1.C/EBPβ-Lin28a positive feedback loop triggered by C/EBPβ hypomethylation enhances the proliferation and migration of vascular smooth muscle cells in restenosis.
Xiaojun ZHOU ; Shan JIANG ; Siyi GUO ; Shuai YAO ; Qiqi SHENG ; Qian ZHANG ; Jianjun DONG ; Lin LIAO
Chinese Medical Journal 2025;138(4):419-429
BACKGROUND:
The main cause of restenosis after percutaneous transluminal angioplasty (PTA) is the excessive proliferation and migration of vascular smooth muscle cells (VSMCs). Lin28a has been reported to play critical regulatory roles in this process. However, whether CCAAT/enhancer-binding proteins β (C/EBPβ) binds to the Lin28a promoter and drives the progression of restenosis has not been clarified. Therefore, in the present study, we aim to clarify the role of C/EBPβ-Lin28a axis in restenosis.
METHODS:
Restenosis and atherosclerosis rat models of type 2 diabetes ( n = 20, for each group) were established by subjecting to PTA. Subsequently, the difference in DNA methylation status and expression of C/EBPβ between the two groups were assessed. EdU, Transwell, and rescue assays were performed to assess the effect of C/EBPβ on the proliferation and migration of VSMCs. DNA methylation status was further assessed using Methyltarget sequencing. The interaction between Lin28a and ten-eleven translocation 1 (TET1) was analysed using co-immunoprecipitation (Co-IP) assay. Student's t -test and one-way analysis of variance were used for statistical analysis.
RESULTS:
C/EBPβ expression was upregulated and accompanied by hypomethylation of its promoter in restenosis when compared with atherosclerosis. In vitroC/EBPβ overexpression facilitated the proliferation and migration of VSMCs and was associated with increased Lin28a expression. Conversely, C/EBPβ knockdown resulted in the opposite effects. Chromatin immunoprecipitation assays further demonstrated that C/EBPβ could directly bind to Lin28a promoter. Increased C/EBPβ expression and enhanced proliferation and migration of VSMCs were observed after decitabine treatment. Further, mechanical stretch promoted C/EBPβ and Lin28a expression accompanied by C/EBPβ hypomethylation. Additionally, Lin28a overexpression reduced C/EBPβ methylation via recruiting TET1 and enhanced C/EBPβ-mediated proliferation and migration of VSMCs. The opposite was noted in Lin28a knockdown cells.
CONCLUSION
Our findings suggest that the C/EBPβ-Lin28a axis is a driver of restenosis progression, and presents a promising therapeutic target for restenosis.
Animals
;
Cell Proliferation/genetics*
;
Cell Movement/genetics*
;
Muscle, Smooth, Vascular/metabolism*
;
Rats
;
DNA Methylation/physiology*
;
CCAAT-Enhancer-Binding Protein-beta/genetics*
;
Male
;
Myocytes, Smooth Muscle/cytology*
;
Rats, Sprague-Dawley
;
RNA-Binding Proteins/genetics*
;
Cells, Cultured
;
Coronary Restenosis/metabolism*
2.Loss of TET Activity in the Postnatal Mouse Brain Perturbs Synaptic Gene Expression and Impairs Cognitive Function.
Ji-Wei LIU ; Ze-Qiang ZHANG ; Zhi-Chuan ZHU ; Kui LI ; Qiwu XU ; Jing ZHANG ; Xue-Wen CHENG ; Han LI ; Ying SUN ; Ji-Jun WANG ; Lu-Lu HU ; Zhi-Qi XIONG ; Yongchuan ZHU
Neuroscience Bulletin 2024;40(11):1699-1712
Conversion of 5-methylcytosine (5mC) to 5-hydroxymethylcytosine (5hmC) by ten-eleven translocation (TET) family proteins leads to the accumulation of 5hmC in the central nervous system; however, the role of 5hmC in the postnatal brain and how its levels and target genes are regulated by TETs remain elusive. We have generated mice that lack all three Tet genes specifically in postnatal excitatory neurons. These mice exhibit significantly reduced 5hmC levels, altered dendritic spine morphology within brain regions crucial for cognition, and substantially impaired spatial and associative memories. Transcriptome profiling combined with epigenetic mapping reveals that a subset of genes, which display changes in both 5hmC/5mC levels and expression patterns, are involved in synapse-related functions. Our findings provide insight into the role of postnatally accumulated 5hmC in the mouse brain and underscore the impact of 5hmC modification on the expression of genes essential for synapse development and function.
Animals
;
Brain/growth & development*
;
5-Methylcytosine/metabolism*
;
Mice
;
Synapses/genetics*
;
Proto-Oncogene Proteins/metabolism*
;
DNA-Binding Proteins/metabolism*
;
Dioxygenases/metabolism*
;
Cognition/physiology*
;
Gene Expression
;
Mixed Function Oxygenases/metabolism*
;
Epigenesis, Genetic
;
Mice, Knockout
;
Mice, Inbred C57BL
3.ToxR Is Required for Biofilm Formation and Motility of Vibrio Parahaemolyticus.
Long CHEN ; Yue QIU ; Hao TANG ; Ling Fei HU ; Wen Hui YANG ; Xiao Jue ZHU ; Xin Xiang HUANG ; Tang WANG ; Yi Quan ZHANG
Biomedical and Environmental Sciences 2018;31(11):848-850
Bacterial Proteins
;
genetics
;
metabolism
;
Biofilms
;
DNA-Binding Proteins
;
genetics
;
metabolism
;
Flagella
;
genetics
;
metabolism
;
Gene Expression Regulation, Bacterial
;
Transcription Factors
;
genetics
;
metabolism
;
Vibrio parahaemolyticus
;
cytology
;
genetics
;
growth & development
;
physiology
4.Tet2 Regulates Osteoclast Differentiation by Interacting with Runx1 and Maintaining Genomic 5-Hydroxymethylcytosine (5hmC).
Yajing CHU ; Zhigang ZHAO ; David Wayne SANT ; Ganqian ZHU ; Sarah M GREENBLATT ; Lin LIU ; Jinhuan WANG ; Zeng CAO ; Jeanette Cheng THO ; Shi CHEN ; Xiaochen LIU ; Peng ZHANG ; Jaroslaw P MACIEJEWSKI ; Stephen NIMER ; Gaofeng WANG ; Weiping YUAN ; Feng-Chun YANG ; Mingjiang XU
Genomics, Proteomics & Bioinformatics 2018;16(3):172-186
As a dioxygenase, Ten-Eleven Translocation 2 (TET2) catalyzes subsequent steps of 5-methylcytosine (5mC) oxidation. TET2 plays a critical role in the self-renewal, proliferation, and differentiation of hematopoietic stem cells, but its impact on mature hematopoietic cells is not well-characterized. Here we show that Tet2 plays an essential role in osteoclastogenesis. Deletion of Tet2 impairs the differentiation of osteoclast precursor cells (macrophages) and their maturation into bone-resorbing osteoclasts in vitro. Furthermore, Tet2 mice exhibit mild osteopetrosis, accompanied by decreased number of osteoclasts in vivo. Tet2 loss in macrophages results in the altered expression of a set of genes implicated in osteoclast differentiation, such as Cebpa, Mafb, and Nfkbiz. Tet2 deletion also leads to a genome-wide alteration in the level of 5-hydroxymethylcytosine (5hmC) and altered expression of a specific subset of macrophage genes associated with osteoclast differentiation. Furthermore, Tet2 interacts with Runx1 and negatively modulates its transcriptional activity. Our studies demonstrate a novel molecular mechanism controlling osteoclast differentiation and function by Tet2, that is, through interactions with Runx1 and the maintenance of genomic 5hmC. Targeting Tet2 and its pathway could be a potential therapeutic strategy for the prevention and treatment of abnormal bone mass caused by the deregulation of osteoclast activities.
5-Methylcytosine
;
analogs & derivatives
;
chemistry
;
metabolism
;
Animals
;
Cell Differentiation
;
Cells, Cultured
;
Core Binding Factor Alpha 2 Subunit
;
genetics
;
metabolism
;
DNA-Binding Proteins
;
physiology
;
Genome
;
Genomics
;
Mice
;
Mice, Knockout
;
Osteoclasts
;
cytology
;
metabolism
;
Proto-Oncogene Proteins
;
physiology
5.Relationship between Modulator Recognition Factor 2/AT-rich Interaction Domain 5B Gene Variations and Type 2 Diabetes Mellitus or Lipid Metabolism in a Northern Chinese Population.
Lu-Lu SUN ; Si-Jia ZHANG ; Mei-Jun CHEN ; Kazakova ELENA ; Hong QIAO
Chinese Medical Journal 2017;130(9):1055-1061
BACKGROUNDFour single nucleotide polymorphisms (SNPs) in the modulator recognition factor 2/AT-rich interaction domain 5B (MRF2/ARID5B) gene located at chromosome 10q21.2 have been shown to be associated with both type 2 diabetes mellitus (T2DM) and coronary artery disease in a Japanese cohort. This study aimed to investigate the relationship between these SNPs (rs2893880, rs10740055, rs7087507, rs10761600) and new-onset T2DM and lipid metabolism in a Northern Chinese population.
METHODSThis was a case-control study. The rs2893880, rs10740055, rs7087507, and rs10761600 genetic variants were genotyped by SNPscan and analyzed in relation to T2DM susceptibility in 2000 individuals (999 with newly diagnosed T2DM and 1001 controls without diabetes mellitus). Associations between the MRF2/ARID5B genetic models and T2DM were determined by multivariate logistic regression.
RESULTSRegarding the rs10740055 SNP, AA was associated with a higher risk of T2DM compared with codominant-type CC (adjusted by sex, age, and body mass index [BMI], P= 0.041, odds ratio [OR] = 1.421, 95% confidence interval [CI] 1.014-1.991). Meanwhile, AA individuals were at increased risk of presenting with T2DM compared with individuals with CC or a single C (adjusted by sex, age, and BMI, P= 0.034, OR = 1.366, 95% CI 1.023-1.824). With respect to rs10761600, AT contributed to a higher risk of T2DM compared with AA (adjusted by sex, age, and BMI, P= 0.013, OR = 1.585, 95% CI 1.101-2.282), while TT also increased the risk of presenting with T2DM compared with AA or A (adjusted by sex, age, and BMI, P= 0.004, OR = 1.632, 95% CI 1.166-2.284). High-density lipoprotein cholesterol (HDL-C) levels were significantly different among the three genotypes of rs7087507 in the controls (P = 0.048) (GG>GA).
CONCLUSIONSThe present results identified MRF2/ARID5B as a potential susceptibility gene for new-onset T2DM in a Northern Chinese population, while the rs7087507 SNP was associated with HDL-C levels. Further larger studies are required to validate these findings.
Asian Continental Ancestry Group ; Case-Control Studies ; DNA-Binding Proteins ; chemistry ; genetics ; metabolism ; Diabetes Mellitus, Type 2 ; genetics ; metabolism ; Genetic Association Studies ; Genetic Predisposition to Disease ; genetics ; Genotype ; Humans ; Lipid Metabolism ; genetics ; physiology ; Odds Ratio ; Polymorphism, Single Nucleotide ; genetics ; Transcription Factors ; chemistry ; genetics ; metabolism
6.Epigenetic Silencing of Eyes Absent 4 Gene by Acute Myeloid Leukemia 1-Eight-twenty-one Oncoprotein Contributes to Leukemogenesis in t(8;21) Acute Myeloid Leukemia.
Sai HUANG ; Meng-Meng JIANG ; Guo-Feng CHEN ; Kun QIAN ; Hong-Hao GAO ; Wei GUAN ; Jin-Long SHI ; An-Qi LIU ; Jing LIU ; Bian-Hong WANG ; Yong-Hui LI ; Li YU
Chinese Medical Journal 2016;129(11):1355-1362
BACKGROUNDThe acute myeloid leukemia 1 (AML1)-eight-twenty-one (ETO) fusion protein generated by the t(8;21)(q22;q22) translocation is considered to display a crucial role in leukemogenesis in AML. By focusing on the anti-leukemia effects of eyes absent 4 (EYA4) gene on AML cells, we investigated the biologic and molecular mechanism associated with AML1-ETO expressed in t(8;21) AML.
METHODSQualitative polymerase chain reaction (PCR), quantitative reverse transcription PCR (RT-PCR), and Western blotting analysis were used to observe the mRNA and protein expression levels of EYA4 in cell lines. Different plasmids (including mutant plasmids) of dual luciferase reporter vector were built to study the binding status of AML1-ETO to the promoter region of EYA4. Chromatin immunoprecipitation assay was used to study the epigenetic silencing mechanism of EYA4. Bisulfite sequencing was applied to detect the methylation status in EYA4 promoter region. The influence of EYA4 gene in the cell proliferation, apoptosis, and cell clone-forming ability was detected by the technique of Cell Counting Kit-8, flow cytometry, and clonogenic assay.
RESULTSEYA4 gene was hypermethylated in AML1-ETO+ patients and its expression was down-regulated by 6-fold in Kasumi-1 and SKNO-1 cells, compared to HL-60 and SKNO-1-siA/E cells, respectively. We demonstrated that AML1-ETO triggered the epigenetic silencing of EYA4 gene by binding at AML1-binding sites and recruiting histone deacetylase 1 and DNA methyltransferases. Enhanced EYA4 expression levels inhibited cellular proliferation and suppressed cell colony formation in AML1-ETO+ cell lines. We also found EYA4 transfection increased apoptosis of Kasumi-1 and SKNO-1 cells by 1.6-fold and 1.4-fold compared to negative control, respectively.
CONCLUSIONSOur study identified EYA4 gene as targets for AML1-ETO and indicated it as a novel tumor suppressor gene. In addition, we provided evidence that EYA4 gene might be a novel therapeutic target and a potential candidate for treating AML1-ETO+ t (8;21) AML.
Apoptosis ; genetics ; physiology ; Blotting, Western ; Cell Line, Tumor ; Cell Proliferation ; genetics ; physiology ; Chromatin Immunoprecipitation ; Core Binding Factor Alpha 2 Subunit ; genetics ; metabolism ; DNA Methylation ; genetics ; Epigenesis, Genetic ; genetics ; Gene Silencing ; HL-60 Cells ; Humans ; Leukemia, Myeloid, Acute ; genetics ; metabolism ; pathology ; Oncogene Proteins, Fusion ; genetics ; metabolism ; RNA, Small Interfering ; genetics ; RUNX1 Translocation Partner 1 Protein ; Radioimmunoprecipitation Assay ; Trans-Activators ; genetics ; metabolism
7.Advance in research on the function of telomeric shelterin component TPP1 and its relationship with characteristics of tumors.
Chinese Journal of Medical Genetics 2016;33(4):573-577
As an important telomere binding protein, TPP1 protects the ends of telomeres and maintains the stability and integrity of its structure and function by interacting with other five essential core proteins (POT1, TRF1, TRF2, TIN2, and RAP1) to form a complex called Shelterin. Recently, researchers have discovered that TPP1 participates in protection of telomeres and regulation of telomerase activity. The relationship between TPP1 and tumorigenesis, tumor progression and treatment has also been investigated. This paper reviews the latest findings of TPP1 regarding to its structure, function and interaction with other proteins involved in tumorigenesis.
Chromosomal Instability
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DNA Damage
;
Humans
;
Neoplasms
;
genetics
;
Telomere
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Telomere-Binding Proteins
;
chemistry
;
physiology
8.Activation of NF-κB and AP-1 Mediates Hyperproliferation by Inducing β-Catenin and c-Myc in Helicobacter pylori-Infected Gastric Epithelial Cells.
Eunyoung BYUN ; Bohye PARK ; Joo Weon LIM ; Hyeyoung KIM
Yonsei Medical Journal 2016;57(3):647-651
PURPOSE: In the gastric mucosa of Helicobacter pylori (H. pylori)-infected patients with gastritis or adenocarcinoma, proliferation of gastric epithelial cells is increased. Hyperproliferation is related to induction of oncogenes, such as β-catenin and c-myc. Even though transcription factors NF-κB and AP-1 are activated in H. pylori-infected cells, whether NF-κB or AP-1 regulates the expression of β-catenein or c-myc in H. pylori-infected cells has not been clarified. The present study was undertaken to investigate whether H. pylori-induced activation of NF-κB and AP-1 mediates the expression of oncogenes and hyperproliferation of gastric epithelial cells. MATERIALS AND METHODS: Gastric epithelial AGS cells were transiently transfected with mutant genes for IκBα (MAD3) and c-Jun (TAM67) or treated with a specific NF-κB inhibitor caffeic acid phenethyl ester (CAPE) or a selective AP-1 inhibitor SR-11302 to suppress activation of NF-κB or AP-1, respecively. As reference cells, the control vector pcDNA was transfected to the cells. Wild-type cells or transfected cells were cultured with or without H. pylori. RESULTS: H. pylori induced activation of NF-κB and AP-1, cell proliferation, and expression of oncogenes (β-catenein, c-myc) in AGS cells, which was inhibited by transfection of MAD3 and TAM67. Wild-type cells and the cells transfected with pcDNA showed similar activities of NF-κB and AP-1, proliferation, and oncogene expression regardless of treatment with H. pylori. Both CAPE and SR-11302 inhibited cell proliferation and expression of oncogenes in H. pylori-infected cells. CONCLUSION: H. pylori-induced activation of NF-κB and AP-1 regulates transcription of oncogenes and mediates hyperproliferation in gastric epithelial cells.
Blotting, Western
;
Caffeic Acids
;
Cell Line, Tumor
;
Cell Proliferation
;
DNA, Bacterial/analysis/genetics
;
DNA-Binding Proteins/*metabolism
;
Epithelial Cells/*metabolism
;
Gastric Mucosa/*metabolism/pathology
;
Gastritis/pathology
;
Gene Expression Regulation, Bacterial
;
Helicobacter Infections/metabolism/pathology/physiopathology
;
Helicobacter pylori/pathogenicity/physiology
;
Humans
;
NF-kappa B/antagonists & inhibitors/*biosynthesis/metabolism
;
Peptide Fragments
;
Phenylethyl Alcohol/analogs & derivatives
;
Proto-Oncogene Proteins c-jun
;
Repressor Proteins
;
Transcription Factor AP-1/*biosynthesis
;
Transcription Factors/*metabolism
;
beta Catenin/*metabolism
9.Non-catalytic roles for TET1 protein negatively regulating neuronal differentiation through srGAP3 in neuroblastoma cells.
Jie GAO ; Yue MA ; Hua-Lin FU ; Qian LUO ; Zhen WANG ; Yu-Huan XIAO ; Hao YANG ; Da-Xiang CUI ; Wei-Lin JIN
Protein & Cell 2016;7(5):351-361
The methylcytosine dioxygenases TET proteins (TET1, TET2, and TET3) play important regulatory roles in neural function. In this study, we investigated the role of TET proteins in neuronal differentiation using Neuro2a cells as a model. We observed that knockdown of TET1, TET2 or TET3 promoted neuronal differentiation of Neuro2a cells, and their overexpression inhibited VPA (valproic acid)-induced neuronal differentiation, suggesting all three TET proteins negatively regulate neuronal differentiation of Neuro2a cells. Interestingly, the inducing activity of TET protein is independent of its enzymatic activity. Our previous studies have demonstrated that srGAP3 can negatively regulate neuronal differentiation of Neuro2a cells. Furthermore, we revealed that TET1 could positively regulate srGAP3 expression independent of its catalytic activity, and srGAP3 is required for TET-mediated neuronal differentiation of Neuro2a cells. The results presented here may facilitate better understanding of the role of TET proteins in neuronal differentiation, and provide a possible therapy target for neuroblastoma.
Animals
;
Catalytic Domain
;
Cell Differentiation
;
drug effects
;
physiology
;
Cell Line, Tumor
;
DNA-Binding Proteins
;
antagonists & inhibitors
;
genetics
;
metabolism
;
Enzyme Inhibitors
;
pharmacology
;
GTPase-Activating Proteins
;
genetics
;
metabolism
;
Immunohistochemistry
;
Mice
;
Microscopy, Fluorescence
;
Neuroblastoma
;
metabolism
;
pathology
;
Protein Isoforms
;
antagonists & inhibitors
;
genetics
;
metabolism
;
Proto-Oncogene Proteins
;
antagonists & inhibitors
;
genetics
;
metabolism
;
RNA Interference
;
RNA, Messenger
;
metabolism
;
RNA, Small Interfering
;
metabolism
;
Valproic Acid
;
pharmacology
10.Human INO80/YY1 chromatin remodeling complex transcriptionally regulates the BRCA2- and CDKN1A-interacting protein (BCCIP) in cells.
Jiaming SU ; Yi SUI ; Jian DING ; Fuqiang LI ; Shuang SHEN ; Yang YANG ; Zeming LU ; Fei WANG ; Lingling CAO ; Xiaoxia LIU ; Jingji JIN ; Yong CAI
Protein & Cell 2016;7(10):749-760
The BCCIP (BRCA2- and CDKN1A-interacting protein) is an important cofactor for BRCA2 in tumor suppression. Although the low expression of BCCIP is observed in multiple clinically diagnosed primary tumor tissues such as ovarian cancer, renal cell carcinoma and colorectal carcinoma, the mechanism of how BCCIP is regulated in cells is still unclear. The human INO80/YY1 chromatin remodeling complex composed of 15 subunits catalyzes ATP-dependent sliding of nucleosomes along DNA. Here, we first report that BCCIP is a novel target gene of the INO80/YY1 complex by presenting a series of experimental evidence. Gene expression studies combined with siRNA knockdown data locked candidate genes including BCCIP of the INO80/YY1 complex. Silencing or over-expressing the subunits of the INO80/YY1 complex regulates the expression level of BCCIP both in mRNA and proteins in cells. Also, the functions of INO80/YY1 complex in regulating the transactivation of BCCIP were confirmed by luciferase reporter assays. Chromatin immunoprecipitation (ChIP) experiments clarify the enrichment of INO80 and YY1 at +0.17 kb downstream of the BCCIP transcriptional start site. However, this enrichment is significantly inhibited by either knocking down INO80 or YY1, suggesting the existence of both INO80 and YY1 is required for recruiting the INO80/YY1 complex to BCCIP promoter region. Our findings strongly indicate that BCCIP is a potential target gene of the INO80/YY1 complex.
Calcium-Binding Proteins
;
genetics
;
metabolism
;
Cell Cycle Proteins
;
genetics
;
metabolism
;
Chromatin Assembly and Disassembly
;
physiology
;
DNA Helicases
;
genetics
;
metabolism
;
HeLa Cells
;
Humans
;
Multiprotein Complexes
;
genetics
;
metabolism
;
Nuclear Proteins
;
genetics
;
metabolism
;
Promoter Regions, Genetic
;
physiology
;
Transcription, Genetic
;
physiology
;
YY1 Transcription Factor
;
genetics
;
metabolism

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