将非病毒纳米粒子基因递送到中枢神经系统,用于神经疾病和脑癌症应用。

IF 6.9 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Joanna Yang, Kathryn M Luly, Jordan J Green
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引用次数: 0

摘要

非病毒纳米颗粒已成为基因治疗应用中病毒载体的一种有吸引力的替代品,利用了一系列基于脂质的、聚合物和无机材料。这些材料可以封装或功能化以结合核酸并保护它们免受降解。为了有效地引起基因表达的变化,纳米颗粒载体需要在细胞内经历一系列步骤,从与细胞膜相互作用以促进细胞摄取到内体逃逸和核酸释放。调整纳米颗粒的物理化学性质,如大小、电荷和靶向配体,可以提高细胞摄取并最终提高基因递送。在中枢神经系统(CNS;即神经系统疾病、脑癌)中的应用面临着携带基因的纳米颗粒超越的进一步细胞外屏障,其中最重要的是血脑屏障(BBB)。克服这些细胞外挑战将纳米颗粒输送到中枢神经系统的方法包括全身、侧脑室、鞘内和鼻内给药。这篇综述描述并比较了用于非病毒纳米粒子介导的中枢神经系统基因治疗的不同生物材料,并探讨了在克服纳米粒子介导递送至大脑的障碍方面的挑战以及最近的临床前和临床进展。本文分类为:治疗方法和药物发现>神经疾病的纳米医学治疗方法和药品发现>新兴技术生物学的纳米技术方法>生物学中的纳米系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nonviral nanoparticle gene delivery into the CNS for neurological disorders and brain cancer applications.

Nonviral nanoparticles have emerged as an attractive alternative to viral vectors for gene therapy applications, utilizing a range of lipid-based, polymeric, and inorganic materials. These materials can either encapsulate or be functionalized to bind nucleic acids and protect them from degradation. To effectively elicit changes to gene expression, the nanoparticle carrier needs to undergo a series of steps intracellularly, from interacting with the cellular membrane to facilitate cellular uptake to endosomal escape and nucleic acid release. Adjusting physiochemical properties of the nanoparticles, such as size, charge, and targeting ligands, can improve cellular uptake and ultimately gene delivery. Applications in the central nervous system (CNS; i.e., neurological diseases, brain cancers) face further extracellular barriers for a gene-carrying nanoparticle to surpass, with the most significant being the blood-brain barrier (BBB). Approaches to overcome these extracellular challenges to deliver nanoparticles into the CNS include systemic, intracerebroventricular, intrathecal, and intranasal administration. This review describes and compares different biomaterials for nonviral nanoparticle-mediated gene therapy to the CNS and explores challenges and recent preclinical and clinical developments in overcoming barriers to nanoparticle-mediated delivery to the brain. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Neurological Disease Therapeutic Approaches and Drug Discovery > Emerging Technologies Nanotechnology Approaches to Biology > Nanoscale Systems in Biology.

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来源期刊
Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology
Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology NANOSCIENCE & NANOTECHNOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
16.60
自引率
2.30%
发文量
93
期刊介绍: Nanotechnology stands as one of the pivotal scientific domains of the twenty-first century, recognized universally for its transformative potential. Within the biomedical realm, nanotechnology finds crucial applications in nanobiotechnology and nanomedicine, highlighted as one of seven emerging research areas under the NIH Roadmap for Medical Research. The advancement of this field hinges upon collaborative efforts across diverse disciplines, including clinicians, biomedical engineers, materials scientists, applied physicists, and toxicologists. Recognizing the imperative for a high-caliber interdisciplinary review platform, WIREs Nanomedicine and Nanobiotechnology emerges to fulfill this critical need. Our topical coverage spans a wide spectrum, encompassing areas such as toxicology and regulatory issues, implantable materials and surgical technologies, diagnostic tools, nanotechnology approaches to biology, therapeutic approaches and drug discovery, and biology-inspired nanomaterials. Join us in exploring the frontiers of nanotechnology and its profound impact on biomedical research and healthcare.
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