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116
result(s) for
"Zinc Finger E-box-Binding Homeobox 1 - drug effects"
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The transcription factor NHR-8: A new target to increase ivermectin efficacy in nematodes
by
Guégnard, Fabrice
,
Aguilaniu, Hugo
,
Alberich, Mélanie
in
Animals
,
Anthelmintic agents
,
Anthelmintics
2019
Resistance to the anthelmintic macrocyclic lactone ivermectin (IVM) has a great impact on the control of parasitic nematodes. The mechanisms by which nematodes adapt to IVM remain to be deciphered. We have identified NHR-8, a nuclear hormone receptor involved in the xenobiotic response in Caenorhabditis elegans, as a new regulator of tolerance to IVM. Loss-of-function nhr-8(ok186) C. elegans mutants subjected to larval development assays and electropharyngeogram measurements, displayed hypersensitivity to IVM, and silencing of nhr-8 in IVM-resistant worms increased IVM efficacy. In addition, compared to wild-type worms, nhr-8 mutants under IVM selection pressure failed to acquire tolerance to the drug. In addition, IVM-hypersensitive nhr-8(ok186) worms displayed low transcript levels of several genes from the xenobiotic detoxification network and a concomitant low Pgp-mediated drug efflux activity. Interestingly, some pgp and cyp genes known to impact IVM tolerance in many nematode species, were down regulated in nhr-8 mutants and inversely upregulated in IVM-resistant worms. Moreover, pgp-6 overexpression in nhr-8(ok186) C. elegans increased tolerance to IVM. Importantly, NHR-8 function was rescued in nhr-8(ok186) C. elegans with the homolog of the parasitic nematode Haemonchus contortus, and silencing of Hco-nhr-8 by RNAi on L2 H. contortus larvae increased IVM susceptibility in both susceptible and resistant H. contortus isolates. Thus, our data show that NHR-8 controls the tolerance and development of resistance to IVM in C. elegans and the molecular basis for this relates to the NHR-8-mediated upregulation of IVM detoxification genes. Since our results show that Hco-nhr-8 functions similarly to Cel-nhr-8, this study helps to better understand mechanisms underlying failure in drug efficacy and open perspectives in finding new compounds with NHR-8 antagonist activity to potentiate IVM efficacy.
Journal Article
A CD44/Brg1 nuclear complex confers mesenchymal progenitor cells with enhanced fibrogenicity in idiopathic pulmonary fibrosis
by
Henke, Craig A.
,
Kuo, Jonathan
,
Bitterman, Peter B.
in
Adoptive Transfer
,
Animals
,
Brahma-related gene
2021
Idiopathic pulmonary fibrosis (IPF) is a progressive fibrotic lung disease. We previously identified fibrogenic mesenchymal progenitor cells (MPCs) in the lungs of patients with IPF who serve as drivers of progressive fibrosis. Recent single-cell RNA sequencing work revealed that IPF MPCs with the highest transcriptomic network entropy differ the most from control MPCs and that increased CD44 was a marker of these IPF MPCs. We hypothesize that IPF MPCs with high CD44 (CD44 hi ) expression will display enhanced fibrogenicity. We demonstrate that CD44-expressing MPCs are present at the periphery of the IPF fibroblastic focus, placing them in regions of active fibrogenesis. In a humanized mouse xenograft model, CD44 hi IPF MPCs are more fibrogenic than CD44 lo IPF MPCs, and knockdown of CD44 diminishes their fibrogenicity. CD44 hi IPF MPCs display increased expression of pluripotency markers and enhanced self-renewal compared with CD44 lo IPF MPCs, properties potentiated by IL-8. The mechanism involves the accumulation of CD44 within the nucleus, where it associates with the chromatin modulator protein Brahma-related gene 1 (Brg1) and the zinc finger E-box binding homeobox 1 (Zeb1) transcription factor. This CD44/Brg1/Zeb1 nuclear protein complex targets the Sox2 gene, promoting its upregulation and self-renewal. Our data implicate CD44 interaction with the epigenetic modulator protein Brg1 in conveying IPF MPCs with cell-autonomous fibrogenicity.
Journal Article
ZEB1‐regulated inflammatory phenotype in breast cancer cells
2017
Zinc finger E‐box binding protein 1 (ZEB1) and ZEB2 induce epithelial‐mesenchymal transition (EMT) and enhance cancer progression. However, the global view of transcriptional regulation by ZEB1 and ZEB2 is yet to be elucidated. Here, we identified a ZEB1‐regulated inflammatory phenotype in breast cancer cells using chromatin immunoprecipitation sequencing and RNA sequencing, followed by gene set enrichment analysis (GSEA) of ZEB1‐bound genes. Knockdown of ZEB1 and/or ZEB2 resulted in the downregulation of genes encoding inflammatory cytokines related to poor prognosis in patients with cancer, including IL6 and IL8, therefore suggesting that ZEB1 and ZEB2 have similar functions in terms of the regulation of production of inflammatory cytokines. Antibody array and ELISA experiments confirmed that ZEB1 controlled the production of the IL‐6 and IL‐8 proteins. The secretory proteins regulated by ZEB1 enhanced breast cancer cell proliferation and tumor growth. ZEB1 expression in breast cancer cells also affected the growth of fibroblasts in cell culture, and the accumulation of myeloid‐derived suppressor cells in tumors in vivo. These findings provide insight into the role of ZEB1 in the progression of cancer, mediated by inflammatory cytokines, along with the initiation of EMT. ZEB1 and ZEB2 regulate the production of inflammatory cytokines, such as IL‐6 or IL‐8, in breast cancer cells. The secretory proteins regulated by ZEB1 enhance cancer cell proliferation in an autocrine manner. ZEB1 also regulates the proliferation of fibroblasts and the accumulation of myeloid‐derived suppressor cells (MDSCs) through the secretory proteins in a paracrine manner.
Journal Article
Endothelial ZEB1 promotes angiogenesis-dependent bone formation and reverses osteoporosis
by
Wu, Zhao-Qiu
,
Yao, Qing-Qiang
,
Chen, Xiao-Jie
in
631/337/176
,
692/163/2743/316/801
,
692/698/1671/1811
2020
Recent interest in the control of bone metabolism has focused on a specialized subset of CD31
hi
endomucin
hi
vessels, which are reported to couple angiogenesis with osteogenesis. However, the underlying mechanisms that link these processes together remain largely undefined. Here we show that the zinc-finger transcription factor ZEB1 is predominantly expressed in CD31
hi
endomucin
hi
endothelium in human and mouse bone. Endothelial cell-specific deletion of ZEB1 in mice impairs CD31
hi
endomucin
hi
vessel formation in the bone, resulting in reduced osteogenesis. Mechanistically, ZEB1 deletion reduces histone acetylation on
Dll
4 and
Notch1
promoters, thereby epigenetically suppressing Notch signaling, a critical pathway that controls bone angiogenesis and osteogenesis. ZEB1 expression in skeletal endothelium declines in osteoporotic mice and humans. Administration of
Zeb1
-packaged liposomes in osteoporotic mice restores impaired Notch activity in skeletal endothelium, thereby promoting angiogenesis-dependent osteogenesis and ameliorating bone loss. Pharmacological reversal of the low ZEB1/Notch signaling may exert therapeutic benefit in osteoporotic patients by promoting angiogenesis-dependent bone formation.
An endothelial cell subtype, expressing endomucin and CD31, has been reported to couple angiogenesis with osteogenesis. Here, the authors show that loss of ZEB1 in these cells epigenetically suppresses Notch signaling, leading to impaired angiogenesis and osteogenesis, and that Zeb1 delivery via liposomes ameliorates bone loss in osteoporotic mice
Journal Article
Epithelial-mesenchymal transition (EMT) beyond EGFR mutations per se is a common mechanism for acquired resistance to EGFR TKI
2019
Epidermal growth factor receptor (EGFR) tyrosine kinase inhibitor (TKI) is a major advance in treating NSCLC with EGFR-activating mutations. However, acquired resistance, due partially to secondary mutations limits their use. Here we report that NSCLC cells with acquired resistance to gefitinib or osimertinib (AZD9291) exhibit EMT features, with a decrease in E-cadherin, and increases in vimentin and stemness, without possessing any EGFR secondary mutations. Knockdown of E-cadherin in parental cells increased gefitinib resistance and stemness, while knockdown of vimentin in resistant cells resulted in opposite effects. Src activation and Hakai upregulation were found in gefitinib-resistant cells. Knockdown of Hakai elevated E-cadherin expression, attenuated stemness, and resensitized the cells to gefitinib. Clinical cancer specimens with acquired gefitinib resistance also showed a decrease in E-cadherin and an increase in Hakai expression. The dual HDAC and HMGR inhibitor JMF3086 inhibited the Src/Hakai and Hakai/E-cadherin interaction to reverse E-cadherin expression, and attenuated vimentin and stemness to restore gefitinib sensitivity. The EMT features of AZD9291-resistant H1975 cells were related to the upregulation of Zeb1. Both gefitinib and AZD9291 sensitivity was restored by JMF3086 through reversing EMT. Our study not only revealed a common mechanism of EMT in both gefitinib and AZD9291 resistance beyond EGFR mutations per se, but also provides a new strategy to overcome it.
Journal Article
The PAX6-ZEB2 axis promotes metastasis and cisplatin resistance in non-small cell lung cancer through PI3K/AKT signaling
2019
Paired-box 6 (PAX6) is an important transcription factor required for the function of human neuroectodermal epithelial tissues. Previous studies have suggested that it is also expressed in several types of tumors and has an oncogenic role. However, little is known about its role in non-small cell lung cancer (NSCLC). Here, we found that PAX6 expression levels were upregulated in human lung cancer tissues and correlated with poor clinical outcomes. PAX6 overexpression significantly promoted NSCLC epithelial-to-mesenchymal transition (EMT) and metastasis, whereas its knockdown inhibited these processes. PAX6 is commonly correlated with EMT-mediated stem cell transformation, thereby inducing cisplatin resistance. Using the RT
2
Profiler PCR Array, we found that
WNT5A
,
EGFR
, and
ZEB2
were differentially regulated in response to PAX6 modulation. In addition, PAX6 directly bound to the promoter region of
ZEB2
. ZEB2 knockdown significantly reduced the expression and function of PAX6. ZEB2 was upregulated upon PAX6 overexpression and downregulated upon PAX6 knockdown, whereas E-cadherin expression negatively correlated with PAX6 levels. Moreover, p-PI3K and p-AKT were significantly enhanced by PAX6, which was reversed by the addition of the PI3K-AKT inhibitor, LY294002. These data suggest that PAX6 can mediate E-cadherin downregulation through the PI3K/AKT signaling pathway by directly binding the promoter region of
ZEB2
, thereby mediating cell migration, stem cell transformation, and cisplatin resistance; and ultimately, affecting survival in NSCLC patients.
Journal Article
The role of epithelial–mesenchymal transition drivers ZEB1 and ZEB2 in mediating docetaxel‐resistant prostate cancer
by
Hanrahan, Karen
,
Bugler, Jane
,
Culig, Zoran
in
Analysis
,
Antimitotic agents
,
Antineoplastic agents
2017
Docetaxel is the main treatment for advanced castration‐resistant prostate cancer; however, resistance eventually occurs. The development of intratumoral drug‐resistant subpopulations possessing a cancer stem cell (CSC) morphology is an emerging mechanism of docetaxel resistance, a process driven by epithelial–mesenchymal transition (EMT). This study characterised EMT in docetaxel‐resistant sublines through increased invasion, MMP‐1 production and ZEB1 and ZEB2 expression. We also present evidence for differential EMT across PC‐3 and DU145 in vitro resistance models as characterised by differential migration, cell colony scattering and susceptibility to the CSC inhibitor salinomycin. siRNA manipulation of ZEB1 and ZEB2 in PC‐3 and DU145 docetaxel‐resistant sublines identified ZEB1, through its transcriptional repression of E‐cadherin, to be a driver of both EMT and docetaxel resistance. The clinical relevance of ZEB1 was also determined through immunohistochemical tissue microarray assessment, revealing significantly increased ZEB1 expression in prostate tumours following docetaxel treatment. This study presents evidence for a role of ZEB1, through its transcriptional repression of E‐cadherin to be a driver of both EMT and docetaxel resistance in docetaxel‐resistant prostate cancer. In addition, this study highlights the heterogeneity of prostate cancer and in turn emphasises the complexity of the clinical management of docetaxel‐resistant prostate cancer. This study investigated both ZEB1 and ZEB2 in docetaxel‐resistant prostate cancer and provides strong evidence for ZEB1, through its transcriptional repression of E‐cadherin to be a driver of EMT and docetaxel resistance. This was clinically validated, with patients treated with docetaxel exhibiting increased ZEB1 tumour expression. We also identified differential EMT across resistance models, thereby highlighting the heterogeneity of docetaxel‐resistant prostate cancer.
Journal Article
UTMD inhibit EMT of breast cancer through the ROS/miR-200c/ZEB1 axis
2020
As a potential drug/gene delivery system, the ultrasound-targeted microbubble destruction (UTMD) system can be used as a vehicle as well as increasing the permeability of biological barriers to enhance the effect of tumor treatment. However, the effect of UTMD in the tumor EMT process is unknown. In this study, we aimed to investigate the potential and mechanism of UTMD induced oxidative stress in inhibiting EMT of breast cancer. Human breast MDA231 cells were treated with microbubble (MB), ultrasound (US) and UTMD, respectively. The generation of oxidative stress, the levels of miR-200c, ZEB1 and vimentin, and the numbers of migratory cells were evaluated quantitatively and qualitatively by the measurement of intracellular reactive oxygen species (ROS), qRT-PCR, western blot assay, and transwell assay. Then, to evaluate the role of UTMD-induced oxidative stress and miR-200c in the epithelial-mesenchymal transition (EMT) inhibition, the ROS scavenger N-acetyl-L-cysteine (NAC) and miR-200c inhibitor were used before UTMD treatment. We found that UTMD induced oxidative stress, upregulated the expression of miR-200c, downregulated the expression of ZEB1 and vimentin and suppressed the MDA231 cell migration. The addition of NAC and miR-200c inhibitor had an opposite impact on the expression of miR-200c and ZEB1, thus hindered the effects of UTMD on MDA231 cells EMT. In conclusion, UTMD can inhibit the EMT characteristics of MDA231 cells. The mechanism may be related to the regulation of the miR-200c/ZEB1 axis through the generation of ROS induced by UTMD, which may provide a new strategy to prevent the tumor cells EMT under UTMD treatment.
Journal Article
IL-1β inflammatory response driven by primary breast cancer prevents metastasis-initiating cell colonization
2018
Lack of insight into mechanisms governing breast cancer metastasis has precluded the development of curative therapies. Metastasis-initiating cancer cells (MICs) are uniquely equipped to establish metastases, causing recurrence and therapeutic resistance. Using various metastasis models, we discovered that certain primary tumours elicit a systemic inflammatory response involving interleukin-1β (IL-1β)-expressing innate immune cells that infiltrate distant MIC microenvironments. At the metastatic site, IL-1β maintains MICs in a ZEB1-positive differentiation state, preventing MICs from generating highly proliferative E-cadherin-positive progeny. Thus, when the inherent plasticity of MICs is impeded, overt metastases cannot be established. Ablation of the pro-inflammatory response or inhibition of the IL-1 receptor relieves the differentiation block and results in metastatic colonization. Among patients with lymph node-positive breast cancer, high primary tumour IL-1β expression is associated with better overall survival and distant metastasis-free survival. Our data reveal complex interactions that occur between primary tumours and disseminated MICs that could be exploited to improve patient survival.
Castaño et al. show that primary breast tumours drive an IL-1β -mediated inflammatory response that inhibits cellular plasticity and metastatic colonization of metastasis-initiating cells.
Journal Article
GLCCI1 alleviates airway remodeling in asthmatic mice by inhibiting ZEB1-mediated epithelial-mesenchymal transition
by
Xun, Qiufen
,
Xun, Han
,
Wang, Wei
in
1-Phosphatidylinositol 3-kinase
,
Airway remodeling
,
Airway Remodeling - physiology
2026
Background
Asthma is a heterogeneous disease characterized by chronic airway inflammation and airway hyperresponsiveness. Our previous study found that glucocorticoid-induced transcript 1 (GLCCI1) is down-regulated in the lung tissues of asthmatic mice. This work attempted to determine the precise mechanism of GLCCI1 in asthma.
Methods
The asthma mouse model was constructed by administration of ovalbumin (OVA). OVA challenge elevated airway resistance and increased the levels of inflammatory factors (IL-1β, TNF-α, IL-13, TGF-β, IL-4, and IL-5) in the asthmatic mice. Histological analysis revealed enhanced inflammation and collagen deposition in lung tissues of asthmatic mice. GLCCI1 overexpression reduced airway resistance, lung inflammation, and fibrosis in asthmatic mice. In vitro, airway epithelial cells (BEAS-2B) were treated with TNF-α to mimic the condition of asthma.
Results
GLCCI1 overexpression enhanced the phosphorylation of PI3K, AKT, and mTOR, thereby activating the PI3K/AKT/mTOR signaling pathway in asthmatic mice and TNF-α-treated BEAS-2B. GLCCI1 up-regulation inhibited the expression of ZEB1, N-cadherin, Vimentin and elevated E-cadherin in asthmatic mice and TNF-α-treated BEAS-2B. The influence conferred by GLCCI1 overexpression was reversed by ZEB1 upregulation. It indicated that GLCCI1 suppressed ZEB1-mediated epithelial-mesenchymal transition (EMT). Both LY294002 (PI3K inhibitor) and Rapamycin (mTOR inhibitor) treatment reversed GLCCI1 overexpression-induced inhibition of ZEB1-mediated EMT in TNF-α-treated BEAS-2B.
Conclusion
In summary, this work demonstrated that GLCCI1 overexpression inhibits ZEB1-mediated epithelial-mesenchymal transition by activating PI3K/AKT/mTOR signaling pathway, thereby alleviating airway remodeling in asthmatic mice. Thus, this study suggests that GLCCI1 may be a potential target for asthma treatment.
Graphical Abstract
Journal Article