帕博利珠单抗联合二甲双胍治疗转移性头颈部癌的 II 期可行性研究
A Phase II Feasibility Study Combining Pembrolizumab and Metformin in Patients with Metastatic Head and Neck Cancer.
二甲双胍联合帕博利珠单抗耐受性良好,仅出现轻度胃肠道不良事件,并展现出有前景的活性,值得在随机试验中进一步研究。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Differential responses to immune checkpoint inhibitor dictated by pre-existing differential immune profiles in squamous cell carcinomas caused by same initial oncogenic drivers.
Differential responses to immune checkpoint inhibitor dictated by pre-existing differential immune profiles in squamous cell carcinomas caused by same initial oncogenic drivers.
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我们通过建立并使用两种 SCC 肿瘤细胞系 TAb2 与 TCh3,揭示了可能构成 ICI 差异应答基础的肿瘤内在差异,这两种细胞系均携带 TP53 缺失和 PIK3CA 过度激活。我们的研究表明,仅根据癌症的遗传改变进行分层存在局限性,并提示评估 HNSCC 肿瘤内在线索以及 TME 中的免疫特征可能有助于更好地预测 ICI 应答。我们的实验模型可提供一个平台,用于确定 HNSCC 中免疫抑制性 TME 背后的肿瘤内在差异,并用于测试靶向肿瘤特异性或 TAM 特异性因素的联合免疫疗法,以提高 ICI 疗效。
尽管免疫检查点抑制剂(ICI)已获批用于头颈部鳞状细胞癌(HNSCC),但缓解率仍然相对较低。ICI无应答与敏感的机制尚未完全阐明。
为了更好地描述对ICI治疗的不同反应,我们采用了小鼠SCC模型,称为KPPA肿瘤,该肿瘤由p53缺失和PIK3CA过度激活引起,这两个基因是人类HNSCC中最常见的突变基因。我们将两种KPPA肿瘤细胞系(TAb2与TCh3)移植到C57BL/6受体中,并使用流式细胞术检查免疫肿瘤微环境。此外,我们采用单细胞RNA测序来识别TIL(肿瘤浸润淋巴细胞)(TILs)的差异。
我们发现,不同的 KPPA 肿瘤在治疗前表现出异质性免疫特征,这些特征决定了它们对抗 PD-L1 的敏感性或无反应性。无反应的 TAb2 肿瘤高度富集功能性肿瘤相关巨噬细胞(TAMs),尤其是 M2-TAMs。相比之下,敏感的 TCh3 肿瘤含有更多具有更好效应功能的 CD8 TILs。TAb2 肿瘤细胞从骨髓前体大幅扩增 F4/80 + TAMs,需要 CSF1 和 VEGF。一致的是,VEGF-C 和 CSF1 的较高联合表达预示 PIK3CA Amp /TP53 Mutated HNSCC 患者更差的生存。无反应的 TAb2 肿瘤上调与侵袭性肿瘤表型相关的不同信号通路。虽然抗 PD-L1 不影响 TAb2 肿瘤的 TME,但它显著增加了 TCh3 肿瘤中 CD8 TILs 的数量。
While immune checkpoint inhibitors (ICI) were approved for head and neck squamous cell carcinomas (HNSCCs), the response rate remains relatively low. Mechanisms underlying ICI unresponsiveness versus sensitivity are not fully understood. METHOD: To better delineate differential responses to ICI treatment, we employed mouse SCC models, termed KPPA tumors that were caused by deleting p53 and hyperactivating PIK3CA, two most frequently mutated genes in human HNSCCs. We transplanted two KPPA tumor lines (TAb2 versus TCh3) into C57BL/6 recipients and examined the immune tumor microenvironment using flow cytometry. Furthermore, we employed single-cell RNA sequencing to identify the difference in tumor infiltrating lymphocytes (TILs).
We found that different KPPA tumors exhibited heterogeneous immune profiles pre-existing treatment that dictated their sensitivity or unresponsiveness to anti-PD-L1. Unresponsive TAb2 tumors were highly enriched with functional tumor-associated macrophages (TAMs), especially M2-TAMs. In contrast, sensitive TCh3 tumors contained more CD8 TILs with better effector functions. TAb2 tumor cells drastically expanded F4/80 + TAMs from bone marrow precursors, requiring CSF1 and VEGF. Consistently, a higher combined expression of VEGF-C and CSF1 predicts worse survival in PIK3CA Amp /TP53 Mutated HNSCC patients. Unresponsive TAb2 tumors upregulated distinct signaling pathways that correlate with aggressive tumor phenotypes. While anti-PD-L1 did not affect the TME of TAb2 tumors, it significantly increased the number of CD8 TILs in TCh3 tumors.
We uncovered tumor-intrinsic differences that may underlie the differential responses to ICI by establishing and employing two SCC tumor lines, TAb2 vs. TCh3, both of which harbor TP53 deletion and PIK3CA hyperactivation. Our study indicates the limitation of stratifying cancers according to their genetic alterations and suggests that evaluating HNSCC tumor-intrinsic cues along with immune profiles in the TME may help better predict ICI responses. Our experimental models may provide a platform for pinpointing tumor-intrinsic differences underlying an immunosuppressive TME in HNSCCs and for testing combined immunotherapies targeting either tumor-specific or TAM-specific players to improve ICI efficacy.
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