Ufd4p-mediated Sum1p clearance ensures proper chromosome organization during cell division

Chromosome architecture is essential for faithful chromosome segregation and genome stability. However, the mechanisms underlying chromosome organization are not well-characterized. Here, we identify the ubiquitin ligase Ufd4p as a master regulator of chromosome organization. Ufd4p deficiency causes longer chromosome axes and increased meiotic crossovers due to compromised condensation. Multiomics profiling reveals that Ufd4p promotes transcription of condensin components required for chromosome condensation. Mechanistically, Ufd4p targets Sum1p, a subunit of histone deacetylase complex, for proteasomal degradation. Sum1p accumulation reduces histone 4 lysine 5 acetylation, thereby suppressing condensin transcription and ultimately leading to chromosome condensation defects. Intriguingly, this pathway is shared in both meiosis and mitosis. Moreover, the mammalian homolog TRIP12 effectively rescues chromosome organization defects in ufd4 mutants, suggesting an evolutionarily conserved mechanism. Collectively, our study elucidates an evolutionarily conserved ubiquitin–proteasome system (UPS)-dependent mechanism controlling the proper chromosome organization, highlighting the pivotal role of UPS in regulating chromosome architecture across species.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-30
DOI
https://doi.org/10.1073/pnas.2617741123
Primary Topic
Ubiquitin and proteasome pathways
Type
article
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article

Ufd4p-mediated Sum1p clearance ensures proper chromosome organization during cell division

Taicong Tan, Shenli Yuan, Wei Li, Chao Liu et al.
Proceedings of the National Academy of Sciences
Ubiquitin and proteasome pathways
article

Ufd4p-mediated Sum1p clearance ensures proper chromosome organization during cell division

Taicong Tan, Shenli Yuan, Wei Li, Chao Liu, Yali Mi, Renjie Jiao, Shuyun He, Peng Du, Zhaojie Liu
article en

Abstract

Chromosome architecture is essential for faithful chromosome segregation and genome stability. However, the mechanisms underlying chromosome organization are not well-characterized. Here, we identify the ubiquitin ligase Ufd4p as a master regulator of chromosome organization. Ufd4p deficiency causes longer chromosome axes and increased meiotic crossovers due to compromised condensation. Multiomics profiling reveals that Ufd4p promotes transcription of condensin components required for chromosome condensation. Mechanistically, Ufd4p targets Sum1p, a subunit of histone deacetylase complex, for proteasomal degradation. Sum1p accumulation reduces histone 4 lysine 5 acetylation, thereby suppressing condensin transcription and ultimately leading to chromosome condensation defects. Intriguingly, this pathway is shared in both meiosis and mitosis. Moreover, the mammalian homolog TRIP12 effectively rescues chromosome organization defects in ufd4 mutants, suggesting an evolutionarily conserved mechanism. Collectively, our study elucidates an evolutionarily conserved ubiquitin–proteasome system (UPS)-dependent mechanism controlling the proper chromosome organization, highlighting the pivotal role of UPS in regulating chromosome architecture across species.

Proceedings of the National Academy of SciencesVol. 123(40)
Guangzhou Institutes of Biomedicine and Health (CN), Guangzhou Medical University (CN)
Life in Land
Openalex Percentile: Top 20%
Ubiquitin and proteasome pathways
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Ufd4p-mediated Sum1p clearance ensures proper chromosome organization during cell division — Taicong Tan, Shenli Yuan, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS