• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

一种用于细胞外囊泡分离和纯化的磁珠介导的选择性吸附策略。

A magnetic bead-mediated selective adsorption strategy for extracellular vesicle separation and purification.

作者信息

Fang Xiaoxia, Chen Cang, Liu Bing, Ma Zhijie, Hu Fenglin, Li Haiyan, Gu Hongchen, Xu Hong

机构信息

School of Biomedical Engineering /Med-X Research Institute, Shanghai Jiaotong University, Shanghai, PR China.

School of Biomedical Engineering /Med-X Research Institute, Shanghai Jiaotong University, Shanghai, PR China.

出版信息

Acta Biomater. 2021 Apr 1;124:336-347. doi: 10.1016/j.actbio.2021.02.004. Epub 2021 Feb 10.

DOI:10.1016/j.actbio.2021.02.004
PMID:33578055
Abstract

Extracellular vesicles (EVs) are membrane-encapsulated particles with critical biomedical functions, including mediating intercellular communication, assisting tumor metastasis, and carrying protein and microRNA biomarkers. The downstream applications of EVs are greatly influenced by the quality of the isolated EVs. However, almost none of the separation methods can simultaneously achieve both high yield and high purity of the isolated EVs, thus making the isolation of EVs an essential challenge in EV research. Here, we developed a magnetic bead-mediated selective adsorption strategy (MagExo) for easy-to-operate EV isolation. Benefited from the presence of an adsorption window between EVs and proteins under the effect of a hydrophilic polymer, EVs tend to adsorb on the surface of magnetic beads selectively and can be separated from biological fluids with high purity by simple magnetic separation. The proposed method was used for EV isolation from plasma and cell culture media (CCM), with two times higher yield and comparable purity of the harvested EVs to that obtained by ultracentrifugation (UC). Downstream applications in proteomics analysis showed 86.6% (plasma) and 86.5% (CCM) of the analyzed proteins were matched with the ExoCarta database, which indicates MagExo indeed enriches EVs efficiently. Furthermore, we found the target RNA amount of the isolated EVs by MagExo were almost dozens and hundred times higher than the gold standard DG-UC and ultracentrifugation (UC) methods, respectively. All the results show that MagExo is a reliable, easy, and efficient approach to harvest EVs for a wide variety of downstream applications with minimized sample usage. STATEMENT OF SIGNIFICANCE: Extracellular vesicles (EVs) are presently attracting increasing interest among clinical and scientific researchers. Although the downstream applications of EVs are recognized to be greatly affected by the quality of the isolated EVs, almost none of the separation methods can simultaneously achieve high yield and high purity of the isolated EVs; this makes the isolation of EVs an essential challenge in EV research. In the present work, we proposed a simple and easy-to-operate method (MagExo) for the separation and purification of EVs based on the phenomenon that EVs can be selectively adsorbed on the surface of magnetic microspheres in the presence of a hydrophilic polymer. The performance of MagExo was comparable to or even better than that of gold standard methods and commercial kits, with two times higher yield and comparable purity of the harvested EVs to that achieved with ultracentrifugation (UC); this could meet the requirements of various EV-associated downstream applications. In addition, MagExo can be easily automated by commercial liquid workstations, thus significantly improving the isolation throughput and paving a new way in clinical diagnosis and treatment.

摘要

细胞外囊泡(EVs)是具有关键生物医学功能的膜包裹颗粒,包括介导细胞间通讯、辅助肿瘤转移以及携带蛋白质和微小RNA生物标志物。EVs的下游应用受到分离得到的EVs质量的极大影响。然而,几乎没有一种分离方法能够同时实现分离得到的EVs的高产率和高纯度,因此EVs的分离成为EV研究中的一项关键挑战。在此,我们开发了一种磁珠介导的选择性吸附策略(MagExo)用于易于操作的EV分离。得益于亲水性聚合物作用下EVs与蛋白质之间存在吸附窗口,EVs倾向于选择性吸附在磁珠表面,并可通过简单的磁分离从生物流体中高纯度分离出来。所提出的方法用于从血浆和细胞培养基(CCM)中分离EVs,收获的EVs产量比超速离心(UC)法高两倍,纯度相当。蛋白质组学分析的下游应用表明,86.6%(血浆)和86.5%(CCM)的分析蛋白质与ExoCarta数据库匹配,这表明MagExo确实能有效地富集EVs。此外,我们发现通过MagExo分离得到的EVs的目标RNA量分别比金标准密度梯度超速离心(DG-UC)法和超速离心(UC)法高出近几十倍和上百倍。所有结果表明,MagExo是一种可靠、简便且高效的方法,能够以最少的样品用量收获EVs用于各种下游应用。重要性声明:细胞外囊泡(EVs)目前在临床和科研人员中引起了越来越多的关注。尽管人们认识到EVs的下游应用受到分离得到的EVs质量的极大影响,但几乎没有一种分离方法能够同时实现分离得到的EVs的高产率和高纯度;这使得EVs的分离成为EV研究中的一项关键挑战。在本工作中,我们基于在亲水性聚合物存在下EVs可选择性吸附在磁性微球表面这一现象,提出了一种简单且易于操作的EVs分离和纯化方法(MagExo)。MagExo的性能与金标准方法和商业试剂盒相当甚至更好,收获的EVs产量比超速离心(UC)法高两倍,纯度相当;这能够满足各种与EV相关的下游应用的要求。此外,MagExo可通过商业液体工作站轻松实现自动化,从而显著提高分离通量,并为临床诊断和治疗开辟了一条新途径。

相似文献

1
A magnetic bead-mediated selective adsorption strategy for extracellular vesicle separation and purification.一种用于细胞外囊泡分离和纯化的磁珠介导的选择性吸附策略。
Acta Biomater. 2021 Apr 1;124:336-347. doi: 10.1016/j.actbio.2021.02.004. Epub 2021 Feb 10.
2
An Isolation System to Collect High Quality and Purity Extracellular Vesicles from Serum.一种从血清中收集高质量和高纯度细胞外囊泡的分离系统。
Int J Nanomedicine. 2021 Sep 29;16:6681-6692. doi: 10.2147/IJN.S328325. eCollection 2021.
3
Two-step magnetic bead-based (2MBB) techniques for immunocapture of extracellular vesicles and quantification of microRNAs for cardiovascular diseases: A pilot study.基于两步磁珠的(2MBB)技术用于免疫捕获细胞外囊泡和定量检测心血管疾病 microRNAs:一项初步研究。
PLoS One. 2020 Feb 26;15(2):e0229610. doi: 10.1371/journal.pone.0229610. eCollection 2020.
4
Improving the Purity of Extracellular Vesicles by Removal of Lipoproteins from Size Exclusion Chromatography- and Ultracentrifugation-Processed Samples Using Glycosaminoglycan-Functionalized Magnetic Beads.使用糖胺聚糖功能化的磁性珠从分子筛层析和超速离心处理的样品中去除脂蛋白来提高细胞外囊泡的纯度。
ACS Appl Mater Interfaces. 2024 Aug 28;16(34):44386-44398. doi: 10.1021/acsami.4c03869. Epub 2024 Aug 16.
5
Separation of high-purity plasma extracellular vesicles for investigating proteomic signatures in diabetic retinopathy.分离高纯度血浆细胞外囊泡以研究糖尿病视网膜病变中的蛋白质组学特征。
J Chromatogr A. 2024 Mar 15;1718:464700. doi: 10.1016/j.chroma.2024.464700. Epub 2024 Feb 3.
6
Isolation of High-Purity Extracellular Vesicles by the Combination of Iodixanol Density Gradient Ultracentrifugation and Bind-Elute Chromatography From Blood Plasma.通过碘克沙醇密度梯度超速离心和结合洗脱色谱法从血浆中分离高纯度细胞外囊泡。
Front Physiol. 2018 Oct 23;9:1479. doi: 10.3389/fphys.2018.01479. eCollection 2018.
7
Acidification effects on isolation of extracellular vesicles from bovine milk.酸化对牛初乳中外泌体分离的影响。
PLoS One. 2019 Sep 16;14(9):e0222613. doi: 10.1371/journal.pone.0222613. eCollection 2019.
8
Quality and efficiency assessment of six extracellular vesicle isolation methods by nano-flow cytometry.通过纳米流式细胞术对六种细胞外囊泡分离方法的质量和效率评估
J Extracell Vesicles. 2019 Nov 29;9(1):1697028. doi: 10.1080/20013078.2019.1697028. eCollection 2020.
9
Modern isolation and separation techniques for extracellular vesicles.现代细胞外囊泡的分离与提取技术。
J Chromatogr A. 2021 Jan 11;1636:461773. doi: 10.1016/j.chroma.2020.461773. Epub 2020 Dec 3.
10
An ultracentrifugation - hollow-fiber flow field-flow fractionation orthogonal approach for the purification and mapping of extracellular vesicle subtypes.一种用于细胞外囊泡亚型纯化和图谱分析的超速离心-中空纤维流场-流分级正交方法。
J Chromatogr A. 2021 Feb 8;1638:461861. doi: 10.1016/j.chroma.2020.461861. Epub 2020 Dec 29.

引用本文的文献

1
Advances in Extracellular-Vesicles-Based Diagnostic and Therapeutic Approaches for Ocular Diseases.基于细胞外囊泡的眼部疾病诊断和治疗方法的研究进展。
ACS Nano. 2024 Aug 27;18(34):22793-22828. doi: 10.1021/acsnano.4c08486. Epub 2024 Aug 14.
2
Bacteria extracellular vesicle as nanopharmaceuticals for versatile biomedical potential.细菌细胞外囊泡作为具有多种生物医学潜力的纳米药物。
Nano Converg. 2024 Jul 11;11(1):28. doi: 10.1186/s40580-024-00434-5.
3
Therapeutics of the future: Navigating the pitfalls of extracellular vesicles research from an osteoarthritis perspective.
未来的治疗策略:从骨关节炎的角度来看待细胞外囊泡研究的陷阱。
J Extracell Vesicles. 2024 Jul;13(7):e12435. doi: 10.1002/jev2.12435.
4
Insights into optimizing exosome therapies for acute skin wound healing and other tissue repair.深入了解优化外泌体疗法在急性皮肤伤口愈合和其他组织修复中的应用。
Front Med. 2024 Apr;18(2):258-284. doi: 10.1007/s11684-023-1031-9. Epub 2024 Jan 13.
5
Dynamic Monitoring of Intracellular Tacrolimus and Mycophenolic Acid Therapy in Renal Transplant Recipients Using Magnetic Bead Extraction Combined with LC-MS/MS.使用磁珠提取结合液相色谱-串联质谱法对肾移植受者细胞内他克莫司和霉酚酸治疗进行动态监测
Pharmaceutics. 2023 Sep 14;15(9):2318. doi: 10.3390/pharmaceutics15092318.
6
Biological function of Extracellular Vesicles (EVs): a review of the field.细胞外囊泡(EVs)的生物学功能:综述。
Mol Biol Rep. 2023 Oct;50(10):8639-8651. doi: 10.1007/s11033-023-08624-w. Epub 2023 Aug 3.
7
Progress in Isolation and Molecular Profiling of Small Extracellular Vesicles via Bead-Assisted Platforms.基于微球辅助平台的小型细胞外囊泡的分离和分子特征分析的研究进展。
Biosensors (Basel). 2023 Jun 28;13(7):688. doi: 10.3390/bios13070688.
8
Current and prospective strategies for advancing the targeted delivery of CRISPR/Cas system via extracellular vesicles.当前和未来推进通过细胞外囊泡靶向递送 CRISPR/Cas 系统的策略。
J Nanobiotechnology. 2023 Jun 8;21(1):184. doi: 10.1186/s12951-023-01952-w.
9
A survey to evaluate parameters governing the selection and application of extracellular vesicle isolation methods.一项旨在评估细胞外囊泡分离方法选择与应用相关参数的调查。
J Tissue Eng. 2023 Mar 8;14:20417314231155114. doi: 10.1177/20417314231155114. eCollection 2023 Jan-Dec.
10
A new integrated method for tissue extracellular vesicle enrichment and proteome profiling.一种用于组织细胞外囊泡富集和蛋白质组分析的新型综合方法。
RSC Adv. 2022 Nov 22;12(51):33409-33418. doi: 10.1039/d2ra06185f. eCollection 2022 Nov 15.