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多价球形适配体工程化巨噬细胞:X 射线驱动的表型转化用于肿瘤免疫治疗

英文原题:Polyvalent spherical aptamer engineered macrophages: X-ray-actuated phenotypic transformation for tumor immunotherapy.

查看英文原题

Polyvalent spherical aptamer engineered macrophages: X-ray-actuated phenotypic transformation for tumor immunotherapy.

PubMed 2021/09/22(内容时间) Chem Sci Q1 · IF 8.1(JCR 2025)

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中文摘要

时空可控激活的免疫细胞因其潜在的高特异性和低副作用,在肿瘤免疫治疗中具有广阔前景。在此,我们通过巨噬细胞工程化开发了一种X射线诱导表型转化(X-PT)策略,用于安全高效的肿瘤免疫治疗。无需复杂的基因工程,我们通过代谢聚糖标记与生物正交点击反应相结合,利用基于AS1411适配体的多价球形适配体(PSA)对M0型巨噬细胞的细胞膜进行化学工程化修饰。得益于高密度AS1411适配体优越的特异性、亲和力和多价结合效应,工程化巨噬细胞能够轻松识别并黏附于肿瘤细胞。

进一步进行X射线照射后,Au基PSA产生的活性氧(ROS)可通过激活核因子κB信号通路,高效地将原位积累的巨噬细胞从生物相容性M0表型转化为抗肿瘤M1表型,从而实现肿瘤特异性杀伤。体外和体内实验证实了工程化巨噬细胞的高肿瘤识别能力和X射线诱导的极化效应。与天然巨噬细胞相比,我们的工程化巨噬细胞即使将辐射剂量降低三倍,仍能显著抑制小鼠肿瘤生长。我们相信这一X-PT策略将为临床免疫细胞治疗开辟新途径。

展开英文摘要原文

Spatiotemporally activatable immune cells are promising for tumor immunotherapy owing to their potential high specificity and low side effects.

Herein, we developed an X-ray-induced phenotypic transformation (X-PT) strategy through macrophage engineering for safe and efficient tumor immunotherapy. Without complex genetic engineering, the cell membranes of M0-type macrophages were chemically engineered with AS1411 aptamer-based polyvalent spherical aptamer (PSA) via the combination of metabolic glycan labelling and bioorthogonal click reaction. Owing to the superior specificity, affinity and polyvalent binding effects of the high-density AS1411 aptamers, the engineered macrophages could easily recognize and adhere to tumor cells.

With further X-ray irradiation, reactive oxygen species (ROS) generated by the Au-based PSA could efficiently transform the accumulated macrophages in situ from biocompatible M0 into antitumoral M1 phenotype via activating the nuclear factor κB signaling pathway, thereby achieving tumor-specific killing.

In vitro and in vivo experiments confirmed the high tumor recognition and X-ray-induced polarization effect of the engineered macrophages. Compared to natural macrophages, our engineered macrophages significantly inhibited tumor growth in mice even if the radiation dose was reduced by three-fold.

We believe this X-PT strategy will open a new avenue for clinical immune cell-based therapy.

论文信息

作者
Chen Y、Gao P、Pan W、Shi M、Liu S、Li N、Tang B
单位
College of Chemistry, Chemical Engineering and Materials Science, Key Laboratory of Molecular and Nano Probes, Ministry of Education, Collaborative Innovation Center of Functionalized Probes for Chemical Imaging in Universities of Shandong, Institute of Molecular and Nano Science, Shandong Normal University Jinan 250014 P. R. China lina@sdnu.edu.cn tangb@sdnu.edu.cn.China
期刊
Chemical science2021 Oct 27
原文标识
PubMed 34760167 · DOI 10.1039/d1sc03997k