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da Silva Pires, D.

Publications and source records attributed to da Silva Pires, D..

2 recordsLinked to original sources

First Genome-Wide Centromere Map of Trypanosoma cruzi Reveals Linear and 3D Compartment Boundaries and Spatial Clustering

Background: Trypanosoma cruzi, the etiological agent of Chagas disease, possesses a highly repetitive genome that has historically hindered high-quality assembly and structural characterization. Despite significant advances in assembling T. cruzi genomes, major gaps remain. Among these, the complete repertoire of centromeric sequences has remained elusive, representing a critical missing piece in our understanding of chromosome structure and inheritance. Results: Here, we generated high-coverage Hi-C (genome-wide chromosome conformation capture) data for the widely used T. cruzi Dm28c strain improving its genome assembly, reducing the number of scaffolds and producing a more contiguous and accurate genome. To investigate centromere organization, we performed ChIP-seq using the mNeonGreen-myc-tagged kinetochore proteins KKT2 and KKT3, resulting in the identification of 40 KKT-enriched peaks across 29 scaffolds. These peaks were located in regions enriched in retrotransposable elements, particularly L1Tc and VIPER, near strand switch regions, areas of high GC content, and at the boundaries between conserved genes and virulence-factor multigene families. Conclusion: Notably, Hi-C analysis revealed that centromeres may act as structural boundaries contributing to genome compartmentalization and frequently engage in 3D spatial clustering, suggesting a role in higher-order nuclear architecture. Overall, our study provides a high-quality reference genome for the Dm28c strain, presents the first genome-wide centromere map in T. cruzi, and offers novel insights into centromere-mediated 3D genome organization

genomics↗

Comprehensive Analysis of Nascent Transcriptome Reveals Diverse Transcriptional Profiles Across the Trypanosoma cruzi Genome Underlining the Regulatory Role of Genome Organization, Chromatin Status, and Cis-Acting Elements

Trypanosomatids are eukaryotic parasites exhibiting polycistronic transcription and trans-splicing. Post-transcriptional mechanisms are acknowledged as pivotal in gene expression regulation of their protein-coding genes. To comprehensively investigate the impact of transcription on gene expression in Trypanosoma cruzi and the association with the epigenetic landscape, we conducted a genome-wide nascent transcriptomic analysis. Our findings reveal significant asymmetrical transcriptional abundance across the genome, notably between polycistronic transcription units (PTUs) enriched in conserved genes (core PTUs) and those containing virulence genes (disruptive PTUs). We found that trypanosomes exploit linear genome organization to regulate transcription abundance by embedding virulence genes into highly transcribed core-enriched PTUs, by positioning PTUs near non-coding regions of small non-coding RNAs (e.g., tRNAs, snoRNAs), and by placing core CDSs in PTUs of various sizes. Additionally, we found correlations between open chromatin status and nascent transcript levels, both globally and particularly at transcription starting regions (divergent strand switch regions - dSSRs), indicating a crucial role for chromatin architecture in transcriptional regulation. While both core and disruptive dSSRs exhibit similar levels of some epigenetic marks (H2B.V deposition and 5mC), disruptive dSSRs display significantly higher 5hmC content and nucleosome occupancy compared to core dSSRs. Furthermore, we identified distinct conserved motifs within dSSRs of core and disruptive PTUs. These findings challenge the notion of constitutive and uniform transcription in T. cruzi, underscoring the paramount importance of linear genome organization, cis-acting motifs, and chromatin landscape in transcriptional regulation.

molecular biology↗