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Cano-Dominguez, N.

Publications and source records attributed to Cano-Dominguez, N..

3 recordsLinked to original sources

Mapping early PRC2 nucleation sites upon Suz12 reintroduction reveals features of de novo Polycomb recruitment

Polycomb domains safeguard cell identity by maintaining lineage-specific chromatin states enriched in repressive histone modifications, preserving the epigenetic memory of cell lineages. While Polycomb Repressive Complex 2 (PRC2) can re-establish its occupancy after perturbation, the mechanisms that guide de novo Polycomb recruitment remain unclear. To address this, we engineered an auxin-inducible degradation system to reversibly deplete and reintroduce the endogenous PRC2 core subunit Suz12 in mouse embryonic stem cells (mESCs). Genome-wide profiling at an early recovery time point revealed [~]1,100 PRC2 nucleation sites, characterized by rapid Suz12 and histone H3K27me3 re-accumulation with strong signal, with minimal impact on gene expression. These sites were significantly enriched at bivalent promoters, coinciding with unmethylated CpG islands and chromatin states associated with developmental regulation, and were largely conserved in differentiated cells. Motif analysis identified G/C-rich DNA sequences associated with E2F and zinc-finger proteins, alongside strong co-occupancy with MTF2 and JARID2, two PRC2 cofactors previously implicated in Polycomb targeting. Notably, a subset of nucleation sites overlapped with long-range chromatin interaction anchors in histone H3K27me3 HiChIP datasets. These findings reveal that PRC2 de novo nucleation sites are associated with a combination of chromatin states, DNA sequence features, cofactor co-occupancy and spatial genome organization, suggesting that epigenetic memory can be re-established through defined genomic and chromatin features. Author summaryPolycomb group proteins are key epigenetic regulators that silence gene expression by establishing and dispersing repressive chromatin domains marked by histone modifications such as histone H3K27me3 and H2AK119ub1 and are critical for defining cell identity. During differentiation, Polycomb domains are dynamically redistributed, implying a mechanism for de novo targeting to specific loci. How the Polycomb Repressive Complex 2 (PRC2) is initially recruited to these nucleation sites and which features stabilize its binding remain poorly understood. To explore this, we studied the characteristics of the de novo recruitment sites of PRC2 in mouse embryonic stem cells (mESCs) using an auxin-inducible degradation (AID) system targeting PRC2 to deplete and reintroduce the core subunit Suz12. We identified recruitment sites after complete clearance of the histone H3K27me3 through ChIP-seq at a very early time point after Suz12 reintroduction. Most nucleation sites were located at bivalent promoters of developmental genes and correlated with unmethylated CpG islands. Motif analysis revealed over-represented sequences and accessory partners such as MTF2 and JARID2, along with long-range chromatin interactions. These nucleation sites were also conserved in differentiated cells, highlighting their potential role in developmental regulation. Our study provides insight into how Polycomb domains are established and how epigenetic memory is maintained in stem cells.

molecular biology↗

Phenotypic and transcriptomic similarity between the N2 Ancestral and a Tropical wild isolate of C. elegans reveals divergence from the reference Bristol strain

In recent years, the scientific community has increasingly recognized the importance of incorporating ecologically relevant perspectives into laboratory research. In the case of the free-living nematode Caenorhabditis elegans, numerous studies have documented the domestication of the N2 Bristol strain (isolated in 1951). This has led to a growing interest in recently isolated wild strains from diverse latitudes, which offer insights into natural variation evolution and life-history traits. Here, we compared a recently isolated tropical strain from Mexico City to the N2 Bristol strain. To contextualize laboratory adaptation, we also included the N2 Ancestral strain, a cryopreserved lineage from 1969 with minimal generational drift. Phenotypic assays revealed that, under standard laboratory conditions, the Mexican strain exhibited reduced lifespan and fertility, but enhanced resistance to Pseudomonas aeruginosa, whereas the Ancestral strain showed higher oxidative stress tolerance but reduced thermotolerance. RNA-seq analyses showed that transcriptomic profiles of the Mexican and Ancestral strains were more similar to each other than to the N2 Bristol, suggesting that long-term domestication has driven regulatory divergence. Differential gene expression analyses identified strain-specific signatures in stress, immune and collagen-related pathways. Under heat stress, transcriptional profiling revealed that only a small set of canonical heat shock genes was commonly upregulated across the three strains, yet wild strains showed more dynamic regulation, while N2 Bristol exhibited a distinct, possible preconditioned response. These findings reveal phenotypic trade-offs and regulatory divergence shaped by natural versus laboratory environments, and underscore evolutionary dynamics and adaptive potential of C. elegans in response to distinct ecological histories.

evolutionary biology↗

NRF2 pathway activation reverts high-glucose-induced transcriptional memory in endothelial cells

Various diabetes complications, including nephropathy, retinopathy, and cardiovascular disease, arise from vascular dysfunction. In this context, it has been observed that past hyperglycaemic events can induce long-lasting transcriptional changes, a phenomenon termed "metabolic memory". Yet, the underlying mechanisms driving these persistent effects are not fully characterized. In this study, we evaluated the genome-wide gene expression and chromatin accessibility alterations caused by transient high glucose exposure in human endothelial cells (ECs). We found that cells exposed to a transient high glucose episode had decreased glycolytic and oxygen consumption rates. Transcriptional profiling indicated that high glucose exposure induced substantial changes in the expression of genes belonging to pathways known to be impaired in diabetes, such as TGF-beta, TNF, FoxO, p53, and NRF2 pathways, many of which were retained after normalization of glucose concentrations. Furthermore, analysis of chromatin accessibility showed that transient hyperglycaemia can induce persistent modifications in the accessibility landscape, with the majority of differentially accessible regions located in non-promoter regions. Some of these regions were identified as putative enhancers with neighbouring genes persistently altered after transient high glucose exposure. Finally, we showed that activation of the NRF2 pathway through either NRF2 overexpression or supplementation with the plant-derived compound sulforaphane, was able to substantially revert the glucose-induced transcriptional memory in ECs. Our findings demonstrate that transient high glucose can induce persistent changes in both the transcriptomic and chromatin accessibility profiles of ECs, and that pharmacological NRF2 pathway activation is able to prevent and revert the high-glucose-induced transcriptional memory. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=173 SRC="FIGDIR/small/557207v1_ufig1.gif" ALT="Figure 1"> View larger version (47K): org.highwire.dtl.DTLVardef@b9c938org.highwire.dtl.DTLVardef@1498a43org.highwire.dtl.DTLVardef@1146ab5org.highwire.dtl.DTLVardef@169bfca_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗