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染色体结构的构象分析揭示了染色体形态在基因功能中的重要作用。

Conformational analysis of chromosome structures reveals vital role of chromosome morphology in gene function.

作者信息

Zhan Yuxiang, Yildirim Asli, Boninsegna Lorenzo, Alber Frank

出版信息

bioRxiv. 2023 Feb 19:2023.02.18.528138. doi: 10.1101/2023.02.18.528138.

Abstract

The 3D conformations of chromosomes are highly variant and stochastic between single cells. Recent progress in multiplexed 3D FISH imaging, single cell Hi-C and genome structure modeling allows a closer analysis of the structural variations of chromosomes between cells to infer the functional implications of structural heterogeneity. Here, we introduce a two-step dimensionality reduction method to classify a population of single cell 3D chromosome structures, either from simulation or imaging experiment, into dominant conformational clusters with distinct chromosome morphologies. We found that almost half of all structures for each chromosome can be described by 5-10 dominant chromosome morphologies, which play a fundamental role in establishing conformational variation of chromosomes. These morphologies are conserved in different cell types, but vary in their relative proportion of structures. Chromosome morphologies are distinguished by the presence or absence of characteristic chromosome territory domains, which expose some chromosomal regions to varying nuclear environments in different morphologies, such as nuclear positions and associations to nuclear speckles, lamina, and nucleoli. These observations point to distinct functional variations for the same chromosomal region in different chromosome morphologies. We validated chromosome conformational clusters and their associated subnuclear locations with data from DNA-MERFISH imaging and single cell sci-HiC data. Our method provides an important approach to assess the variation of chromosome structures between cells and link differences in conformational states with distinct gene functions.

摘要

染色体的三维构象在单细胞之间高度可变且具有随机性。多重三维荧光原位杂交成像、单细胞Hi-C和基因组结构建模方面的最新进展,使得对细胞间染色体结构变异进行更深入分析成为可能,从而推断结构异质性的功能影响。在此,我们引入一种两步降维方法,将来自模拟或成像实验的单细胞三维染色体结构群体分类为具有不同染色体形态的主要构象簇。我们发现,每条染色体几乎一半的结构可以由5-10种主要染色体形态来描述,这些形态在建立染色体构象变异中起着基础性作用。这些形态在不同细胞类型中是保守的,但在结构的相对比例上有所不同。染色体形态通过特征性染色体区域结构域的存在与否来区分,这些结构域在不同形态中将一些染色体区域暴露于不同的核环境中,如核位置以及与核斑、核纤层和核仁的关联。这些观察结果表明,同一染色体区域在不同染色体形态中具有不同的功能变异。我们利用DNA-MERFISH成像和单细胞sci-HiC数据验证了染色体构象簇及其相关的亚核位置。我们的方法为评估细胞间染色体结构变异以及将构象状态差异与不同基因功能联系起来提供了一种重要途径。

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