RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Sensitizing tumors to anti-PD-1 therapy by promoting NK and CD8+ T cells via pharmacological activation of FOXO3.
Sensitizing tumors to anti-PD-1 therapy by promoting NK and CD8+ T cells via pharmacological activation of FOXO3.
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我们表明,SN-38 或二甲双胍可通过激活 FOXO3 抑制 c-Myc 和 STAT3,从而增强 TME 中的抗肿瘤免疫。这些结果可能为改善患者对肿瘤整体免疫治疗的应答提供新见解。
通过阻断程序性死亡-1(PD-1)或其配体(程序性死亡配体1(PD-L1))来刺激抗肿瘤免疫是一种有前景的抗肿瘤疗法。然而,众多患者对PD-1/PD-L1阻断反应不佳。对免疫检查点阻断(ICB)的无反应性可给难治性肿瘤患者的治疗选择带来重大挑战。目前临床尚缺乏新的治疗方法来减轻患者对ICB的无反应性。在本研究中,我们探讨了低剂量抗肿瘤药物SN-38或二甲双胍在使无反应性肿瘤对ICB治疗产生应答方面的疗效和作用。
我们评估了在不同肿瘤患者中PD-L1与FOXO3表达之间以及PD-L1与c-Myc或STAT3表达之间显著的病理学关系。我们在同系肿瘤系统中确定了低剂量SN-38或二甲双胍在使无应答肿瘤对抗PD-1治疗产生应答方面的疗效。我们阐明了SN-38和抗PD-1治疗介导自然杀伤(NK)或CD8+ T细胞浸润肿瘤并增强抗肿瘤免疫的新治疗机制。
我们发现,在卵巢癌、乳腺癌和肝细胞癌患者中,PD-L1蛋白水平与FOXO3蛋白水平呈负相关。低剂量SN-38或二甲双胍可消除PD-L1蛋白表达,提高FOXO3蛋白水平,并显著提高同系小鼠肿瘤模型中的动物存活率。SN-38或二甲双胍通过促使NK或CD8+ T细胞浸润肿瘤微环境(TME)并分泌干扰素-γ和颗粒酶B杀伤肿瘤,使对抗PD-1治疗无应答的肿瘤变得敏感。SN-38抑制了控制PD-L1表达的c-Myc和STAT3蛋白水平。FOXO3对SN-38介导的PD-L1抑制至关重要。在所述肿瘤患者中,PD-L1的表达与c-Myc或STAT3的表达密切相关。
Stimulating antitumor immunity by blocking programmed death-1 (PD-1) or its ligand (programmed death-ligand 1 (PD-L1) is a promising antitumor therapy. However, numerous patients respond poorly to PD-1/PD-L1 blockade. Unresponsiveness to immune-checkpoint blockade (ICB) can cast significant challenges to the therapeutic options for patients with hard-to-treat tumors. There is an unmet clinical need to establish new therapeutic approaches for mitigating ICB unresponsiveness in patients. In this study, we investigated the efficacy and role of low-dose antineoplastic agent SN-38 or metformin in sensitizing unresponsive tumors to respond to ICB therapy.
We assessed the significant pathological relationships between PD-L1 and FOXO3 expression and between PD-L1 and c-Myc or STAT3 expression in patients with various tumors. We determined the efficacy of low-dose SN-38 or metformin in sensitizing unresponsive tumors to respond to anti-PD-1 therapy in a syngeneic tumor system. We deciphered novel therapeutic mechanisms underlying the SN-38 and anti-PD-1 therapy-mediated engagement of natural killer (NK) or CD8+ T cells to infiltrate tumors and boost antitumor immunity.
We showed that PD-L1 protein level was inversely associated with FOXO3 protein level in patients with ovarian, breast, and hepatocellular tumors. Low-dose SN-38 or metformin abrogated PD-L1 protein expression, promoted FOXO3 protein level, and significantly increased the animal survival rate in syngeneic mouse tumor models. SN-38 or metformin sensitized unresponsive tumors responding to anti-PD-1 therapy by engaging NK or CD8+ T cells to infiltrate the tumor microenvironment (TME) and secret interferon-γ and granzyme B to kill tumors. SN-38 suppressed the levels of c-Myc and STAT3 proteins, which controlled PD-L1 expression. FOXO3 was essential for SN38-mediated PD-L1 suppression. The expression of PD-L1 was compellingly linked to that of c-Myc or STAT3 in patients with the indicated tumors.
We show that SN-38 or metformin can boost antitumor immunity in the TME by inhibiting c-Myc and STAT3 through FOXO3 activation. These results may provide novel insight into ameliorating patient response to overarching immunotherapy for tumors.
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