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Biology subjects

Trouth, A.

Publications and source records attributed to Trouth, A..

3 recordsLinked to original sources

Rotational settings quantize nucleosome movement by chromatin regulators

Proper nucleosome positioning is essential for gene regulation and genomic integrity. Regulated nucleosome assembly and positioning results from a need to protect DNA sequences genome-wide, constrained by the known intrinsic sequence preferences of histones. Current models posit that chromatin regulators override the intrinsic preferences to establish the nucleosome landscapes observed in vivo, implying minimal roles for DNA sequence in guiding nucleosomal structure in cells. In contrast, we demonstrate that DNA sequence intrinsically guides the structure and remodeling of nucleosomes from yeast to mammals. We demonstrate that nucleosomes with weak translational settings in vitro, in yeast, and in mammalian cells demonstrate a clear preference for inward-facing A/T dinucleotides and outward facing G/C dinucleotides, at 10 bp spacings consistent with established preferences for rotationally positioned nucleosomes. Foreign DNA sequences heterologously inserted into the yeast genome obey similar rules, indicating that DNA sequence itself is causal. Finally, remodelers and transcription elongation change the preference among the alternative translational positions 10 bp apart, retaining the rotational setting. From these results, we propose that DNA sequence creates an energy landscape with preferred rotational settings every [~]10 bp, and that chromatin regulators, rather than overriding these preferences, navigate within them. This "detent" mechanism provides a unifying framework for understanding how diverse cellular processes achieve precise nucleosome positioning while maintaining the same DNA face exposed to regulatory factors.

molecular biology↗

Sparse CBX2 nucleates many Polycomb proteins to promote facultative heterochromatinization of Polycomb target genes

Facultative heterochromatinization of genomic regulators by Polycomb repressive complex (PRC) 1 and 2 is essential in development and differentiation; however, the underlying molecular mechanisms remain obscure. Using genetic engineering, molecular approaches, and live-cell single-molecule imaging, we quantify the number of proteins within condensates formed through liquid-liquid phase separation (LLPS) and find that in mouse embryonic stem cells (mESCs), approximately 3 CBX2 proteins nucleate many PRC1 and PRC2 subunits to form one non-stoichiometric condensate. We demonstrate that sparse CBX2 prevents Polycomb proteins from migrating to constitutive heterochromatin, demarcates the spatial boundaries of facultative heterochromatin, controls the deposition of H3K27me3, regulates transcription, and impacts cellular differentiation. Furthermore, we show that LLPS of CBX2 is required for the demarcation and deposition of H3K27me3 and is essential for cellular differentiation. Our findings uncover new functional roles of LLPS in the formation of facultative heterochromatin and unravel a new mechanism by which low-abundant proteins nucleate many other proteins to form compartments that enable them to execute their functions.

molecular biology↗

G1 length dictates heterochromatin landscape

Stem cells have lower facultative heterochromatin as defined by trimethylation of histone H3 lysine 27 (H3K27me3) compared to differentiated cells. However, the mechanisms underlying these differential H3K27me3 levels remain elusive. Because H3K27me3 levels are diluted two-fold in every round of replication and then restored through the rest of the cell cycle, we reasoned that the cell cycle length could be a key regulator of total H3K27me3 levels. Here, we propose that a fast cell cycle restricts H3K27me3 levels in stem cells. To test this model, we determined changes to H3K27me3 levels in mESCs globally and at specific loci upon G1 phase lengthening - accomplished by thymidine block or growth in the absence of serum (with the "2i medium"). H3K27me3 levels in mESC increase with G1 arrest when grown in serum and in 2i medium. Additionally, we observed via CUT&RUN and ChIP-seq that regions that gain H3K27me3 in G1 arrest and 2i media overlap, supporting our model of cell cycle length as a critical regulator of the stem cell epigenome and cellular identity. Furthermore, we demonstrate the inverse effect - that G1 shortening in differentiated cells results in a loss of H3K27me3 levels. Finally, in tumor cells with extreme H3K27me3 loss, lengthening of the G1 phase leads to H3K27me3 recovery despite the presence of the dominant negative, sub-stoichiometric H3.1K27M mutation. Our results indicate that G1 length is an essential determinant of H3K27me3 landscapes across diverse cell types.

molecular biology↗