基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:High-throughput engineered tumor organoids reveal ROCK signaling as an immunotherapeutic target in triple-negative breast cancer.
High-throughput engineered tumor organoids reveal ROCK signaling as an immunotherapeutic target in triple-negative breast cancer.
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三阴性乳腺癌(TNBC)因肿瘤微环境高度免疫抑制而仍对免疫治疗耐药。本研究建立了液滴工程化类器官(DEO)平台,可保留内源性TIL(肿瘤浸润淋巴细胞),并支持快速评估免疫完整模型中的药物。优化ROCK通路调节发现,早期撤除Y-27632可维持TIL存活,而戊酸(PA)激活ROCK则显著增强DEO内CD8阳性T细胞浸润和细胞毒性。在4T1荷瘤小鼠中,PA单药或PA/Y-27632交替治疗均显著降低肿瘤体积,且未检测到全身毒性。为验证转化相关性,研究者将PA用于患者来源类器官,观察到T细胞活化和数量增加,类器官内凋亡细胞比例也升高。整合转录组和蛋白分析显示,PA诱导细胞溶解程序,并伴随ROCK依赖性效应通路。临床数据集分析进一步发现,在基底样免疫抑制(BLIS)亚型TNBC中,ROCK活化特征与总生存期改善相关。
综上,研究结果凸显交替调节ROCK通路,尤其是激活ROCK,是促使TNBC转变为免疫应答状态的有前景策略。
Triple-negative breast cancer (TNBC) remains resistant to immunotherapy because of its profoundly immunosuppressive tumor microenvironment.
Here, we establish a droplet-engineered organoid (DEO) platform that preserves endogenous TILs and supports rapid, immunocompetent drug evaluation. Optimizing ROCK pathway modulation reveals that early withdrawal of Y-27632 maintains TIL viability, whereas ROCK activation by pentanoic acid (PA) substantially enhances CD8 + T cell infiltration and cytotoxicity within DEOs. In 4T1 tumor-bearing mice, PA monotherapy or alternating PA/Y-27632 treatment significantly reduces tumor volume without detectable systemic toxicity.
To validate translational relevance, we applied PA to patient-derived organoids, which exhibited increased T cell activation and abundance, along with a higher proportion of apoptotic cells within the organoid. Integrated transcriptomic and protein analyses reveal that PA induces a cytolytic program coupled to ROCK-dependent effector pathways.
Clinical dataset analyses further associate ROCK activation signatures with improved overall survival in basal-like immune-suppressed (BLIS) subtype TNBC. Collectively, our findings highlight that alternating ROCK pathway modulation, in particular ROCK activation, is a promising strategy to convert TNBC into an immune-responsive state.
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