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Gitchev, T.

Publications and source records attributed to Gitchev, T..

2 recordsLinked to original sources

Condensin I folds the C. elegans genome

The Structural Maintenance of Chromosomes (SMC) complexes, cohesin and condensins, are named for their roles in separating and compacting chromosomes during meiosis and mitosis. Recent data from mammalian cells have revealed additional functions for cohesin, including folding the interphase genome into loops and domains. However, it remains unclear what determines genome folding in holocentric species. To address this question, we systematically and acutely inactivated each SMC complex. Surprisingly, we found that, in contrast to mammals, condensin I is the major long-range genome loop extruder, while cohesin only creates small loops. Specifically, loss of condensin I led to genome-wide decompaction, chromosome mixing, and the disappearance of topologically associating domain (TAD) structures, while reinforcing fine-scale epigenomic compartments. Strikingly, inactivating condensin I and its X-specific variant condensin IDC from the X chromosomes revealed the existence of a third compartment that groups together a subset of previously characterized loading sites for condensin IDC and binding sites for the X-targeting complex SDC. Although the inactivation of cohesin, condensin II, and condensin I/IDC led to minor transcriptional changes for all autosomes, removing condensin I/IDC from the X chromosome resulted in the up-regulation of X-linked genes. In conclusion, our findings describe a novel function for C. elegans condensin I/IDC in organizing holocentric interphase chromosomes, which substitutes for the role played by cohesin in mammals.

molecular biology↗

3DPolyS-LE: an accessible simulation framework to model the interplay between chromatin and loop extrusion

MotivationRecent studies suggest that the loop extrusion activity of Structural Maintenance of Chromosomes complexes is central to proper organization of genomes in vivo. Polymer physics-based modeling of chromosome structure has been instrumental to assess which structures such extrusion can create. Only few laboratories however have the technical and computational expertise to create in silico models combining dynamic features of chromatin and loop extruders. ResultsHere we present 3DPolyS-LE, a self-contained, easy to use modeling and simulation framework allowing non-specialists to ask how specific properties of loop extruders and boundary elements impact on 3D chromosome structure. 3DPolyS-LE also provides algorithms to compare predictions with experimental Hi-C data. Availability and implementationSoftware available at https://gitlab.com/togop/3DPolyS-LE ; implemented in Python and Fortran 2003 and supported on any Unix-based operating system (Linux, Mac OS). Contactpeter.meister@unibe.ch and daniel.jost@ens-lyon.fr Supplementary InformationSupplemental data are available at Bioinformatics online

biophysics↗