Garcia-Heras Jaime
J Assoc Genet Technol. 2021;47(4):191-200.
Optical Genome Mapping (OGM) has emerged as a very powerful technology to diagnose in a single step a large variety of chromosomal abnormalities with high accuracy, at an unprecedented resolution, and in a time- and cost-effective way. A few recent studies provided a proof-of-principle that OGM can replace traditional cytogenomic assays (karyotyping, FISH, and SNP-arrays) in constitutional studies and the evaluation of hematologic disorders. OGM not only identified abnormalities previously diagnosed by standard methods, it highlighted the structural complexity of some rearrangements and uncovered novel findings with potential diagnostic, prognostic and therapeutic significance. While OGM still seems to have some technical and diagnostic limitations that require fine-tuning and improvement, it has so far shown so many promising advantages that future routine use heralds a revolutionary era in next-generation cytogenomic analysis. Keywords: Optical Genome Mapping, cytogenetic diagnosis, chromosome abnormalities detection, cancer cytogenetics, constitutional chromosome aberrations, cytogenomic variation, structural variants (SVs), copy number variants (CNVs)
光学基因组图谱(OGM)已成为一项非常强大的技术,能够以前所未有的分辨率,以经济高效的方式在一步中高精度诊断多种染色体异常。最近的一些研究提供了原理证明,即OGM可在体质研究和血液系统疾病评估中取代传统的细胞基因组分析方法(核型分析、荧光原位杂交和单核苷酸多态性阵列分析)。OGM不仅能识别先前通过标准方法诊断出的异常,还突出了一些重排的结构复杂性,并揭示了具有潜在诊断、预后和治疗意义的新发现。虽然OGM似乎仍存在一些需要微调与改进的技术和诊断局限性,但迄今为止它已展现出诸多极具前景的优势,预示着下一代细胞基因组分析的常规应用将开启一个变革性的时代。关键词:光学基因组图谱、细胞遗传学诊断、染色体异常检测、癌症细胞遗传学、体质性染色体畸变、细胞基因组变异、结构变异(SVs)、拷贝数变异(CNVs)