PO.TB10.02 · 肿瘤生物学
巨噬细胞支持小儿后颅窝A型室管膜瘤的生长
Macrophages support the growth of pediatric posterior fossa ependymoma type A
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
后颅窝A型室管膜瘤(PFA)是九种室管膜瘤分子亚型中最常见的一种,主要累及婴幼儿和儿童的后脑,五年总生存率仅为56%。PFA携带的基因突变很少,除H3K27M(2-4%的病例)和1号染色体q臂增益(约20%)外。相反,PFA表现出缺氧依赖性的代谢和表观遗传调控。在体外,即使短暂将PFA细胞暴露于常氧也会导致不可逆的毒性和快速衰老。
为研究微环境的支持作用,我们对原发性PFA肿瘤应用了单细胞和空间转录组学。代谢通路分析显示巨噬细胞上调糖酵解相关程序。巨噬细胞和缺氧肿瘤细胞均表现出升高的炎症和糖酵解特征,提示存在共享的代谢生态位。空间定位揭示了一个区域性缺氧微环境,由与巨噬细胞紧密贴近的增殖性PFA细胞组成。
利用共培养和条件培养基实验的功能研究揭示,巨噬细胞条件培养基中存在一种高分子量的可扩散因子,它能在缺氧条件下增强PFA细胞生长,并且引人注目地使其能够在常氧条件下生长——而在常氧下PFA细胞本无法存活。
这些发现揭示了PFA细胞与巨噬细胞之间一种关键的功能相互作用,它可在缺氧条件之外支持肿瘤生长。探索和利用PFA与其微环境之间的细胞间串扰有望为新型治疗干预开辟新途径。此外,由于目前尚无可靠的小鼠模型来研究PFA,理解肿瘤如何生长可能有助于开发成功建立患者来源异种移植模型所需的细胞和条件。
查看英文原文 English abstract
Posterior fossa type A ependymoma (PFA), the most prevalent of the nine ependymoma molecular subtypes, predominantly affects the hindbrain of infants and young children and has a five-year overall survival of only 56%. PFA harbors few genetic mutations, aside from H3K27M (2-4% of cases) and chromosome 1q gain (~20%). Instead, PFA displays hypoxia-dependent metabolic and epigenetic regulation. In vitro , even transient exposure of PFA cells to normoxia results in irreversible toxicity and rapid senescence.
To investigate microenvironmental support, we applied single-cell and spatial transcriptomics to primary PFA tumors. Metabolic pathway analysis revealed that macrophages upregulate glycolysis-related programs. Both macrophages and hypoxic tumor cells exhibited elevated inflammation and glycolysis signatures, suggesting a shared metabolic niche. Spatial mapping revealed a regional hypoxic microenvironment consisting of proliferating PFA cells in close apposition to macrophages.
Functional studies using co-culture and conditioned media experiments revealed a high-molecular weight diffusible factor in macrophage-conditioned media that enhances PFA cell growth under hypoxia and, strikingly, enables their growth under normoxic conditions, where PFA cells are otherwise non-viable.
These findings uncover a critical functional interaction between PFA cells and macrophages that supports tumor growth beyond the hypoxic conditions. Exploring and leveraging intercellular crosstalk between PFA and its microenvironment could open up new avenues for novel therapeutic intervention. Additionally, as there are currently no reliable mouse models to study PFA, understanding how the tumor grows could enable the development of the cells and conditions required for successful patient-derived xenograft models.
利益披露 Disclosure
G. L. Persad, None..
K. Kharas, None..
A. Ribeiro, None..
A. Rasnitsyn, None..
M. D. Taylor, None.