LBPO.IM01 · 免疫学 · Late-Breaking

用于乳腺癌脑转移的自然杀伤(NK)细胞疗法

Natural killer (NK) cell therapies for breast cancer brain metastasis

海报缩略图:用于乳腺癌脑转移的自然杀伤(NK)细胞疗法
编号 LB077 展板 3 时间 4/19 02:00–05:00 区域 Section 54 主讲 Devon Lawson, PhD
分会场 Late-Breaking Research: Immunology 1
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作者与单位 Authors & Affiliations

Timothy M. McMullen1, Pascal Naef1, Erika Zagni1, Aaron J. Longworth1, Isam Adam1, Noah Wechter1, Jacob Insua-Rodriguez1, Lincy Antony1, Dennis Ma1, Eva Zhao1, Sharmila Mallya1, Tatyana Lev1, Hannah Savage1, Lei Tian1, Delia F. Tifrea1, Robert Edwards1, Miguel A. Villalona-Calero1, Ahmed Mohyeldin1, Timothy E. O’Sullivan2, Jianhua Yu1, Kai Kessenbrock1, Devon A. Lawson1

1UCI School of Medicine, Irvine, CA,2UCLA School of Medicine, Irvine, CA

摘要 Abstract

中文摘要
乳腺癌脑转移(BCBM)是乳腺癌的一个毁灭性阶段,缺乏有效的治疗选择。鉴于免疫细胞能够进入大脑而许多传统疗法被排除在外,人们对采用免疫疗法治疗脑转移的兴趣日益增长。目前尚无专门针对BCBM获批的免疫疗法,且相关临床试验有限。免疫检查点抑制剂(ICIs)和CAR-T细胞疗法在其他脑部恶性肿瘤中显示出有前景的颅内应答,但它们常伴有显著的毒性,这在大脑中尤为相关。基于自然杀伤(NK)细胞的疗法代表了一种引人注目的替代方案,因为它们展现出优异的细胞毒性能力,但具有更好的安全性特征。我们研究了1型固有淋巴样细胞(ILCs)在BCBM中的作用,其中包括组织驻留型ILC1和循环NK细胞。我们使用实验性转移小鼠模型进行的实验表明,与肝脏等其他组织相比,大脑中的1型ILC应答非常有限。通过单细胞RNA测序(scRNA-seq)和流式细胞术,我们发现肝脏所含的效应型ILC1和NK细胞亚群数量远大于大脑,而大脑中主要含有未成熟和被抑制的细胞。使用抗NK1.1抗体清除所有1型ILC(ILC1和NK细胞),或使用Hobit敲除动物特异性清除ILC1,结果显示这两种细胞类型对控制肝脏转移都至关重要,但在大脑中活性有限。有趣的是,我们发现IL15和IL15Ralpha在健康和转移性脑组织中的表达低至缺失,而在肝脏中高表达。IL15/IL15Ralpha是一种细胞因子复合物,可结合1型ILC上的IL-2Rbeta/gammac受体,对诱导其成熟和激活至关重要。我们检验了这样一个假说:我们在大脑中观察到的1型ILC应答缺陷是由于IL15/IL15Ralpha的可及性有限,这可能是中枢神经系统天然免疫抑制环境的结果。值得注意的是,这些实验表明IL15/IL15Ralpha治疗可使转移负荷降低5倍,并使效应型ILC1和NK细胞亚群如在肝脏中所观察到的那样显著扩增。最后,我们目前正在检验经工程改造以表达自身可溶性IL15的人iPS来源NK细胞的疗效,这些细胞衍生自我们团队目前正在临床试验(NCT05334329)中检验用于治疗非小细胞肺癌(NSCLC)的细胞。初步实验显示出有前景的结果,我们发现用iPS-NK-IL15细胞进行颅内治疗可使肿瘤负荷降低5倍。这些数据清楚地确立了IL15/IL15Ralpha信号是中枢神经系统中1型ILC应答的一个必需因素,并凸显了靶向该通路在脑转移治疗策略中的潜力。
查看英文原文 English abstract
Breast cancer brain metastasis (BCBM) is a devastating stage of breast cancer with no effective treatment options. There is a growing interest in immunotherapies to treat brain metastasis, given that immune cells can enter the brain while many conventional therapies are excluded. Currently, there are no approved immunotherapies specific for BCBM and there have been limited clinical trials. Immune checkpoint inhibitors (ICIs) and CAR-T cell therapies are showing promising intracranial responses in other brain malignancies, but they are often associated with significant toxicities, which is particularly relevant in the brain. Natural Killer (NK) cell-based therapies represent a compelling alternative, since they demonstrate excellent cytotoxic capacity but greater safety profiles. We have investigated the role of Type 1 innate lymphoid cells (ILCs) in BCBM, which include tissue-resident ILC1s and circulating NK cells. Our experiments using mouse models of experimental metastasis have shown that the Type 1 ILC response in the brain is very limited compared to other tissues like the liver. Using single-cell RNA-sequencing (scRNA-seq) and flow cytommetry, we found that the liver contains much larger numbers of effector ILC1 and NK cell subsets than the brain, which predominantly contains immature and inhibited cells. Depletion of all Type 1 ILCs (ILC1s and NK cells) using anti-NK1.1 antibodies, or specifically ILC1s using Hobit knockout animals shows that both cell types are critical to control metastasis in the liver but show limited activity in the brain. Interestingly, we find that IL15 and IL15Ralpha expression are low to absent in healthy and metastatic brain tissues, while highly expressed in the liver. IL15/IL15Ralpha is a cytokine complex that binds the IL-2Rbeta/gammac receptor on Type 1 ILCs and is essential to induce their maturation and activation. We tested the hypothesis that the defective Type 1 ILC response that we observe in the brain is due to the limited availability of IL15/IL15Ralpha, likely a consequence of the naturally immunosuppressive environment of the CNS. Remarkably, these experiments showed that IL15/IL15Ralpha treatment results in a 5-fold reduction in metastatic burden, and a dramatic expansion of effector ILC1 and NK cell subsets like observed in the liver. Finally, we are currently testing the efficacy of human iPS-derived NK cells engineered to express their own soluble IL15, which are a derivative of cells that our group is currently testing in clinical trials (NCT05334329) to treat non-small cell lung cancer (NSCLC). Preliminary experiments show promising results, where we find that intracranial treatment with iPS-NK-IL15 cells results in a 5-fold reduction in tumor burden. These data clearly establish IL15/IL15Ralpha signaling as an essential factor for the Type 1 ILC response in the CNS, and highlight the potential of targeting this pathway in treatment strategies for brain metastasis.
利益披露 Disclosure
T. M. McMullen, None.. P. Naef, None.. E. Zagni, None.. A. J. Longworth, None.. I. Adam, None.. N. Wechter, None.. J. Insua-Rodriguez, None.. L. Antony, None.. D. Ma, None.. E. Zhao, None.. S. Mallya, None.. T. Lev, None.. H. Savage, None.. L. Tian, None.. D. F. Tifrea, None.. R. Edwards, None.. M. A. Villalona-Calero, None.. A. Mohyeldin, None.. T. E. O’Sullivan, None.. J. Yu, None.. K. Kessenbrock, None.. D. A. Lawson, None.

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