决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Metabolic dependencies and neural progenitor dysregulation: driving forces in paediatric high-grade glioma development.
儿童高级别胶质瘤(pHGGs)是儿童中最致命的脑肿瘤,其特征是深刻的表观遗传失调和有限的治疗选择。
儿童高级别胶质瘤(pHGGs)是儿童中最致命的脑肿瘤,以深刻的表观遗传失调和有限的治疗选择为特征。2021年WHO分类建立了一个分子框架,将pHGGs在生物学上区别于成人胶质母细胞瘤,识别出四种主要亚型:H3K27改变型弥漫性中线胶质瘤、H3G34突变型弥漫性半球胶质瘤、婴儿型半球胶质瘤和罕见的IDH突变型胶质瘤。每种亚型表现出独特的表观遗传景观、代谢依赖性和治疗脆弱性,需要亚型特异性治疗策略。本综述探讨了pHGGs的分子分类,并审视了肿瘤微环境在疾病进展中的关键作用。我们聚焦于胶质瘤干细胞作为肿瘤起始、维持和治疗耐药的核心驱动因素,强调其显著的细胞可塑性以及在不同状态之间动态转换的能力。特别关注pHGGs中的代谢重编程,包括葡萄糖和脂质代谢的改变,以及胶质瘤干细胞卓越的代谢灵活性,使其能够适应微环境压力。重要的是,我们讨论了代谢与表观遗传调控之间的密切串扰,其中代谢物作为染色质修饰酶的必要辅因子——例如α-酮戊二酸在H3K27M肿瘤中维持低H3K27me3,以及2-羟基戊二酸在IDH突变型胶质瘤中驱动高甲基化。我们综述了推动pHGG研究的临床前模型,并讨论了新兴的免疫治疗方法,包括CAR T细胞疗法和溶瘤病毒。通过综合目前对pHGG生物学的理解,本综述旨在识别有前景的治疗途径,利用每种分子亚型独特的代谢和表观遗传脆弱性。
Paediatric high-grade gliomas (pHGGs) are the most lethal brain tumours in children, characterised by profound epigenetic dysregulation and limited treatment options. The 2021 WHO Classification has established a molecular framework that distinguishes pHGGs as biologically distinct from adult glioblastoma, recognising four major subtypes: H3K27-altered diffuse midline glioma, H3G34-mutant diffuse hemispheric glioma, infant-type hemispheric glioma, and the rare IDH-mutant gliomas. Each subtype exhibits unique epigenetic landscapes, metabolic dependencies, and therapeutic vulnerabilities, necessitating subtype-specific treatment strategies. This review explores the molecular classification of pHGGs and examines the critical role of the tumour microenvironment in disease progression. We focus on glioma stem cells as central drivers of tumour initiation, maintenance, and therapeutic resistance, highlighting their remarkable cellular plasticity and ability to dynamically transition between different states. Particular attention is given to metabolic reprogramming in pHGGs, including alterations in glucose and lipid metabolism, and the exceptional metabolic flexibility of glioma stem cells that enables adaptation to microenvironmental pressures. Importantly, we discuss the intimate crosstalk between metabolism and epigenetic regulation, whereby metabolites serve as essential cofactors for chromatin-modifying enzymes-exemplified by -ketoglutarate maintaining low H3K27me3 in H3K27M tumours and 2-hydroxyglutarate driving hypermethylation in IDH-mutant gliomas. We review preclinical models that have advanced pHGG research and discuss emerging immunotherapeutic approaches, including CAR T-cell therapies and oncolytic viruses. By synthesising current understanding of pHGG biology, this review aims to identify promising therapeutic avenues that exploit the unique metabolic and epigenetic vulnerabilities of each molecular subtype.
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