Nanoparticle Interactions with the Blood Brain Barrier: Insights from Drosophila and Implications for Human Astrocyte Targeted Therapies

IF 3.7 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Neurochemical Research Pub Date : 2025-01-20 DOI:10.1007/s11064-025-04333-x
Akshata Choudhari Padti, Santosh Mallikarjun Bhavi, Bothe Thokchom, Sapam Riches Singh, Shivanand S. Bhat, B. P. Harini, Mika Sillanpää, Ramesh Babu Yarajarla
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Abstract

This review explores the intricate connections between Drosophila models and the human blood-brain barrier (BBB) with nanoparticle-based approaches for neurological treatment. Drosophila serves as a powerful model organism due to its evolutionary conservation of key biological processes, particularly in the context of the BBB, which is formed by glial cells that share structural and functional similarities with mammalian endothelial cells. Recent advancements in nanoparticle technology have highlighted their potential for effective drug delivery across the BBB, utilizing mechanisms such as passive diffusion, receptor-mediated transcytosis, and carrier-mediated transport. The ability to engineer nanoparticles with specific physicochemical properties—such as size, surface charge, and functionalization—enhances their targeting capabilities, particularly towards astrocytes, which play a crucial role in maintaining BBB integrity and responding to neuroinflammation. Insights gained from Drosophila studies have informed the design of personalized nanomedicine strategies aimed at treating neurodegenerative diseases, including Alzheimer’s, Parkinson’s disease etc. As research progresses, the integration of findings from Drosophila models with emerging humanized BBB systems will pave the way for innovative therapeutic approaches that improve drug delivery and patient outcomes in neurological disorders.

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纳米粒子与血脑屏障的相互作用:来自果蝇的见解和对人类星形胶质细胞靶向治疗的影响
这篇综述探讨了果蝇模型和人类血脑屏障(BBB)之间的复杂联系,以及基于纳米粒子的神经治疗方法。果蝇是一种强大的模式生物,因为它具有关键生物过程的进化保护,特别是在血脑屏障的背景下,血脑屏障是由与哺乳动物内皮细胞具有结构和功能相似性的胶质细胞形成的。纳米颗粒技术的最新进展突出了其在通过血脑屏障有效递送药物方面的潜力,利用诸如被动扩散、受体介导的胞吞作用和载体介导的转运等机制。设计具有特定物理化学性质的纳米颗粒的能力,如大小、表面电荷和功能化,增强了它们的靶向能力,特别是针对星形胶质细胞,星形胶质细胞在维持血脑屏障完整性和应对神经炎症方面起着至关重要的作用。从果蝇研究中获得的见解为设计个性化纳米医学策略提供了信息,这些策略旨在治疗神经退行性疾病,包括阿尔茨海默病、帕金森病等。随着研究的进展,将果蝇模型的发现与新兴的人源化血脑屏障系统相结合,将为创新治疗方法铺平道路,从而改善神经疾病的药物输送和患者预后。
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来源期刊
Neurochemical Research
Neurochemical Research 医学-神经科学
CiteScore
7.70
自引率
2.30%
发文量
320
审稿时长
6 months
期刊介绍: Neurochemical Research is devoted to the rapid publication of studies that use neurochemical methodology in research on nervous system structure and function. The journal publishes original reports of experimental and clinical research results, perceptive reviews of significant problem areas in the neurosciences, brief comments of a methodological or interpretive nature, and research summaries conducted by leading scientists whose works are not readily available in English.
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