超越倒置和缺失:动物基因组易位、分裂和融合的进化和功能见解。

IF 3.9 2区 生物学 Q2 ECOLOGY
Célian Diblasi, Marie Saitou
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引用次数: 0

摘要

在高通量测序时代,结构变异,如缺失、插入和倒置,已日益被认为是基因组进化的重要驱动因素。然而,涉及多染色体的大规模染色体重排,包括易位、染色体融合和分裂,由于检测和分析方面的挑战,特别是在临床和模型系统之外,研究仍然相对不足。虽然对易位的早期理解来自人类癌症基因组学,但这种突变如何影响动物谱系的基因组进化仍然没有得到充分的了解。长读测序、染色体水平组装和三维基因组构象技术的最新进展揭示了这些大型基因组结构重排的普遍性和进化意义。易位可以将基因重新安置到新的调控环境中,染色体融合可以抑制重组,染色体分裂可以重组染色体结构,改变基因的空间和调控环境,从而塑造进化潜力。转座因子通过促进染色体不稳定性和作为重排的底物而使这种情况进一步复杂化。总之,这些变化可以驱动适应性进化,形成核型进化,并促进性染色体更新。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Beyond inversions and deletions: the evolutionary and functional insights from translocations, fissions, and fusions in animal genomes.

Structural variants, such as deletions, insertions, and inversions, have been increasingly recognized as important drivers of genome evolution, in the era of high-throughput sequencing. However, large-scale chromosomal rearrangements involving multiple chromosomes, including translocations, chromosomal fusions, and fissions, remain relatively understudied, especially outside of clinical and model systems, due to challenges in their detection and analysis. While the earlier understanding of translocations came from human cancer genomics, how such mutations have shaped genome evolution across animal lineages remains insufficiently understood. Recent advances in long-read sequencing, chromosome-level assemblies, and 3D genome conformation techniques are now revealing the prevalence and evolutionary significance of these large genomic structural rearrangements. Translocations can relocate genes into new regulatory environments, chromosome fusions can suppress recombination, and chromosome fissions can restructure chromosomal architecture, modifying the spatial and regulatory context of genes, thereby shaping evolutionary potential. Transposable elements further complicate this landscape by both promoting chromosomal instability and serving as substrates for rearrangement. Together, these changes can drive adaptive evolution, shape karyotype evolution, and contribute to sex chromosome turnover.

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来源期刊
Heredity
Heredity 生物-进化生物学
CiteScore
7.50
自引率
2.60%
发文量
84
审稿时长
4-8 weeks
期刊介绍: Heredity is the official journal of the Genetics Society. It covers a broad range of topics within the field of genetics and therefore papers must address conceptual or applied issues of interest to the journal''s wide readership
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