Chromatin structure in cancer.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2022-07-28 DOI:10.1186/s12860-022-00433-6
Meng Wang, Benjamin D Sunkel, William C Ray, Benjamin Z Stanton
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引用次数: 7

Abstract

In the past decade, we have seen the emergence of sequence-based methods to understand chromosome organization. With the confluence of in situ approaches to capture information on looping, topological domains, and larger chromatin compartments, understanding chromatin-driven disease is becoming feasible. Excitingly, recent advances in single molecule imaging with capacity to reconstruct "bulk-cell" features of chromosome conformation have revealed cell-to-cell chromatin structural variation. The fundamental question motivating our analysis of the literature is, can altered chromatin structure drive tumorigenesis? As our community learns more about rare disease, including low mutational frequency cancers, understanding "chromatin-driven" pathology will illuminate the regulatory structures of the genome. We describe recent insights into altered genome architecture in human cancer, highlighting multiple pathways toward disruptions of chromatin structure, including structural variation, noncoding mutations, metabolism, and de novo mutations to architectural regulators themselves. Our analysis of the literature reveals that deregulation of genome structure is characteristic in distinct classes of chromatin-driven tumors. As we begin to integrate the findings from single cell imaging studies and chromatin structural sequencing, we will be able to understand the diversity of cells within a common diagnosis, and begin to define structure-function relationships of the misfolded genome.

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癌症中的染色质结构。
在过去的十年中,我们已经看到了基于序列的方法来理解染色体组织的出现。随着原位方法获取环、拓扑结构域和更大染色质室的信息的融合,理解染色质驱动的疾病变得可行。令人兴奋的是,单分子成像技术的最新进展,能够重建染色体构象的“大细胞”特征,揭示了细胞间染色质结构的变化。激发我们对文献进行分析的基本问题是,染色质结构的改变能否驱动肿瘤发生?随着我们对包括低突变频率癌症在内的罕见疾病的了解越来越多,理解“染色质驱动”的病理将阐明基因组的调节结构。我们描述了人类癌症中基因组结构改变的最新见解,强调了染色质结构破坏的多种途径,包括结构变异、非编码突变、代谢和结构调节因子本身的新生突变。我们对文献的分析表明,基因组结构的失调是染色质驱动肿瘤的不同类别的特征。当我们开始整合单细胞成像研究和染色质结构测序的发现时,我们将能够在一个常见的诊断中理解细胞的多样性,并开始定义错误折叠基因组的结构-功能关系。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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