4.8 Article

Primate-specific transposable elements shape transcriptional networks during human development

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-34800-w

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资金

  1. Swiss National Science Foundation
  2. European Research Council [268721, 694658]
  3. EPFL/Marie Skodowska-Curie Fund
  4. Association pour la Recherche sur le Cancer (ARC)
  5. Fondation Bettencourt
  6. European Research Council (ERC) [268721, 694658] Funding Source: European Research Council (ERC)

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The human genome contains over 4.5 million inserts derived from transposable elements (TEs) as a result of recurrent waves of invasion and internal propagation. Recent research shows that evolutionarily recent TE subfamilies play a role in regulating later stages of human embryonic development, specifically influencing the expression of genes involved in gastrulation and early organogenesis.
The human genome harbors more than 4.5 million transposable element (TE)-derived insertions, the result of recurrent waves of invasion and internal propagation. Here they show that TEs belonging to evolutionarily recent subfamilies go on to regulate later stages of human embryonic development, notably conditioning the expression of genes involved in gastrulation and early organogenesis. The human genome contains more than 4.5 million inserts derived from transposable elements (TEs), the result of recurrent waves of invasion and internal propagation throughout evolution. For new TE copies to be inherited, they must become integrated in the genome of the germline or pre-implantation embryo, which requires that their source TE be expressed at these stages. Accordingly, many TEs harbor DNA binding sites for the pluripotency factors OCT4, NANOG, SOX2, and KLFs and are transiently expressed during embryonic genome activation. Here, we describe how many primate-restricted TEs have additional binding sites for lineage-specific transcription factors driving their expression during human gastrulation and later steps of fetal development. These TE integrants serve as lineage-specific enhancers fostering the transcription, amongst other targets, of KRAB-zinc finger proteins (KZFPs) of comparable evolutionary age, which in turn corral the activity of TE-embedded regulatory sequences in a similarly lineage-restricted fashion. Thus, TEs and their KZFP controllers play broad roles in shaping transcriptional networks during early human development.

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