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Piveteau, V.

Publications and source records attributed to Piveteau, V..

2 recordsLinked to original sources

Genome-wide modeling of DNA replication in space and time confirms the emergence of replication specific patterns in vivo in eukaryotes

Although significant progress has been made on our understanding of DNA replication and spatial chromosome organization in eukaryotes, how they both interplay remains elusive. In particular, from the local structure of two diverging sister-forks to the higher-level organization of the replication machinery into nuclear domains, the mechanistic details of chromatin duplication in the 3D nuclear space remain debated. In this study, we use a computational model of the Saccharomyces cerevisiae genome to explore how replication influences chromatin folding. By integrating both a realistic description of the genome 3D architecture and 1D replication timing, simulations reveal that the colocalization of sister-forks produce a characteristic "fountain" pattern around early origins of replication. We confirm the presence of similar features in vivo in early S-phase with new Hi-C data in various conditions, showing that it is replication-dependent and cohesin-independent. At a larger scale, we show that the 3D genome leads to forks being highly enriched at one pole of the nucleus in early S-phase, before later redistributing more homogeneously, and may favor the higher-order clustering of forks into Replication Foci, as observed in earlier microscopy experiments. Additionally, replication causes temporary chromatin slowdown and reduced mobility due to fork passage and sister chromatid intertwining. Overall, our model offers new insights into the spatial and dynamic organization of chromatin during replication in eukaryotes.

biophysics↗

Condensin loop extrusion properties, roadblocks, and role in homology search in S. cerevisiae

The in vivo mechanism, cis-acting roadblocks, and biological functions of loop extrusion by eukaryotic SMC complexes are incompletely defined. Here, we identify condensin-dependent Hi-C contact stripes at the Recombination Enhancer (RE) and the rDNA in S. cerevisiae. The RE is an autonomous condensin loading site only active in MATa cells from which oriented, unidirectional loop extrusion proceeds with an estimated processivity [~]150-250 kb and a density [~]0.04-0.18 that varies across the cell cycle. Centromeres, replication forks and highly-transcribed RNA PolII-dependent genes are roadblocks for condensin. Cohesin is not an obstacle for condensin while Top2 promotes its loop extrusion activity. A DNA double-strand break at MAT blocks loop extrusion, resulting in the establishment of a [~]170 kb-long RE-MAT loop. The RE and the DSB are required and sufficient to form this site-specific loop, which promotes RE-proximal homology identification in the early stages of recombinational DNA break repair. We propose that the juxtaposition of the broken MATa site and its target HML donor is the relevant structure by which condensin promotes MATa-to- switching.

molecular biology↗