Yang Ningli, Zhao Chuanping, Kong Linlin, Zhang Baoying, Han Chunguang, Zhang Yangjun, Qian Xiaohong, Qin Weijie
National Center for Protein Sciences Beijing, State Key Laboratory of Proteomics, Beijing Proteome Research Center, Beijing Institute of Lifeomics, Beijing 102206, P. R. China.
College of Chemistry and Materials Science, Hebei University, Baoding 071002, P. R. China.
Anal Chem. 2023 Aug 15;95(32):11934-11942. doi: 10.1021/acs.analchem.3c01421. Epub 2023 Aug 1.
Small extracellular vesicles (sEVs) are increasingly reported to play important roles in numerous physiological and pathological processes. Cellular uptake of sEVs is of great significance for functional regulation in recipient cells. Although various sEV quantification, labeling, and tracking methods have been reported, it is still highly challenging to quantify the absolute amount of cellular uptake of sEVs and correlate this information with phenotypic variations in the recipient cell. Therefore, we developed a novel strategy using lanthanide element labeling and inductively coupled plasma-mass spectrometry (ICP-MS) for the absolute and sensitive quantification of sEVs. This strategy utilizes the chelation interaction between Eu and the phosphate groups on the sEV membrane for specific labeling. sEVs internalized by cells can then be quantified by ICP-MS using a previously established linear relationship between the europium content and the particle numbers. High Eu labeling efficiency and stability were demonstrated by various evaluations, and no structural or functional alterations in the sEVs were discovered after Eu labeling. Application of this method revealed that 4020 ± 171 sEV particles/cell were internalized by HeLa cells at 37 °C and 61% uptake inhibition at 4 °C. Further investigation led to the quantitative differential analysis of sEV cellular uptake under the treatment of several chemical endocytosis inhibitors. A 23% strong inhibition indicated that HeLa cells uptake sEVs mainly through the macropinocytosis pathway. This facile labeling and absolute quantification strategy of sEVs with ppb-level high sensitivity is expected to become a potential tool for studying the functions of sEVs in intracellular communication and cargo transportation.
越来越多的报道表明,小细胞外囊泡(sEVs)在众多生理和病理过程中发挥着重要作用。sEVs的细胞摄取对于受体细胞的功能调节具有重要意义。尽管已经报道了各种sEVs定量、标记和追踪方法,但要定量sEVs细胞摄取的绝对量并将此信息与受体细胞的表型变化相关联,仍然极具挑战性。因此,我们开发了一种使用镧系元素标记和电感耦合等离子体质谱(ICP-MS)对sEVs进行绝对和灵敏定量的新策略。该策略利用铕(Eu)与sEV膜上磷酸基团之间的螯合相互作用进行特异性标记。然后,可以使用先前建立的铕含量与颗粒数之间的线性关系,通过ICP-MS对细胞内化的sEVs进行定量。各种评估证明了高铕标记效率和稳定性,并且在铕标记后未发现sEVs的结构或功能改变。该方法的应用表明,在37°C时,HeLa细胞内化4020±171个sEV颗粒/细胞,在4°C时摄取抑制率为61%。进一步的研究导致了在几种化学内吞抑制剂处理下sEV细胞摄取的定量差异分析。23%的强抑制表明HeLa细胞主要通过巨胞饮途径摄取sEVs。这种具有ppb级高灵敏度的简便sEVs标记和绝对定量策略有望成为研究sEVs在细胞内通讯和货物运输中功能的潜在工具。