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Baro, R.

Publications and source records attributed to Baro, R..

3 recordsLinked to original sources

Role of m6A RNA methylation in dosage compensation

In therian mammals, inactivation of one of the X-chromosomes in females balances the dosage of X-linked gene expression between the sexes. On the other hand, upregulation of active-X balances the dosage of monoallelically expressed X-linked genes with biallelic autosomal genes (AA). Factors and mechanisms involved in the maintenance of X-chromosome inactivation (XCI) and X to autosome dosage compensation remain underexplored. Recently, it has been implicated that N6-methyladenosine (m6A) RNA modification contributes to XCI and X to autosome dosage compensation. Here, we have investigated the role of m6A RNA methylation in the maintenance of XCI and X to autosome dosage compensation in early embryonic lineages. Surprisingly, we find that the depletion of m6A RNA methylation does not affect the maintenance of inactive-X gene silencing in mouse epiblast stem cells (EpiSC), trophoblast stem cells (TSC) and extraembryonic endoderm stem cells (XEN). On the other hand, we show that m6A marks are less enriched on X-linked transcripts than the autosomal transcripts in early embryonic lineages. It is believed that less enrichment of m6A in X-linked transcript increases the stability of the X-linked transcript and thereby contributes to the X to autosome dosage compensation. Interestingly, we find that while X-linked transcripts without m6A are fully dosage compensated, transcripts with m6A undergo partial X to autosome dosage compensation in EpiSC, TSC and XEN. However, we find that the depletion of m6A has a minor effect on the X to autosome dosage compensation. Taken together, our study provides significant insight into the role of m6A RNA methylation in dosage compensation of early embryonic lineages.

genetics↗

Gene-specific reactivation of X-linked genes upon Xist loss is linked to the chromatin states in extraembryonic endoderm and epiblast stem cells

In eutherian mammals, X-chromosome dosage between sexes is balanced through the inactivation of one of the two X-chromosomes in female cells. In mouse, X-inactivation initiates at [~]4-8 cell stages of embryogenesis, where paternal-X undergoes imprinted X-inactivation. Subsequently, it switches to random X-inactivation in post-iplantation epiblast. The initiation of XCI is orchestrated by Xist. However, the role of Xist in the maintenance of X-chromosome inactivation remains underexplored. Here, we have explored the role of Xist in the maintenance of X-inactivation in extraembryonic endoderm stem cells (XEN) and epiblast stem cells (EpiSC), which undergo imprinted and random form of X-inactivation respectively. We show that removal of Xist leads to the partial reactivation of inactive-X chromosome. Intriguingly, many reactivated genes were found to be common between XEN and EpiSC, indicating these genes require Xist to maintain their silent state irrespective of the lineages or forms of X-inactivation. Notably, despite Xist ablation and the subsequent removal of DNA methylation, several X-linked genes remained resistant to reactivation, indicating the involvement of other factors in maintaining the silencing of these genes. On the other hand, we show that genes on the inactive-X with low levels of H3K9me3 and high levels of H3K27me3 are more susceptible to reactivation upon the loss of Xist. Interestingly, active-X homolog of the reactivated genes was found to be enriched with H3K4me3 and H3K27ac. Taken together, our study sheds light on the role of chromatin states in the reactivation of X-linked genes following the loss of Xist in XEN and EpiSC.

genetics↗

Deletion of Xist upstream sequences alters TAD interactions and leads to defects in Xist coating and expression

The topological organization of the genome plays an important role in regulating gene expression. However, the connection between the two remains poorly understood. X-chromosome inactivation is a unique model system to explore the interlink between topologically associated domains (TADs) and gene expression. TADs are largely lost upon X-inactivation, and the inactive-X gets bipartitely reorganized into two large mega domains. However, the X-inactivation center (XIC) harbors two TADs - at the locus of long non-coding RNA Xist (Xist-TAD) and Tsix (Tsix-TAD). Xist is the master regulator of X-inactivation, which coat the inactive-X and facilitates heterochromatinization. Here, we deleted Xist upstream sequences ([~]6 kb) near the Xist TADs boundary in extraembryonic endoderm stem cells (XEN), which undergo imprinted X-inactivation. This deletion led to the major rearrangement of TADs and affected the expression of genes located within Xist and Tsix TAD, specially the expression of Xist was upregulated, suggesting TADs are essential for proper transcriptional regulation. On the other hand, Xist-upstream deletion on the inactive-X resulted in dispersal of Xist coating and loss of enrichment of repressive chromatin marks on the inactive-X but no effect on X-linked gene silencing. However, we found that autosomal genes were dysregulated in Xist-upstream deleted cells, probably because of misregulation of genes located in Xist and Tsix-TAD, specially Xist. We conclude that Xist upstream sequences are necessary for proper organization of the TADs at the XIC, maintenance of Xist coating/expression and autosomal gene expression.

genetics↗