一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Doxorubicin induced epigenetic regulation of dendritic cell maturation in association with T cell activation facilitates tumor protective immune response in non-small cell lung cancer (NSCLC).
Doxorubicin induced epigenetic regulation of dendritic cell maturation in association with T cell activation facilitates tumor protective immune response in non-small cell lung cancer (NSCLC).
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从这项研究中我们了解到,非细胞毒性浓度的多柔比星通过依赖 IL-12 的机制增强 DCs 的抗原呈递能力,并在 NSCLC 中引起表观遗传修饰。
NSCLC是主要死亡原因之一,常在晚期才被诊断,且没有替代的治疗方法。DC是专业的抗原呈递细胞,基于DC的免疫疗法因其抗癌特性而备受关注。DC中的表观遗传修饰,包括DNA甲基化和组蛋白修饰,在调节其功能如成熟和活化、先天免疫应答、T细胞致敏、抗原呈递和细胞因子产生方面发挥关键作用。在本研究中,我们研究了Doxorubicin在非细胞毒性浓度下的抗癌特性,该浓度可被外推作为一种表观遗传调节剂用于DC成熟以引发抗肿瘤活性。方法:分离来自正常和NSCLC血液样本的PBMC,并用生长因子处理。用低剂量Doxorubicin使DC成熟,并通过流式细胞术检测DC成熟标志物。进一步进行ELISA,并将低剂量Doxorubicin诱导的DC用LCA(肺癌抗原)脉冲处理,并用CD4+T辅助(Th)细胞致敏以评估细胞毒性。此外,在显微镜下对T:DC结合的表观遗传标志物进行免疫荧光可视化。进行ChIP-qPCR和体外试验,如组蛋白甲基化、DNA甲基化和m6A甲基化,以研究低剂量Dox处理下的表观遗传变化。进行IL-12中和试验,以检查DC对IL-12的依赖性及其在低剂量Dox处理下的效应。随后进一步进行Western Blotting分析,以检测组蛋白和非组蛋白。
低剂量多柔比星诱导DCs的表观遗传学改变,通过生成CTLs在NSCLC中引发抗肿瘤反应,同时伴随抗炎细胞因子细胞外分泌的增加。我们还发现,低剂量多柔比星在DCs被LCA脉冲并以CD4+T辅助细胞致敏时促使其成熟,分泌IFN-γ,这对于通过激活CD8+细胞毒性T淋巴细胞来协调适应性免疫至关重要。此外,IL-12的分泌帮助我们推断,保护性免疫也通过Th1反应被诱导,该反应选择性地触发PKCθ向DC与Th之间的免疫突触转位。进一步,甲基化和乙酰化标记H3K4me3和H3K14Ac分别上调,而STAT5、NFkB、NOTCH1和DNAPKcs的水平下调。DNA和RNA甲基化测定随后证实了低剂量Dox治疗引起的表观遗传学改变。DNA甲基化降低,导致肿瘤抑制基因p53和Th1相关转录因子TBX21的激活。另一方面,在低剂量Dox存在下,RNA甲基化的绝对和相对定量均增加。
NSCLC is one of the leading causes of death and is often diagnosed at late stages with no alternative therapeutic approach. DCs are professional antigen-presenting cells and DC-based immunotherapy has been under the spotlight for its anti-cancer properties. Epigenetic modifications including DNA methylation and histone modification in DCs play a crucial role in regulating their functions such as maturation and activation,innate immune responses, T cell priming, antigen presentation, and cytokine production. In the current study, we investigated the anti-cancer properties of Doxorubicin at a noncytotoxic concentration that could be extrapolated as an epigenetic regulator for DC maturation to elicit anti-tumor activity. METHODOLOGIES: PBMCs from normal and NSCLC blood samples were isolated and treated with growth factors. DCs were matured with low dose Doxorubicin and the DC maturation markers were checked by using flow-cytometry. Further, ELISA was performed and low dose Doxorubicin-induced DCs were pulsed with LCA (Lung Cancer Antigen) and primed with CD4 +T helper (Th) cells for cytotoxicity assessment. Further, epigenetic markers of T: DC conjugation were immunofluorescently visualized under a microscope. ChIP-qPCR and Invitro assays such as histone methylation, DNA methylation, and m6A methylation were performed to study the epigenetic changes under low dose Dox treatment. IL-12 neutralization assay was performed to check for the IL-12 dependency of DCs and their effect under Dox at low dose treatment. This was further followed by a Western Blotting analysis for histone and non-histone proteins.
Low dose Doxorubicin induces epigenetic changes in DCs to elicit an anti-tumor response in NSCLC through the generation of CTLs with a concomitant increase in the extracellular secretions of anti-inflammatory cytokines. We also found that low dosage of Doxorubicin matured DCs when pulsed with LCA and primed with CD4 +T helper cells, secrete IFN-γ which is important in orchestrating adaptive immunity by activating CD8 + cytotoxic T-lymphocytes. Also, the secretions of IL-12 help us infer that protective immunity is also induced via Th1 response which triggered selectively the translocation of PKCθ to immunological synapse in between DC and Th. Further, methylation and acetylation markers H3K4me3 and H3K14Ac respectively upregulated whereas levels of STAT5, NFkB, NOTCH1, and DNAPKcs were downregulated. DNA and RNA methylation assays then lead to confirmations about the epigenetic changes caused by low dose Dox treatment. DNA methylation was reduced which resulted in the activation of tumor suppressor gene p53 and Th1-associated transcription factor TBX21. On the other hand, both absolute and relative RNA methylation quantification increased in the presence of Dox at a low dose.
From this study, we understand that non-cytotoxic concentration of Doxorubicin increases the Ag-presenting ability of DCs via an IL-12-dependent mechanism and causes epigenetic modifications in NSCLC.
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