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Schwaemmle, T.

Publications and source records attributed to Schwaemmle, T..

2 recordsLinked to original sources

Transcription-dependent heterochromatin at the Xist promoter shapes the random choice of the inactive X chromosome

In female mammals, Xist, the master regulator of X-chromosome inactivation (XCI), is expressed monoallelically. This pattern is established during early embryonic development, when the active Xist allele is chosen at random in each cell. How this choice is made remains incompletely understood. Combining knock-down and overexpression strategies in differentiating mouse embryonic stem cells, which recapitulate the onset of random XCI, we identify a role for the repressive chromatin mark H3K9me3 in the XCI initiation. We show that H3K9me3 accumulates at the promoter-proximal region of the silent Xist allele in female cells as monoallelic expression is established. Unexpectedly, this accumulation requires prior transcription of Xist itself, likely during the initial phase of upregulation, when Xist is frequently transcribed in male cells and from both X chromosomes in females. A repressive function of Xist-dependent H3K9me3 accumulation is supported by our finding that premature, transient Xist overexpression primes an allele for future silencing and skews the choice of the inactive X. Xist-dependent H3K9me3 recruitment does not require its antisense transcript Tsix, which can nonetheless enhance subsequent maintenance of the mark. In addition, the X-linked Xist activator RNF12 counteracts H3K9me3 formation, independently of its known target REX1. Our results thus point to facultative heterochromatin formation as a key contributor to choice at the onset of XCI, where activating and repressing mechanisms are intertwined to establish monoallelic Xist expression.

genetics↗

Reporter CRISPR screens decipher cis- and trans-regulatory principles at the Xist locus

Developmental genes are controlled by an ensemble of cis-acting regulatory elements (REs), which in turn respond to multiple trans-acting transcription factors (TFs). Understanding how a cis-regulatory landscape integrates information from many dynamically expressed TFs has remained a challenge. We develop a combined CRISPR-screening approach using endogenous RNA and RE-reporters as readouts. Applied to the Xist locus, crucial for X-chromosome inactivation in females, this method allows us to comprehensively identify Xist-controlling TFs and map their TF-RE wiring. We find a group of transiently expressed TFs that regulate proximal REs, driving the binary activation of Xist expression. These basal activators are more highly expressed in cells with two X chromosomes, potentially driving female-specific Xist upregulation. A second set of developmental TFs is upregulated later during differentiation and targets distal REs. This regulatory axis is crucial to achieve high levels of Xist RNA, which is necessary for X-chromosome inactivation. Our findings support a model for developmental gene regulation in which factors targeting proximal REs drive binary ON-OFF decisions, while factors interacting with distal REs control the transcription output.

genetics↗