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迷走神经刺激:通过降低细胞因子 (白细胞介素-6)、减弱 SASP、增强肿瘤免疫来治疗胶质母细胞瘤与实体瘤的新概念

英文原题:Vagus nerve stimulation: Novel concept for the treatment of glioblastoma and solid cancers by cytokine (interleukin-6) reduction, attenuating the SASP, enhancing tumor immunity.

查看英文原题

Vagus nerve stimulation: Novel concept for the treatment of glioblastoma and solid cancers by cytokine (interleukin-6) reduction, attenuating the SASP, enhancing tumor immunity.

PubMed 2024/09/17(内容时间) Brain Behav Immun Health Q2 · IF 3.8(JCR 2025)

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中文摘要

肿瘤免疫治疗,尤其是免疫检查点抑制剂(ICI),已彻底改变癌症治疗,通过产生显著且持久的应答提高患者生存率,其中包括脑转移患者。胶质母细胞瘤及其他原发性脑肿瘤对ICI单药或与标准治疗联合均耐药。肿瘤微环境(TME)带来多重生物学障碍,包括血脑屏障、免疫抑制、异质性和肿瘤浸润。胶质瘤衰老相关分泌表型(SASP)的基因组分析及临床前模型提示,一种有前景的策略是重编程胶质瘤微环境,减弱SASP中促炎、促肿瘤细胞因子,尤其是白细胞介素6(IL-6)。目前提出了一项可验证的假设:利用机体“炎症反射”调节免疫系统,以降低细胞因子。迷走神经刺激可通过胆碱能α7烟碱型乙酰胆碱受体(α7nAChR)激活T细胞免疫,并在全身抑制IL-6以及SASP中的其他促炎细胞因子,包括白细胞介素1(IL-1)和肿瘤坏死因子α(TNF-α)。该假设预测,电刺激迷走神经以降低细胞因子,并与ICI联合,可将免疫耐受(“冷”)肿瘤转变为免疫应答(“热”)肿瘤,并阻止胶质瘤进展。

该假设还将癌症视为一种免疫“自主神经失调”,认为治疗性干预——迷走神经刺激(VNS)——可重置全身和局部细胞因子水平。为验证这一假设,开展前瞻性、随机、II期临床试验是合理且紧迫的下一步。随着“癌症神经科学”新兴领域揭示神经调节在多种肿瘤中的作用,VNS降低细胞因子也可能适用于其他人类癌症,如乳腺癌、结直肠癌、头颈癌、肺癌、黑色素瘤、卵巢癌、胰腺癌和前列腺癌。由于IL-6及相关促炎细胞因子参与癌症起始、进展、扩散和复发,可采用微创VNS抑制胶质瘤或癌症进展,同时减轻抑郁和/或癫痫,从而提高生活质量。当前假设将胶质瘤病理生理重新诠释为自主神经失调,治疗目标是重置自主神经系统、形成免疫应答状态,以阻止肿瘤进展并预防复发。作为一种控制癌症的新方法,VNS可与ICI或标准治疗联合应用,也可在临床试验中与新兴免疫疗法(如树突状细胞、mRNA或嵌合抗原受体〔CAR〕T细胞疫苗)联合。

展开英文摘要原文

Immuno-oncology, specifically immune checkpoint inhibitors (ICIs), has revolutionized cancer care with dramatic, long-term responses and increased survival, including patients with metastatic cancer to the brain. Glioblastomas, and other primary brain tumors, are refractory to ICIs as monotherapy or in combination with standard therapy. The tumor microenvironment (TME) poses multiple biological hurdles: blood-brain barrier, immune suppression, heterogeneity, and tumor infiltration. Genomic analysis of the senescence-associated secretory phenotype (SASP) and preclinical models of glioma suggest that an exciting approach would entail reprogramming of the glioma microenvironment, attenuating the pro-inflammatory, pro-tumorigenic cytokines of the SASP, especially interleukin-6 (IL-6). A testable hypothesis now proposed is to modulate the immune system by harnessing the body's 'inflammatory reflex' to reduce cytokines. Vagus nerve stimulation can activate T cell immunity by the cholinergic, 7nicotinic acetylcholine receptor agonist ( 7nAchR), and suppress IL-6 systemically, as well as other pro-inflammatory cytokines of the SASP, interleukin -1 (IL-1 ) and tumor necrosis factor-alpha (TNF- ). The hypothesis predicts that electrical activation of the vagus nerve, with cytokine reduction, in combination with ICIs, would convert an immune resistant ("cold") tumor to an immune responsive ("hot") tumor, and halt glioma progression.

The hypothesis also envisions cancer as an immune "dysautonomia" whereby a therapeutic intervention, vagus nerve stimulation (VNS), resets the systemic and local cytokine levels. A prospective, randomized, phase II clinical trial, to confirm the hypothesis, is a logical, exigent, next step. Cytokine reduction by VNS could also be useful for other forms of human cancer, e. g. , breast, colorectal, head and neck, lung, melanoma, ovarian, pancreatic, and prostate cancer, as the emerging field of "cancer neuroscience" shows a role for neural regulation of multiple tumor types.

Because IL-6, and companion pro-inflammatory cytokines, participate in the initiation, progression, spread and recurrence of cancer, minimally invasive VNS could be employed to suppress glioma or cancer progression, while also mitigating depression and/or seizures, thereby enhancing quality of life.

The current hypothesis reimagines glioma pathophysiology as a dysautonomia with the therapeutic objective to reset the autonomic nervous system and form an immune responsive state to halt tumor progression and prevent recurrence. VNS, as a novel method to control cancer, can be administered with ICIs, standard therapy, or in clinical trials, combined with emerging immunotherapy: dendritic cell, mRNA, or chimeric antigen receptor (CAR) T cell vaccines.

论文信息

作者
Brem S
单位
University of Pennsylvania, Department of Neurosurgery, Perelman Center for Advanced Medicine, 15-141, 3400 Civic Center Blvd., Philadelphia, PA, 19104, United States.United States
文献类型
综述
期刊
Brain, behavior, & immunity - health2024 Dec
原文标识
PubMed 39512605 · DOI 10.1016/j.bbih.2024.100859