| Literature DB >> 29983883 |
Abdulkhaleg Ibrahim1,2, Mahmoud Alhosin3,4, Christophe Papin1, Khalid Ouararhni1, Ziad Omran5, Mazin A Zamzami3,4, Abdulrahman Labeed Al-Malki3, Hani Choudhry3,4, Yves Mély6, Ali Hamiche1, Marc Mousli6, Christian Bronner1.
Abstract
Down-regulation of UHRF1 (Ubiquitin-like containing PHD and Ring Finger 1) in Jurkat cells, induced by natural anticancer compounds such as thymoquinone, allows re-expression of tumor suppressor genes such as p73 and p16INK4A . In order to decipher the mechanisms of UHRF1 down-regulation, we investigated the kinetic of expression of HAUSP (herpes virus-associated ubiquitin-specific protease), UHRF1, cleaved caspase-3 and p73 in Jurkat cells treated with thymoquinone. We found that thymoquinone induced degradation of UHRF1, correlated with a sharp decrease in HAUSP and an increase in cleaved caspase-3 and p73. UHRF1 concomitantly underwent a rapid ubiquitination in response to thymoquinone and this effect was not observed in the cells expressing mutant UHRF1 RING domain, suggesting that UHRF1 commits an auto-ubiquitination through its RING domain in response to thymoquinone treatment. Exposure of cells to Z-DEVD, an inhibitor of caspase-3 markedly reduced the thymoquinone-induced down-regulation of UHRF1, while proteosomal inhibitor MG132 had no such effect. The present findings indicate that thymoquinone induces in cancer cells a fast UHRF1 auto-ubiquitination through its RING domain associated with HAUSP down-regulation. They further suggest that thymoquinone-induced UHRF1 auto-ubiquitination followed by its degradation is a key event in inducing apoptosis through a proteasome-independent mechanism.Entities:
Keywords: UHRF1; apoptosis; thymoquinone; tumor suppressor genes; ubiquitination
Year: 2018 PMID: 29983883 PMCID: PMC6033341 DOI: 10.18632/oncotarget.25583
Source DB: PubMed Journal: Oncotarget ISSN: 1949-2553
Figure 1TQ-induced UHRF1 apoptosis in Jurkat and HL60 cells
Jurkat cells (A) or HL60 cells (B) were exposed to increasing concentrations of TQ for 24 h. Apoptosis was assessed by flow cytometry using the Annexin V/7AAD staining apoptosis assay as described in the Materials and Methods section. Values are shown as means ± S.E.M. (n = 3); *p < 0.05, **p < 0.01, ***p < 0.001 versus control.
Figure 2Effect of TQ on UHRF1 protein, UHRF1 mRNA and p73 mRNA
(A) Expression of UHRF1 was analyzed by western blot after a 24 hr-treatment of Jurkat cells with various doses of TQ. (B) Quantification of UHRF1 expression using NIH ImageJ software. (C and D) UHRF1 and p73 gene transcription was investigated in Jurkat cells treated with 30 µM for the indicated times and the expression of both genes was investigated using RT-PCR as described in Materials and Methods. Values are shown as means ± S.E.M. (n = 3); **p < 0.01, ***p < 0.001, ****p < 0.0001 versus control.
Figure 3Time course effect of TQ on HAUSP, UHRF1, ubiquitinated UHRF1, p73 and cleaved caspase- 3
(A) Time course effect of 30 µM TQ on HAUSP, UHRF1, p73 and cleaved caspase- 3 expression in Jurkat cells. (B) Effect of TQ on UHRF1 ubiquitination in Jurkat cells. Cells were treated with 30 µM of TQ for 10 minutes. UHRF1 was immunoprecipitated from cell lysates as described in material and methods, then WB was performed using anti-UHRF1 antibody (lanes 1 and 2) or anti-ubiquitin antibody (lanes 3 and 4). Data are representative of 3 different experiments.
Mass spectrometry data of E3 ligase and deubiquitinase found in the soluble nuclear extract of epitope tagged UHRF1 in the absence or presence of 100 µM of TQ
| Peptide | Peptide | Enzyme | ||
|---|---|---|---|---|
| Entry | Protein | Control | TQ-treated | |
| Q96T88_UHRF1_HUMAN | UHRF1 | 77 | 68 | E3-ligase |
| O95071_UBR5_HUMAN | UBR5 | 0 | 45 | E3-ligase |
| Q16531_DDB1_HUMAN | DDB1 | 10 | 20 | E3-ligase |
| Q13619_CUL4A_HUMAN | CUL4A | 2 | 5 | E3-ligase |
| Q7Z6Z7_HUWE1_HUMAN | HUWE1 | 2 | 63 | E3-ligase |
| Q5T4S7_UBR4_HUMAN | UBR4 | 0 | 1 | E3-ligase |
| Q06587_RING1_HUMAN | RING1 | 0 | 1 | E3-ligase |
| Q93009_UBP7_HUMAN | USP7 | 46 | 32 | deubiquitinase |
| P45974_UBP5_HUMAN | USP5 | 9 | 0 | deubiquitinase |
| Q86UV5_UBP48_HUMAN | USP48 | 5 | 0 | deubiquitinase |
| Q9Y4E8_UBP15_HUMAN | USP15 | 4 | 0 | deubiquitinase |
| Q53GS9_SNUT2_HUMAN | USP39 | 3 | 0 | deubiquitinase |
| Q93008_USP9X_HUMAN | USP9X | 3 | 0 | deubiquitinase |
Figure 4Effect of TQ on UHRF1 expression in HA-tagged UHRF1 wild-type and HA-tagged RING-mutated UHRF1 cell lines
HeLa cells were treated with various concentrations of TQ for 3 hrs (A) and for 24 hrs (B) and the expression of HA-tagged UHRF1 was investigated using a monoclonal anti-HA antibody. Data are representative of 2 different experiments.
Figure 5Effect of TQ on UHRF1 expression in the presence of the proteasome inhibitor MG132 and the caspase-3 inhibitor Z-DEVD
(A) Jurkat cells were pretreated with proteasome inhibitor MG132 for 1 h before adding TQ for 3 and 6 h. (B) Jurkat cells were pretreated with either caspase-3 inhibitor (Z-DEVD) at 3 µM or proteasome inhibitor MG132 at 10 µM or both inhibitors for 1 h before adding TQ for 24 h. Western blot was then performed using anti-UHRF1 antibody. Data are representative of 3 different experiments.