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Primate-specific endogenous retrovirus-driven transcription defines naive-like stem cells. | LitMetric

AI Article Synopsis

  • Naive embryonic stem cells are valuable for research and therapy due to their extensive developmental abilities, but isolating human versions has been challenging.
  • Recent findings identify a sub-group of human embryonic stem cells (hESCs) and induced pluripotent stem cells (hiPSCs) that exhibit characteristics of naive cells, linked to increased activity of a retrovirus called HERVH.
  • The research highlights that HERVH elements help regulate factors crucial for maintaining stem cell properties and that disrupting this system affects the self-renewal capabilities of these naive-like cells.

Article Abstract

Naive embryonic stem cells hold great promise for research and therapeutics as they have broad and robust developmental potential. While such cells are readily derived from mouse blastocysts it has not been possible to isolate human equivalents easily, although human naive-like cells have been artificially generated (rather than extracted) by coercion of human primed embryonic stem cells by modifying culture conditions or through transgenic modification. Here we show that a sub-population within cultures of human embryonic stem cells (hESCs) and induced pluripotent stem cells (hiPSCs) manifests key properties of naive state cells. These naive-like cells can be genetically tagged, and are associated with elevated transcription of HERVH, a primate-specific endogenous retrovirus. HERVH elements provide functional binding sites for a combination of naive pluripotency transcription factors, including LBP9, recently recognized as relevant to naivety in mice. LBP9-HERVH drives hESC-specific alternative and chimaeric transcripts, including pluripotency-modulating long non-coding RNAs. Disruption of LBP9, HERVH and HERVH-derived transcripts compromises self-renewal. These observations define HERVH expression as a hallmark of naive-like hESCs, and establish novel primate-specific transcriptional circuitry regulating pluripotency.

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Source
http://dx.doi.org/10.1038/nature13804DOI Listing

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