Heat shock factor 1 suppression induces spindle abnormalities and sensitizes cells to antimitotic drugs.

IF 2.8 4区 生物学 Q3 CELL BIOLOGY Cell Division Pub Date : 2021-12-18 DOI:10.1186/s13008-021-00075-8
Hsiao-Hui Kuo, Zhi-Rou Su, Jing-Yuan Chuang, Ling-Huei Yih
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引用次数: 1

Abstract

Background: Heat shock factor 1 (HSF1) is the master regulator of the heat shock response and supports malignant cell transformation. Recent work has shown that HSF1 can access the promoters of heat shock proteins (HSPs) and allow HSP expression during mitosis. It also acts as a mitotic regulator, controlling chromosome segregation. In this study, we investigated whether the transactivation activity of HSF1 is required for the assembly of mitotic spindles.

Results: Our results showed that phosphorylation of HSF1 at serine 326 (S326) and its transactivation activity were increased during mitosis. Inhibition of the transactivation activity of HSF1 by KRIBB11 or CCT251263 during mitosis significantly increased the proportion of mitotic cells with abnormal spindles. It also hampered the reassembly of spindle microtubules after nocodazole treatment and washout by impeding the formation of chromosomal microtubule asters. Depletion of HSF1 led to defects in mitotic spindle assembly, subsequently attenuating cell proliferation and anchorage-independent cell growth (AIG). These HSF1 depletion-induced effects could be rescued by ectopically expressing wild-type HSF1 or a constitutively active mutant (∆202-316, caHSF1) but not the S326A or dominant negative (∆361-529, dnHSF1) mutants. In addition, overexpression of HSP70 partially reduced HSF1 depletion-induced spindle abnormalities. These results indicate that HSF1 may support cell proliferation and AIG by maintaining spindle integrity through its transactivation activity. Furthermore, inhibition of HSF1 transactivation activity by KRIBB11 or CCT251236 can enhance diverse anti-mitosis drug-induced spindle defects and cell death.

Conclusions: The increased transactivation activity of HSF1 during mitosis appears to be required for accurate assembly of mitotic spindles, thereby supporting cell viability and probably AIG. In addition, inhibition of the transactivation activity of HSF1 may enhance the mitotic errors and cell death induced by anti-mitosis drugs.

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热休克因子1抑制诱导纺锤体异常并使细胞对抗有丝分裂药物敏感。
背景:热休克因子1 (HSF1)是热休克反应的主要调控因子,支持恶性细胞转化。最近的研究表明,HSF1可以进入热休克蛋白(HSPs)的启动子,并允许热休克蛋白在有丝分裂期间表达。它也作为有丝分裂调节器,控制染色体分离。在这项研究中,我们研究了HSF1的反激活活性是否需要有丝分裂纺锤体的组装。结果:我们的研究结果显示HSF1在有丝分裂过程中326丝氨酸(S326)的磷酸化及其转激活活性增加。KRIBB11或CCT251263在有丝分裂过程中抑制HSF1的反激活活性,显著增加了纺锤体异常的有丝分裂细胞的比例。它还通过阻碍染色体微管的形成,阻碍了诺可达唑处理和冲洗后纺锤体微管的重组。HSF1的缺失导致有丝分裂纺锤体组装缺陷,随后减弱细胞增殖和非锚定细胞生长(AIG)。这些HSF1消耗诱导的效应可以通过异位表达野生型HSF1或组成活性突变体(∆202-316,caHSF1)来挽救,但不能通过表达S326A或显性阴性突变体(∆361-529,dnHSF1)来挽救。此外,HSP70的过表达部分减少了HSF1耗尽引起的纺锤体异常。这些结果表明,HSF1可能通过其交易激活活性维持纺锤体完整性,从而支持细胞增殖和AIG。此外,通过KRIBB11或CCT251236抑制HSF1的转激活活性可以增强多种抗有丝分裂药物诱导的纺锤体缺陷和细胞死亡。结论:HSF1在有丝分裂过程中增加的反激活活性似乎是有丝分裂纺锤体准确组装所必需的,从而支持细胞活力和可能的AIG。此外,抑制HSF1的反激活活性可能会增加抗有丝分裂药物诱导的有丝分裂错误和细胞死亡。
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来源期刊
Cell Division
Cell Division CELL BIOLOGY-
CiteScore
3.70
自引率
0.00%
发文量
5
审稿时长
>12 weeks
期刊介绍: Cell Division is an open access, peer-reviewed journal that encompasses all the molecular aspects of cell cycle control and cancer, cell growth, proliferation, survival, differentiation, signalling, gene transcription, protein synthesis, genome integrity, chromosome stability, centrosome duplication, DNA damage and DNA repair. Cell Division provides an online forum for the cell-cycle community that aims to publish articles on all exciting aspects of cell-cycle research and to bridge the gap between models of cell cycle regulation, development, and cancer biology. This forum is driven by specialized and timely research articles, reviews and commentaries focused on this fast moving field, providing an invaluable tool for cell-cycle biologists. Cell Division publishes articles in areas which includes, but not limited to: DNA replication, cell fate decisions, cell cycle & development Cell proliferation, mitosis, spindle assembly checkpoint, ubiquitin mediated degradation DNA damage & repair Apoptosis & cell death
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