PO.IM01.01 · 免疫学

探索儿茶酚胺信号在CD8+ T细胞抗神经母细胞瘤免疫中的作用

Exploring the role of catecholamine signaling in CD8+ T cell immunity to neuroblastoma

海报缩略图:探索儿茶酚胺信号在CD8+ T细胞抗神经母细胞瘤免疫中的作用
编号 178 展板 21 时间 4/19 02:00–05:00 区域 Section 8 主讲 Mark Chudnovsky, No Degree
分会场 Immune Cell Biology and Tumor-Immune Crosstalk
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作者与单位 Authors & Affiliations

Mark B. Chudnovsky, Daniela Vega-Mendoza, Elinor L. DeCleene, Jose Almeida-Santos, Naomei Lidman, Mingkee Achom, Jared H. Rowe

Pediatric Oncology, Dana-Farber Cancer Institute, Boston, MA

摘要 Abstract

中文摘要
神经母细胞瘤(NBL)是儿童最常见的颅外实体瘤。NBL肿瘤起源于发育中神经嵴内交感肾上腺前体细胞的恶性转化。NBL细胞的起源使其保留了合成儿茶酚胺的能力,而儿茶酚胺通常调控我们的应激反应。近期研究表明,免疫反应也通过T细胞上表达的beta-肾上腺素能受体经由儿茶酚胺信号进行调控。特别是,源自交感神经元的儿茶酚胺可通过beta-肾上腺素能受体(ADRB1)向CD8+ T细胞发出信号。在肿瘤中,这种信号与CD8+ T细胞功能的进行性丧失相关,这一过程被称为“耗竭”。我们假设,在产生儿茶酚胺的肿瘤(如NBL)中,T细胞过度的ADRB1信号将抑制抗肿瘤免疫。为研究beta-肾上腺素能信号在CD8+ T细胞保护机体免受NBL侵害中的细胞内在作用,我们利用体内免疫功能健全的NBL模型,选择性地敲除了小鼠T细胞中的ADRB1(Adrb1)基因。将一株同基因NBL细胞系改造为表达卵清蛋白(OVA),作为替代性肿瘤特异性抗原。将表达Cas9的针对OVA的T细胞受体转基因(TCR)T细胞(Cas9-OT-I)用Adrb1-gRNA转导,并在植入9464D-OVA之前过继转移至受体小鼠。令人意外的是,我们发现与用非基因靶向对照gRNA转导的T细胞相比,Adrb1缺陷型CD8+ T细胞的肿瘤控制能力较差。尽管有此观察结果,与对照T细胞相比,Adrb1缺陷型CD8+细胞在肿瘤微环境中却表现出竞争优势。这提示ADRB1的缺失正在影响抗NBL T细胞的功能。这些发现与Adrb1缺陷型CD8+ T细胞在黑色素瘤模型(B16-OVA)中提供的强效保护形成鲜明对比。有趣的是,我们发现用选择性ADRB1拮抗剂阿替洛尔对荷黑色素瘤小鼠进行药物治疗,足以控制部分肿瘤并延长动物存活。而接受阿替洛尔的荷NBL小鼠在肿瘤生长或动物存活方面均无影响。正在进行的实验旨在探讨ADRB1阻断的时机(即激活前、耗竭后)和背景(全身、T细胞内在、肿瘤微环境)如何影响NBL中T细胞的功能。这些临床前研究将支持正在进行的以儿茶酚胺信号为靶点、减少耗竭并支持针对NBL的细胞疗法功能的努力。
查看英文原文 English abstract
Neuroblastoma (NBL) is the most common extracranial solid tumor in children. NBL tumors arise from the malignant transformation of sympathoadrenal precursor cells in the developing neural crest. The origin of NBL cells leads to their retention of the ability to synthesize catecholamines, which normally regulate our stress response. Recent studies have demonstrated that immune responses are also modulated by catecholamine signaling through beta-adrenergic receptors expressed on T cells. Particularly, catecholamines derived from sympathetic neurons can signal CD8+ T cells via the beta-adrenergic receptor (ADRB1). In tumors this signaling is associated with the progressive loss of CD8+ T cell function, a process known as “exhaustion.” We hypothesized that in catecholamine producing tumors, like NBL, the excessive ADRB1 signaling T cells will suppress antitumor immunity. To investigate the cell-intrinsic role of beta-adrenergic signaling in CD8+ T cell function in protection from NBL we selectively ablated the ADRB1 ( Adrb1 ) gene in murine T cells using an in vivo immune competent NBL model. A syngeneic NBL cell line was engineered to express ovalbumin (OVA) as a surrogate tumor-specific antigen. Cas9-expressing T cell receptor transgenic (TCR) T cells for OVA (Cas9-OT-I) were transduced with Adrb1 -gRNA and adoptively transferred into recipient mice prior to implantation of 9464D-OVA. Surprisingly, we found that Adrb1 -deficient CD8+ T cells had inferior tumor control compared to T cells transduced with non-gene targeting control gRNA. Despite this observation, Adrb1 -deficient CD8+ displayed a competitive advantage in the tumor microenvironment compared to control T cells. This suggests that the loss of ADRB1 is impacting the function of anti-NBL T cells. These findings directly contrasted the robust protection of Adrb1 -deficient CD8+ T cells in a model of melanoma (B16-OVA). Interestingly, we found that pharmacologic treatment of melanoma bearing mice with the selective ADRB1 antagonist atenolol was sufficient to control some tumors and promote animal survival. NBL bearing mice receiving atenolol had no effect on tumor growth or animal survival. Ongoing experiments are addressing how the timing (i.e. pre-activation, post-exhaustion) and context (whole body, T cell-intrinsic, tumor microenvironment) of ADRB1 blockade impacts the function of T cells in NBL. These preclinical studies will support ongoing efforts to target catecholamine signaling to reduce exhaustion and support the function of cellular therapies against NBL.
利益披露 Disclosure
M. B. Chudnovsky, None.. D. Vega-Mendoza, None.. E. L. DeCleene, None.. J. Almeida-Santos, None.. N. Lidman, None.. M. Achom, None.. J. H. Rowe, None.

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