研究概要
神经母细胞瘤(NB)是儿童最常见的颅外实体瘤,也是儿科肿瘤学中肿瘤免疫逃逸(TIME)最为严峻的范例之一。
中文摘要
神经母细胞瘤(NB)是儿童期最常见的颅外实体瘤,也是儿科肿瘤学中肿瘤免疫逃逸(TIME)最为严峻的范例之一。尽管多模式治疗取得了显著进展,免疫治疗策略也已实现临床整合,高危NB(HR-NB)在很大程度上仍对持久免疫控制难治。这种失败反映的并非免疫参与缺失,而是高度进化且受发育编程的免疫逃逸架构的存在。在本综述中,我们综合了来自单细胞、多组学和功能研究的新兴见解,以界定发育谱系、细胞可塑性、代谢重编程、表观遗传调控和治疗诱导适应如何汇聚,从而在NB中构建免疫盲区。我们讨论了NB的神经嵴起源如何建立低免疫原性的基线,随后通过抗原呈递的协同抑制、免疫检查点信号的主导地位以及免疫抑制性肿瘤微环境中细胞毒性T细胞和NK 细胞的深刻功能障碍而得到强化。这一过程的核心是肿瘤内在可塑性,即谱系不稳定和去分化在治疗压力下加剧,将免疫沉默嵌入为稳定的肿瘤状态。我们重点介绍了将RD3定位为连接细胞身份与免疫可见性的主上游调控因子的证据,其调控抗原呈递、固有免疫感知、检查点表达和细胞毒性淋巴细胞参与。除肿瘤内在机制外,我们还审视了免疫抑制性髓系细胞群、肿瘤来源外泌体、代谢应激、缺氧和铁死亡相关通路在强化免疫瘫痪中的作用。最后,我们概述了旨在瓦解这一架构的新兴治疗策略,包括联合检查点阻断、代谢与表观遗传重编程、外泌体靶向干预以及下一代免疫工程平台。总之,本综述将NB中的TIME重新定义为一个可编程的、源于发育的过程,并为恢复HR疾病中的免疫能力和治疗敏感性提供了机制路线图。
展开英文摘要原文
Neuroblastoma (NB), the most common extracranial solid tumor of childhood, exemplifies one of the most formidable paradigms of tumor immune evasion (TIME) in pediatric oncology. Despite significant advances in multimodal therapy and the clinical integration of immunotherapeutic strategies, high-risk NB (HR-NB) remains largely refractory to durable immune control. This failure reflects not an absence of immune engagement, but the presence of a highly evolved and developmentally wired immune escape architecture. In this review, we synthesize emerging insights from single-cell, multi-omics, and functional studies to define how developmental lineage, cellular plasticity, metabolic rewiring, epigenetic regulation, and therapy-induced adaptation converge to engineer immune blindness in NB. We discuss how NB's neural crest origin establishes a baseline of low immunogenicity, which is subsequently reinforced through coordinated suppression of antigen presentation, dominance of immune checkpoint signaling, and profound dysfunction of cytotoxic T and natural killer cells within an immunosuppressive tumor microenvironment. Central to this process is tumor-intrinsic plasticity, whereby lineage instability and dedifferentiation, exacerbated by therapeutic pressure, embed immune silence as a stable tumor state. We highlight evidence positioning RD3 as a master upstream regulator linking cellular identity to immune visibility, governing antigen presentation, innate immune sensing, checkpoint expression, and cytotoxic lymphocyte engagement. Beyond tumor-intrinsic mechanisms, we examine the roles of immunosuppressive myeloid populations, tumor-derived exosomes, metabolic stress, hypoxia, and ferroptosis-associated pathways in reinforcing immune paralysis. Finally, we outline emerging therapeutic strategies aimed at dismantling this architecture, including combinatorial checkpoint blockade, metabolic and epigenetic reprogramming, exosome-targeted interventions, and next-generation immune engineering platforms. Together, this review reframes TIME in NB as a programmable, developmentally rooted process and provides a mechanistic roadmap for restoring immune competence and therapeutic susceptibility in HR disease.
论文信息
- 作者
- Subramanian P、Periyasamy L、Mohanvelu S、Aravindan S、Aravindan N
- 单位
- Department of Physiological Sciences, College of Veterinary Medicine, Oklahoma State University, Stillwater, OK 74078, USA.United States
- 文献类型
- 综述
- 期刊
- Cells2026 Jun 12