← 返回前沿论文

用于乳腺癌治疗的可注射水凝胶:从肿瘤微环境响应性与主动靶向药物递送到免疫治疗与诊疗一体化

英文原题:Injectable Hydrogels for Breast Cancer Therapy: From Tumor Microenvironment-Responsive and Actively Targeted Drug Delivery to Immunotherapy and Theranostics.

PubMed 2026/08/09(内容时间) Pharmaceutics Q1 · IF 6.9(JCR 2025)

研究概要

乳腺癌治疗仍面临诸多挑战,包括局部复发、全身毒性、肿瘤异质性、耐药和免疫抑制。

中文摘要

乳腺癌治疗仍面临包括局部复发、全身毒性、肿瘤异质性、耐药和免疫抑制在内的挑战。传统全身给药在肿瘤部位提供的暴露有限,并表现出显著毒性。可注射水凝胶结合了微创给药、原位凝胶化、局部滞留和缓释的特性,已成为局部精准药物递送的关键平台。与纳米药物或游离药物相比,水凝胶既能延长药物滞留时间,又能通过调节交联密度、降解速率和响应性化学键实现按需释放。本综述围绕此类系统的材料逻辑展开。首先将可注射水凝胶分为天然、合成、杂化、超分子、纳米复合和自修复系统,比较各自可用的原位凝胶化化学,并将交联密度、网孔尺寸、溶胀、孔隙率、模量和流变学等网络参数与释放动力学和瘤内滞留相关联。当前研究主要沿两个方向推进:一是构建 pH、酶、氧化还原/ROS、缺氧、ATP、葡萄糖或温度响应性水凝胶;二是通过将功能化水凝胶与 CD44、叶酸受体、整合素、EGFR、转铁蛋白受体和 HER2 等靶点整合,或与仿生细胞膜涂层整合,实现主动靶向。在此基础上,水凝胶已被拓展至癌症疫苗、免疫检查点调控、CAR-T/CAR-NK局部递送,以及涉及化疗、光热治疗、光动力治疗、化学动力学治疗、声动力治疗、放射增敏、基因治疗和诊疗一体化的联合治疗。本文进一步考察了不同载荷类别对小分子、天然产物、蛋白质与多肽、核酸、抗体、外泌体及基因编辑工具的约束,并讨论了影像整合型诊疗一体化凝胶,以及机器学习和数字化制造在水凝胶优化中的新兴作用。基于乳腺癌的生物学基础,本文综述了水凝胶在材料设计、微环境响应性释放、靶向策略、免疫调节和联合治疗方面的进展,批判性评价了各策略的局限性,旨在为设计机制明确且可转化的乳腺癌水凝胶递送系统提供参考。

展开英文摘要原文

Breast cancer treatment still faces challenges including local recurrence, systemic toxicity, tumor heterogeneity, drug resistance, and immunosuppression. Conventional systemic administration provides limited exposure at the tumor site and exhibits significant toxicity. Injectable hydrogels, combining the properties of minimally invasive administration, in situ gelation, local retention, and sustained release, have become a key platform for local precision drug delivery. Compared with nanomedicines or free drugs, hydrogels can both prolong drug retention time and achieve on-demand release through the modulation of crosslinking density, degradation rate, and responsive chemical bonds. This review is organized around the material logic of such systems. Injectable hydrogels are first classified into natural, synthetic, hybrid, supramolecular, nanocomposite, and self-healing systems, the in situ gelation chemistries available to each are compared, and network parameters such as crosslinking density, mesh size, swelling, porosity, modulus, and rheology are related to release kinetics and intratumoral retention. Current research is primarily advancing along two directions: one is the construction of pH-, enzyme-, redox/ROS-, hypoxia-, ATP-, glucose-or thermo-responsive hydrogels; the other is achieving active targeting by integrating functionalized hydrogels with targets such as CD44, folate receptor, integrins, EGFR, transferrin receptor, and HER2 or with biomimetic cell-membrane coatings. On this basis, hydrogels have been extended to cancer vaccines, immune checkpoint modulation, local delivery of CAR-T/CAR-NK, as well as combination therapies involving chemotherapy, photothermal therapy, photodynamic therapy, chemodynamic therapy, sonodynamic therapy, radiosensitization, gene therapy, and theranostics. The constraints imposed on hydrogel design by different payload classes, including small molecules, natural products, proteins and peptides, nucleic acids, antibodies, exosomes, and gene-editing machinery, are further examined, and imaging-integrated theranostic gels are discussed together with the emerging role of machine learning and digital fabrication in hydrogel optimization. Based on the biological foundations of breast cancer, this review summarizes advances in the material design, microenvironment-responsive release, targeting strategies, immunomodulation, and combination therapy of hydrogels, critically evaluates the limitations of each strategy, and aims to provide a reference for the design of mechanistically well-defined and translatable hydrogel delivery systems for breast cancer.

论文信息

作者
Jiao Y、Zuo H、Chen J、Zheng S、Tong S、Feng X、Zhao W
单位
Yunnan Key Laboratory of Integrated Traditional Chinese and Western Medicine for Chronic Disease in Prevention and Treatment, Yunnan University of Chinese Medicine, Kunming 650500, China.China
文献类型
综述
期刊
Pharmaceutics2026 Aug 9
原文标识
PubMed 42654096 · DOI 10.3390/pharmaceutics18080979