抗疟疾纳米疗法:实验模型的十年进展。

Yunuen Avalos-Padilla, Xavier Fernàndez-Busquets
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引用次数: 0

摘要

疟疾是由不同种类的疟原虫引起的,仍然是全世界寄生虫病导致死亡的最常见原因之一,主要是 5 岁以下儿童。根除疟疾的主要障碍之一是病原体对针对其开发的药物方案产生抗药性的速度。因此,当务之急是找到创新的治疗策略,为寄生虫提供足够的特异性,以最大限度地减少抗药性演变和药物副作用。在这种情况下,基于纳米技术的方法因其广泛的优势和可调整的特性,目前正被探索用作抗疟药物输送平台。然而,要提供一种有助于根除疟疾的具有成本效益和针对性的治疗策略,仍有许多重大挑战有待解决。本研究对过去 10 年中产生的基于纳米技术的抗疟药物输送系统进行了系统综述。本文归类于治疗方法与药物发现 > 用于传染病的纳米医学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nanotherapeutics against malaria: A decade of advancements in experimental models.

Nanotherapeutics against malaria: A decade of advancements in experimental models.

Malaria, caused by different species of protists of the genus Plasmodium, remains among the most common causes of death due to parasitic diseases worldwide, mainly for children aged under 5. One of the main obstacles to malaria eradication is the speed with which the pathogen evolves resistance to the drug schemes developed against it. For this reason, it remains urgent to find innovative therapeutic strategies offering sufficient specificity against the parasite to minimize resistance evolution and drug side effects. In this context, nanotechnology-based approaches are now being explored for their use as antimalarial drug delivery platforms due to the wide range of advantages and tuneable properties that they offer. However, major challenges remain to be addressed to provide a cost-efficient and targeted therapeutic strategy contributing to malaria eradication. The present work contains a systematic review of nanotechnology-based antimalarial drug delivery systems generated during the last 10 years. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Infectious Disease.

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