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盐诱导激酶 3 通过促进 TNF 诱导的 NF-κB 活化保护肿瘤细胞免受细胞毒性 T 细胞攻击

英文原题:Salt-inducible kinase 3 protects tumor cells from cytotoxic T-cell attack by promoting TNF-induced NF-κB activation.

查看英文原题

Salt-inducible kinase 3 protects tumor cells from cytotoxic T-cell attack by promoting TNF-induced NF-κB activation.

PubMed 2022/05/01(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

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研究概要

我们的数据揭示了一种丰富的分子机制,该机制保护肿瘤细胞免受细胞毒性 TC 攻击,并证明对该通路进行药理学抑制是可行的。

研究思路结论见上方概要

癌症免疫治疗策略在临床上取得了前所未有的成果。然而,由于存在大量免疫学障碍,包括肿瘤对细胞毒性T细胞(TC)攻击的内在抵抗机制,许多患者对免疫肿瘤治疗无应答。因此,需要更深入地了解这些机制,以开发成功的免疫疗法。

为了鉴定保护肿瘤细胞免受有效TC介导的细胞毒性作用的新型基因,我们在胰腺癌细胞中进行了基因筛选,这些细胞受到TIL(肿瘤浸润淋巴细胞)和抗原特异性TC的挑战。

筛选揭示了108个保护肿瘤细胞免受TC攻击的潜在基因。其中,盐诱导激酶3(SIK3)是筛选中发现的最强命中之一。在多种使用不同来源肿瘤和TC的体外共培养模型中,对肿瘤细胞中SIK3进行遗传学和药理学抑制均显著增加了TC介导的细胞毒性。一致地,过继转移TIL的TC在体内导致SIK3缺失癌细胞的肿瘤生长抑制。机制分析显示,SIK3使肿瘤细胞对肿瘤激活TC分泌的肿瘤坏死因子(TNF)敏感。SIK3促进核因子kappa B(NF-κB)核转位,并在TNF刺激后抑制caspase-8和caspase-9。染色质可及性和转录组分析显示,SIK3敲低深刻损害了TNF-NF-κB轴下促生存基因的表达。TNF刺激一方面导致NF-κB上游调节因子抑制性-κB激酶和NF-kappa-B抑制剂alpha的SIK3依赖性磷酸化,另一方面导致组蛋白去乙酰化酶4的抑制,从而维持NF-κB激活和核稳定。在大多数胰腺癌中发现了TNF介导的NF-κB激活的SIK3依赖性基因特征,其与细胞毒性TC活性增加和不良预后相关。

展开英文摘要原文

Cancer immunotherapeutic strategies showed unprecedented results in the clinic. However, many patients do not respond to immuno-oncological treatments due to the occurrence of a plethora of immunological obstacles, including tumor intrinsic mechanisms of resistance to cytotoxic T-cell (TC) attack. Thus, a deeper understanding of these mechanisms is needed to develop successful immunotherapies.

To identify novel genes that protect tumor cells from effective TC-mediated cytotoxicity, we performed a genetic screening in pancreatic cancer cells challenged with tumor-infiltrating lymphocytes and antigen-specific TCs.

The screening revealed 108 potential genes that protected tumor cells from TC attack. Among them, salt-inducible kinase 3 (SIK3) was one of the strongest hits identified in the screening. Both genetic and pharmacological inhibitions of SIK3 in tumor cells dramatically increased TC-mediated cytotoxicity in several in vitro coculture models, using different sources of tumor and TCs. Consistently, adoptive TC transfer of TILs led to tumor growth inhibition of SIK3-depleted cancer cells in vivo. Mechanistic analysis revealed that SIK3 rendered tumor cells susceptible to tumor necrosis factor (TNF) secreted by tumor-activated TCs. SIK3 promoted nuclear factor kappa B (NF-κB) nuclear translocation and inhibited caspase-8 and caspase-9 after TNF stimulation. Chromatin accessibility and transcriptome analyses showed that SIK3 knockdown profoundly impaired the expression of prosurvival genes under the TNF-NF-κB axis. TNF stimulation led to SIK3-dependent phosphorylation of the NF-κB upstream regulators inhibitory-κB kinase and NF-kappa-B inhibitor alpha on the one side, and to inhibition of histone deacetylase 4 on the other side, thus sustaining NF-κB activation and nuclear stabilization. A SIK3-dependent gene signature of TNF-mediated NF-κB activation was found in a majority of pancreatic cancers where it correlated with increased cytotoxic TC activity and poor prognosis.

Our data reveal an abundant molecular mechanism that protects tumor cells from cytotoxic TC attack and demonstrate that pharmacological inhibition of this pathway is feasible.

论文信息

作者
Sorrentino A、Menevse AN、Michels T、Volpin V、Durst FC、Sax J、Xydia M、Hussein A
单位
Division of Interventional Immunology, Leibniz Institute for Immunotherapy, Regensburg, Germany Antonio.Sorrentino88@outlook.com beckhove@rcii.de.Germany
文献类型
非美国政府资助研究
期刊
Journal for immunotherapy of cancer2022 May
原文标识
PubMed 35606086 · DOI 10.1136/jitc-2021-004258