基于纳米技术的靶向给药方法用于治疗呼吸道感染。

Journal of biological methods Pub Date : 2024-10-23 eCollection Date: 2024-01-01 DOI:10.14440/jbm.2024.0065
Vasiliki Epameinondas Georgakopoulou, Petros Papalexis, Nikolaos Trakas
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引用次数: 0

摘要

背景:纳米技术已经成为诊断、监测和治疗呼吸道感染(RTIs)的一个有前景的领域。通过利用纳米级传递系统的独特特性,纳米技术可以显著提高抗菌剂的选择性和有效性,从而减少脱靶效应。目的:综述靶向纳米系统在对抗病毒、细菌和真菌RTIs中的发展和应用。基于纳米技术的系统,包括生物和非生物纳米颗粒,为克服抗菌素耐药性、提高药物生物利用度和减少系统副作用提供了创新的解决方案。呼吸道感染是全球发病率和死亡率的主要原因,尤其影响儿童、老年人和免疫功能低下者等弱势群体。传统的给药方法面临着许多挑战,如清除速度快、组织穿透性差和药物降解。基于纳米颗粒的给药系统通过增强组织渗透、提供持续的药物释放和靶向给药到感染部位来解决这些问题。这些系统包括脂质体递送、聚合纳米颗粒、树状大分子和金属基纳米颗粒,每种系统在治疗rti方面都具有独特的优势。纳米技术还通过提供增强免疫反应和改善抗原递送的新策略,在疫苗开发中发挥关键作用。此外,本文还讨论了基于纳米技术的药物传递的临床转化和监管考虑,强调需要严格的测试和质量控制以确保安全性和有效性。结论:纳米技术通过增强药物传递和疗效,为RTIs的治疗和预防提供了有希望的进展。通过解决诸如抗菌素耐药性和组织渗透性差等挑战,基于纳米技术的系统具有显著改善患者预后的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanotechnology-based approaches for targeted drug delivery for the treatment of respiratory tract infections.

Background: Nanotechnology has emerged as a promising field for the diagnosis, monitoring, and treatment of respiratory tract infections (RTIs). By leveraging the unique properties of nanoscale delivery systems, nanotechnology can significantly enhance the selectivity and efficacy of antimicrobials, thereby reducing off-target effects.

Objective: This review explores the development and application of targeted nanosystems in combating viral, bacterial, and fungal RTIs. Nanotechnology-based systems, including biological and non-biological nanoparticles, offer innovative solutions for overcoming antimicrobial resistance, improving drug bioavailability, and minimizing systemic side effects. RTIs are a leading cause of morbidity and mortality globally, particularly affecting vulnerable populations such as children, the elderly, and immunocompromised individuals. Traditional drug delivery methods face numerous challenges, such as rapid clearance, poor tissue penetration, and drug degradation. Nanoparticle-based delivery systems address these issues by enhancing tissue penetration, providing sustained drug release, and enabling targeted delivery to infection sites. These systems include liposomal delivery, polymeric nanoparticles, dendrimers, and metal-based nanoparticles, each offering unique advantages in treating RTIs. Nanotechnology also plays a crucial role in vaccine development by offering new strategies to enhance immune responses and improve antigen delivery. Furthermore, the review discusses the clinical translation and regulatory considerations for nanotechnology-based drug delivery, emphasizing the need for rigorous testing and quality control to ensure safety and efficacy.

Conclusion: Nanotechnology offers promising advancements in the treatment, and prevention of RTIs by enhancing drug delivery and efficacy. By addressing challenges such as antimicrobial resistance and poor tissue penetration, nanotechnology-based systems have the potential to significantly improve patient outcomes.

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