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肿瘤微环境响应型谷胱甘肽响应三维纤维网络用于高效捕获和温和释放循环肿瘤细胞。

Tumor Microenvironment-Inspired Glutathione-Responsive Three-Dimensional Fibrous Network for Efficient Trapping and Gentle Release of Circulating Tumor Cells.

机构信息

Institute of Biomedical Engineering, College of Medicine, Southwest Jiaotong University, Chengdu 610031, P. R. China.

Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2023 May 24;15(20):24013-24022. doi: 10.1021/acsami.3c00307. Epub 2023 May 13.

Abstract

Detection of circulating tumor cells (CTCs) is important for early cancer diagnosis, prediction of postoperative recurrence, and individualized treatment. However, it is still challenging to achieve efficient capture and gentle release of CTCs from the complex peripheral blood due to their rarity and fragility. Herein, inspired by the three-dimensional (3D) network structure and high glutathione (GSH) level of the tumor microenvironment (TME), a 3D stereo (3D-G@FTP) fibrous network is developed by combining the liquid-assisted electrospinning method, gas foaming technique, and metal-polyphenol coordination interactions to achieve efficient trapping and gentle release of CTCs. Compared with the traditional 2D@FTP fibrous scaffold, the 3D-G@FTP fibrous network could achieve higher capture efficiency (90.4% vs 78.5%) toward cancer cells in a shorter time (30 min vs 90 min). This platform showed superior capture performance toward heterogeneous cancer cells (HepG2, HCT116, HeLa, and A549) in an epithelial cell adhesion molecule (EpCAM)-independent manner. In addition, the captured cells with high cell viability (>90.0%) could be gently released under biologically friendly GSH stimulus. More importantly, the 3D-G@FTP fibrous network could sensitively detect 4-19 CTCs from six kinds of cancer patients' blood samples. We expect this TME-inspired 3D stereo fibrous network integrating efficient trapping, broad-spectrum recognition, and gentle release will promote the development of biomimetic devices for rare cell analysis.

摘要

循环肿瘤细胞(CTC)的检测对于癌症的早期诊断、术后复发的预测和个体化治疗非常重要。然而,由于其稀有性和脆弱性,从复杂的外周血中高效捕获和温和释放 CTC 仍然具有挑战性。在此,受肿瘤微环境(TME)的三维(3D)网络结构和高谷胱甘肽(GSH)水平的启发,通过结合液辅助静电纺丝法、气体发泡技术和金属-多酚配位相互作用,开发了一种 3D 立体(3D-G@FTP)纤维网络,以实现 CTC 的高效捕获和温和释放。与传统的 2D@FTP 纤维支架相比,3D-G@FTP 纤维网络能够在更短的时间(30 分钟对 90 分钟)内更高效地捕获癌细胞(90.4%对 78.5%)。该平台表现出对上皮细胞黏附分子(EpCAM)非依赖性异质癌细胞(HepG2、HCT116、HeLa 和 A549)的优越捕获性能。此外,在生物友好的 GSH 刺激下,捕获的细胞具有高细胞活力(>90.0%),可以被温和释放。更重要的是,3D-G@FTP 纤维网络可以从六种癌症患者的血液样本中敏感地检测到 4-19 个 CTCs。我们期望这种受 TME 启发的 3D 立体纤维网络,集成高效捕获、广谱识别和温和释放,将促进仿生设备用于稀有细胞分析的发展。

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