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Structural maintenance of chromosomes (SMC) complexes are essential for genome organization from bacteria to humans, but their mechanisms of action remain poorly understood. Here, we characterize human SMC complexes condensin I and II and unveil the architecture of the human condensin II complex, revealing two putative DNA-entrapment sites. Using single-molecule imaging, we demonstrate that both condensin I and II exhibit ATP-dependent motor activity and promote extensive and reversible compaction of double-stranded DNA. Nucleosomes are incorporated into DNA loops during compaction without being displaced from the DNA, indicating that condensin complexes can readily act upon nucleosome-bound DNA molecules. These observations shed light on critical processes involved in genome organization in human cells.
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http://dx.doi.org/10.1016/j.molcel.2020.04.026 | DOI Listing |
Mol Biol Cell
August 2025
Department of Biostatistics & Medical Informatics, University of Wisconsin-Madison.
Transcription persists at low levels in mitotic cells and plays essential roles in mitotic fidelity and chromosomal dynamics. However, the detailed regulatory network of mitotic transcription remains largely unresolved. Here, we report the novel role of Polo-like kinase 1 (Plk1) in maintaining mitotic transcription.
View Article and Find Full Text PDFNat Commun
August 2025
Genome Integrity and Control Laboratory, Division of Biology, Graduate School of Science, Kyoto University, Sakyo, Kyoto, Japan.
Condensin I and topoisomerase IIα (topo IIα) are chromosomal ATPases essential for mitotic chromosome assembly. Mechanistically how the two ATPases cooperate to assemble mitotic chromosomes remains unknown. Here we investigate the interplay between condensin I and topo IIα at single-molecule resolution.
View Article and Find Full Text PDFNat Commun
August 2025
DNA Motors Group, MRC Laboratory of Medical Sciences, Du Cane Road, London, W12 0HS, UK.
Human topoisomerase II alpha (TOP2α) resolves DNA intertwines between sister chromatids during mitosis. How cohesin, an SMC complex that holds sister chromatids, affects TOP2α decatenation is unclear. To addres this, we developed a quadruple-trap optical tweezers assay to create DNA braids and study TOP2α decatenation at the single-molecule level in real-time.
View Article and Find Full Text PDFGenes Cells
September 2025
Department of Genetics, Graduate University for Advanced Studies (SOKENDAI), Mishima, Japan.
The fifth international meeting, entitled "SMC Complexes: Orchestrating Diverse Genome Functions", took place in Numazu City, Shizuoka, Japan from October 15-18, 2024. With 159 attendees (115 of whom were from 18 countries and regions), the meeting aimed to further our understanding of large-scale chromosome organization and related chromosomal events, which are mediated by SMC complexes, one of the major architects of chromosomes. Discussion at the meeting was prompted by 49 talks and 82 poster presentations, which covered a variety of topics including the eukaryotic cohesin, condensin and SMC5/6 complexes, as well as bacterial and archaeal SMC complexes.
View Article and Find Full Text PDFNucleic Acids Res
July 2025
Interdisciplinary Program in Computational Science, Seoul National University, Seoul 08826, South Korea.
DNA loop formation by structural maintenance of chromosome (SMC) proteins, including cohesin, condensin, and the SMC5/6 complex, plays a pivotal role in genome organization. Despite its importance, the molecular mechanism underlying SMC-mediated loop formation, particularly how these complexes achieve persistent directionality (rectification) while minimizing backward steps during the formation of large loops, remains poorly understood. Here, we use atomic force microscopy (AFM) and computational simulation to uncover a key geometric feature of the yeast condensin SMC complex enabling rectified loop growth.
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