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实体瘤治疗中靶向癌症相关成纤维细胞的纳米药物:从治疗耐药机制到精准基质调控

英文原题:Cancer-Associated Fibroblast-Targeted Nanomedicine in Solid Tumor Therapy: From Mechanisms of Therapeutic Resistance to Precision Stromal Modulation.

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Cancer-Associated Fibroblast-Targeted Nanomedicine in Solid Tumor Therapy: From Mechanisms of Therapeutic Resistance to Precision Stromal Modulation.

PubMed 2026/07/07(内容时间) Int J Nanomedicine Q1 · IF 8.7(JCR 2025)

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中文摘要

实体瘤仍然难以治疗,因为其治疗耐药性不仅由恶性细胞异质性塑造,还由基质屏障塑造,这些屏障阻止治疗药物和免疫细胞有效到达并清除肿瘤细胞。在这些基质成分中,癌症相关成纤维细胞(CAFs)是肿瘤微环境中最为丰富且功能最具影响力的细胞群体之一。通过细胞外基质重塑、旁分泌信号传导、免疫调节和代谢串扰,CAFs深刻影响实体瘤的治疗反应和预后。作为核心基质调控者,CAFs决定了抗肿瘤治疗能否实现有效的肿瘤抑制。这种核心调控作用使CAFs成为实体瘤中合理且日益重要的治疗靶点。

然而,CAF靶向治疗因CAF群体的显著异质性和可塑性而变得复杂。不同的CAF亚群可能对肿瘤进展和治疗反应产生不同甚至相反的影响。

因此,有效的CAF靶向治疗应超越非特异性CAF清除,转而聚焦于精准基质调控。纳米医学为强化CAF导向治疗提供了有力策略,因为纳米材料可以被工程化设计以匹配富含CAF的肿瘤基质的生物学和空间特征。通过调节尺寸、电荷、形状、孔隙率、表面配体、仿生涂层和刺激响应释放,纳米载体可以增强基质蓄积、结合CAF相关靶点,并将CAF生物学转化为可操作的治疗选择性。在本综述中,我们总结了实体瘤中CAFs的生物学起源、激活机制、亚型异质性、双重功能及生物标志物全景,并系统讨论了CAFs如何通过物理、生化、代谢和免疫屏障驱动治疗耐药。随后,我们重点介绍了当前靶向CAF的纳米医学策略,包括CAF选择性递送、细胞外基质重塑、CAF重编程、免疫微环境调控,以及与化疗、放疗、光热/光动力治疗、免疫检查点阻断和过继细胞治疗的联合应用。

最后,我们讨论了关键的转化挑战,包括靶点特异性、深部基质穿透、长期安全性、生物标志物指导的患者分层、可扩展制造以及AI辅助的纳米载体优化。

总体而言,靶向CAF的纳米医学为将肿瘤基质从治疗屏障转变为可调控的治疗界面提供了一条有前景的途径,从而提高实体瘤治疗的精准性和疗效。

展开英文摘要原文

Solid tumors remain difficult to treat because their therapeutic resistance is shaped not only by malignant-cell heterogeneity but also by stromal barriers that prevent therapeutic agents and immune cells from effectively reaching and eliminating tumor cells. Among these stromal components, cancer-associated fibroblasts (CAFs) are among the most abundant and functionally influential cell populations in the tumor microenvironment.

Through extracellular matrix remodeling, paracrine signaling, immune regulation, and metabolic crosstalk, CAFs profoundly influence therapeutic response and prognosis in solid tumors. As central stromal regulators, CAFs determine whether antitumor therapies can achieve effective tumor inhibition. This central regulatory role makes CAFs rational and increasingly important therapeutic targets in solid tumors.

However, CAF-targeted therapy is complicated by the pronounced heterogeneity and plasticity of CAF populations. Distinct CAF subsets may exert divergent, or even opposing, effects on tumor progression and therapeutic response.

Therefore, effective CAF-targeted therapy should move beyond nonspecific CAF depletion and instead focus on precise stromal modulation. Nanomedicine provides a powerful strategy to strengthen CAF-directed therapy because nanomaterials can be engineered to match the biological and spatial features of CAF-rich tumor stroma.

By tuning size, charge, shape, porosity, surface ligands, biomimetic coatings, and stimulus-responsive release, nanocarriers can enhance stromal accumulation, bind CAF-associated targets, and convert CAF biology into actionable therapeutic selectivity. In this review, we summarize the biological origins, activation mechanisms, subtype heterogeneity, dual functions, and biomarker landscape of CAFs in solid tumors, and systematically discuss how CAFs drive therapeutic resistance through physical, biochemical, metabolic, and immune barriers.

We then highlight current CAF-targeted nanomedicine strategies, including CAF-selective delivery, extracellular matrix remodeling, CAF reprogramming, immune microenvironment regulation, and combination with chemotherapy, radiotherapy, photothermal/photodynamic therapy, immune checkpoint blockade, and adoptive cell therapy.

Finally, we discuss key translational challenges, including target specificity, deep stromal penetration, long-term safety, biomarker-guided patient stratification, scalable manufacturing, and AI-assisted nanocarrier optimization.

Overall, CAF-targeted nanomedicine offers a promising route to transform the tumor stroma from a barrier to therapy into a modifiable therapeutic interface, thereby improving the precision and efficacy of solid tumor treatment.

论文信息

作者
Wang R、Zhang Z、Du J、Chen J、Teng Y、Wang Q、Wu Z、Yang T
单位
The First Affiliated Hospital of Chengdu Medical College, Chengdu, 610550, People's Republic of China.China
文献类型
综述
期刊
International journal of nanomedicine2026
原文标识
PubMed 42437015 · DOI 10.2147/IJN.S603425