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用于可控肿瘤类器官培养和树突状细胞疫苗接种的动态二硒键水凝胶

英文原题:Dynamic Diselenide Hydrogels for Controlled Tumor Organoid Culture and Dendritic Cell Vaccination.

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Dynamic Diselenide Hydrogels for Controlled Tumor Organoid Culture and Dendritic Cell Vaccination.

PubMed 2024/12/04(内容时间) ACS Appl Mater Interfaces Q1 · IF 7.8(JCR 2025)

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中文摘要

动态水凝胶正逐渐成为构建模拟细胞微环境的组织样环境的先进材料。我们引入了一种具有光响应特性的二硒键交联水凝胶系统,专为精确控制肿瘤类器官生长和光引发自由基失活而设计,尤其适用于树突状细胞(DC)疫苗。二硒键交换可实现应力松弛和水凝胶重塑,而硒自由基(Se•)的复合与淬灭可降低交联密度,从而导致可控降解。我们展示了一种从2D到3D的生长策略,即肿瘤细胞接种在水凝胶表面,扩增,并在3D水凝胶内逐渐形成球形类器官。与2D培养的细胞相比,这些肿瘤类器官表现出显著更高的耐药性。高强度光照可增强二硒键交换,诱导水凝胶降解、肿瘤细胞死亡以及功能性抗原的释放。该系统可作为肿瘤类器官培养和抗原释放的动态平台,为体外肿瘤建模和免疫学研究提供了显著先进的方法。我们的研究结果确立了二硒键交联水凝胶作为精密细胞工程通用材料的地位,在癌症研究及其他领域具有广泛应用前景。

展开英文摘要原文

Dynamic hydrogels are emerging as advanced materials for engineering tissue-like environments that mimic cellular microenvironments.

We introduce a diselenide-cross-linked hydrogel system with light-responsive properties, designed for precise control of tumor organoid growth and light-initiated radical inactivation, particularly for dendritic cell (DC) vaccines. Diselenide exchange enables stress relaxation and hydrogel remodeling, while recombination and quenching of seleno radicals (Se • ) reduce cross-linking density, leading to controlled degradation.

We demonstrate a 2D to 3D growth strategy, where tumor cells inoculate on the hydrogel surface, expand, and gradually form spherical organoids within the 3D hydrogel. These tumor organoids show significantly higher drug resistance compared to 2D-cultured cells.

High-density light irradiation enhances diselenide exchange, inducing hydrogel degradation, tumor cell death, and release of functional antigens. This system serves as a dynamic platform for tumor organoid culture and antigen release, offering significantly advanced approaches for in vitro tumor modeling and immunological research.

Our findings position diselenide-cross-linked hydrogels as versatile materials for precision cellular engineering, with broad applications in cancer research and beyond.

论文信息

作者
Han Y、Liu C、Yin S、Cui J、Sun Y、Xue B、Jiang C、Gu X
单位
Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid State Microstructure, Key Laboratory of Intelligent Optical Sensing and Manipulation, Ministry of Education, Department of Physics, Nanjing University, Nanjing, Jiangsu 210093, China.China
文献类型
非美国政府资助研究
期刊
ACS applied materials & interfaces2024 Dec 18
原文标识
PubMed 39631374 · DOI 10.1021/acsami.4c18728