LBPO.MCB01 · 分子与细胞生物学 · Late-Breaking
染色质区室的表观遗传去稳定化定义了头颈部鳞状细胞癌中富含驱动突变的染色体薄弱环节
Epigenetic destabilization of chromatin compartments defines chromosomal weak links enriched for driver mutations in head and neck squamous cell carcinoma
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摘要 Abstract
中文摘要
头颈部鳞状细胞癌(HNSCC)以广泛的表观遗传重塑和一组有限的癌症驱动基因的复发性突变为特征。尽管已知大尺度染色质区室会影响突变率,但癌症相关的表观遗传侵蚀是否会使原发肿瘤中的高阶基因组结构去稳定化——从而塑造突变易感性——仍未解决。在此,我们将染色体“薄弱环节”识别为A/B区室完整性受损的区域,这些区域在HNSCC中复发性地携带驱动突变。我们分析了来自多个独立HNSCC队列的全基因组DNA甲基化图谱,包括TCGA以及涵盖口腔舌、口底和喉部肿瘤的机构数据集,并配对了正常上皮组织。A/B染色质区室直接从长程DNA甲基化相关结构中推断,从而能够在群体规模上分析原发肿瘤中的高阶基因组组织。除区室转换外,我们还量化了区室强度、特征向量幅度和碎片化程度,以捕捉结构去稳定化。在各队列和解剖亚部位中,与正常组织相比,HNSCC肿瘤表现出普遍但非随机的A/B区室组织减弱。这些染色体薄弱环节的特征是长程甲基化相关性降低、中等甲基化变异性和低区室特征向量幅度,与高阶染色质结构的侵蚀相一致。值得注意的是,薄弱环节区域显著富含复发性突变的HNSCC驱动基因,包括TP53、FAT1、NOTCH1、CDKN2A、KMT2D、SMARCA4和PIK3CA。这些位点优先定位于区室边界或本质上低稳定性的区域,这些区域在各数据集中表现出可重复的减弱。总之,我们的发现揭示了HNSCC中的全局表观遗传侵蚀使染色质区室结构去稳定化,产生了反复集中驱动突变的保守染色体薄弱环节。这项工作揭示了全局DNA甲基化侵蚀与大尺度染色质区室去稳定化之间此前未被认识的机制耦合,后者定义了在HNSCC中选择性地易受致癌突变影响的染色体薄弱环节。这一层基因组易感性将表观遗传推断的区室去稳定化确立为一个可扩展的框架,用于绘制癌症基因组中的结构脆弱性。
查看英文原文 English abstract
Head and neck squamous cell carcinoma (HNSCC) is marked by extensive epigenetic remodeling and recurrent mutations in a limited set of cancer driver genes. Although large-scale chromatin compartments are known to influence mutation rates, whether cancer-associated epigenetic erosion destabilizes higher-order genome architecture in primary tumors-and thereby shapes mutational vulnerability-remains unresolved. Here, we identify chromosomal “weak links” as regions of compromised A/B compartment integrity that recurrently harbor driver mutations in HNSCC. We analyzed genome-wide DNA methylation profiles from multiple independent HNSCC cohorts, including TCGA and institutional datasets spanning oral tongue, floor of mouth, and laryngeal tumors, together with matched normal epithelium. A/B chromatin compartments were inferred directly from long-range DNA methylation correlation structure, enabling analysis of higher-order genome organization in primary tumors at population scale. Beyond compartment switching, we quantified compartment strength, eigenvector magnitude, and fragmentation to capture architectural destabilization. Across cohorts and anatomical subsites, HNSCC tumors exhibited pervasive but non-random weakening of A/B compartment organization relative to normal tissues. These chromosomal weak links were characterized by reduced long-range methylation correlation, intermediate methylation variability, and low compartment eigenvector magnitude, consistent with erosion of higher-order chromatin architecture. Strikingly, weak-link regions were significantly enriched for recurrently mutated HNSCC driver gene including TP53, FAT1, NOTCH1, CDKN2A, KMT2D, SMARCA4, and PIK3CA. These loci were preferentially localized to compartment boundaries or intrinsically low-stability regions that showed reproducible weakening across datasets. Together, our findings reveal that global epigenetic erosion in HNSCC destabilizes chromatin compartment architecture, generating conserved chromosomal weak links that repeatedly concentrate driver mutations. This work uncovers a previously unrecognized mechanistic coupling between global DNA methylation erosion and large-scale chromatin compartment destabilization that defines chromosomal weak links selectively vulnerable to oncogenic mutation in HNSCC. This layer of genome vulnerability establishes epigenetically inferred compartment destabilization as a scalable framework for mapping structural fragility in cancer genomes.
利益披露 Disclosure
A. Ramos-López, None..
S. Rodríguez-Torres, None..
L. Palmieri, None..
Y. González-Rodríguez, None..
A. García-Negrón, None..
G. Guerrero-Hunt, None..
A. Guerrero-Thillet, None..
M. Brait, None..
D. Sidransky, None..
R. Guerrero-Preston, None.