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Integrating transposable elements in the 3D genome

机译:集成在3D基因组中的转换元素

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Chromosome organisation is increasingly recognised as an essential component of genome regulation, cell fate and cell health. Within the realm of transposable elements (TEs) however, the spatial information of how genomes are folded is still only rarely integrated in experimental studies or accounted for in modelling. Whilst polymer physics is recognised as an important tool to understand the mechanisms of genome folding, in this commentary we discuss its potential applicability to aspects of TE biology. Based on recent works on the relationship between genome organisation and TE integration, we argue that existing polymer models may be extended to create a predictive framework for the study of TE integration patterns. We suggest that these models may offer orthogonal and generic insights into the integration profiles (or “topography”) of TEs across organisms. In addition, we provide simple polymer physics arguments and preliminary molecular dynamics simulations of TEs inserting into heterogeneously flexible polymers. By considering this simple model, we show how polymer folding and local flexibility may generically affect TE integration patterns. The preliminary discussion reported in this commentary is aimed to lay the foundations for a large-scale analysis of TE integration dynamics and topography as a function of the three-dimensional host genome.
机译:染色体组织越来越被认为是基因组调控,细胞命运和细胞健康的重要组成部分。然而,在转换元件(TES)的领域内,如何折叠基因组的空间信息仍然仅在实验研究中仍然很少集成或者在建模中占用。虽然聚合物物理被认为是了解基因组折叠机制的重要工具,但在这方面,我们讨论了对TE生物学方面的潜在适用性。基于近期对基因组织组织与TE集成关系的作品,我们认为可以扩展现有的聚合物模型以为TE集成模式的研究创造预测框架。我们建议,这些模型可以向跨生物体的TES的集成概况(或“地形”)提供正交和通用的见解。此外,我们提供简单的聚合物物理争论和插入异质地柔性聚合物的TES的初步分子动力学模拟。通过考虑这个简单的模型,我们展示了聚合物折叠和局部灵活性如何易于影响TE集成模式。本评论中报告的初步讨论旨在为TE集成动态和地形的大规模分析奠定基础,作为三维宿主基因组的函数。

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