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增材制造多孔钛表面银涂层的抗菌和免疫行为。

Antibacterial and immunogenic behavior of silver coatings on additively manufactured porous titanium.

机构信息

Department of Orthopedics, University Medical Center Utrecht, Utrecht, The Netherlands.

Department of Biomechanical Engineering, Delft University of Technology, Delft, The Netherlands.

出版信息

Acta Biomater. 2018 Nov;81:315-327. doi: 10.1016/j.actbio.2018.09.051. Epub 2018 Sep 28.

Abstract

Implant-associated infections (IAI) are often recurrent, expensive to treat, and associated with high rates of morbidity, if not mortality. We biofunctionalized the surface of additively manufactured volume-porous titanium implants using electrophoretic deposition (EPD) as a way to eliminate the peri-operative bacterial load and prevent IAI. Chitosan-based (Ch) coatings were incorporated with different concentrations of silver (Ag) nanoparticles or vancomycin. A full-scale in vitro and in vivo study was then performed to evaluate the antibacterial, immunogenic, and osteogenic activity of the developed implants. In vitro, Ch + vancomycin or Ch + Ag coatings completely eliminated, or reduced the number of planktonic and adherent Staphylococcus aureus by up to 4 orders of magnitude, respectively. In an in vivo tibia intramedullary implant model, Ch + Ag coatings caused no adverse immune or bone response under aseptic conditions. Following Staphylococcus aureus inoculation, Ch + vancomycin coatings reduced the implant infection rate as compared to chitosan-only coatings. Ch + Ag implants did not demonstrate antibacterial effects in vivo and even aggravated infection-mediated bone remodeling including increased osteoclast formation and inflammation-induced new bone formation. As an explanation for the poor antibacterial activity of Ch + Ag implants, it was found that antibacterial Ag concentrations were cytotoxic for neutrophils, and that non-toxic Ag concentrations diminished their phagocytic activity. This study shows the potential of EPD coating to biofunctionalize porous titanium implants with different antibacterial agents. Using this method, Ag-based coatings seem inferior to antibiotic coatings, as their adverse effects on the normal immune response could cancel the direct antibacterial effects of Ag nanoparticles. STATEMENT OF SIGNIFICANCE: Implant-associated infections (IAI) are a clinical, societal, and economical burden. Surface biofunctionalization approaches can render complex metal implants with strong local antibacterial action. The antibacterial effects of inorganic materials such as silver nanoparticles (Ag NPs) are often highlighted under very confined conditions in vitro. As a novelty, this study also reports the antibacterial, immunogenic, and osteogenic activity of Ag NP-coated additively-manufactured titanium in vivo. Importantly, it was found that the developed coatings could impair the normal function of neutrophils, the most important phagocytic cells protecting us from IAI. Not surprisingly, the Ag NP-based coatings were outperformed by an antibiotic-based coating. This emphasizes the importance of also targeting implant immune-modulatory functions in future coating strategies against IAI.

摘要

植入物相关感染(IAI)经常复发,治疗费用昂贵,并且发病率高,如果不是死亡率的话。我们通过电泳沉积(EPD)对增材制造的体积多孔钛植入物的表面进行生物功能化,以消除围手术期细菌负荷并预防 IAI。壳聚糖(Ch)涂层中加入了不同浓度的银(Ag)纳米粒子或万古霉素。然后进行了全面的体外和体内研究,以评估开发的植入物的抗菌、免疫和成骨活性。在体外,Ch+万古霉素或 Ch+Ag 涂层分别完全消除或减少浮游和附着的金黄色葡萄球菌的数量高达 4 个数量级。在胫骨髓内植入物模型的体内研究中,在无菌条件下,Ch+Ag 涂层不会引起任何不良免疫或骨反应。在接种金黄色葡萄球菌后,与壳聚糖涂层相比,Ch+万古霉素涂层降低了植入物的感染率。在体内,Ch+Ag 植入物没有表现出抗菌作用,甚至加剧了感染介导的骨重塑,包括增加破骨细胞形成和炎症诱导的新骨形成。作为 Ch+Ag 植入物抗菌活性差的解释,发现抗菌 Ag 浓度对中性粒细胞具有细胞毒性,而无毒 Ag 浓度则降低了其吞噬活性。这项研究表明,EPD 涂层具有用不同抗菌剂对多孔钛植入物进行生物功能化的潜力。使用这种方法,基于 Ag 的涂层似乎不如抗生素涂层,因为它们对正常免疫反应的不利影响可能会抵消 Ag 纳米粒子的直接抗菌作用。

意义声明

植入物相关感染(IAI)是临床、社会和经济负担。表面生物功能化方法可以使复杂的金属植入物具有强大的局部抗菌作用。无机材料(如银纳米粒子(Ag NPs)的抗菌效果在体外非常有限的条件下经常被强调。作为新颖性,本研究还报告了体内添加制造的钛的 Ag NP 涂层的抗菌、免疫和成骨活性。重要的是,发现开发的涂层会损害保护我们免受 IAI 的最重要的吞噬细胞中性粒细胞的正常功能。毫不奇怪,Ag NP 基涂层的性能优于抗生素基涂层。这强调了在未来针对 IAI 的涂层策略中还需要靶向植入物免疫调节功能的重要性。

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