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DNA 甲基化分析作为神经肿瘤学中发现和精准诊断的模型。

DNA methylation profiling as a model for discovery and precision diagnostics in neuro-oncology.

机构信息

Department of Pathology, University of Michigan, Ann Arbor, Michigan, USA.

Department of Neuropathology, Institute of Pathology, University Hospital Heidelberg, Heidelberg, Germany.

出版信息

Neuro Oncol. 2021 Nov 2;23(23 Suppl 5):S16-S29. doi: 10.1093/neuonc/noab143.

Abstract

Recent years have witnessed a shift to more objective and biologically-driven methods for central nervous system (CNS) tumor classification. The 2016 world health organization (WHO) classification update ("blue book") introduced molecular diagnostic criteria into the definitions of specific entities as a response to the plethora of evidence that key molecular alterations define distinct tumor types and are clinically meaningful. While in the past such diagnostic alterations included specific mutations, copy number changes, or gene fusions, the emergence of DNA methylation arrays in recent years has similarly resulted in improved diagnostic precision, increased reliability, and has provided an effective framework for the discovery of new tumor types. In many instances, there is an intimate relationship between these mutations/fusions and DNA methylation signatures. The adoption of methylation data into neuro-oncology nosology has been greatly aided by the availability of technology compatible with clinical diagnostics, along with the development of a freely accessible machine learning-based classifier. In this review, we highlight the utility of DNA methylation profiling in CNS tumor classification with a focus on recently described novel and rare tumor types, as well as its contribution to refining existing types.

摘要

近年来,中枢神经系统(CNS)肿瘤的分类已经转向更客观和更具生物学驱动的方法。2016 年世界卫生组织(WHO)分类更新(“蓝皮书”)将分子诊断标准纳入了特定实体的定义中,以应对大量证据表明关键的分子改变定义了不同的肿瘤类型,并且具有临床意义。虽然过去这些诊断改变包括特定的突变、拷贝数变化或基因融合,但近年来 DNA 甲基化图谱的出现同样提高了诊断精度、可靠性,并为发现新的肿瘤类型提供了有效的框架。在许多情况下,这些突变/融合与 DNA 甲基化特征之间存在密切关系。随着与临床诊断兼容的技术的可用性以及基于机器学习的分类器的开发,甲基化数据在神经肿瘤学分类中的应用得到了极大的促进。在这篇综述中,我们强调了 DNA 甲基化分析在 CNS 肿瘤分类中的应用,重点介绍了最近描述的新型和罕见肿瘤类型,以及其对现有类型的细化的贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/91cd/8561128/3ff594538ca4/noab143f0001.jpg

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