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Allsop, R. N.

Publications and source records attributed to Allsop, R. N..

2 recordsLinked to original sources

XIST Drives X-Chromosome Inactivation and Safeguards Female Extraembryonic Cells in Humans

Dosage compensation of sex chromosomes through X-chromosome inactivation (XCI) is required for mice extra-embryonic tissue growth and embryo development. The species specificity in mechanisms and timing leading to XCI during early embryogenesis, however, left the key question of the interdependence between XCI and human development open. Here, we show that the differentiation of naive human pluripotent stem cells to trophoblast stem cells and extraembryonic mesoderm cells triggers XCI. The inactive X chromosome, however, displays an atypical chromatin state, lacking classical enrichment of heterochromatin markers and DNA methylation. We demonstrate that extraembryonic differentiation and XCI are kinetically and functionally linked. Using loss of function approaches, we prove that XIST is required for human XCI establishment. We also reveal that XCI is key for the survival of human female extraembryonic cells. Our work therefore links XCI to the formation of extraembryonic annexes, with important consequences for human reproductive biology. HIGHLIGHTSO_LINaive hPSCs to EXMCs and TSCs differentiation recapitulates human XCI C_LIO_LIThe Xi has an unusual chromatin status in human extraembryonic cells C_LIO_LIXIST is required for the establishment of human XCI C_LIO_LIXCI supports healthy development of human female extraembryonic cells C_LI

developmental biology↗

X-chromosome upregulation operates on a gene-by-gene basis at RNA and protein levels

Gene dosage compensation mechanisms are crucial for mammalian development. In mice, recent findings show that cells can sense the number of X chromosomes. Loss or inactivation of one of the two X chromosomes is compensated by upregulating the remaining active X chromosome, a process termed X-chromosome upregulation (XCU). However, how cells sense X-chromosome dosage and induce XCU remains unclear. Here, we show that heterozygous X chromosome fragment deletions in mouse pluripotent stem cells induces XCU in trans, and that compensation takes place at the mRNA and protein level. Furthermore, we found that inducing gene silencing in cis on autosomes induces gene dosage compensation in trans. This work provides significant insights into the molecular foundations of mammalian gene dosage compensation.

developmental biology↗