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Advanced Nanobiomaterials: Vaccines Diagnosis and Treatment of Infectious Diseases

机译:先进的纳米生物材料:疫苗传染病的诊断和治疗

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摘要

The use of nanoparticles has contributed to many advances due to their important properties such as, size, shape or biocompatibility. The use of nanotechnology in medicine has great potential, especially in medical microbiology. Promising data show the possibility of shaping immune responses and fighting severe infections using synthetic materials. Different studies have suggested that the addition of synthetic nanoparticles in vaccines and immunotherapy will have a great impact on public health. On the other hand, antibiotic resistance is one of the major concerns worldwide; a recent report of the World Health Organization (WHO) states that antibiotic resistance could cause 300 million deaths by 2050. Nanomedicine offers an innovative tool for combating the high rates of resistance that we are fighting nowadays, by the development of both alternative therapeutic and prophylaxis approaches and also novel diagnosis methods. Early detection of infectious diseases is the key to a successful treatment and the new developed applications based on nanotechnology offer an increased sensibility and efficiency of the diagnosis. The aim of this review is to reveal and discuss the main advances made on the science of nanomaterials for the prevention, diagnosis and treatment of infectious diseases. Highlighting innovative approaches utilized to: (i) increasing the efficiency of vaccines; (ii) obtaining shuttle systems that require lower antibiotic concentrations; (iii) developing coating devices that inhibit microbial colonization and biofilm formation.
机译:由于纳米粒子的重要性质,例如尺寸,形状或生物相容性,其使用已为许多进步做出了贡献。纳米技术在医学中的应用具有巨大的潜力,特别是在医学微生物学中。有希望的数据表明,使用合成材料可以形成免疫应答并抵抗严重感染。不同的研究表明,在疫苗和免疫疗法中添加合成纳米颗粒将对公共健康产生重大影响。另一方面,抗生素抗性是全世界主要关注的问题之一。世界卫生组织(WHO)的最新报告指出,到2050年,抗生素耐药性可能导致3亿人死亡。纳米药物通过开发替代疗法和预防手段,提供了一种创新的工具来对抗当今我们正在抵抗的高耐药率方法以及新颖的诊断方法。传染病的早期发现是成功治疗的关键,基于纳米技术的新开发应用提供了更高的诊断灵敏度和效率。这篇综述的目的是揭示和讨论在纳米材料科学上用于预防,诊断和治疗传染病的主要进展。重点介绍用于以下方面的创新方法:(i)提高疫苗效率; (ii)获得需要较低抗生素浓度的穿梭系统; (iii)开发抑制微生物定植和生物膜形成的涂层设备。

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