functionalised titanium via a pre-adsorbed alkane phosphonic acid: a novel dual action surface finish for bone regenerative applications.

机译:通过预吸附的烷烃膦酸对氟代膦酸酯官能化的钛:一种用于骨再生应用的新型双作用表面涂层。

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摘要

Enhancing vitamin D-induced human osteoblast (hOB) maturation at bone biomaterial surfaces is likely to improve prosthesis integration with resultant reductions in the need for revision arthroplasty consequent to aseptic loosening. Biomaterials that are less appealing to microorganisms implicated in implant failures through infection are also highly desirable. However, finding surfaces that enhance hOB maturation to active vitamin D yet deter bacteria remain elusive. In addressing this, we have sought to bio-functionalise titanium (Ti) with lysophosphatidic acid (LPA) and related, phosphatase-resistant, LPA analogues. The impetus for this follows our discovery that LPA co-operates with active vitamin D3 metabolites to secure hOB maturation in vitro including cells grown upon Ti. LPA has also been found, by others, to inhibit virulence factor production and biofilm formation of the human opportunistic pathogen Pseudomonas aeruginosa. Collectively, selected LPA species might offer potential dual-action surface finishes for contemporary bone biomaterials. In attaching a phosphatase-resistant LPA analogue to Ti we took advantage of the affinity of alkane phosphonic acids (APAs) for TiO2. Herein, we provide evidence for the facile development of a dual-action Ti surface for potential orthopaedic and dental applications. Successful conjugation of FHBP to the Ti surface was supported through physiochemical characterisation using x-ray photoelectron spectroscopy and secondary ion mass spectrometry. Human osteoblast maturation to active vitamin D3 was enhanced for cells grown on FHBP-Ti whilst these same surfaces exhibited clear antiadherent properties towards a clinical isolate of Staphylococcus aureus.
机译:在骨骼生物材料表面增强维生素D诱导的人类成骨细胞(hOB)成熟可能会改善假体整合,从而减少因无菌性松动而导致的翻修置换术。还非常需要对与通过感染引起的植入失败有关的微生物不那么有吸引力的生物材料。然而,寻找能够增强hOB成熟至活性维生素D并阻止细菌滋生的表面仍然遥不可及。为了解决这个问题,我们试图用溶血磷脂酸(LPA)和相关的耐磷酸酶的LPA类似物对钛(Ti)进行生物功能化。其推动力来自于我们的发现,即LPA与活性维生素D3代谢产物协同作用以确保hOB体外成熟,包括在Ti上生长的细胞。还发现,LPA可以抑制人类机会病原体铜绿假单胞菌的致病因子产生和生物膜形成。总的来说,某些LPA物种可能为当代的骨生物材料提供潜在的双重作用表面光洁度。在将抗磷酸酶的LPA类似物连接到Ti时,我们利用了烷烃膦酸(APAs)对TiO2的亲和力。在这里,我们为潜在的整形外科和牙科应用中的双作用Ti表面的便捷开发提供了证据。通过使用X射线光电子能谱和二次离子质谱仪进行理化表征,可以将FHBP成功结合到Ti表面。在FHBP-Ti上生长的细胞增强了人类成骨细胞向活性维生素D3的成熟,而这些相同的表面对临床分离的金黄色葡萄球菌表现出明显的抗粘附特性。

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