Lineage commitment of embryonic cells involves MEK1-dependent clearance of pluripotency regulator Ventx2.

Elife

Institut de Biologie du Développement de Marseille, Aix Marseille Univ, CNRS, Marseille, France.

Published: June 2017

AI Article Synopsis

  • During early embryogenesis, cells transition from a pluripotent state to differentiate into various germ layers, but the mechanisms behind this are not well understood.
  • Researchers found that MEK1 and the transcription factor Ventx2 play crucial roles in this transition, with MEK1 enhancing pluripotent cells' ability to respond to differentiation signals and regulating the degradation of Ventx2.
  • They discovered that without a functional PEST motif, Ventx2 persists and disrupts normal cell division, highlighting that the asymmetric degradation of pluripotency factors is key for proper embryonic tissue development.

Article Abstract

During early embryogenesis, cells must exit pluripotency and commit to multiple lineages in all germ-layers. How this transition is operated in vivo is poorly understood. Here, we report that MEK1 and the Nanog-related transcription factor Ventx2 coordinate this transition. MEK1 was required to make pluripotent cells competent to respond to all cell fate inducers tested. Importantly, MEK1 activity was necessary to clear the pluripotency protein Ventx2 at the onset of gastrulation. Thus, concomitant MEK1 and Ventx2 knockdown restored the competence of embryonic cells to differentiate. Strikingly, MEK1 appeared to control the asymmetric inheritance of Ventx2 protein following cell division. Consistently, when Ventx2 lacked a functional PEST-destruction motif, it was stabilized, displayed symmetric distribution during cell division and could efficiently maintain pluripotency gene expression over time. We suggest that asymmetric clearance of pluripotency regulators may represent an important mechanism to ensure the progressive assembly of primitive embryonic tissues.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5487210PMC
http://dx.doi.org/10.7554/eLife.21526DOI Listing

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