下一代肿瘤不可知靶点即将出现
Next-generation tumor-agnostic targets on the horizon.
肿瘤不可知药物开发将肿瘤学重新聚焦于共享的分子依赖性而非组织来源,从而能够针对跨肿瘤的罕见可操作驱动因素进行高效开发。
英文原题:Combined MEK and STAT3 Inhibition Uncovers Stromal Plasticity by Enriching for Cancer-Associated Fibroblasts With Mesenchymal Stem Cell-Like Features to Overcome Immunotherapy Resistance in Pancreatic Cancer.
MEKi+STAT3i联合治疗可减轻基质炎症,并富集具有间充质干细胞样特性的CAF表型,从而克服PDAC中的免疫治疗耐药。
我们已经证明,相互激活的大鼠肉瘤(RAS)/丝裂原活化蛋白激酶/细胞外信号调节激酶(MEK)和Janus激酶/信号转导和转录激活因子3(STAT3)通路介导胰腺导管腺癌(PDAC)的治疗耐药,而联合MEK和STAT3抑制(MEKi+STAT3i)可克服这种耐药并改变基质结构。我们现在确定MEKi+STAT3i是否重编程癌症相关成纤维细胞(CAF)和免疫微环境,以克服PDAC中对免疫检查点抑制的耐药。
通过单细胞RNA测序(scRNAseq)检测了MEKi(trametinib)+STAT3i(ruxolitinib)治疗与载体治疗的Ptf1a Cre/+ ;LSL-Kras G12D/+; Tgfbr2 flox/flox (PKT)肿瘤中CAF和免疫细胞的转录组。对CAF限制性Map2k1/Mek1或Stat3或两者进行成簇规律间隔短回文重复序列/成簇规律间隔短回文重复序列相关蛋白9沉默,使得能够在原位模型中探究CAF依赖性的免疫重塑效应。在经载体、抗程序性细胞死亡蛋白1(PD-1)单药治疗以及MEKi+STAT3i联合抗PD1治疗的PKT小鼠中,通过飞行时间质谱流式细胞术检测了肿瘤生长、生存和免疫特征。
MEKi+STAT3i 在 PKT 小鼠中通过 scRNAseq 减弱表达 Il6/Cxcl1 的促炎性和表达 Lrrc15 的肌成纤维细胞性 CAF 表型,同时富集表达 Ly6a/Cd34 且具有间充质干细胞样特征的 CAF。这种 CAF 可塑性伴随着肿瘤相关巨噬细胞从 M2 向 M1 的重编程,以及分化簇 8+ T 细胞运输增强,这些 T 细胞表现出不同的效应转录程序。这些 MEKi+STAT3i 诱导的效应似乎依赖于 CAF,因为 CAF 限制性 Mek1/Stat3 沉默在体内减轻了炎症性 CAF 极化和髓系浸润。与抗 PD-1 单药治疗相比,将 MEKi+STAT3i 加入 PD-1 阻断不仅在 PKT 小鼠中显著改善抗肿瘤反应和生存,还增强活化/记忆 T 细胞的募集,同时改善其脱颗粒和细胞毒性能力。重要的是,用 MEKi(trametinib)、STAT3i(ruxolitinib)和 PD-1 抑制剂(nivolumab)治疗一名化疗难治性转移性 PDAC 患者产生了临床获益。
BACKGROUND & AIMS: We have shown that reciprocally activated rat sarcoma (RAS)/mitogen-activated protein kinase/extracellular signal-regulated kinase (MEK) and Janus kinase/signal transducer and activator of transcription 3 (STAT3) pathways mediate therapeutic resistance in pancreatic ductal adenocarcinoma (PDAC), while combined MEK and STAT3 inhibition (MEKi+STAT3i) overcomes such resistance and alters stromal architecture. We now determine whether MEKi+STAT3i reprograms the cancer-associated fibroblast (CAF) and immune microenvironment to overcome resistance to immune checkpoint inhibition in PDAC. METHODS: CAF and immune cell transcriptomes in MEKi (trametinib)+STAT3i (ruxolitinib)-treated vs vehicle-treated Ptf1a Cre/+ ;LSL-Kras G12D/+; Tgfbr2 flox/flox (PKT) tumors were examined via single-cell RNA sequencing (scRNAseq). Clustered regularly interspaced short palindromic repeats/clustered regularly interspaced short palindromic repeats associated protein 9 silencing of CAF-restricted Map2k1/Mek1 or Stat3, or both, enabled interrogation of CAF-dependent effects on immunologic remodeling in orthotopic models. Tumor growth, survival, and immune profiling via mass cytometry by time-of-flight were examined in PKT mice treated with vehicle, anti-programmed cell death protein 1 (PD-1) monotherapy, and MEKi+STAT3i combined with anti-PD1. RESULTS: MEKi+STAT3i attenuates Il6/Cxcl1-expressing proinflammatory and Lrrc15-expressing myofibroblastic CAF phenotypes while enriching for Ly6a/Cd34-expressing CAFs exhibiting mesenchymal stem cell-like features via scRNAseq in PKT mice. This CAF plasticity is associated with M2-to-M1 reprogramming of tumor-associated macrophages, and enhanced trafficking of cluster of differentiation 8 + T cells, which exhibit distinct effector transcriptional programs. These MEKi+STAT3i-induced effects appear CAF-dependent, because CAF-restricted Mek1/Stat3 silencing mitigates inflammatory-CAF polarization and myeloid infiltration in vivo. Addition of MEKi+STAT3i to PD-1 blockade not only dramatically improves antitumor responses and survival in PKT mice but also augments recruitment of activated/memory T cells while improving their degranulating and cytotoxic capacity compared with anti-PD-1 monotherapy. Importantly, treatment of a patient who has chemotherapy-refractory metastatic PDAC with MEKi (trametinib), STAT3i (ruxolitinib), and PD-1 inhibitor (nivolumab) yielded clinical benefit. CONCLUSIONS: Combined MEKi+STAT3i mitigates stromal inflammation and enriches for CAF phenotypes with mesenchymal stem cell-like properties to overcome immunotherapy resistance in PDAC.
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