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Alfeghaly, C.

Publications and source records attributed to Alfeghaly, C..

4 recordsLinked to original sources

Netrin-1 Acts as a Guardian of Naive Pluripotency in Human Embryonic Stem Cells

We investigated the role of Netrin-1 (NTN1) in human naive pluripotency using complementary loss- and gain-of-function approaches. In primate embryos and human embryonic stem cells (hESCs), Netrin-1 expression is associated with the naive pluripotent state. Disruption of NTN1 had no detectable effect on hESCs maintained on murine embryonic fibroblasts. However, under sub-optimal culture conditions, NTN1-knockout cells exhibited compromised naive pluripotency, which was rescued with feeder cells overexpressing Netrin-1. Netrin-1 overexpression in hESCs accelerated acquisition of the naive state and markedly increased resistance to differentiation. These effects were accompanied by extensive epigenetic remodeling, including H3K27ac and H2K27me3. Proteomic and phospho-proteomic analyses further revealed rapid Netrin-1-dependent alterations in pathways controlling cell adhesion, signaling, and chromatin regulation. Together, these findings extend the role of Netrin-1 beyond its established functions and identify it as a coordinator of extracellular cues, intracellular signaling, and nuclear regulatory mechanisms that support human naive pluripotency.

cell biology↗

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↗

Extensive remodelling of XIST regulatory networks during primate evolution

Unravelling how gene regulatory networks are remodelled during evolution is crucial to understand how species adapt to environmental changes. We addressed this question for X-chromosome inactivation, a process essential to female development that is governed, in eutherians, by the XIST lncRNA and its cis-regulators. To reach high resolution, we studied closely related primate species, spanning 55 million years of evolution. We show that the XIST regulatory circuitry has diversified extensively over such evolutionary timeframe. The insertion of a HERVK transposon has reshuffled XIST 3D interaction network in macaque embryonic stem cells (ESC) and XIST expression is maintained by the additive effects of the JPX lncRNA gene and a macaque specific enhancer. In contrast, JPX is the main contributor to XIST expression in human ESCs but is not significantly involved in XIST regulation in marmoset ESCs. None of these entities are however under purifying selection, which suggests that neutrally evolving non-coding elements harbour high adaptive potentials.

genomics↗

XIST dampens X chromosome activity in a SPEN-dependent manner during early human development

XIST long non-coding RNA is responsible for X chromosome inactivation (XCI) in placental mammals, yet it accumulates on both X chromosomes in human female pre-implantation embryos without triggering X chromosome silencing. The long non-coding RNA XACT co-accumulates with XIST on active Xs and may antagonize XIST function. Here we used human ES cells in a naive state of pluripotency to assess the function of XIST and XACT in shaping the X chromosome chromatin and transcriptional landscapes during pre-implantation development. We show that XIST triggers the deposition of polycomb-mediated repressive histone modifications and attenuates transcription of most X-linked genes in a SPEN-dependent manner, while XACT deficiency does not significantly affect XIST activity or X-linked gene expression. Our study demonstrates that XIST is functional prior to XCI, confirms the existence of a transient process of X chromosome dosage compensation, and reveals that X chromosome inactivation and dampening rely on the same set of factors.

molecular biology↗