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Organization of the Pluripotent Genome

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Date 2020 Sep 15
PMID 32928781
Citations 7
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Abstract

In the past several decades, the establishment of in vitro models of pluripotency has ushered in a golden era for developmental and stem cell biology. Research in this arena has led to profound insights into the regulatory features that shape early embryonic development. Nevertheless, an integrative theory of the epigenetic principles that govern the pluripotent nucleus remains elusive. Here, we summarize the epigenetic characteristics that define the pluripotent state. We cover what is currently known about the epigenome of pluripotent stem cells and reflect on the use of embryonic stem cells as an experimental system. In addition, we highlight insights from super-resolution microscopy, which have advanced our understanding of the form and function of chromatin, particularly its role in establishing the characteristically "open chromatin" of pluripotent nuclei. Further, we discuss the rapid improvements in 3C-based methods, which have given us a means to investigate the 3D spatial organization of the pluripotent genome. This has aided the adaptation of prior notions of a "pluripotent molecular circuitry" into a more holistic model, where hotspots of co-interacting domains correspond with the accumulation of pluripotency-associated factors. Finally, we relate these earlier hypotheses to an emerging model of phase separation, which posits that a biophysical mechanism may presuppose the formation of a pluripotent-state-defining transcriptional program.

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References
1.
Bascom G, Schlick T . Linking Chromatin Fibers to Gene Folding by Hierarchical Looping. Biophys J. 2017; 112(3):434-445. PMC: 5300842. DOI: 10.1016/j.bpj.2017.01.003. View

2.
Mascetti V, Pedersen R . Contributions of Mammalian Chimeras to Pluripotent Stem Cell Research. Cell Stem Cell. 2016; 19(2):163-175. PMC: 5366358. DOI: 10.1016/j.stem.2016.07.018. View

3.
Guo G, Pinello L, Han X, Lai S, Shen L, Lin T . Serum-Based Culture Conditions Provoke Gene Expression Variability in Mouse Embryonic Stem Cells as Revealed by Single-Cell Analysis. Cell Rep. 2016; 14(4):956-965. PMC: 4740311. DOI: 10.1016/j.celrep.2015.12.089. View

4.
Tan Y, Xue Y, Song C, Grunstein M . Acetylated histone H3K56 interacts with Oct4 to promote mouse embryonic stem cell pluripotency. Proc Natl Acad Sci U S A. 2013; 110(28):11493-8. PMC: 3710873. DOI: 10.1073/pnas.1309914110. View

5.
Brons I, Smithers L, Trotter M, Rugg-Gunn P, Sun B, Chuva de Sousa Lopes S . Derivation of pluripotent epiblast stem cells from mammalian embryos. Nature. 2007; 448(7150):191-5. DOI: 10.1038/nature05950. View