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8 result(s) for "miR-190"
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miR-190 suppresses breast cancer metastasis by regulation of TGF-β-induced epithelial–mesenchymal transition
Background Breast cancer is the most common cancer among women worldwide and metastasis is the leading cause of death among patients with breast cancer. The transforming growth factor-β (TGF-β) pathway plays critical roles during breast cancer epithelial–mesenchymal transition (EMT) and metastasis. SMAD2, a positive regulator of TGF-β signaling, promotes breast cancer metastasis through induction of EMT. Methods The expression of miR-190 and SMAD2 in breast cancer tissues, adjacent normal breast tissues and cell lines were determined by RT-qPCR. The protein expression levels and localization were analyzed by western blotting and immunofluorescence. ChIP and dual-luciferase report assays were used to validate the regulation of ZEB1-miR-190-SMAD2 axis. The effect of miR-190 on breast cancer progression was investigated both in vitro and in vivo. Results miR-190 down-regulation is required for TGF-β-induced EMT. miR-190 suppresses breast cancer metastasis both in vitro and in vivo by targeting SMAD2. miR-190 expression is down-regulated and inversely correlates with SMAD2 in breast cancer samples, and its expression level was associated with outcome in patients with breast cancer. Furthermore, miR-190 is transcriptionally regulated by ZEB1. Conclusions Our data uncover the ZEB1-miR-190-SMAD2 axis and provide a mechanism to explain the TGF-β network in breast cancer metastasis.
miR-190 enhances endocrine therapy sensitivity by regulating SOX9 expression in breast cancer
Background Breast cancer is the most common cancer among women worldwide, and approximately 70% of breast cancers are hormone receptor-positive and express estrogen receptor-α (ERα) or/and progesterone receptor. Therapies targeting ERα have been successfully used in patients with ERα + breast cancer. However, intrinsic or acquired resistance to anti-estrogen therapy presents a major challenge. The Wnt/β-catenin signaling pathway regulates various processes that are important for cancer progression, and emerging evidences have shown a close interaction between Wnt/β-catenin and ERα signaling. miR-190 is also involved in ER signaling and our previous study indicated that miR-190 suppresses breast cancer metastasis. Methods The effect of miR-190 on breast cancer anti-estrogen sensitivity was investigated both in vitro and in vivo. The protein expression levels and localization were analyzed by western blotting and immunofluorescence, respectively. Chromatin immunoprecipitation and dual-luciferase reporter assays were used to validate the regulation of the zinc-finger E-box binding homeobox 1/ ERα-miR-190-SRY-related high mobility group box 9 (ZEB1/ERα-miR-190-SOX9) axis. Results miR-190 increased the anti-estrogen sensitivity of breast cancer cells both in vitro and in vivo. miR-190 inhibited Wnt/β-catenin signaling by targeting SOX9, and its expression inversely correlated with that of SOX9 in breast cancer samples. Furthermore, ERα and ZEB1 competitively regulated miR-190 expression. Conclusions Our data uncover the ZEB1/ERα-miR-190-SOX9 axis and suggest a mechanism by which the Wnt/β-catenin signaling pathway is involved in breast cancer anti-estrogen therapy.
miR-190-5p in human diseases
miRNAs, a major class of small noncoding RNAs approximately 18–25 nucleotides in length, function by repressing the expression of target genes through binding to complementary sequences in the 3′-UTRs of target genes. Emerging evidence has highlighted their important roles in numerous diseases, including human cancers. Recently, miR-190 has been shown to be dysregulated in various types of human cancers that participates in cancer-related biological processes, including proliferation, apoptosis, metastasis, drug resistance, by regulating associated target genes, and to predict cancer diagnosis and prognosis. In this review, we summarized the roles of miR-190-5p in human diseases, especially in human cancers. Then we classified its target genes in tumorigenesis and progression, which might provide evidence for cancer diagnosis and prognosis, promising tools for cancer treatment, or leads for further investigation.
miR-190 promotes malignant transformation and progression of human urothelial cells through CDKN1B/p27 inhibition
Background Although miR-190 has been reported to be related to human diseases, especially in the development and progression of cancer, its expression in human bladder cancer (BC) and potential contribution to BC remain unexplored. Methods RT-qPCR was used to verify the expression level of miR-190 and CDKN1B. Flow cytometry (FCM) assays were performed to detect cell cycle. Soft agar assay was used to measure anchorage-independent growth ability. Methylation-Specific PCR, Dual-luciferase reporter assay and Western blotting were used to elucidate the potential mechanisms involved. Results Our studies revealed that downregulation of the p27 (encoded by CDKN1B gene) protein is an important event related to miR-190, promoting the malignant transformation of bladder epithelial cells. miR-190 binds directly to CDKN1B 3’-UTR and destabilizes CDKN1B mRNA. Moreover, miR-190 downregulates TET1 by binding to the TET1 CDS region, which mediates hypermethylation of the CDKN1B promoter, thereby resulting in the downregulation of CDKN1B mRNA. These two aspects led to miR-190 inhibition of p27 protein expression in human BC cells. A more in-depth mechanistic study showed that c-Jun promotes the transcription of Talin2, the host gene of miR-190, thus upregulating the expression of miR-190 in human BC cells. Conclusions In this study, we found that miR-190 plays an important role in the development of BC. Taken together, these findings indicate that miR-190 may promote the malignant transformation of human urothelial cells by downregulating CDKN1B , which strengthens our understanding of miR-190 in regulating BC cell transformation.
NF-κB1 p50 promotes p53 protein translation through miR-190 downregulation of PHLPP1
The biological function of NF-κB1 (p50) in the regulation of protein expression is far from well understood owing to the lack of a transcriptional domain. Here, we report a novel function of p50 in its regulation of p53 protein translation under stress conditions. We found that the deletion of p50 (p50−/−) impaired arsenite-induced p53 protein expression, which could be restored after reconstitutive expression of HA-p50 in p50−/− cells, p50−/−(Ad-HA-p50). Further studies indicated that the amounts of p53 mRNA, p53 promoter-driven transcription activity and p53 protein degradation were comparable between wild-type and p50−/− cells. Moreover, we found that p50 was crucial for Akt/S6 ribosomal protein activation via inhibition of the translation of the PH domain and leucine-rich repeat protein phosphatases 1 (PHLPP1), a phosphatase of Akt. Further studies showed that p50-mediated upregulation of miR-190 was responsible for the inhibition of PHLPP1 translation by targeting the 3′-untranslated region of its mRNA. Collectively, we have identified a novel function of p50 in modulating p53 protein translation via regulation of the miR-190/PHLPP1/Akt-S6 ribosomal protein pathway.
CBX4/miR‐190 regulatory loop inhibits lung cancer metastasis
Background Lung cancer is one of the major threats to human life worldwide. MiR‐190 has been found to perform essential roles in multiple cancer progression; however, there have been no studies focused on its function and underlying regulatory mechanism in lung cancer. Method The miR‐190 expression was detected by real‐time quantitative polymerase chain reaction (RT‐qPCR). The cell functional experiments, including cell counting kit‐8 (CCK‐8), colony formation and transwell assay were conducted in vitro, as well as animal experiments performed in vivo. The regulation and potential binding sites of CBX4 on miR‐190 were predicted by TCGA data set and JASPAR website and verified by ChIP assay and dual‐luciferase reporter assay. The prospects binding site of miR‐190‐3p on CBX4 3′UTR region was predicted by StarBase and verified by dual‐luciferase reporter assay. Results MiR‐190 was decreased in lung cancer cells. The overexpression of miR‐190 had no effects on cell proliferation, but significantly inhibited cancer metastasis both in vitro and in vivo. Moreover, miR‐190 expression could be transcriptionally inhibited by CBX4, and CBX4 was the direct target of miR‐190‐3p. Conclusion MiR‐190 served as a cancer metastasis inhibitor in lung cancer and formed a regulatory loop with CBX4. These findings provided emerging insights into therapeutic targets and strategies for metastatic lung cancer. CBX4 could inhibit miR‐190 expression transcriptionally, and CBX4 was a direct target of miR‐190‐3p, and formed a loop in regulating lung cancer metastasis.
MiR-190 ameliorates glucotoxicity-induced dysfunction and apoptosis of pancreatic β -cells by inhibiting NOX2-mediated reactive oxygen species production
Glucotoxicity-induced pancreatic β -cell failure contributes to the development of type 2 diabetes mellitus (T2DM). Accumulating evidence reveals that miRNAs play a critical role in regulating pancreatic β -cell function and survival. In this study, we employed a self-assembled cell microarray (SAMcell)-based functional screening assay to identify miRNAs that are capable of regulating the dysfunction of β -cells induced by glucotoxicity. Among 62 conserved miRNAs we tested, miR-190 was identified as a candidate regulator that could effectively restore insulin expression in NIT-1 cells under high-glucose (HG) stimulation. Further analyses demonstrated that miR-190 was significantly down-regulated in HG-treated NIT-1 cells, as well as in the pancreas of diabetic mice. Mechanistic studies showed that Cybb is the direct target gene of miR-190, which encodes the gp91phox protein, a subunit of the NOX2 complex. Furthermore, both miR-190 overexpression and Cybb knockdown inhibited apoptosis and improved glucose-stimulated insulin secretion (GSIS) in HG-stimulated NIT-1 cells by attenuating the excessive production of reactive oxygen species (ROS). More importantly, a targeted delivery of mPEG-PCL-g-PDMAEMA nanoparticles/miR-190 complexes (PECgD NPs/miR-190) to the pancreas significantly ameliorated hyperglycemia, decreased fasting serum insulin levels, and improved glucose tolerance in diabetic mice. Taken together, our findings suggest that the miR-190/Cybb axis plays an important role in glucotoxicity-induced pancreatic β -cell failure. Restoring miR-190 expression levels may be a possible therapeutic strategy to protect β -cells in T2DM.
Post-transcriptional regulation DPC4 gene by miR-190 in colorectal cancer cells
Objective: The objective of this study is to elucidate the regulation of the DPC4 gene by miR-190 in colorectal cancer (CRC) cells. The present study was undertaken to determine whether the DPC4 gene is a target gene of miRNA-190, identify target motifs and to elucidate the mechanism of regulation of DPC4 by miRNA-190. Materials and Methods: MiR-190 and DPC4 expression were measured in five different CRC cell lines by quantitative real-time polymerase chain reaction (qRT-PCR) and Western blot. The regulation of DPC4 by miR-190 was evaluated by qRT-PCR, Western blotting, and luciferase reporter assays in the human CRC cell line HT-29 after treatment with miR-190 mimics and inhibitors. Results: The DPC4 mRNA, miR-, and DPC4 protein expression levels were highest in LS174T cells while lowest in SW480 and SW620 cells. The DPC4/miR-190 ratio in the HT-29 cancer cell line was the largest. MiR-190 expression increased dramatically after treatment with miR-190 mimics and decreased significantly after treatment with miR-190 inhibitors. DPC4 protein expression decreased in the miR-190 mimics transfection group when compared to the negative control (N.C.) group and increased in the miR-190 inhibitor groups when compared to the inhibitor plus N.C. group. MiR-190 inhibits the relative luciferase activity of psiCHECK-2™ vector-3'UTR compared to the N.C. group, while miR-190 had no obvious effect on the relative luciferase activity of the psiCHECK-2™ vector-3'UTRmut and psiCHECK-2™ vector transfected cells. Conclusions: The DPC4 gene might be the target gene of miR-190, which may negatively regulate the DPC4 gene in human CRC cells by translational suppression rather than mRNA degradation.