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:Soluble Uric Acid Drives CD8+ T-cell Exhaustion by Inducing KSR1-Mediated MAPK Hyperactivation.
Soluble Uric Acid Drives CD8+ T-cell Exhaustion by Inducing KSR1-Mediated MAPK Hyperactivation.
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T细胞在肿瘤微环境中的耗竭会削弱抗肿瘤免疫并限制免疫治疗疗效。进一步明确这种功能障碍状态的代谢触发因素,可能为规避免疫抑制提供治疗靶点。在本研究中,我们发现可溶性尿酸(UA)——一种在癌症患者中经常升高的丰富嘌呤代谢物——是驱动结直肠癌中CD8+ T细胞耗竭和免疫逃逸的代谢检查点。在高尿酸小鼠模型中,UA升高在免疫功能正常宿主中加速了肿瘤进展,但在T细胞缺陷宿主中则不会,其机制是通过功能性耗竭肿瘤浸润CD8+ T细胞。在机制上,UA直接结合激酶支架蛋白Ras激酶抑制因子1(KSR1),并过度激活MEK-ERK信号通路,导致慢性MAPK刺激,从而上调CD8+ T细胞上的抑制性受体,包括PD-1和Tim-3,并削弱其细胞毒性功能。通过Tim-3敲除或Ksr1敲低对该UA-KSR1-MAPK轴进行遗传学破坏,可恢复T细胞效应活性和肿瘤控制。值得注意的是,使用临床黄嘌呤氧化酶抑制剂非布司他进行药物性UA耗竭,可重新激活CD8+ T细胞,减缓肿瘤生长,并在体内显著增强化疗和过继性T细胞治疗的疗效。这些发现确立了可溶性UA作为一种代谢免疫检查点,其会颠覆抗肿瘤T细胞免疫。靶向UA代谢可能提供一种克服免疫抵抗并提高癌症免疫治疗疗效的策略。意义:一种常见的代谢副产物——可溶性尿酸,可作为驱动T细胞耗竭的免疫检查点,从而重新定义全身代谢如何塑造癌症进展。
UNLABELLED: T-cell exhaustion in the tumor microenvironment undermines antitumor immunity and limits immunotherapy efficacy.
Further defining the metabolic triggers of this dysfunctional state could provide therapeutic targets for circumventing immunosuppression. In this study, we identified soluble uric acid (UA)-an abundant purine metabolite frequently elevated in patients with cancer-as a metabolic checkpoint that drives the exhaustion of CD8+ T cells and immune evasion in colorectal cancer.
In hyperuricemic mouse models, elevated UA accelerated tumor progression in immunocompetent hosts, but not in T cell-deficient ones, by functionally exhausting tumor-infiltrating CD8+ T cells.
Mechanistically, UA directly bound the kinase scaffold kinase suppressor of Ras 1 (KSR1) and hyperactivated MEK-ERK signaling, leading to chronic MAPK stimulation that upregulated inhibitory receptors, including PD-1 and Tim-3, on CD8+ T cells and blunted their cytotoxic function. Genetic disruption of this UA-KSR1-MAPK axis via Tim-3 knockout or Ksr1 knockdown restored T-cell effector activity and tumor control.
Notably, pharmacologic UA depletion with the clinical xanthine oxidase inhibitor febuxostat reinvigorated CD8+ T cells, slowing tumor growth and markedly enhancing the efficacy of both chemotherapy and adoptive T-cell therapy in vivo.
These findings establish soluble UA as a metabolic immune checkpoint that subverts antitumor T-cell immunity. Targeting UA metabolism may offer a strategy to overcome immune resistance and improve the efficacy of cancer immunotherapies. SIGNIFICANCE: A common metabolic byproduct, soluble uric acid, can act as an immune checkpoint that drives T-cell exhaustion, redefining how systemic metabolism shapes cancer progression.
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