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Rullens, P. M. J.

Publications and source records attributed to Rullens, P. M. J..

2 recordsLinked to original sources

MeCP2 binding and genome-lamina reorganization precede long gene activation during mouse corticogenesis

During corticogenesis, neural gene expression is tightly coordinated by chromatin and epigenetic changes, whose misregulation can lead to neurodevelopmental disorders1-4. The role of spatial genome organization--particularly interactions with the nuclear lamina--during these developmental programs remains poorly understood. Here, we combined in utero electroporation with scDam&T-seq to jointly profile genome-lamina contacts and transcriptomes in single cells of the mouse embryonic cortex. Interestingly, we find extensive genome-lamina reorganization during corticogenesis that is strongly biased towards long neuronal genes ([≥]100 kb), which are associated with neurodevelopmental disorders including autism spectrum disorder. Detachment of these genes frequently precedes transcriptional activation, positioning lamina disengagement as an early gene regulatory event. We identify the methyl CpG binding protein 2 (MeCP2)--mutated in Rett syndrome--as a candidate mediator of this process. MeCP2 binds lamina-associated, hydroxymethylated long genes before their repositioning, suggesting that MeCP2 may play a role in genome-lamina reorganization. These findings suggest a link between prevalent genome-lamina reorganization and MeCP2 regulation to ensure proper spatiotemporal activation of long neuronal genes during corticogenesis.

molecular biology↗

Time-resolved and multifactorial profiling in single cells resolves the order of heterochromatin formation events during X-chromosome inactivation

The regulation of gene expression is governed at multiple levels of chromatin organization. However, how coordination is achieved remains relatively unexplored. Here we present Dam&ChIC, a method that enables time-resolved and multifactorial chromatin profiling at high resolution in single cells. Analysis of genome-lamina interactions in haploid cells reveals highly dynamic spatial repositioning of small domains during interphase and partial inheritance over mitosis. Dam&ChIC applied to study random X-inactivation uncovers that spreading of H3K27me3 on the inactive X chromosome (Xi) overlaps with remarkable genome-lamina detachment. We find that genome-lamina detachment precedes H3K27me3 accumulation on the Xi and occurs upon mitotic exit. Domains that retain genome-lamina interactions are marked by high pre-existing H3K9me3 levels. These findings imply an important role for genome-lamina interactions in regulating H3K27me3 accumulation on the Xi. We anticipate that Dam&ChIC will be instrumental in unraveling the interconnectivity and order of chromatin events underlying cell-state changes in single cells.

genomics↗