Mechanisms of Osteoblast-Like Cells and Bacterial Responses to Copper in Titanium-Copper Alloys

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Javeria Khalid, Abish S. Stephen, Simon C. F. Rawlinson, Robert P. Allaker
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引用次数: 0

Abstract

Titanium-copper (Ti-Cu) alloys are gaining attention for their dual functionality in promoting osteogenesis while providing antimicrobial protection, making them ideal candidates for dental and orthopedic implants. Copper's ability to enhance bone cell activity and inhibit bacterial growth could help address two critical challenges: successful osseointegration and the prevention of peri-implant infections. This study investigated the cellular and molecular mechanisms by which copper, when incorporated into titanium alloys, stimulates both pro-osteogenic behavior and inhibits bacterial viability. MG-63 osteoblast-like cells were cultured on Ti-5Cu alloy surfaces, and osteogenic activity was assessed through alkaline phosphatase (ALP) activity, collagen deposition, and mineralization assays. Gene expression analysis using qPCR and protein expression via band densitometry provided insights into key pathways, including copper homeostasis and bone matrix formation. The antimicrobial effects of Ti-5Cu were evaluated against common pathogens such as Escherichia coli and Staphylococcus aureus, as well as oral bacteria such as Streptococcus oralis and Fusobacterium nucleatum. Bacterial gene expression was analyzed using qPCR and RNA sequencing. Osteoblast-like cells cultured on Ti-5Cu surfaces showed enhanced ALP activity, increased collagen production, and significant gene upregulation of RUNX2, Osteonectin, Alkaline phosphatase, and BMP-2, driving bone matrix formation. Copper homeostasis proteins, such as CTR1 and ATP7A/ATP7B, were modulated to prevent cytotoxicity while supporting osteogenesis. Ti-5Cu alloys also exhibited broad-spectrum antimicrobial effects, significantly reducing bacterial viability. In S. oralis, stress response genes, CsoR and SOD, were upregulated in response to copper exposure, indicating oxidative stress and disruption of copper homeostasis. Transcriptome analysis found that the alloys induce oxidative stress and disrupt metal homeostasis in commensal bacteria such as S. oralis and Actinomyces naeslundii. The study demonstrates that Ti-5Cu alloys effectively promote osteoblast differentiation and mineralization while preventing bacterial colonization through copper-induced stress responses. These findings support the potential of Ti-5Cu alloys for clinical applications, particularly in dental implants, where both regenerative bone formation and infection prevention are critical for long-term success.

Abstract Image

钛-铜合金中成骨细胞样细胞和细菌对铜的反应机制。
钛铜(Ti-Cu)合金因其促进成骨的双重功能而受到关注,同时提供抗菌保护,使其成为牙科和骨科植入物的理想候选材料。铜增强骨细胞活性和抑制细菌生长的能力可以帮助解决两个关键挑战:成功的骨整合和预防种植体周围感染。本研究探讨了铜加入钛合金后刺激促骨行为和抑制细菌活力的细胞和分子机制。MG-63成骨细胞样细胞在Ti-5Cu合金表面培养,通过碱性磷酸酶(ALP)活性、胶原沉积和矿化试验评估成骨活性。使用qPCR进行基因表达分析,通过带密度仪进行蛋白质表达分析,可以深入了解铜稳态和骨基质形成等关键途径。研究了Ti-5Cu对大肠杆菌、金黄色葡萄球菌等常见病原菌以及口腔链球菌、核梭杆菌等口腔细菌的抑菌效果。采用qPCR和RNA测序分析细菌基因表达。在Ti-5Cu表面培养的成骨细胞样细胞显示ALP活性增强,胶原生成增加,RUNX2、骨连接素、碱性磷酸酶和BMP-2基因显著上调,促进骨基质的形成。铜稳态蛋白,如CTR1和ATP7A/ATP7B,被调节以防止细胞毒性,同时支持成骨。Ti-5Cu合金还表现出广谱抗菌作用,显著降低细菌活力。在口腔链球菌中,应激反应基因CsoR和SOD在铜暴露下上调,表明氧化应激和铜稳态破坏。转录组分析发现,这些合金可诱导口腔链球菌和纳斯lundii等共生细菌的氧化应激并破坏金属稳态。研究表明,Ti-5Cu合金可有效促进成骨细胞分化和矿化,同时通过铜诱导的应激反应阻止细菌定植。这些发现支持了Ti-5Cu合金在临床应用的潜力,特别是在牙科种植体中,再生骨形成和预防感染对长期成功至关重要。
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来源期刊
Journal of biomedical materials research. Part A
Journal of biomedical materials research. Part A 工程技术-材料科学:生物材料
CiteScore
10.40
自引率
2.00%
发文量
135
审稿时长
3.6 months
期刊介绍: The Journal of Biomedical Materials Research Part A is an international, interdisciplinary, English-language publication of original contributions concerning studies of the preparation, performance, and evaluation of biomaterials; the chemical, physical, toxicological, and mechanical behavior of materials in physiological environments; and the response of blood and tissues to biomaterials. The Journal publishes peer-reviewed articles on all relevant biomaterial topics including the science and technology of alloys,polymers, ceramics, and reprocessed animal and human tissues in surgery,dentistry, artificial organs, and other medical devices. The Journal also publishes articles in interdisciplinary areas such as tissue engineering and controlled release technology where biomaterials play a significant role in the performance of the medical device. The Journal of Biomedical Materials Research is the official journal of the Society for Biomaterials (USA), the Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Articles are welcomed from all scientists. Membership in the Society for Biomaterials is not a prerequisite for submission.
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