4.6 Article

Critical Role for Cold Shock Protein YB-1 in Cytokinesis

期刊

CANCERS
卷 12, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/cancers12092473

关键词

YB-1; cold shock protein; cytokinesis; post-translational modification; phosphorylation; live-cell imaging; confocal microscopy; atomistic modelling

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资金

  1. MauriceWilkins Centre for Molecular Biodiscovery, James Cook Fellowship [JCF-UOO1501]
  2. Cancer Society New Zealand [11/07]
  3. Health Research Council A*STAR [10-02]
  4. Health Research Council of New Zealand [15/500]
  5. Cancer Institute NSW [11/FRL/5-02]
  6. Australian Post-Graduate Award from the University of Sydney
  7. Ernest and Piroska Major Foundation
  8. Australian NHMRC [1106241]
  9. A*STAR [H17/01/a0/010]
  10. National Health and Medical Research Council of Australia [1106241] Funding Source: NHMRC

向作者/读者索取更多资源

Simple Summary Y-box-binding protein-1, YB-1, plays an important role in regulating the cell cycle, although precisely how it does the is unknown. Using live cell imaging, we show that YB-1 is essential for initiating the last step of cell division (cytokinesis), required for creation of two daughter cells. Using confocal microscopy we showed that YB-1 regulates the spatial distribution of key proteins essential for cytokinesis to occur and that this required YB-1 to be phosphorylated on several residues. In-silico modeling demonstrated that modifications at these residues resulted in conformational changes in YB-1 protein allowing it to interact with proteins essential for cytokinesis. As many cancers have high levels YB-1 and these are associated with poor prognosis, our data suggest developing small molecule inhibitors to block YB-1 phosphorylation could be a novel approach to cancer therapy. High levels of the cold shock protein Y-box-binding protein-1, YB-1, are tightly correlated with increased cell proliferation and progression. However, the precise mechanism by which YB-1 regulates proliferation is unknown. Here, we found that YB-1 depletion in several cancer cell lines and in immortalized fibroblasts resulted in cytokinesis failure and consequent multinucleation. Rescue experiments indicated that YB-1 was required for completion of cytokinesis. Using confocal imaging we found that YB-1 was essential for orchestrating the spatio-temporal distribution of the microtubules, beta-actin and the chromosome passenger complex (CPC) to define the cleavage plane. We show that phosphorylation at six serine residues was essential for cytokinesis, of which novel sites were identified using mass spectrometry. Using atomistic modelling we show how phosphorylation at multiple sites alters YB-1 conformation, allowing it to interact with protein partners. Our results establish phosphorylated YB-1 as a critical regulator of cytokinesis, defining precisely how YB-1 regulates cell division.

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