CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Comparative evaluation of chemotherapy and CAR-T cell therapy in genetically engineered self-sustaining primary pancreatic cancer organoids.
Comparative evaluation of chemotherapy and CAR-T cell therapy in genetically engineered self-sustaining primary pancreatic cancer organoids.
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这种条件性转基因方法降低了培养复杂度,同时保留了 PDAC 类器官的关键表型和功能特征,为化疗和免疫治疗反应的探索性评估提供了一个可行的概念验证平台。
患者来源类器官(PDOs)在胰腺导管腺癌(PDAC)中的更广泛研究和转化应用仍受限于复杂且昂贵的培养要求。在此,我们开发了一种条件性转基因策略,用于生成可自我维持的原代 PDAC 类器官,并探索了其用于治疗评估的可行性。
我们建立了一个概念验证性PDAC类器官生物样本库(n = 10)。利用多西环素诱导型慢病毒Tet-On系统,我们对类器官进行工程化改造,使其表达必需细胞因子RSPO1和WNT3A,从而能够在补充因子缺乏的培养基中生长。随后,我们在转基因类器官中开展了FOLFIRINOX模拟化疗和EPHA2靶向CAR-T 细胞的探索性评估,并结合组织病理学和临床病理学进行联合分析。
Doxycycline 诱导的 RSPO1/WNT3A 表达挽救了由外源性细胞因子耗竭导致的生长和传代受损。在简化培养基中,转基因类器官保留了患者特异性的组织学和分子特征。不同患者对 FOLFIRINOX 模拟治疗和 EPHA2 CAR-T 细胞的敏感性存在差异,并且在一小部分患者中,体外反应与相应的临床病程显示出探索性一致性。
Broader research and translational use of patient-derived organoids (PDOs) in pancreatic ductal adenocarcinoma (PDAC) remain constrained by complex and costly culture requirements. Here, we developed a conditional transgenic strategy to generate self-sustaining primary PDAC organoids and explored its feasibility for therapeutic evaluation.
We established a proof-of-concept PDAC organoid biobank (n = 10). Using a doxycycline-inducible lentiviral Tet-On system, we engineered organoids to express essential cytokines RSPO1 and WNT3A, enabling growth in supplement-depleted media. We then performed exploratory assessments of FOLFIRINOX-mimetic chemotherapy and EPHA2-targeted CAR-T cells in transgenic organoids, together with histopathological and clinicopathological co-analysis.
Doxycycline-induced RSPO1/WNT3A expression rescued the impaired growth and passaging caused by exogenous cytokine depletion. In simplified media, transgenic organoids retained patient-specific histological and molecular features. Sensitivity to FOLFIRINOX-mimetic treatment and EPHA2 CAR-T cells varied among different patients, and the in vitro responses showed exploratory concordance with the corresponding clinical courses in a small subset.
This conditional transgenic approach reduces culture complexity while preserving key phenotypic and functional characteristics of PDAC organoids, providing a feasible proof-of-concept platform for exploratory evaluation of chemotherapy and immunotherapy responses.
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