Deeply conserved vertebrate nuclear architecture and rapidly evolving mammalian chromosomes revealed by reconstruction of ancestral amniote genomes
编号:48 访问权限:仅限参会人 更新:2022-07-10 15:07:16 浏览:304次 张贴报告

报告开始:2022年07月23日 14:20(Asia/Shanghai)

报告时间:20min

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摘要

Amniotes exhibit a great interspecific diversity of chromosome number and syntenic order during their 310 million years’ evolution. Previous efforts of reconstructing the ancestral karyotypes to infer the amniote chromosome evolution process suffered from using mostly scaffold-level fragmented genomes or the lack of key species at certain lineages. Here, we used 11 amniote and three outgroup species to reconstruct the 32 ancestral linkage groups (ALGs) of mammalian ancestor, and infer a total of 42 and 43 ALGs of reptile and amniote ancestors. Comparison of the reconstructed ancestral chromosomes to the extant species uncovered that the mammals exhibit extensively more intra- and inter-chromosome rearrangements than that of reptiles, with a constant pattern characterized by the fission of macrochromosomes and the fusion of microchromosomes across the amniote species. Unlike the dominant interchromosomal changes occurring among microchromosomes in reptiles, extensive rearrangements had occurred between ancestral macro- and micro-chromosomes. The chaotic changes in mammals had dramatically rearranged the chromosomal syntenic orders, as well as the spatial architectures compared to the ancestors. Despite that, most eutherian mammals, including human and mouse, have largely retained ‘bird-like’ spatial chromosome organization that the majority of ancestral microchromosome-originated sequences, even relocated to the large chromosomes, remained to be closer to the nuclear interior and have significant interchromosomal interactions in between. This process could be associated with the SINE Alu/B1 elements. We further found this nuclear architecture is driven by the organization of eu- and heterochromatin which is deeply conserved even in the invertebrate species. Our results provide novel insights into the sequence and spatial evolution of amniote chromosomes.

关键词
Vertebrate,Mammalian chromosomes,Nuclear architecture,Reconstruction
报告人
LiuJing
PhD MOE Laboratory of Biosystems Homeostasis & Protection, Life Sciences Institute, Zhejiang University, Hangzhou 310058, China;Department of Neuroscience and Developmental Biology, University of Vienna Doctoral School of Ecology and Evolution, Vienna 1090, Austria

稿件作者
LiuJing MOE Laboratory of Biosystems Homeostasis & Protection, Life Sciences Institute, Zhejiang University, Hangzhou 310058, China;Department of Neuroscience and Developmental Biology, University of Vienna Doctoral School of Ecology and Evolution, Vienna 1090, Austria
ZhouQi MOE Laboratory of Biosystems Homeostasis & Protection, Life Sciences Institute, Zhejiang University, Hangzhou 310058, China;Department of Neuroscience and Developmental Biology, University of Vienna Doctoral School of Ecology and Evolution, Vienna 1090, Austria;Center for Reproductive Medicine, The 2nd Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310052, China
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重要日期
  • 会议日期

    07月22日

    2022

    07月25日

    2022

  • 06月15日 2022

    初稿截稿日期

  • 07月05日 2022

    提前注册日期

  • 08月01日 2022

    注册截止日期

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中国生物工程学会计算生物学与生物信息学专业委员会
中山大学中山眼科中心
中山大学医学院
南方医科大学
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中山大学中山眼科中心
中山大学医学院
南方医科大学
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