Multi◻region whole◻genome and transcriptomic profiling uncovers plastic, subclone◻linked cell states in high◻grade diffuse astrocytomas

生物 转录组 表型 遗传学 癌症的体细胞进化 基因表达谱 基因 基因组 计算生物学 遗传异质性 肿瘤异质性 细胞 深度测序 基因组学 RNA序列 DNA测序 癌症研究 转录调控 肿瘤进展 核糖核酸 变色 外显子组测序 进化生物学
作者
Serafiina Ohlsbom,Sonja Mäntylä,Reetta Nätkin,Ismaïl Hermelo,Anssi Nurminen,Aliisa M. Tiihonen,I Salonen,Elisa Vuorinen,Kristiina Nordfors,Hannu Haapasalo,Kirsi J. Rautajoki,Joonas Haapasalo,Matti Nykter
出处
期刊: [Cold Spring Harbor Laboratory]
标识
DOI:10.64898/2026.08.11.743949
摘要

Abstract Intratumoral heterogeneity is a defining feature of high-grade astrocytomas and a major contributor to treatment resistance. Yet how genomic diversification intersects with transcriptional plasticity remains incompletely understood. We performed high-resolution multi-omic profiling of three complex, treatment-naïve tumors (two IDH-wildtype glioblastomas and one IDH-mutant grade 4 astrocytoma). By integrating whole-genome sequencing (WGS), bulk and single-cell RNA sequencing (scRNA-seq), and histopathology across four anatomically distinct regions per tumor, we mapped the co-evolution of genome and transcriptome. Despite striking regional differences in morphology and cellular states, genomic evolution was predominantly trunk-dominated. Most driver alterations were clonal across regions, indicating early acquisition and stable genomic backbones. The IDH-mutant tumor showed linear evolution with localized hypermutation, whereas glioblastomas displayed modest late-branching subclones. In contrast, transcriptional heterogeneity was pronounced and spatially structured. Distinct genetic subclones preferentially occupied divergent transcriptional states. However, subclones shared across regions frequently adopted different phenotypes depending on local microenvironment. Single-cell reconstruction from matched patient-derived cell lines resolved subclone-associated trajectories, revealing dynamic transitions between proliferative and inflammatory states. This study provides a framework for understanding how early-established genomic backbones and regional transcriptional plasticity jointly drive phenotypic diversity. While single biopsies may capture truncal drivers, resolving clinically relevant heterogeneity requires multi-region and single-cell approaches.

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