Nanoengineering of Exosomal Surfaces for Precision Targeting and Payload Delivery at the Molecular Level.

IF 1.7 4区 医学 Q4 BIOCHEMICAL RESEARCH METHODS
Dilpreet Singh, Satvir Singh, Nitin Tandon
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引用次数: 0

Abstract

Exosomes, nano-sized extracellular vesicles secreted by almost all cell types, have emerged as biologically compatible vehicles for targeted drug delivery, gene therapy, and molecular diagnostics. Their innate ability to traverse biological barriers and deliver diverse cargoes with minimal immunogenicity has catalyzed intense interest in their therapeutic exploitation. However, the intrinsic heterogeneity and limited targeting specificity of native exosomes necessitate advanced engineering strategies to fulfill their clinical potential. This review focuses on the molecular-level nanoengineering of exosomal surfaces to enhance specificity, loading efficiency, and release control of therapeutic payloads. We systematically examine current methodologies, including genetic modification of parental cells, covalent and non-covalent surface conjugation, lipid insertion, click chemistry, and hybrid vesicle fusion. We further detail the quantitative performance of targeting ligands-such as peptides, aptamers, nanobodies, and glycans-in relation to receptor affinity, conjugation efficiency, and biological outcomes. Payload loading techniques, both endogenous and exogenous, are critically analyzed based on loading yield and membrane preservation. Additionally, we highlight disease-specific applications in oncology, neurology, cardiology, and immunotherapy, supported by preclinical and translational case studies. Emerging technologies such as microfluidics, synthetic biology, artificial intelligence-guided modeling, and multi-omics are discussed as integral components of the next generation of precision exosome platforms. Finally, we address key challenges related to scalability, regulatory frameworks, and standardization. This review provides a comprehensive and quantitative framework to guide the design of molecularly engineered exosomes for future translational and clinical success.

外泌体表面的纳米工程在分子水平上精确靶向和有效载荷递送。
外泌体是由几乎所有细胞类型分泌的纳米级细胞外囊泡,已成为靶向药物递送、基因治疗和分子诊断的生物相容性载体。它们天生具有跨越生物屏障和以最小的免疫原性递送多种货物的能力,这促使人们对它们的治疗开发产生了浓厚的兴趣。然而,天然外泌体固有的异质性和有限的靶向特异性需要先进的工程策略来发挥其临床潜力。本文综述了外泌体表面的分子水平纳米工程,以提高治疗有效载荷的特异性、装载效率和释放控制。我们系统地研究了当前的方法,包括亲本细胞的遗传修饰、共价和非共价表面偶联、脂质插入、点击化学和杂交囊泡融合。我们进一步详细介绍了靶向配体的定量性能——如肽、适体、纳米体和聚糖——与受体亲和力、偶联效率和生物学结果的关系。载荷加载技术,内源性和外源性,严格分析基于载荷屈服和膜保存。此外,我们强调在肿瘤学、神经学、心脏病学和免疫治疗方面的疾病特异性应用,并通过临床前和转化案例研究提供支持。新兴技术如微流体、合成生物学、人工智能引导建模和多组学作为下一代精密外泌体平台的组成部分进行了讨论。最后,我们讨论了与可伸缩性、监管框架和标准化相关的关键挑战。这篇综述为指导分子工程外泌体的设计提供了一个全面和定量的框架,以促进未来的转化和临床成功。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Assay and drug development technologies
Assay and drug development technologies 医学-生化研究方法
CiteScore
3.60
自引率
0.00%
发文量
33
审稿时长
>12 weeks
期刊介绍: ASSAY and Drug Development Technologies provides access to novel techniques and robust tools that enable critical advances in early-stage screening. This research published in the Journal leads to important therapeutics and platforms for drug discovery and development. This reputable peer-reviewed journal features original papers application-oriented technology reviews, topical issues on novel and burgeoning areas of research, and reports in methodology and technology application. ASSAY and Drug Development Technologies coverage includes: -Assay design, target development, and high-throughput technologies- Hit to Lead optimization and medicinal chemistry through preclinical candidate selection- Lab automation, sample management, bioinformatics, data mining, virtual screening, and data analysis- Approaches to assays configured for gene families, inherited, and infectious diseases- Assays and strategies for adapting model organisms to drug discovery- The use of stem cells as models of disease- Translation of phenotypic outputs to target identification- Exploration and mechanistic studies of the technical basis for assay and screening artifacts
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