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:ARID1A mutations protect follicular lymphoma from FAS-dependent immune surveillance by reducing RUNX3/ETS1-driven FAS-expression.
ARID1A mutations protect follicular lymphoma from FAS-dependent immune surveillance by reducing RUNX3/ETS1-driven FAS-expression.
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细胞死亡受体 FAS 及其配体 (FASLG) 在生发中心 (GC) 反应期间 B 细胞的选择中发挥关键作用。通过 FAS 未能清除潜在有害的 B 细胞可导致淋巴增殖和 B 细胞恶性肿瘤的发生。经典型滤泡性淋巴瘤 (FL) 是一种原型 GC 来源的 B 细胞恶性肿瘤,其特征是 t(14;18)(q32;q21)IGH::BCL2 易位和抗凋亡 BCL2 过表达。其他改变被证明具有临床相关性,包括 ARID1A 突变。ARID1A 是调节 DNA 可及性(“开放性”)的 SWI/SNF 核小体重塑复合物的一部分。
然而,ARID1A 突变如何促进 FL 发病机制仍不清楚。我们分析了初诊时晚期疾病患者的 151 份 FL 活检样本,发现 ARID1A 突变反复出现且主要为破坏性突变,总体频率为 18%。
此外,我们观察到 ARID1A 突变型 FL 在 FL 肿瘤细胞群体中显示出显著较低的 FAS 蛋白表达。在 BCL2 易位淋巴瘤细胞中进行的功能实验表明,ARID1A 直接参与 FAS 的调控,ARID1A 缺失导致 FAS 蛋白和基因表达降低。
然而,ARID1A 缺失并未影响 FAS 启动子开放性。相反,我们鉴定并通过实验验证了一个先前未知的由 RUNX3 和 ETS1 组成的共转录复合物,其调控 FAS 表达,而 ARID1A 缺失导致 RUNX3 启动子开放性和基因表达降低。ARID1A缺失导致的FAS水平降低使淋巴瘤细胞对可溶性及T细胞膜锚定的FASLG诱导的凋亡均产生抵抗,并在功能实验中显著削弱了CAR-T 细胞的杀伤作用。
总之,我们鉴定出一种在功能和临床上均具有相关性的机制,说明FL细胞如何逃逸FAS依赖性免疫监视,这也可能影响包括CAR-T 细胞在内的T细胞疗法的疗效。
The cell death receptor FAS and its ligand (FASLG) play crucial roles in the selection of B cells during the germinal center (GC) reaction. Failure to eliminate potentially harmful B cells via FAS can lead to lymphoproliferation and the development of B cell malignancies.
The classic form of follicular lymphoma (FL) is a prototypic GC-derived B cell malignancy, characterized by the t(14;18)(q32;q21)IGH::BCL2 translocation and overexpression of antiapoptotic BCL2. Additional alterations were shown to be clinically relevant, including mutations in ARID1A. ARID1A is part of the SWI/SNF nucleosome remodeling complex that regulates DNA accessibility ("openness").
However, the mechanism how ARID1A mutations contribute to FL pathogenesis remains unclear.
We analyzed 151 FL biopsies of patients with advanced-stage disease at initial diagnosis and found that ARID1A mutations were recurrent and mainly disruptive, with an overall frequency of 18%.
Additionally, we observed that ARID1A mutant FL showed significantly lower FAS protein expression in the FL tumor cell population. Functional experiments in BCL2-translocated lymphoma cells demonstrated that ARID1A is directly involved in the regulation of FAS, and ARID1A loss leads to decreased FAS protein and gene expression.
However, ARID1A loss did not affect FAS promotor openness. Instead, we identified and experimentally validated a previously unknown co-transcriptional complex consisting of RUNX3 and ETS1 that regulates FAS expression, and ARID1A loss leads to reduced RUNX3 promotor openness and gene expression.
The reduced FAS levels induced by ARID1A loss rendered lymphoma cells resistant to both soluble and T cell membrane-anchored FASLG-induced apoptosis, and significantly diminished CAR T cell killing in functional experiments. In summary, we have identified a functionally and clinically relevant mechanism how FL cells can escape FAS-dependent immune surveillance, which may also impact the efficacy of T cell-based therapies, including CAR T cells.
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