TP53 缺失通过上调 NF-κB-IFN-β-MHC-Ia 信号促进骨肉瘤对 NK 细胞的抵抗
TP53 Loss Elevates NF-κB-IFN-β-MHC-Ia Signaling to Promote NK Cell Resistance in Osteosarcoma.
TP53 失活是骨肉瘤(OS)发生中的关键事件,也是其侵袭性的基础,但其在肿瘤-免疫相互作用中的作用仍知之甚少。
英文原题:Engineered mechanosensitive MSCs enable synthetic radiotheranostic targeting across tumor types.
Engineered mechanosensitive MSCs enable synthetic radiotheranostic targeting across tumor types.
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基于放射性药物的显像和靶向放射性核素治疗常受限于肿瘤中分子靶点的异质性或缺失。
基于放射性药物的成像和靶向放射性核素治疗,常受肿瘤分子靶点异质性或缺失的限制。本研究提出一种基质硬度响应型间充质干细胞(MSC)辅助接力肿瘤靶向平台(SMART),可将基质硬度转化为可编程的分子入口,用于放射性诊疗一体化。经工程化改造的MSC能够感知肿瘤微环境中升高的机械硬度,并诱导局部表达合成生物标志物,从而使放射性药物靶向不再依赖肿瘤内源性靶点是否存在。作为概念验证,SMART驱动的前列腺特异性膜抗原(PSMA)表达,可通过⁶⁸Ga-PSMA-617正电子发射断层显像(PET)实现灵敏的肿瘤检测,并利用¹⁷⁷Lu-AB-PSMA-617在多种肿瘤模型中实现有效治疗;与传统的¹⁸F-氟脱氧葡萄糖PET相比,该方法灵敏度更高,靶外摄取更少。该平台易于适配其他合成靶点,也可采用诱导多能干细胞(iPSC)衍生的MSC。SMART将肿瘤普遍存在的物理特征转化为可用于诊疗的分子特征,从而使精准放射性诊疗一体化的应用范围超越天然生物标志物。
Radiopharmaceutical-based imaging and targeted radionuclide therapy are often limited by heterogeneous or absent molecular targets in tumors. Here, we present a stiffness-responsive mesenchymal stem cell (MSC)-assisted relayed tumor-targeting (SMART) platform that converts matrix stiffness into a programmable molecular entry point for radiotheranostics. Engineered MSCs sense elevated mechanical stiffness within the tumor microenvironment and induce localized expression of synthetic biomarkers, thereby enabling radiopharmaceutical targeting independent of endogenous target availability. As a proof of concept, SMART-driven expression of prostate-specific membrane antigen (PSMA) enables sensitive tumor detection by 68 Ga-PSMA-617 positron emission tomography (PET) and effective treatment with 177 Lu-AB-PSMA-617 across multiple tumor models, with improved sensitivity and reduced off-target uptake compared with conventional 18 F-fluorodeoxyglucose PET. This platform is readily adaptable to alternative synthetic targets and induced pluripotent stem cell (iPSC)-derived MSCs. By translating a universal physical feature of tumors into an actionable molecular signature, SMART expands the scope of precision radiotheranostics beyond native biomarkers.
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