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Loss of PRC2 subunits primes lineage choice during exit of pluripotency

Author

Listed:
  • Chet H. Loh

    (Radboud University)

  • Siebe Genesen

    (Radboud University)

  • Matteo Perino

    (Radboud University
    European Molecular Biology Laboratory (EMBL))

  • Magnus R. Bark

    (Radboud University)

  • Gert Jan C. Veenstra

    (Radboud University)

Abstract

Polycomb Repressive Complex 2 (PRC2) is crucial for the coordinated expression of genes during early embryonic development, catalyzing histone H3 lysine 27 trimethylation. Two distinct PRC2 complexes, PRC2.1 and PRC2.2, contain respectively MTF2 and JARID2 in embryonic stem cells (ESCs). In this study, we explored their roles in lineage specification and commitment, using single-cell transcriptomics and mouse embryoid bodies derived from Mtf2 and Jarid2 null ESCs. We observe that the loss of Mtf2 results in enhanced and faster differentiation towards cell fates from all germ layers, while the Jarid2 null cells are predominantly directed towards early differentiating precursors, with reduced efficiency towards mesendodermal lineages. These effects are caused by derepression of developmental regulators that are poised for activation in pluripotent cells and gain H3K4me3 at their promoters in the absence of PRC2 repression. Upon lineage commitment, the differentiation trajectories are relatively similar to those of wild-type cells. Together, our results uncover a major role for MTF2-containing PRC2.1 in balancing poised lineage-specific gene activation, whereas the contribution of JARID2-containing PRC2 is more selective in nature compared to MTF2. These data explain how PRC2 imposes thresholds for lineage choice during the exit of pluripotency.

Suggested Citation

  • Chet H. Loh & Siebe Genesen & Matteo Perino & Magnus R. Bark & Gert Jan C. Veenstra, 2021. "Loss of PRC2 subunits primes lineage choice during exit of pluripotency," Nature Communications, Nature, vol. 12(1), pages 1-14, December.
  • Handle: RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-27314-4
    DOI: 10.1038/s41467-021-27314-4
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    1. Susanne C. van den Brink & Anna Alemany & Vincent van Batenburg & Naomi Moris & Marloes Blotenburg & Judith Vivié & Peter Baillie-Johnson & Jennifer Nichols & Katharina F. Sonnen & Alfonso Martinez Ar, 2020. "Publisher Correction: Single-cell and spatial transcriptomics reveal somitogenesis in gastruloids," Nature, Nature, vol. 579(7799), pages 11-11, March.
    2. Tarjei S. Mikkelsen & Manching Ku & David B. Jaffe & Biju Issac & Erez Lieberman & Georgia Giannoukos & Pablo Alvarez & William Brockman & Tae-Kyung Kim & Richard P. Koche & William Lee & Eric Mendenh, 2007. "Genome-wide maps of chromatin state in pluripotent and lineage-committed cells," Nature, Nature, vol. 448(7153), pages 553-560, August.
    3. Haojie Li & Robert Liefke & Junyi Jiang & Jesse Vigoda Kurland & Wei Tian & Pujuan Deng & Weidi Zhang & Qian He & Dinshaw J. Patel & Martha L. Bulyk & Yang Shi & Zhanxin Wang, 2017. "Polycomb-like proteins link the PRC2 complex to CpG islands," Nature, Nature, vol. 549(7671), pages 287-291, September.
    4. Stefanie Grosswendt & Helene Kretzmer & Zachary D. Smith & Abhishek Sampath Kumar & Sara Hetzel & Lars Wittler & Sven Klages & Bernd Timmermann & Shankar Mukherji & Alexander Meissner, 2020. "Epigenetic regulator function through mouse gastrulation," Nature, Nature, vol. 584(7819), pages 102-108, August.
    5. Leonardo Beccari & Naomi Moris & Mehmet Girgin & David A. Turner & Peter Baillie-Johnson & Anne-Catherine Cossy & Matthias P. Lutolf & Denis Duboule & Alfonso Martinez Arias, 2018. "Multi-axial self-organization properties of mouse embryonic stem cells into gastruloids," Nature, Nature, vol. 562(7726), pages 272-276, October.
    6. Kim Sneppen & Leonie Ringrose, 2019. "Theoretical analysis of Polycomb-Trithorax systems predicts that poised chromatin is bistable and not bivalent," Nature Communications, Nature, vol. 10(1), pages 1-18, December.
    7. Sarah Cooper & Anne Grijzenhout & Elizabeth Underwood & Katia Ancelin & Tianyi Zhang & Tatyana B. Nesterova & Burcu Anil-Kirmizitas & Andrew Bassett & Susanne M. Kooistra & Karl Agger & Kristian Helin, 2016. "Jarid2 binds mono-ubiquitylated H2A lysine 119 to mediate crosstalk between Polycomb complexes PRC1 and PRC2," Nature Communications, Nature, vol. 7(1), pages 1-8, December.
    8. Susanne C. van den Brink & Anna Alemany & Vincent van Batenburg & Naomi Moris & Marloes Blotenburg & Judith Vivié & Peter Baillie-Johnson & Jennifer Nichols & Katharina F. Sonnen & Alfonso Martinez Ar, 2020. "Single-cell and spatial transcriptomics reveal somitogenesis in gastruloids," Nature, Nature, vol. 582(7812), pages 405-409, June.
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    1. Sébastien Durand & Marion Bruelle & Fleur Bourdelais & Bigitha Bennychen & Juliana Blin-Gonthier & Caroline Isaac & Aurélia Huyghe & Sylvie Martel & Antoine Seyve & Christophe Vanbelle & Annie Adrait , 2023. "RSL24D1 sustains steady-state ribosome biogenesis and pluripotency translational programs in embryonic stem cells," Nature Communications, Nature, vol. 14(1), pages 1-17, December.

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