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揭示基于纳米颗粒的治疗方法对福氏耐格里阿米巴引起的原发性阿米巴脑膜脑炎(一种食脑疾病)的潜在作用。

Enlightening the promising role of nanoparticle-based treatments against Naegleria fowleri-induced primary amoebic meningoencephalitis: A brain-eating disease.

作者信息

Jhulki Sunita, Bhowmik Biplab, Pal Aparajita

机构信息

Diamond Harbour Women's University, Department of Zoology, Sarisha, West Bengal, 743368, India.

出版信息

Microb Pathog. 2025 Feb;199:107234. doi: 10.1016/j.micpath.2024.107234. Epub 2024 Dec 17.

Abstract

Naegleria fowleri, is the causative agent of Primary Amoebic Meningoencephalitis (PAM), a lethal acute brain inflammation with high mortality. The virulent and reproductively active trophozoite stage of N. fowleri migrates to central nervous system (CNS) by entering through nasal passage and causes severe neural infection, brain disease and inflammation with high mortality. In this review we present the current available information about N. fowleri, including its case reports, pathogenesis and the mechanism of host neuroinflammation associated with PAM. Various case reports reveal that the survival rate of patients with PAM is very low. Several anti-microbial, anti-parasitic and anti-inflammatory compounds such as doxycycline, amphotericin, acyclovir, miltefosine, ampicillin, ceftriaxone, azithromycin are widely used to treat PAM. Nanoparticles conjugated drug has now attracted better attention in dealing with free-living amoeba community. Conventional drugs are being conjugated with nanomaterials like gold (Au), sliver (Ag) etc. which have elicited better amoebicidal effect against N. fowleri than unconjugated drugs. This targeted strategy may prove helpful and possibly may reduce neural damage.

摘要

福氏耐格里阿米巴是原发性阿米巴脑膜脑炎(PAM)的病原体,PAM是一种致死性急性脑部炎症,死亡率很高。福氏耐格里阿米巴的致病且具有繁殖活性的滋养体阶段通过鼻腔进入中枢神经系统(CNS),引发严重的神经感染、脑部疾病和炎症,死亡率很高。在本综述中,我们介绍了目前关于福氏耐格里阿米巴的可用信息,包括其病例报告、发病机制以及与PAM相关的宿主神经炎症机制。各种病例报告显示,PAM患者的存活率非常低。几种抗菌、抗寄生虫和抗炎化合物,如强力霉素、两性霉素、阿昔洛韦、米替福新、氨苄青霉素、头孢曲松、阿奇霉素,被广泛用于治疗PAM。纳米颗粒缀合药物目前在应对自由生活阿米巴群体方面受到了更多关注。传统药物正与金(Au)、银(Ag)等纳米材料缀合,这些纳米材料对福氏耐格里阿米巴的杀阿米巴效果比未缀合的药物更好。这种靶向策略可能会被证明是有帮助的,并且可能会减少神经损伤。

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