首页> 外文期刊>Biochimica et Biophysica Acta. Gene Regulatory Mechanisms >Nuclear organization and chromatin dynamics in yeast: Biophysical models or biologically driven interactions?
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Nuclear organization and chromatin dynamics in yeast: Biophysical models or biologically driven interactions?

机译:酵母中的核组织和染色质动力学:生物物理模型还是生物驱动的相互作用?

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Over the past decade, tremendous progress has been made in understanding the spatial organization of genes and chromosomes. Nuclear organization can be thought of as information that is not encoded in DNA, but which nevertheless impacts gene expression. Nuclear organizational influences can be cell-specific and are potentially heritable. Thus, nuclear organization fulfills all the criteria necessary for it to be considered an authentic level of epigenetic information. Chromosomal nuclear organization is primarily dictated by the biophysical properties of chromatin. Diffusion models of polymers confined in the crowded nuclear space accurately recapitulate experimental observation. Diffusion is a Brownian process, which implies that the positions of chromosomes and genes are not defined deterministically but are likely to be dictated by the laws of probability. Despite the small size of their nuclei, budding yeast have been instrumental in discovering how epigenetic information is encoded in the spatial organization of the genome. The relatively simple organization of the yeast nucleus and the very high number of genetically identical cells that can be observed under fluorescent microscopy allow statistically robust definitions of the gene and chromosome positions in the nuclear space to be constructed. In this review, we will focus on how the spatial organization of the chromatin in the yeast nucleus might impact transcription. This article is part of a Special Issue entitled: Nuclear Transport and RNA Processing.
机译:在过去的十年中,在理解基因和染色体的空间组织方面取得了巨大的进步。可以将核组织视为不是DNA编码的信息,但仍会影响基因表达。核组织的影响可能是特定于细胞的,并且可能是遗传的。因此,核组织满足了将其视为真实水平的表观遗传信息所必需的所有标准。染色体核组织主要由染色质的生物物理特性决定。限制在拥挤的核空间中的聚合物扩散模型准确地概括了实验观察。扩散是一个布朗过程,这意味着染色体和基因的位置不是确定性的,而是可能由概率定律决定的。尽管核的大小很小,但发芽的酵母在发现表观遗传信息如何在基因组的空间组织中编码方面发挥了作用。酵母核的相对简单的组织和可以在荧光显微镜下观察到的大量遗传上相同的细胞,使得可以在统计学上可靠地定义基因和染色体在核空间中的位置。在这篇综述中,我们将重点关注酵母核中染色质的空间组织如何影响转录。本文是名为“核转运和RNA处理”的特刊的一部分。

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