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Begnis, M.

Publications and source records attributed to Begnis, M..

3 recordsLinked to original sources

Transposable element co-option drives transcription factor neofunctionalization

Gene duplication and domain acquisition are key mechanisms driving protein diversification. However, the impact of these processes on the function and evolution of transcription factors (TFs) remains poorly characterized. Here, we show that the DUF3669 domain, found in a subset of KRAB zinc-finger proteins (KZFPs), originated from the co-option of a fragment of a LINE-1 transposable element ORF1p. Similar to its LINE-1-encoded ancestor, the DUF3669 domain promotes KZFPs trimerization and enables the formation of nuclear condensates with ribonucleoparticle properties, which critically influence the genomic recruitment and action of these TFs. Thus, our study uncovers a direct link between TE co-option and TF neofunctionalization, highlighting how mobile genetic elements shape the evolution of protein functionality.

genetics↗

Evolutionarily recent transcription factors partake in human cell cycle regulation

The cell cycle is a fundamental process in eukaryotic biology and is accordingly controlled by a highly conserved core signaling cascade. However, whether recently evolved proteins also influence this process is unclear. Here, we systematically map the influence of evolutionarily recent transcription factors (TFs) on human cell cycle progression. We find that the genomic targets of select young TFs, many of which belong to the rapidly evolving Kruppel-associated box (KRAB) zinc-finger proteins (KZFP) family, exhibit synchronized cell cycle expression. Systematic perturbation studies reveal that silencing recent TFs disrupts normal cell cycle progression, which we experimentally confirm for ZNF519, a simian-restricted KZFP. Further, we show that the therian-specific KZFP ZNF274 sets the cell cycle expression and replication timing of hundreds of clustered genes. These findings highlight an underappreciated level of lineage specificity in cell cycle regulation.

cell biology↗

Clusters of lineage-specific genes are anchored by ZNF274 in repressive perinucleolar compartments

Long known as the site of ribosome biogenesis, the nucleolus is increasingly recognized for its role in shaping 3D genome organization. Still, the mechanisms governing the targeting of selected regions of the genome to nucleolus-associated domains (NADs) remain enigmatic. Here we reveal the essential role of ZNF274, a SCAN-bearing member of the Kruppel-associated box (KRAB)-containing zinc finger proteins (KZFP) family, in sequestering lineage-specific gene clusters within NADs. Ablation of ZNF274 triggers transcriptional activation across entire genomic neighborhoods - encompassing, among others, protocadherin and KZFP-encoding genes - with loss of repressive chromatin marks, altered 3D genome architecture and de novo CTCF binding. Mechanistically, ZNF274 anchors target DNA sequences at the nucleolus and facilitates their compartmentalization via a previously uncharted function of the SCAN domain. Our findings illuminate the mechanisms underlying NADs organization and suggest that perinucleolar entrapment into repressive hubs constrains the activation of tandemly arrayed genes to enable selective expression and modulate cell differentiation programs during development.

molecular biology↗