CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:FLT3L-induced virtual memory CD8 T cells engage the immune system against tumors.
FLT3L-induced virtual memory CD8 T cells engage the immune system against tumors.
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这些发现提供了关键见解,并支持 Alb-FLT3L 作为一种免疫调节剂在初始 CD8 T 细胞预适应中用于癌症免疫治疗的潜力。
既往对 FMS 样酪氨酸激酶 3 配体(FLT3L)的研究主要集中在其从骨髓祖细胞生成树突状细胞(DCs)的潜力上,而对这些细胞如何影响 CD8 T 细胞功能的理解有限。在本研究中,我们进一步探讨了 FLT3L 在体内对 CD8 T 细胞免疫调节能力的作用。
制备了白蛋白偶联的 FLT3L(Alb-FLT3L)并将其用于转化医学目的;在此,它被用于处理初始 C57BL/6 和 OT1 小鼠,以进行 CD8 T 细胞应答分析。采用同基因 B16ova 和 E.G7ova 小鼠模型进行过继性细胞转移,以评估 Alb-FLT3L 预处理 CD8 T 细胞对肿瘤进展的影响。为揭示 Alb-FLT3L 调控的潜在机制,我们对 CD44 high CD8 T 细胞进行了 bulk RNA-seq 分析。使用 STAT1 缺陷小鼠来阐明 Alb-FLT3L 在 T 细胞调控中的功能作用。最后,进行一型干扰素信号传导的抗体阻断以及浆细胞样 DC(pDC)与初始 CD8 T 细胞的体外共培养,以确定 pDC 在介导 CD44 high CD8 T 细胞调控中的作用。
在给予Alb-FLT3L的C57BL/6小鼠中,CD44 high CD8 T细胞增多。这些CD8 T细胞表现出虚拟记忆特征,并具有更强的增殖和效应功能。值得注意的是,将CD44 high naïve CD8 T细胞过继转移至携带B16ova肿瘤的C57BL/6小鼠后,可导致显著的肿瘤消退。对CD44 high naïve CD8 T细胞的RNA-seq分析显示,FLT3L以JAK-STAT1信号通路依赖的方式诱导CD44 high CD8 T细胞,这一结果得到以下发现的支持:与野生型对照小鼠相比,在STAT1缺陷小鼠中FLT3L增强CD8 T细胞增殖的能力下降。此外,抗体阻断一型干扰素信号限制了FLT3L诱导的CD44 high CD8 T细胞的产生,而与来自FLT3L处理小鼠的pDC共培养的naïve CD8 T细胞中CD44表达能够被诱导。这表明pDC在介导FLT3L对CD44 high CD8 T细胞的调控中发挥关键作用。
Previous research in FMS-like tyrosine kinase 3 ligands (FLT3L) has primarily focused on their potential to generate dendritic cells (DCs) from bone marrow progenitors, with a limited understanding of how these cells affect CD8 T cell function. In this study, we further investigated the in vivo role of FLT3L for the immunomodulatory capabilities of CD8 T cells.
Albumin-conjugated FLT3L (Alb-FLT3L) was generated and applied for translational medicine purposes; here it was used to treat naïve C57BL/6 and OT1 mice for CD8 T cell response analysis. Syngeneic B16ova and E.G7ova mouse models were employed for adoptive cell transfer to evaluate the effects of Alb-FLT3L preconditioning of CD8 T cells on tumor progression. To uncover the underlying mechanisms of Alb-FLT3L modulation, we conducted bulk RNA-seq analysis of the CD44 high CD8 T cells. STAT1-deficient mice were used to elucidate the functional roles of Alb-FLT3L in the modulation of T cells. Finally, antibody blockade of type one interferon signaling and in vitro coculture of plasmacytoid DCs (pDCs) with naive CD8 T cells was performed to determine the role of pDCs in mediating regulation of CD44 high CD8 T cells.
CD44 high CD8 T cells were enhanced in C57BL/6 mice administrated with Alb-FLT3L. These CD8 T cells exhibited virtual memory features and had greater proliferative and effective functions. Notably, the adoptive transfer of CD44 high naïve CD8 T cells into C57BL/6 mice with B16ova tumors led to significant tumor regression. RNA-seq analysis of the CD44 high naïve CD8 T cells revealed FLT3L to induce CD44 high CD8 T cells in a JAK-STAT1 signaling pathway-dependent manner, as supported by results indicating a decreased ability of FLT3L to enhance CD8 T cell proliferation in STAT1-deficient mice as compared to wild-type control mice. Moreover, antibody blockade of type one interferon signaling restricted the generation of FLT3L-induced CD44 high CD8 T cells, while CD44 expression was able to be induced in naïve CD8 T cells cocultured with pDCs derived from FLT3L-treated mice. This suggests the crucial role of pDCs in mediating FLT3L regulation of CD44 high CD8 T cells.
These findings provide critical insight and support the therapeutic potential of Alb-FLT3L as an immune modulator in preconditioning of naïve CD8 T cells for cancer immunotherapy.
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