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Rational design of engineered H-ferritin nanoparticles with improved siRNA delivery efficacy across an in vitro model of the mouse BBB

机译:设计合理的工程H-ferritin纳米粒子与改善核交付功效在鼠标的体外模型

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Gene therapy holds tremendous potential for the treatment of incurable brain diseases including Alzheimer's disease (AD), stroke, glioma, and Parkinson's disease. The main challenge is the lack of effective gene delivery systems traversing the blood–brain barrier (BBB), due to the complex microvessels present in the brain which restrict substances from the circulating blood passing through. Recently, increasing efforts have been made to develop promising gene carriers for brain-related disease therapies. One such development is the self-assembled heavy chain ferritin (HFn) nanoparticles (NPs). HFn NPs have a unique hollow spherical structure that can encapsulate nucleic acid drugs (NADs) and specifically bind to cancer cells and BBB endothelial cells (BBB ECs) via interactions with the transferrin receptor 1 (TfR1) overexpressed on their surfaces, which increases uptake through the BBB. However, the gene-loading capacity of HFn is restricted by its limited interior volume and negatively charged inner surface; therefore, these drawbacks have prompted the demand for strategies to remould the structure of HFn. In this work, we analyzed the three-dimensional (3D) structure of HFn using Chimera software (v 1.14) and developed a class of internally cationic HFn variants (HFn+ NPs) through arginine mutation on the lumenal surface of HFn. These HFn+ NPs presented powerful electrostatic forces in their cavities, and exhibited higher gene encapsulation efficacy than naive HFn. The top-performing candidate, HFn2, effectively delivered siRNA to glioma cells after traversing the BBB and achieved the highest silencing efficacy among HFn+ NPs. Overall, our findings demonstrate that HFn+ NPs obtained by this genetic engineering method provide critical insights into the future development of nucleic acid delivery carriers with BBB-crossing ability.
机译:基因治疗有巨大的潜力治疗大脑疾病,包括不可治愈的阿尔茨海默病(AD)、中风、神经胶质瘤帕金森病。缺乏有效的基因运载系统穿越血脑屏障(BBB),由于复杂的微血管存在于大脑限制物质循环血液通过。一直在努力开发有前途的基因运营商大脑相关疾病的治疗。这样的发展是自我组装沉重链铁蛋白(HFn)纳米颗粒(NPs)。有一个独特的空心球结构,可以吗封装(流浪者)和核酸药物特别是结合癌细胞和BBB通过与内皮细胞(BBB ECs)转铁蛋白受体1 (TfR1)过表达在他们的表面,从而增加吸收BBB。HFn受到其有限的内部体积和带负电荷的内表面;这些缺点促使需求策略来改造HFn的结构。这项工作中,我们分析了三维(3 d)HFn使用嵌合体软件(1.14 v)结构和发展一个类内部的阳离子HFn变异(HFn + NPs)通过精氨酸突变HFn的腔内表面。强大的静电力量的蛀牙,表现出更高的基因封装比天真HFn功效。候选人HFn2 siRNA有效地交付在遍历BBB和神经胶质瘤细胞达到最高的消声效果HFn + NPs。HFn + NPs通过基因工程方法提供关键洞察未来核酸交付航空公司的发展与BBB-crossing能力。

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