The Males Absent on the First (MOF) Mediated Acetylation Alters the Protein Stability and Transcriptional Activity of YY1 in HCT116 Cells
<p>Immunoprecipitation and GST-pulldown experiments confirmed the binding of MOF and YY1. (<b>A</b>,<b>B</b>) Endogenous MOF and YY1 were immunoprecipitated by overexpressed Flag-YY1 and Flag-MOF in HCT116 cells. Bound proteins were measured by Western blot analysis. GAPDH was used as an internal control. (<b>C</b>) Co-transfection and Flag IP confirmed the interaction between YY1 and MOF. HCT116 cells were co-transfected with Flag-YY1 and untagged MOF, and bound MOF was measured after a Flag IP. (<b>D</b>) The colocalization analysis of YY1 and MOF. Endogenous YY1 (green) and MOF (red) in SW480 cells were visualized by IF staining. DAPI staining showed the nuclei. Scale bar indicates 200 µm. (<b>E</b>) Different lengths of YY1. (<b>F</b>) A GST-pulldown assay was performed by mixing whole cell lysates of Flag-MOF overexpressing 293T cells and the GST-tagged deletion mutants of YY1 proteins. (<b>G</b>) The lack of the 146–270 region in YY1 decreased its binding to MOF. (<b>H</b>) The 146–270 region of YY1 competed for binding to MOF. HCT116 cells were transiently transfected with YY1 and MOF, as indicated; 48 h later, the MOF protein level was analyzed after a Flag IP. IB, immunoblot.</p> "> Figure 2
<p>Acetylation of YY1 by the MOF/MSL complex negatively regulated its protein stability in HCT116 cells. (<b>A</b>) YY1 may be modified by MOF. Endogenous YY1 was detected by a Western blot analysis after overexpressing MOFwt or the MOFG327E mutant in HCT116 cells. The red arrow indicates YY1 that may be modified. (<b>B</b>) Acetylation of YY1 by MOF facilitated its degradation. (<b>C</b>) Degradation of YY1, caused by MOF, was inhibited by the MOF enzyme activity inhibitor MG149. (<b>D</b>) The inactivated MOFG327E mutant inhibited the degradation of YY1. (<b>E</b>) The knockdown of <span class="html-italic">MOF</span> reduced YY1 degradation. (<b>F</b>) Elevated MOF decreased the endogenous YY1 protein level. Scale bar indicates 200 µm. (<b>G</b>,<b>H</b>) The MOF/MSL complex promoted YY1 degradation. HCT116 cells were transfected with YY1 alone or co-transfected with MSL2 or MSL1, and 48 h later, YY1 degradation was measured by Western blot using an anti-HA antibody. The red arrow in (<b>G</b>) indicates MSL2 protein. GAPDH was used as an internal control.</p> "> Figure 3
<p>MOF-mediated acetylation of YY1 is inhibited by HDAC1 in HCT116 cells. (<b>A</b>) The HDAC inhibitor, SAHA, increased YY1 degradation. (<b>B</b>) The degradation of YY1 without the 146–270 region was not affected by SAHA. (<b>C</b>) The interaction of MOF with the YY1/146–270 region controlled YY1 stability. (<b>D</b>) Both the SAHA and the HDAC1 inhibitor, MS275, promoted YY1 degradation. (<b>E</b>) YY1 and HDAC1 were bound to each other. (<b>F</b>) MOF and HDAC1 may competitively bind to YY1. (<b>G</b>) YY1 acetylation in cells was regulated by MOF and HDAC1.</p> "> Figure 4
<p>The YY1K183 site regulated the acetylation-mediated ubiquitin degradation of YY1. (<b>A</b>) There are three predicted potential ubiquitination sites (K183, K208, and K258 indicated by red color) in the 146–270 region of YY1. (<b>B</b>) Protein expression of the mutant plasmids. (<b>C</b>) The effect of mutations of lysine K183, K208, and K258 to arginine on YY1 ubiquitination. (<b>D</b>) Lysine K183 and K258 mutations suppressed YY1 ubiquitin degradation. (<b>E</b>) The effect of acetylation on ubiquitination of YY1 and mutants. (<b>F</b>) Protein stability of the YY1K183R mutant. (<b>G</b>) The effects of MOF-mediated acetylation on the ubiquitin-mediated degradation of the YY1K183R mutant.</p> "> Figure 5
<p>The YY1/146–270 region and the YY1K183 site play important roles in p53RE-mediated downstream target gene transactivation in HCT116 cells. (<b>A</b>) The schematic diagram of target genes up- or down-regulated by YY1. (<b>B</b>) The schematic diagram of a p53RE-Luc plasmid. Multiple response elements of <span class="html-italic">TP53</span> were inserted into the pp53-TA-Luc vector. (<b>C</b>,<b>D</b>) The effects of YY1 and its truncated mutants on p53RE-Luc luciferase activity and related protein levels. * <span class="html-italic">p</span> < 0.05 or # <span class="html-italic">p</span> < 0.05, compared to the p53RT-Luc group. (<b>E</b>) P53 and its downstream protein levels in <span class="html-italic">YY1</span> knockdown HCT116 cells. (<b>F</b>) Effects of YY1 and its point mutants on p21 protein levels. Increasing amounts of YY1wt, YY1K183R, and YY1K258R were transfected into HCT116 cells, and p21 protein levels were analyzed by a Western blot using the anti-p21 antibody. (<b>G</b>) The effects of YY1 and MOF on p53RE-Luc luciferase activity. * <span class="html-italic">p</span> < 0.05 or ** <span class="html-italic">p</span> < 0.01 compared to the p53RT-Luc group; ## <span class="html-italic">p</span> < 0.01 or ### <span class="html-italic">p</span> < 0.001 compared to the p53RT-Luc+MOF groups.</p> "> Figure 6
<p>YY1K183R/K258R mutants suppressed CDC6 transactivation and inhibited cell proliferation in HCT116 and SW480 cells. (<b>A</b>) A schematic diagram of YY1 in the promoter region of <span class="html-italic">CDC6</span>. (<b>B</b>) The effects of YY1wt and its mutants on CDC6 protein levels. (<b>C</b>) The effects of YY1wt and its mutants on CDC6-Luc luciferase activity. (<b>D</b>) The effects of YY1wt and its mutants on CDC6 protein expression levels. (<b>E</b>–<b>G</b>) The effects of YY1wt and YY1K183R on cell proliferation, as detected by an EdU proliferation assay. The proliferation rate is shown in (<b>F</b>) (** <span class="html-italic">p</span> < 0.01 compared to the pcDNA3.1 group; ns, no significant difference between the pcDNA3.1 and YY1K183R groups), and the YY1 protein levels are revealed in (<b>G</b>). (<b>H</b>) MTT assays. * <span class="html-italic">p</span> < 0.05 compared to the pcDNA3.1 group; # <span class="html-italic">p</span> < 0.05 compared to the YY1wt group. (<b>I</b>) The effects of YY1 and mutants on cell clone formation. (<b>J</b>) Quantified colony numbers for the experimental results in. ** <span class="html-italic">p</span> < 0.01, *** <span class="html-italic">p</span> < 0.001 compared to the pcDNA3.1 group; ## <span class="html-italic">p</span> < 0.01 or ### <span class="html-italic">p</span> < 0.001 compared to the Flag-YY1 group.</p> ">
Abstract
:1. Introduction
2. Results
2.1. Interaction between YY1 and MOF Was Confirmed by Immunoprecipitation (IP) and GST-Pulldown Assays
2.2. Acetylation of YY1 by the MOF/MSL Complex Was Closely Associated with YY1 Ubiquitin-Proteasome Degradation in HCT116 Cells
2.3. The Acetylation of YY1 in HCT116 Cells Was Regulated by MOF and HDAC1
2.4. The YY1K183 Site Is the Main Ubiquitylation Site That Maintains YY1 Stability
2.5. The YY1/146–270 Region and the YY1K183 Site Interfered with p53-Mediated p21 Expression in HCT116 Cells
2.6. A YY1K183R Mutant Inhibited CDC6 Transactivation, and Suppressed the Proliferation of HCT116 Cells
3. Discussion
4. Materials and Methods
4.1. Antibodies
4.2. Cell Culture
4.3. Plasmids and Transient Transfection
4.4. Immunoprecipitation (IP)
4.5. Expression of Recombinant Proteins in Escherichia coli
4.6. MTT Assay
4.7. Colony Formation Assay
4.8. Immunofluorescence Staining
4.9. EdU Assay
4.10. Luciferase Reporter Assay
4.11. Statistical Analysis
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
MOF | Males absent on the first |
YY1 | Yin-Yang 1 |
HAT | Histone acetyltransferase |
HDAC | Histone deacetylase |
TFs MSL PTM | Transcription factors Male-specific lethal Post-translational modification |
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Wu, T.; Zhao, B.; Cai, C.; Chen, Y.; Miao, Y.; Chu, J.; Sui, Y.; Li, F.; Chen, W.; Cai, Y.; et al. The Males Absent on the First (MOF) Mediated Acetylation Alters the Protein Stability and Transcriptional Activity of YY1 in HCT116 Cells. Int. J. Mol. Sci. 2023, 24, 8719. https://doi.org/10.3390/ijms24108719
Wu T, Zhao B, Cai C, Chen Y, Miao Y, Chu J, Sui Y, Li F, Chen W, Cai Y, et al. The Males Absent on the First (MOF) Mediated Acetylation Alters the Protein Stability and Transcriptional Activity of YY1 in HCT116 Cells. International Journal of Molecular Sciences. 2023; 24(10):8719. https://doi.org/10.3390/ijms24108719
Chicago/Turabian StyleWu, Tingting, Bingxin Zhao, Chengyu Cai, Yuyang Chen, Yujuan Miao, Jinmeng Chu, Yi Sui, Fuqiang Li, Wenqi Chen, Yong Cai, and et al. 2023. "The Males Absent on the First (MOF) Mediated Acetylation Alters the Protein Stability and Transcriptional Activity of YY1 in HCT116 Cells" International Journal of Molecular Sciences 24, no. 10: 8719. https://doi.org/10.3390/ijms24108719
APA StyleWu, T., Zhao, B., Cai, C., Chen, Y., Miao, Y., Chu, J., Sui, Y., Li, F., Chen, W., Cai, Y., Wang, F., & Jin, J. (2023). The Males Absent on the First (MOF) Mediated Acetylation Alters the Protein Stability and Transcriptional Activity of YY1 in HCT116 Cells. International Journal of Molecular Sciences, 24(10), 8719. https://doi.org/10.3390/ijms24108719