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全着丝粒家蚕染色体独特的区域和分区组织

Unique territorial and compartmental organization of chromosomes in the holocentric silkmoth.

作者信息

Gil José, Rosin Leah F, Navarrete Emily, Chowdhury Neil, Abraham Sameer, Cornilleau Gaétan, Lei Elissa P, Mozziconacci Julien, Mirny Leonid A, Muller Héloïse, Drinnenberg Ines Anna

出版信息

bioRxiv. 2024 Jul 5:2023.09.14.557757. doi: 10.1101/2023.09.14.557757.

DOI:10.1101/2023.09.14.557757
PMID:37745315
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10515926/
Abstract

The hallmarks of chromosome organization in multicellular eukaryotes are chromosome territories (CT), chromatin compartments, and insulated domains, including topologically associated domains (TADs). Yet, most of these elements of chromosome organization are derived from analyses of a limited set of model organisms, while large eukaryotic groups, including insects, remain mostly unexplored. Here we combine Hi-C, biophysical modeling, and microscopy to characterize the 3D genome architecture of the silkworm, Bombyx mori. In contrast to other eukaryotes, B. mori chromosomes form highly separated territories. Similar to other eukaryotes, B. mori chromosomes segregate into active A and inactive B compartments, yet unlike in vertebrate systems, contacts between euchromatic A regions appear to be a strong driver of compartmentalization. Remarkably, we also identify a third compartment, called secluded S, with a unique contact pattern. Each S region shows prominent short-range self-contacts and is remarkably devoid of contacts with the rest of the chromosome, including other S regions. Compartment S hosts a unique combination of genetic and epigenetic features, localizes towards the periphery of CTs, and shows developmental plasticity. Biophysical modeling reveals that the formation of such secluded domains requires highly localized loop extrusion within them, along with a low level of extrusion in A and B. Our Hi-C data supports predicted genome-wide and localized extrusion. Such a broad, non-uniform distribution of extruders has not been seen in other organisms. Overall, our analyses support loop extrusion in insects and highlight the evolutionary plasticity of 3D genome organization, driven by a new combination of known processes.

摘要

多细胞真核生物中染色体组织的特征包括染色体区域(CT)、染色质区室和绝缘结构域,其中包括拓扑相关结构域(TAD)。然而,这些染色体组织的大多数元素都来自对有限的一组模式生物的分析,而包括昆虫在内的大型真核生物群体在很大程度上仍未得到探索。在这里,我们结合了Hi-C、生物物理建模和显微镜技术来表征家蚕的三维基因组结构。与其他真核生物不同,家蚕染色体形成高度分离的区域。与其他真核生物相似,家蚕染色体分为活跃的A区室和不活跃的B区室,但与脊椎动物系统不同的是,常染色质A区域之间的接触似乎是区室化的一个重要驱动因素。值得注意的是,我们还识别出了第三个区室,称为隔离的S区室,具有独特的接触模式。每个S区域都显示出显著的短程自我接触,并且与染色体的其他部分,包括其他S区域,明显缺乏接触。S区室拥有遗传和表观遗传特征的独特组合,定位于CT的外围,并表现出发育可塑性。生物物理建模表明,这种隔离结构域的形成需要在其中进行高度局部化的环挤压,同时在A区室和B区室中进行低水平的挤压。我们的Hi-C数据支持全基因组预测和局部挤压。这种广泛的、不均匀的挤压分布在其他生物体中尚未见过。总体而言,我们的分析支持昆虫中的环挤压,并强调了由已知过程的新组合驱动的三维基因组组织的进化可塑性。

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