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纳米蓬蓬球制备的外泌体能够实现高特异性的癌症生物标志物检测。

Nano pom-poms prepared exosomes enable highly specific cancer biomarker detection.

机构信息

Department of Chemical and Petroleum Engineering, Bioengineering Program, University of Kansas, Lawrence, KS, 66045, USA.

Clara Biotech Inc., Lawrence, KS, 66047, USA.

出版信息

Commun Biol. 2022 Jul 4;5(1):660. doi: 10.1038/s42003-022-03598-0.

Abstract

Extracellular vesicles (EVs), particularly nano-sized small EV exosomes, are emerging biomarker sources. However, due to heterogeneous populations secreted from diverse cell types, mapping exosome multi-omic molecular information specifically to their pathogenesis origin for cancer biomarker identification is still extraordinarily challenging. Herein, we introduced a novel 3D-structured nanographene immunomagnetic particles (NanoPoms) with unique flower pom-poms morphology and photo-click chemistry for specific marker-defined capture and release of intact exosome. This specific exosome isolation approach leads to the expanded identification of targetable cancer biomarkers with enhanced specificity and sensitivity, as demonstrated by multi-omic exosome analysis of bladder cancer patient tissue fluids using the next generation sequencing of somatic DNA mutations, miRNAs, and the global proteome (Data are available via ProteomeXchange with identifier PXD034454). The NanoPoms prepared exosomes also exhibit distinctive in vivo biodistribution patterns, highlighting the highly viable and integral quality. The developed method is simple and straightforward, which is applicable to nearly all types of biological fluids and amenable for enrichment, scale up, and high-throughput exosome isolation.

摘要

细胞外囊泡 (EVs),特别是纳米级小 EV 外泌体,是新兴的生物标志物来源。然而,由于不同细胞类型分泌的异质群体,将外泌体多组学分子信息具体映射到它们的发病起源以用于癌症生物标志物识别仍然极具挑战性。在此,我们引入了一种新型的 3D 结构纳米石墨烯免疫磁珠 (NanoPoms),具有独特的花状绒球形态和光点击化学,用于特定标记定义的完整外泌体的捕获和释放。这种特定的外泌体分离方法可扩大靶向癌症生物标志物的鉴定范围,提高特异性和灵敏度,如通过使用下一代测序对膀胱癌患者组织液中的体细胞 DNA 突变、miRNAs 和全蛋白质组进行多组学外泌体分析来证明 (数据可通过 ProteomeXchange 标识符 PXD034454 获取)。所制备的 NanoPoms 外泌体还表现出独特的体内分布模式,突出了高度可行和完整的质量。所开发的方法简单直接,适用于几乎所有类型的生物流体,可用于富集、放大和高通量外泌体分离。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2ca/9253007/9448062c7053/42003_2022_3598_Fig1_HTML.jpg

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