PO.CH01.04 · 化学
钆基纳米复合物作为三阴性乳腺癌的诊疗剂:协同放射增敏、免疫调节和图像引导治疗
Gadolinium-based nanocomposite as a theranostic agent for triple-negative breast cancer: Synergistic radiosensitization, immune modulation, and image-guided therapy
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
目的:三阴性乳腺癌(TNBC)是一种侵袭性恶性肿瘤,治疗选择有限且常出现放疗(RT)抗性。本研究开发了一种新型钆基纳米复合物(GdB),具有双重功能——放射增敏和免疫调节——以建立针对TNBC精准RT的诊断-治疗一体化方法。
方法:对GdB纳米颗粒进行了结构表征(TEM、XRD、EELS)和功能表征(过氧化物酶样活性)。使用CCK-8、克隆形成实验、凋亡(流式细胞术、JC-1染色)、ROS生成和DNA损伤(gamma-H2AX免疫荧光和Western blot)在体外评估了细胞毒性和放射增敏。使用血液生化、组织病理学和荧光成像在体内评估了生物相容性。通过测量免疫原性细胞死亡标志物(CRT、ATP、HMGB1释放)并通过转录组分析和qPCR识别激活的通路,验证了免疫激活的机制。在体外(共培养、细胞因子分泌)和体内追踪了免疫应答。使用流式细胞术和单细胞RNA测序全面分析了免疫细胞浸润、细胞因子水平(ELISA)以及原发和远处肿瘤的免疫格局。
结果:GdB形成了均匀的球形结晶纳米颗粒,表现出优异的过氧化物酶样活性。在机制上,GdB通过促进DNA损伤和凋亡显著增强了放射敏感性。GdB诱导ICD并激活cGAS-STING通路,导致I型干扰素产生,为免疫增强提供了坚实基础。GdB在实验剂量下于体内表现出优异的生物相容性。在功能上,GdB作为MRI对比剂,增强肿瘤对比以实现精确的GTV勾画,并便于实时监测肿瘤对RT的应答。在治疗上,GdB与RT联用通过将肿瘤微环境从免疫抑制性的"冷"状态重编程为免疫激活的"热"状态,显著抑制了肿瘤生长。这种转变以关键效应免疫细胞浸润增加和抗肿瘤细胞因子水平升高为标志。至关重要的是,联合治疗产生了全身性抗肿瘤免疫应答,从而抑制了远处转移。
结论:GdB是一个用于TNBC精准放疗的高效诊疗平台,因为其放射增敏和cGAS-STING通路介导的免疫调节双重功能显著增强了RT疗效和全身抗肿瘤应答。此外,其作为MRI对比剂的功能将精确诊断与增强的治疗结局相整合,支持其在图像引导放疗中强大的临床转化潜力。
查看英文原文 English abstract
Purpose: Triple-negative breast cancer (TNBC) is an aggressive malignancy with limited therapeutic options and frequent radiotherapy (RT) resistance. This study developed a novel gadolinium-based nanocomposite (GdB) with dual functions-radiosensitization and immune modulation-to establish a diagnostic-therapeutic integrated approach for precision RT in TNBC.
Methods: GdB nanoparticles were characterized structurally (TEM, XRD, EELS) and functionally (peroxidase-like activity). Cytotoxicity and radiosensitization were assessed in vitro using CCK-8, colony formation assays, apoptosis (flow cytometry, JC-1 staining), ROS generation, and DNA damage (gamma-H2AX immunofluorescence and Western blot). Biocompatibility was evaluated in vivo using blood biochemistry, histopathology, and fluorescence imaging. The mechanism of immune activation was verified by measuring immunogenic cell death markers (CRT, ATP, HMGB1 release) and identifying activated pathways through transcriptomic analysis and qPCR. Immune responses were tracked in vitro (co-culture, cytokine secretion) and in vivo. Immune cell infiltration, cytokine levels (ELISA), and the immune landscape of primary and distant tumors were comprehensively analyzed using flow cytometry and single-cell RNA sequencing.
Results: GdB formed uniform spherical crystalline nanoparticles exhibiting excellent peroxidase-like activity. Mechanistically, GdB significantly enhanced radiosensitivity by promoting DNA damage and apoptosis. GdB induces ICD and activates the cGAS-STING pathway, leading to Type I interferon production, providing a robust basis for immune enhancement. GdB demonstrated excellent biocompatibility in vivo at experimental doses. Functionally, GdB served as an MRI contrast agent, enhancing tumor contrast for precise GTV delineation and facilitating real-time monitoring of tumor response to RT. Therapeutically, the combination of GdB with RT markedly inhibited tumor growth by reprogramming the tumor microenvironment from an immunosuppressive "cold" state to an immune-activated "hot" state. This conversion was marked by increased infiltration of key effector immune cells and elevated levels of anti-tumor cytokines. Crucially, the combination treatment generated a systemic anti-tumor immune response, resulting in the inhibition of distant metastases.
Conclusion: GdB is a highly effective theranostic platform for precision radiotherapy in TNBC, as its dual functions of radiosensitization and cGAS-STING pathway-mediated immune modulation substantially enhance RT efficacy and systemic anti-tumor response. Furthermore, its function as an MRI contrast agent integrates precise diagnosis with enhanced therapeutic outcomes, supporting its strong potential for clinical translation in image-guided radiotherapy.
利益披露 Disclosure
Y. Wang, None..
Z. Yuan, None.