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Coller, H. A.

Publications and source records attributed to Coller, H. A..

2 recordsLinked to original sources

H4K20me3 and CTCF act reciprocally at TAD boundaries to regulate cell state transitions

Reversible transitions between proliferative and quiescent cell states involve widespread gene expression changes despite stable topologically associating domain (TAD) boundaries. We report a reciprocal antagonism between TAD boundary element CTCF and histone modification H4K20me3 as a central mechanism governing the proliferation-quiescence transition. Genome-wide studies and functional perturbations reveal that elevated H4K20me3 in quiescent fibroblasts displaces CTCF at specific TAD boundaries while CTCF binding predominates in proliferating cells. Increased H4K20me3 reversibly induces a compact chromatin state, elliptical nuclear morphology, and transcriptional programs associated with quiescence. Conversely, elevated CTCF binding drives open chromatin, proliferative gene expression, and cell division despite quiescence signals. Fibroblasts lacking H4K20me3 methyltransferase KMT5C/Suv4-20h2 are hyper-proliferative and KMT5C-deficient mice are larger. Our findings provide a mechanistic framework for how architectural and epigenetic regulators exchange at TAD boundaries to coordinate reversible cell state transitions, a finding with implications for organismal development and diseases of dysregulated proliferation.

cell biology↗

Designed fluorescent protein cages as fiducial markers for targeted cell imaging

Understanding how proteins function within their cellular environments is essential for cellular biology and biomedical research. However, current imaging techniques exhibit limitations, particularly in the study of small complexes and individual proteins within cells. Previously, protein cages have been employed as imaging scaffolds to study purified small proteins using cryo-electron microscopy (cryo-EM). Here we demonstrate an approach to deliver designed protein cages - endowed with fluorescence and targeted binding properties - into cells, thereby serving as fiducial markers for cellular imaging. We used protein cages with anti-GFP DARPin domains to target a mitochondrial protein (MFN1) expressed in mammalian cells, which was genetically fused to GFP. We demonstrate that the protein cages can penetrate cells, are directed to specific subcellular locations, and are detectable with confocal microscopy. This innovation represents a milestone in developing tools for in-depth cellular exploration, especially in conjunction with methods such as cryo-correlative light and electron microscopy (cryo-CLEM).

biochemistry↗