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Evolutionary transition between invertebrates and vertebrates via methylation reprogramming in embryogenesis

  • Xiaocui Xu
  • , Guoqiang Li
  • , Congru Li
  • , Jing Zhang
  • , Qiang Wang
  • , David K. Simmons
  • , Xuepeng Chen
  • , Naveen Wijesena
  • , Wei Zhu
  • , Zhanyang Wang
  • , Zhenhua Wang
  • , Bao Ju
  • , Weimin Ci
  • , Xuemei Lu
  • , Daqi Yu
  • , Qian Fei Wang
  • , Neelakanteswar Aluru
  • , Paola Oliveri
  • , Yong E. Zhang
  • , Mark Q. Martindale
  • Jiang Liu*
*Corresponding author for this work
  • CAS - Beijing Institute of Genomics
  • University of Chinese Academy of Sciences
  • Chinese Academy of Agricultural Sciences
  • University of Florida
  • Yantai University
  • Chinese Academy of Sciences
  • Woods Hole Oceanographic Institution
  • University College London

Research output: Contribution to journalArticlepeer-review

Abstract

Major evolutionary transitions are enigmas, and the most notable enigma is between invertebrates and vertebrates, with numerous spectacular innovations. To search for the molecular connections involved, we asked whether global epigenetic changes may offer a clue by surveying the inheritance and reprogramming of parental DNA methylation across metazoans. We focused on gametes and early embryos, where the methylomes are known to evolve divergently between fish and mammals. Here, we find that methylome reprogramming during embryogenesis occurs neither in pre-bilaterians such as cnidarians nor in protostomes such as insects, but clearly presents in deuterostomes such as echinoderms and invertebrate chordates, and then becomes more evident in vertebrates. Functional association analysis suggests that DNA methylation reprogramming is associated with development, reproduction and adaptive immunity for vertebrates, but not for invertebrates. Interestingly, the single HOX cluster of invertebrates maintains unmethylated status in all stages examined. In contrast, the multiple HOX clusters show dramatic dynamics of DNA methylation during vertebrate embryogenesis. Notably, the methylation dynamics of HOX clusters are associated with their spatiotemporal expression in mammals. Our study reveals that DNA methylation reprogramming has evolved dramatically during animal evolution, especially after the evolutionary transitions from invertebrates to vertebrates, and then to mammals.

Original languageEnglish
Pages (from-to)993-1003
Number of pages11
JournalNational Science Review
Volume6
Issue number5
DOIs
StatePublished - 1 Oct 2019
Externally publishedYes

Keywords

  • DNA methylation
  • development
  • evolution
  • reprogramming

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