绘制三维基因组结构。

IF 4.4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ghazaleh Tavallaee, Elias Orouji
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引用次数: 0

摘要

基因组的空间组织在调控基因表达、细胞分化和基因组稳定性方面起着至关重要的作用。这篇综述深入研究了用于绘制基因组三维(3D)结构的方法、计算工具和框架,重点是基于结扎和无结扎的技术。我们还探讨了这些方法的局限性,包括由限制性内切酶酶切和连接效率低下引起的偏差,并将它们与最近的无连接方法(如基因组结构映射(GAM)和标签扩展的相互作用的分裂池识别(SPRITE))进行了比较。这些技术通过绕过连接步骤提供了对高阶染色质结构的独特见解,从而能够捕获复杂的多路相互作用,这些相互作用通常难以用传统方法解决。此外,我们通过多模式方法讨论了染色质相互作用数据与其他基因组层的整合,包括单细胞技术的最新进展,如sci-HiC和scSPRITE,这有助于揭示染色质结构在发育和疾病中的异质性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mapping the 3D genome architecture
The spatial organization of the genome plays a critical role in regulating gene expression, cellular differentiation, and genome stability. This review provides an in-depth examination of the methodologies, computational tools, and frameworks developed to map the three-dimensional (3D) architecture of the genome, focusing on both ligation-based and ligation-free techniques. We also explore the limitations of these methods, including biases introduced by restriction enzyme digestion and ligation inefficiencies, and compare them to more recent ligation-free approaches such as Genome Architecture Mapping (GAM) and Split-Pool Recognition of Interactions by Tag Extension (SPRITE). These techniques offer unique insights into higher-order chromatin structures by bypassing ligation steps, thus enabling the capture of complex multi-way interactions that are often challenging to resolve with traditional methods. Furthermore, we discuss the integration of chromatin interaction data with other genomic layers through multimodal approaches, including recent advances in single-cell technologies like sci-HiC and scSPRITE, which help unravel the heterogeneity of chromatin architecture in development and disease.
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来源期刊
Computational and structural biotechnology journal
Computational and structural biotechnology journal Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
9.30
自引率
3.30%
发文量
540
审稿时长
6 weeks
期刊介绍: Computational and Structural Biotechnology Journal (CSBJ) is an online gold open access journal publishing research articles and reviews after full peer review. All articles are published, without barriers to access, immediately upon acceptance. The journal places a strong emphasis on functional and mechanistic understanding of how molecular components in a biological process work together through the application of computational methods. Structural data may provide such insights, but they are not a pre-requisite for publication in the journal. Specific areas of interest include, but are not limited to: Structure and function of proteins, nucleic acids and other macromolecules Structure and function of multi-component complexes Protein folding, processing and degradation Enzymology Computational and structural studies of plant systems Microbial Informatics Genomics Proteomics Metabolomics Algorithms and Hypothesis in Bioinformatics Mathematical and Theoretical Biology Computational Chemistry and Drug Discovery Microscopy and Molecular Imaging Nanotechnology Systems and Synthetic Biology
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