CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Molecular mechanisms underlying the modulation of T-cell proliferation and cytotoxicity by immobilized CCL21 and ICAM1.
Molecular mechanisms underlying the modulation of T-cell proliferation and cytotoxicity by immobilized CCL21 and ICAM1.
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这些数据表明,细胞增殖与细胞毒性呈负相关,且二者之间的相互作用受初始激活方式的差异性调控。SIN 刺激在两种激活模式下均显著增强细胞扩增,同时在刺激后的特定时间点展现出高存活率和细胞毒性效力,提示其可有效增强过继性肿瘤免疫治疗。
近年来,采用表达嵌合抗原受体的工程化T细胞或自体TIL(肿瘤浸润淋巴细胞)的过继性癌症免疫治疗,已成为多种类型癌症的主要治疗手段。然而,尽管过继性癌症免疫治疗具有变革性潜力,该领域仍面临重大挑战,表现为效应CD8+ T细胞在扩增后其细胞毒性能力明显下降。为应对这些挑战,我们开发了一种离体“合成免疫微环境”(SIN),由固定化的CCL21和ICAM1组成,二者协同诱导抗原特异性CD8+ T细胞的高效扩增,同时保持甚至增强其细胞毒性效力。
为探索基于CCL21+ICAM1的SIN调控抗原激活和CD3/CD28激活的效应CD8+ T细胞增殖与细胞毒性效力之间相互作用的分子机制,我们通过流式细胞术对特定分化标志物进行了综合分析,并结合了基因表达谱分析。
第3天,SIN诱导的转录组效应对树突状细胞(DC)/卵清蛋白(OVA)活化的细胞和抗CD3/CD28活化的细胞基本相似。细胞增殖增加,细胞表现出高杀伤能力。第4天及以后,增殖/细胞毒性表型变得完全“活化特异性”;DC/OVA活化的细胞失去了细胞毒性活性,而SIN处理又将其挽救。随着孵育时间延长,细胞毒性活性进一步下降,到第7天时,SIN已无法挽救。抗CD3/CD28磁珠活化后进行SIN刺激,诱导增殖表型大幅增加,同时短暂抑制其细胞毒性2-3天,并在第7天完全恢复其杀伤活性。基于转录组学和多光谱成像分析,鉴定了SIN效应的潜在分子调控通路。
Adoptive cancer immunotherapy, using engineered T-cells, expressing chimeric antigen receptor or autologous tumor infiltrating lymphocytes became, in recent years, a major therapeutic approach for diverse types of cancer. However, despite the transformative potential of adoptive cancer immunotherapy, this field still faces major challenges, manifested by the apparent decline of the cytotoxic capacity of effector CD8 + T cells upon their expansion. To address these challenges, we have developed an ex vivo "synthetic immune niche" (SIN), composed of immobilized CCL21 and ICAM1, which synergistically induce an efficient expansion of antigen-specific CD8 + T cells while retaining, and even enhancing their cytotoxic potency.
To explore the molecular mechanisms through which a CCL21+ICAM1-based SIN modulates the interplay between the proliferation and cytotoxic potency of antigen-activated and CD3/CD28-activated effector CD8 + T cells, we performed integrated analysis of specific differentiation markers via flow cytometry, together with gene expression profiling.
On day 3, the transcriptomic effect induced by the SIN was largely similar for both dendritic cell (DC)/ovalbumin (OVA)-activated and anti-CD3/CD28-activated cells. Cell proliferation increased and the cells exhibited high killing capacity. On day 4 and on, the proliferation/cytotoxicity phenotypes became radically "activation-specific"; The DC/OVA-activated cells lost their cytotoxic activity, which, in turn, was rescued by the SIN treatment. On longer incubation, the cytotoxic activity further declined, and on day7, could not be rescued by the SIN. SIN stimulation following activation with anti-CD3/CD28 beads induced a major increase in the proliferative phenotype while transiently suppressing their cytotoxicity for 2-3 days and fully regaining their killing activity on day 7. Potential molecular regulatory pathways of the SIN effects were identified, based on transcriptomic and multispectral imaging profiling.
These data indicate that cell proliferation and cytotoxicity are negatively correlated, and the interplay between them is differentially regulated by the mode of initial activation. The SIN stimulation greatly enhances the cell expansion, following both activation modes, while displaying high survival and cytotoxic potency at specific time points following stimulation, suggesting that it could effectively reinforce adoptive cancer immunotherapy.
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