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Groos, J. J.

Publications and source records attributed to Groos, J. J..

2 recordsLinked to original sources

Discrete Subdomains Establish Epigenetic Diversity in Subtelomeric Heterochromatin

Subtelomeres are imperfect repeats adjacent to telomeres that are transcriptionally repressed by heterochromatin. Although essential for genome integrity, their repetitive nature has thwarted dissection of local heterochromatin assembly and maintenance mechanisms. By engineering Schizosaccharomyces pombe strains carrying fluorescent reporters at a single subtelomere, we uncovered distinct subdomains. These subdomains have different silencing requirements: Telomere-proximal regions rely on canonical shelterin- or RNAi-dependent nucleation pathways, whereas telomere-distal regions involve nucleosome remodelers, histone chaperones, and boundary-associated factors. Subdomains also exhibit discrete epigenetic states emerging both at homologous loci on different chromosome arms and along the same subtelomeric sequence. We document these epigenetic states using multi-generational live imaging and targeted perturbations. These analyses show that subtelomeric subdomains display position-specific, clonally variable silencing across a spectrum from robust to fragile epigenetic states. Interestingly, structural variants, common in subtelomeric sequences across eukaryotes, dictate local epigenetic stability. These findings reveal that subtelomeres, long recognized for their sequence variability, form a dynamic mosaic of coexisting epigenetic domains. This implies a wide range of gene-repressive regulatory logic at the chromosome ends, from environmental responsiveness to silencing stability.

genomics↗

ZNF512B associates with mitotic spindles, regulates metaphase exit and is crucial for stem cell differentiation

Zinc finger proteins are a large family of DNA-binding factors that play key roles in diverse cellular processes including gene regulation, RNA metabolism and cell cycle control. The zinc finger protein ZNF512B has recently been implicated in chromatin organization and transcriptional repression through its direct interaction with the nucleosome remodeling and deacetylase (NuRD) complex, its DNA-binding ability, and its association with the histone variant H2A.Z. Here, we uncover a previously unrecognized role for ZNF512B that is independent of both its zinc finger domains and NuRD association. We identify ZNF512B as a spindle-associated factor that regulates progression through mitosis, specifically controlling metaphase exit. ZNF512Bs N-terminal internal region, which contains 25 repeats of a six-residue motif predicted to form a {beta}-helix structure, is required and sufficient for its spindle interaction. Elevated ZNF512B levels result in a profound metaphase arrest that is ultimately lethal, a phenotype arising from the combined activity of its spindle-binding and chromatin-tethering functions. Conversely, ZNF512B depletion accelerates stem cell proliferation, impairs differentiation, and upregulates genes linked to cell cycle progression. Our findings position ZNF512B as a multifunctional protein that acts as a transcriptional repressor, a chromatin aggregator and a novel metaphase exit regulator through spindle fiber binding.

molecular biology↗