对染色体结构和转录之间的相关性的基本见解。

IF 2 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Physical biology Pub Date : 2023-08-04 DOI:10.1088/1478-3975/ace8e5
Swayamshree Senapati, Inayat Ullah Irshad, Ajeet K Sharma, Hemant Kumar
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引用次数: 1

摘要

真核生物染色体表现出一种跨越长度范围的等级组织,从称为环的子区域,通常包含数百个碱基对,到更大的染色体区域,可以包含几个百万碱基对。染色体构象捕获实验涉及高通量测序方法与显微镜技术相结合,以前所未有的细节对染色体间和染色体内相互作用有了新的认识。这些信息也为基因组结构和基因表达之间的关系提供了机制上的见解。在这篇文章中,我们回顾了染色体间的三维相互作用,拓扑相关结构域和环水平以及这些相互作用对转录过程的影响的最新发现。我们还讨论了目前对涉及染色体多层结构组织的各种生物物理过程的理解。然后,我们从微扰全基因组关联研究中讨论了基因表达与基因组结构之间的关系。此外,为了更好地理解染色体结构和功能是如何联系在一起的,我们强调表观遗传修饰在基因表达调控中的作用。这种对基因组结构和基因表达之间关系的理解可以为潜在的未来发现和治疗研究提供一个新的视角。
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Fundamental insights into the correlation between chromosome configuration and transcription.

Eukaryotic chromosomes exhibit a hierarchical organization that spans a spectrum of length scales, ranging from sub-regions known as loops, which typically comprise hundreds of base pairs, to much larger chromosome territories that can encompass a few mega base pairs. Chromosome conformation capture experiments that involve high-throughput sequencing methods combined with microscopy techniques have enabled a new understanding of inter- and intra-chromosomal interactions with unprecedented details. This information also provides mechanistic insights on the relationship between genome architecture and gene expression. In this article, we review the recent findings on three-dimensional interactions among chromosomes at the compartment, topologically associating domain, and loop levels and the impact of these interactions on the transcription process. We also discuss current understanding of various biophysical processes involved in multi-layer structural organization of chromosomes. Then, we discuss the relationships between gene expression and genome structure from perturbative genome-wide association studies. Furthermore, for a better understanding of how chromosome architecture and function are linked, we emphasize the role of epigenetic modifications in the regulation of gene expression. Such an understanding of the relationship between genome architecture and gene expression can provide a new perspective on the range of potential future discoveries and therapeutic research.

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来源期刊
Physical biology
Physical biology 生物-生物物理
CiteScore
4.20
自引率
0.00%
发文量
50
审稿时长
3 months
期刊介绍: Physical Biology publishes articles in the broad interdisciplinary field bridging biology with the physical sciences and engineering. This journal focuses on research in which quantitative approaches – experimental, theoretical and modeling – lead to new insights into biological systems at all scales of space and time, and all levels of organizational complexity. Physical Biology accepts contributions from a wide range of biological sub-fields, including topics such as: molecular biophysics, including single molecule studies, protein-protein and protein-DNA interactions subcellular structures, organelle dynamics, membranes, protein assemblies, chromosome structure intracellular processes, e.g. cytoskeleton dynamics, cellular transport, cell division systems biology, e.g. signaling, gene regulation and metabolic networks cells and their microenvironment, e.g. cell mechanics and motility, chemotaxis, extracellular matrix, biofilms cell-material interactions, e.g. biointerfaces, electrical stimulation and sensing, endocytosis cell-cell interactions, cell aggregates, organoids, tissues and organs developmental dynamics, including pattern formation and morphogenesis physical and evolutionary aspects of disease, e.g. cancer progression, amyloid formation neuronal systems, including information processing by networks, memory and learning population dynamics, ecology, and evolution collective action and emergence of collective phenomena.
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