Key Laboratory of Artificial Micro- and Nano-Structures of Ministry of Education, School of Physics and Technology, Wuhan University, Wuhan, 430072, China; Institute of Biomedical Health Technology and Engineering, Shenzhen Bay Laboratory, Shenzhen, 518132, China.
Department of Molecular Pathology, The Second Affiliated Hospital of Zhengzhou University, Zhengzhou, 450014, China; Breast Center, Department of General Surgery, Nanfang Hospital, Southern Medical University, Guangzhou, 510515, China.
Biosens Bioelectron. 2022 Oct 1;213:114425. doi: 10.1016/j.bios.2022.114425. Epub 2022 Jun 4.
The isolation and analysis of scarce circulating tumor cells (CTCs) with immunomagnetic nanoparticles (IMNs) have shown promising outcomes in noninvasive cancer diagnosis. However, the IMNs adsorb nonspecific proteins after entering into biofluids and the formed protein coronas cover surface targeting ligands, limiting the detection efficiency of IMNs. In addition, the interaction between surface targeting ligands and white blood cells (WBCs) significantly limits the purity of CTCs isolated by IMNs. Furthermore, the interfacial collision of nanoparticles and cells has negative effects on the viability of isolated CTCs. All of these limitations synthetically restrict the isolation and analysis of rare CTCs for early diagnosis and precision medicine. Here, we proposed that surface functionalization of IMNs with neutrophil membranes can simultaneously reduce nonspecific protein adsorption, enhance the interaction with CTCs, reduce the distraction from WBCs, and improve the viability of isolated CTCs. In spiked blood samples, our neutrophil membrane-coated IMNs (Neu-IMNs) exhibited a superior separation efficiency from 41.36% to 96.82% and an improved purity from 40.25% to 90.68% when compared to bare IMNs. Additionally, we successfully isolated CTCs in 19 out of total 20 blood samples from breast cancer patients using Neu-IMNs and further confirmed the feasibility of the isolated CTCs for downstream cell sequencing. Our work provides a new perspective on engineered IMNs for efficient isolation and analysis of CTCs, paving the way for early noninvasive diagnosis of cancer.
利用免疫磁珠(IMN)分离和分析稀有循环肿瘤细胞(CTC)在无创癌症诊断方面显示出了很有前景的结果。然而,IMN 进入生物流体后会吸附非特异性蛋白质,形成的蛋白质冠覆盖了表面靶向配体,从而限制了 IMN 的检测效率。此外,表面靶向配体与白细胞(WBC)之间的相互作用极大地限制了 IMN 分离的 CTC 的纯度。此外,纳米颗粒与细胞之间的界面碰撞对分离的 CTC 的活力有负面影响。所有这些限制综合限制了稀有 CTC 的分离和分析,不利于早期诊断和精准医疗。在这里,我们提出通过中性粒细胞膜对 IMN 进行表面功能化,可同时减少非特异性蛋白质吸附,增强与 CTC 的相互作用,减少来自 WBC 的干扰,并提高分离的 CTC 的活力。在添加血液样本中,与裸 IMN 相比,我们的中性粒细胞膜包覆的 IMN(Neu-IMN)的分离效率从 41.36%提高到 96.82%,纯度从 40.25%提高到 90.68%。此外,我们使用 Neu-IMN 成功地从 20 名乳腺癌患者的总共 19 份血液样本中分离出了 CTC,并进一步证实了分离出的 CTC 可用于下游细胞测序,具有可行性。我们的工作为高效分离和分析 CTC 的工程化 IMN 提供了新的视角,为癌症的早期无创诊断铺平了道路。