Isenhart Randi, Nguyen Son C, Rosin Leah, Cao Weihuan, Walsh Patrick, Muzaffar Haris, Ellison Christopher E, Joyce Eric F
Department of Genetics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.
Penn Epigenetics Institute, University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.
PLoS Genet. 2025 Jul 1;21(7):e1011724. doi: 10.1371/journal.pgen.1011724. eCollection 2025 Jul.
The spatial organization of the genome is crucial for its function and integrity. Although the ring-like SMC complex condensin II has a well-documented role in organizing mitotic chromosomes, its function in interphase chromatin structure has remained more enigmatic. Using a combination of Oligopaint fluorescence in situ hybridization (FISH) and Hi-C, we show that altering condensin II levels in diploid Drosophila cells significantly changes chromosome architecture at large length scales between chromatin compartments. Notably, condensin II overexpression disrupts the robust boundary between heterochromatin and euchromatin, leading to interactions that span entire chromosomes. These interactions occur independent from transcriptional changes, suggesting that the mechanisms driving compartment formation and their interactions might be distinct aspects of genome organization. Our results provide new insights into the dynamic nature of chromosome organization and underscore the importance of condensin II in maintaining genomic stability.
基因组的空间组织对其功能和完整性至关重要。尽管环状SMC复合物凝聚素II在组织有丝分裂染色体方面的作用已得到充分证明,但其在间期染色质结构中的功能仍较为神秘。通过结合寡核苷酸荧光原位杂交(FISH)和Hi-C技术,我们发现改变二倍体果蝇细胞中的凝聚素II水平会在染色质区室之间的大长度尺度上显著改变染色体结构。值得注意的是,凝聚素II的过表达破坏了异染色质和常染色质之间的稳固边界,导致跨越整个染色体的相互作用。这些相互作用独立于转录变化而发生,这表明驱动区室形成及其相互作用的机制可能是基因组组织的不同方面。我们的研究结果为染色体组织的动态性质提供了新的见解,并强调了凝聚素II在维持基因组稳定性中的重要性。