Department of Electrical and Computer Engineering, Seoul National University, Seoul, 08826, Republic of Korea.
Interdisciplinary Program in Bioengineering, Seoul National University, Seoul, 08826, Republic of Korea.
Nat Commun. 2023 Aug 29;14(1):5261. doi: 10.1038/s41467-023-41019-w.
Determining mutational landscapes in a spatial context is essential for understanding genetically heterogeneous cell microniches. Current approaches, such as Multiple Displacement Amplification (MDA), offer high genome coverage but limited multiplexing, which hinders large-scale spatial genomic studies. Here, we introduce barcoded MDA (bMDA), a technique that achieves high-coverage genomic analysis of low-input DNA while enhancing the multiplexing capabilities. By incorporating cell barcodes during MDA, bMDA streamlines library preparation in one pot, thereby overcoming a key bottleneck in spatial genomics. We apply bMDA to the integrative spatial analysis of triple-negative breast cancer tissues by examining copy number alterations, single nucleotide variations, structural variations, and kataegis signatures for each spatial microniche. This enables the assessment of subclonal evolutionary relationships within a spatial context. Therefore, bMDA has emerged as a scalable technology with the potential to advance the field of spatial genomics significantly.
在空间背景下确定突变景观对于理解遗传异质性细胞微环境至关重要。目前的方法,如多重置换扩增(MDA),提供了高基因组覆盖度,但多路复用能力有限,这阻碍了大规模的空间基因组研究。在这里,我们引入了带有条形码的 MDA(bMDA),这是一种在低输入 DNA 上实现高覆盖率基因组分析的技术,同时增强了多路复用能力。通过在 MDA 过程中加入细胞条形码,bMDA 简化了文库制备过程,从而克服了空间基因组学的一个关键瓶颈。我们通过检查每个空间微环境的拷贝数改变、单核苷酸变异、结构变异和 kataegis 特征,将 bMDA 应用于三阴性乳腺癌组织的综合空间分析。这使得能够在空间背景下评估亚克隆进化关系。因此,bMDA 已成为一种具有潜力的可扩展技术,可以显著推动空间基因组学领域的发展。