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高分子物理在细胞形态发生和分化中对高级染色体结构的研究。

Higher-order Chromosome Structures Investigated by Polymer Physics in Cellular Morphogenesis and Differentiation.

机构信息

Dipartimento di Fisica, Università di Napoli Federico II, and INFN Napoli, Complesso Universitario di Monte Sant'Angelo, 80126, Naples, Italy.

Dipartimento di Fisica, Università di Napoli Federico II, and INFN Napoli, Complesso Universitario di Monte Sant'Angelo, 80126, Naples, Italy.

出版信息

J Mol Biol. 2020 Feb 7;432(3):701-711. doi: 10.1016/j.jmb.2019.12.017. Epub 2019 Dec 18.

DOI:10.1016/j.jmb.2019.12.017
PMID:31863751
Abstract

Experimental advances in Molecular Biology demonstrated that chromatin architecture and gene regulation are deeply related. Hi-C data, for instance, returned a scenario where chromosomes form a complex pattern of interactions, including TADs, metaTADs, and compartments, correlated with genomic and epigenomic features. Here, we discuss the emerging hierarchical organization of chromatin and show how it remains partially conserved during mouse neuronal differentiation with changes highly related to modifications in gene expression. In this scenario, models of polymer physics, such as the Strings & Binders (SBS) model, can be a crucial instrument to understand the molecular mechanisms underlying the formation of such a higher order 3D structure. In particular, we focus on the case study of the murine Pitx1 genomic region. At this locus, two alternative spatial conformations take place in the hindlimb and forelimb tissues, corresponding to two different transcriptional states of Pitx1. We finally show how the structural variants can affect the locus 3D organization leading to ectopic gene expression and limb malformations.

摘要

分子生物学的实验进展表明,染色质结构和基因调控是密切相关的。例如,Hi-C 数据呈现出这样一种情景:染色体形成了一种复杂的相互作用模式,包括 TADs、metaTADs 和隔室,与基因组和表观基因组特征相关。在这里,我们讨论了染色质的新兴层次组织,并展示了它在小鼠神经元分化过程中是如何保持部分保守的,其变化与基因表达的修饰高度相关。在这种情况下,聚合物物理模型,如 Strings & Binders (SBS) 模型,可以成为理解形成这种更高阶 3D 结构的分子机制的关键工具。特别是,我们关注了小鼠 Pitx1 基因组区域的案例研究。在这个基因座上,两种替代的空间构象发生在后肢和前肢组织中,对应于 Pitx1 的两种不同转录状态。最后,我们展示了结构变体如何影响基因座的 3D 组织,导致异位基因表达和肢体畸形。

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