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Playter, C.

Publications and source records attributed to Playter, C..

3 recordsLinked to original sources

Distinct principles of genome compartmentalization in Drosophila and humans revealed by osmotic stress

The three-dimensional organization of eukaryotic genomes into compartments, topologically associating domains, and loops is mediated by architectural proteins whose organizational principles vary across species. In Drosophila, insulator proteins including Su(Hw) and the histone variant {gamma}H2Av form liquid-liquid phase separation (LLPS) condensates, yet how this phase separation capacity relates to genome compartmentalization has remained unclear. Here we use hyperosmotic stress to simultaneously displace architectural proteins from chromatin in both Drosophila and human cells, enabling a comparative dissection of genome organization principles across species. We find that although human CTCF shares predicted LLPS properties with Drosophila insulator proteins, it does not form condensates upon osmotic stress, while Drosophila insulator proteins do. Hi-C analysis reveals that osmotic stress causes loss of compartments, TAD boundary strength, and loops in both organisms, but genome recovery after stress is rapid and near-complete in human cells while remaining substantially incomplete in Drosophila after one hour. Analysis of this recovery asymmetry reveals a fundamental difference in compartment organization: whereas human A and B compartments engage in robust homotypic long-range interactions, Drosophila B compartments rarely participate in long-range B-to-B contacts, indicating that the Drosophila genome does not replicate canonical A/B compartment organization. Instead, Drosophila genome architecture is dominated by A-to-A interactions, and A compartments are specifically enriched in {gamma}H2Av and Su(Hw), with moderate enrichment of cohesin subunits. Furthermore, loops in Drosophila are mechanistically independent from compartments and TADs, recovering before compartment structure is restored, and are anchored by Su(Hw) and cohesin rather than by dCTCF. Together, these findings suggest that the LLPS properties of {gamma}H2Av and Su(Hw) underlie A compartment formation in Drosophila through a mechanism distinct from the heterochromatin-driven B compartment interactions that predominate in vertebrates, revealing fundamentally different organizational principles between fly and human genomes.

genomics↗

Reversibility of Nuclear and 3D Genomic Changes in Non-Cancerous Fibroblasts After Constricted Migration

Metastatic cancer cells and healthy fibroblasts must traverse constrictive spaces to reach secondary sites. After passing through multiple constrictions, cancer cells often experience stable changes to their nucleus morphology, 3D genome structure, and migratory phenotype. Here, we investigate whether fibroblasts (BJ-5ta), which are non-cancerous and have an inherent ability to migrate to fulfill roles in wound repair, likewise experience nuclear and 3D genomic changes with constricted migration. We find that BJ-5ta cells do not get progressively better at migrating with sequential attempts but do experience nuclear deformations and 3D genome alterations at the compartment level after constricted migration. Transient compartment shifts spatially rearranged genes associated with preparation for and response to migration. Unlike the stable changes associated with long term phenotype changes in cancer cells, however, the nucleus deformations recovered back to unmigrated levels following proliferation and cell movement. Some compartment changes persist and might influence responses to future stimuli, but most 3D genome changes revert to the unmigrated state after cell proliferation. Our study shows that non-cancerous migratory cells are not more robust against alterations caused by constricted migration but can recover from the ones that do arise more readily than cancer cells. Significance StatementO_LICancer cells experience stable phenotype shifts and 3D genome changes after constricted migration, but it is unknown whether these changes would occur in innately migratory non-cancerous fibroblasts. C_LIO_LIFibroblasts (BJ-5ta) show reversible nuclear morphology and 3D genome alterations after constricted migration. C_LIO_LIOur results reveal the connection between basic nucleus mechanobiology and genome structure in fibroblasts, showing how these cells adapt and respond to the forces of constriction during processes such as wound healing. C_LI

cell biology↗

Deciphering Pre-existing and Induced 3D Genome Architecture Changes involved in Constricted Melanoma Migration

Metastatic cancer cells traverse constricted spaces that exert forces on their nucleus and the genomic contents within. Cancerous tumors are highly heterogeneous and not all cells within them can achieve such a feat. Here, we investigated what initial genome architecture characteristics favor the constricted migratory ability of cancer cells and which arise only after passage through multiple constrictions. We identified a cell surface protein (ITGB4) whose expression correlates with increased initial constricted migration ability in human melanoma A375 cells. Sorting out this subpopulation allowed us to identify cellular and nuclear features that pre-exist and favor migration, as well as alterations that only appear after cells have passed through constrictions. We identified specific genomic regions that experienced altered genome spatial compartment profiles only after constricted migration. Our study reveals 3D genome structure contributions to both selection and induction mechanisms of cell fate change during cancer metastasis.

cell biology↗