Multifunctional gallium doped bioactive glasses: a targeted delivery for antineoplastic agents and tissue repair against osteosarcoma.

Shirin B Hanaei, Raghavan C Murugesan, Lucas P Souza, Juan I Cadiz-Miranda, Lee Jeys, Ivan B Wall, Richard A Martin
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Abstract

Osteosarcoma (OS) is the mostly commonly occurring primary bone cancer. Despite comprehensive treatment programs including neoadjuvant chemotherapy and tumour resection, survival rates have not improved significantly since the 1970s. Survival rates are dramatically reduced for patients who suffer a local recurrence. Furthermore, primary bone cancer patients are at increased risk of bone fractures. Consequently, there is an urgent need for alternative treatment options. In this paper we report the development of novel gallium doped bioactive glass that selectively kill bone cancer cells whilst simultaneously stimulating new bone growth. Here we show, using a combination of 3-(4.5-dimethylthiazol-2-yl)-2.5-diphenyltetrazolium bromide, LIVE/DEAD assays and image analysis, that bioactive glasses containing gallium oxide are highly toxic and reduce both the proliferation and migration of bone cancer cells (Saos-2) in a dose dependant manner. Glasses containing 5 mol% gallium oxide reduced the viability of OS cells by 99% without being cytotoxic to the non-cancerous normal human osteoblasts (NHOst) control cells. Furthermore, Fourier transform infrared and energy-dispersive x-ray spectroscopy results confirmed the formation of an amorphous calcium phosphate/hydroxyapatite like layer on the surface of the bioactive glass particulates, after 7 d incubating in simulated body fluid, indicating the early stages of bone formation. These materials show significant potential for use in bone cancer applications as part of a multimodal treatment.

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掺镓的多功能生物活性玻璃:抗肿瘤药物的靶向传输和骨肉瘤的组织修复。
骨肉瘤是最常见的原发性骨癌。尽管有包括新辅助化疗和肿瘤切除术在内的综合治疗方案,但自 20 世纪 70 年代以来,生存率并没有显著提高。局部复发患者的存活率大幅下降。此外,原发性骨癌患者骨折的风险增加。因此,迫切需要替代治疗方案。在本文中,我们报告了新型掺镓生物活性玻璃的开发情况,这种玻璃可选择性地杀死骨癌细胞,同时刺激新骨生长。在这里,我们结合使用 MTT、LIVE/DEAD 检测法和图像分析法,证明含有氧化镓的生物活性玻璃具有很强的毒性,能以剂量依赖的方式减少骨癌细胞(Saos-2)的增殖和迁移。含 5 摩尔氧化镓的玻璃可使骨肉瘤细胞的存活率降低 99%,而对非癌症正常人成骨细胞(NHOst)对照细胞无细胞毒性。此外,傅立叶变换红外光谱和能量色散 X 射线光谱结果证实,在模拟体液中培养 7 天后,生物活性玻璃微粒表面形成了无定形磷酸钙/羟基磷灰石层,表明骨形成处于早期阶段。这些材料显示出在骨癌应用中作为多模式治疗的一部分的巨大潜力。
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