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钙黏蛋白 11 促进免疫抑制和细胞外基质沉积,以支持小鼠胰腺肿瘤的生长和对吉西他滨的耐药性。

Cadherin 11 Promotes Immunosuppression and Extracellular Matrix Deposition to Support Growth of Pancreatic Tumors and Resistance to Gemcitabine in Mice.

机构信息

Georgetown-Lombardi Comprehensive Cancer Center, Department of Oncology, Georgetown University Medical Center, Washington, District of Columbia.

Georgetown-Lombardi Comprehensive Cancer Center, Department of Oncology, Georgetown University Medical Center, Washington, District of Columbia.

出版信息

Gastroenterology. 2021 Mar;160(4):1359-1372.e13. doi: 10.1053/j.gastro.2020.11.044. Epub 2020 Dec 9.

Abstract

BACKGROUND & AIMS: Pancreatic ductal adenocarcinomas (PDACs) are characterized by fibrosis and an abundance of cancer-associated fibroblasts (CAFs). We investigated strategies to disrupt interactions among CAFs, the immune system, and cancer cells, focusing on adhesion molecule CDH11, which has been associated with other fibrotic disorders and is expressed by activated fibroblasts.

METHODS

We compared levels of CDH11 messenger RNA in human pancreatitis and pancreatic cancer tissues and cells with normal pancreas, and measured levels of CDH11 protein in human and mouse pancreatic lesions and normal tissues. We crossed p48-Cre;LSL-Kras;LSL-Trp53 (KPC) mice with CDH11-knockout mice and measured survival times of offspring. Pancreata were collected and analyzed by histology, immunohistochemistry, and (single-cell) RNA sequencing; RNA and proteins were identified by imaging mass cytometry. Some mice were given injections of PD1 antibody or gemcitabine and survival was monitored. Pancreatic cancer cells from KPC mice were subcutaneously injected into Cdh11 and Cdh11 mice and tumor growth was monitored. Pancreatic cancer cells (mT3) from KPC mice (C57BL/6), were subcutaneously injected into Cdh11 (C57BL/6J) mice and mice were given injections of antibody against CDH11, gemcitabine, or small molecule inhibitor of CDH11 (SD133) and tumor growth was monitored.

RESULTS

Levels of CDH11 messenger RNA and protein were significantly higher in CAFs than in pancreatic cancer epithelial cells, human or mouse pancreatic cancer cell lines, or immune cells. KPC/Cdh11 and KPC/Cdh11 mice survived significantly longer than KPC/Cdh11 mice. Markers of stromal activation entirely surrounded pancreatic intraepithelial neoplasias in KPC/Cdh11 mice and incompletely in KPC/Cdh11 and KPC/Cdh11 mice, whose lesions also contained fewer FOXP3 cells in the tumor center. Compared with pancreatic tumors in KPC/Cdh11 mice, tumors of KPC/Cdh11 mice had increased markers of antigen processing and presentation; more lymphocytes and associated cytokines; decreased extracellular matrix components; and reductions in markers and cytokines associated with immunosuppression. Administration of the PD1 antibody did not prolong survival of KPC mice with 0, 1, or 2 alleles of Cdh11. Gemcitabine extended survival of KPC/Cdh11 and KPC/Cdh11 mice only or reduced subcutaneous tumor growth in mT3 engrafted Cdh11 mice when given in combination with the CDH11 antibody. A small molecule inhibitor of CDH11 reduced growth of pre-established mT3 subcutaneous tumors only if T and B cells were present in mice.

CONCLUSIONS

Knockout or inhibition of CDH11, which is expressed by CAFs in the pancreatic tumor stroma, reduces growth of pancreatic tumors, increases their response to gemcitabine, and significantly extends survival of mice. CDH11 promotes immunosuppression and extracellular matrix deposition, and might be developed as a therapeutic target for pancreatic cancer.

摘要

背景与目的

胰腺导管腺癌(PDAC)的特征是纤维化和大量癌相关成纤维细胞(CAFs)。我们研究了破坏 CAFs、免疫系统和癌细胞之间相互作用的策略,重点关注黏着分子 CDH11,该分子与其他纤维化疾病有关,并且在激活的成纤维细胞中表达。

方法

我们比较了人胰腺炎和胰腺癌组织和细胞与正常胰腺中 CDH11 信使 RNA 的水平,并测量了人胰腺病变和正常组织中 CDH11 蛋白的水平。我们将 p48-Cre;LSL-Kras;LSL-Trp53(KPC)小鼠与 CDH11 敲除小鼠交配,并测量后代的存活时间。收集胰腺并通过组织学、免疫组织化学和(单细胞)RNA 测序进行分析;通过成像质谱细胞术鉴定 RNA 和蛋白质。一些小鼠接受 PD1 抗体或吉西他滨注射,并监测存活情况。将 KPC 小鼠的胰腺癌细胞皮下注射到 Cdh11 和 Cdh11 小鼠中,并监测肿瘤生长情况。将 KPC 小鼠(C57BL/6)的胰腺癌细胞(mT3)皮下注射到 Cdh11(C57BL/6J)小鼠中,并给小鼠注射抗 CDH11 抗体、吉西他滨或 CDH11 的小分子抑制剂,并监测肿瘤生长情况。

结果

与胰腺癌细胞上皮细胞、人或鼠胰腺癌细胞系或免疫细胞相比,CAFs 中 CDH11 信使 RNA 和蛋白的水平显著升高。KPC/Cdh11 和 KPC/Cdh11 小鼠的存活时间明显长于 KPC/Cdh11 小鼠。KPC/Cdh11 小鼠的基质激活标志物完全围绕着胰腺上皮内瘤变,而在 KPC/Cdh11 和 KPC/Cdh11 小鼠中则不完全,这些病变的肿瘤中心 FOXP3 细胞也较少。与 KPC/Cdh11 小鼠的胰腺肿瘤相比,KPC/Cdh11 小鼠的肿瘤具有更高的抗原加工和呈递标志物;更多的淋巴细胞和相关细胞因子;减少细胞外基质成分;以及减少与免疫抑制相关的标志物和细胞因子。PD1 抗体的给药并没有延长 KPC 小鼠的存活时间,KPC 小鼠有 0、1 或 2 个 Cdh11 等位基因。吉西他滨仅延长 KPC/Cdh11 和 KPC/Cdh11 小鼠的存活时间,或与 CDH11 抗体联合使用时可减少 mT3 移植 Cdh11 小鼠的皮下肿瘤生长。CDH11 的小分子抑制剂仅在小鼠体内存在 T 和 B 细胞时才会减少预先建立的 mT3 皮下肿瘤的生长。

结论

在胰腺肿瘤基质中的 CAFs 中敲除或抑制 CDH11 可减少胰腺肿瘤的生长,增加其对吉西他滨的反应,并显著延长小鼠的存活时间。CDH11 促进免疫抑制和细胞外基质沉积,可能作为胰腺癌的治疗靶点。

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