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首页> 外文期刊>ACS nano >Genome-in-a-Box: Building a Chromosome from the Bottom Up
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Genome-in-a-Box: Building a Chromosome from the Bottom Up

机译:基因组内:从底部构建染色体

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摘要

Chromosome structure and dynamics are essential for life, as the way that our genomes are spatially organized within cells is crucial for gene expression, differentiation, and genome transfer to daughter cells. There is a wide variety of methods available to study chromosomes, ranging from live-cell studies to single-molecule biophysics, which we briefly review. While these technologies have yielded a wealth of data, such studies still leave a significant gap between top-down experiments on live cells and bottom-up in vitro single-molecule studies of DNA-protein interactions. Here, we introduce " genome in a box " (GenBox) as an alternative in vitro approach to build and study chromosomes, which bridges this gap. The concept is to assemble a chromosome from the bottom up by taking deproteinated genome-sized DNA isolated from live cells and subsequently add purified DNA-organizing elements, followed by encapsulation in cell-sized containers using microfluidics. Grounded in the rationale of synthetic cell research, the approach would enable to experimentally study emergent effects at the global genome level that arise from the collective action of local DNA-structuring elements. We review the various DNA-structuring elements present in nature, from nucleoid-associated proteins and SMC complexes to phase separation and macromolecular crowders. Finally, we discuss how GenBox can contribute to several open questions on chromosome structure and dynamics.
机译:染色体结构和动力学对生命至关重要,因为我们的基因组在细胞内的空间组织方式对基因表达、分化和基因组转移到子细胞至关重要。有各种各样的方法可以用来研究染色体,从活细胞研究到单分子生物物理学,我们简要回顾一下。虽然这些技术已经产生了大量数据,但这些研究在活细胞自上而下的实验和DNA-蛋白质相互作用的自下而上的体外单分子研究之间仍然存在巨大差距。在这里,我们介绍了“盒子中的基因组”(GenBox)作为一种替代体外方法来构建和研究染色体,这填补了这一空白。其概念是通过从活细胞中分离出的脱蛋白基因组大小的DNA,然后添加纯化的DNA组织元件,然后使用微流体将其封装在细胞大小的容器中,从下至上组装染色体。基于合成细胞研究的基本原理,该方法将能够在全球基因组水平上对局部DNA结构元素的集体作用产生的紧急效应进行实验研究。我们回顾了自然界中存在的各种DNA结构元素,从类核相关蛋白和SMC复合物到相分离和大分子拥挤物。最后,我们将讨论GenBox如何对染色体结构和动力学的几个开放性问题做出贡献。

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