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dbEMT
dbEMT 2.0
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Basic Information

Gene ID

3037

Name

HAS2

Sentence

From PubMed database
Differential expression of hyaluronan synthase 2 in breast carcinoma and its biological significance.

AIMS: Hyaluronan synthase 2 (HAS2) is an enzyme in hyaluronan synthesis. Several studies have demonstrated that HAS2 plays a critical role in tumour progression in breast cancer cells. The in-situ expression patterns of HAS2 remain unclear, and the aim of this study was to determine these in order to elucidate the role of HAS2 in breast cancer. METHODS AND RESULTS: We examined HAS2 expression using immunohistochemistry in 244 breast carcinomas of various subtypes. We found expression of HAS2 in 30.6% of invasive ductal carcinomas (IDCs); in IDCs, HAS2 expression was correlated significantly with the triple-negative phenotype and the basal-like phenotype, and univariate and multivariate analyses indicated that it was associated with poorer overall survival. In contrast to other carcinoma subtypes, HAS2 expression was observed in up to 72.7% of metaplastic carcinomas of breast (MCB), a carcinoma subtype related to the epithelial-mesenchymal transition (EMT). Consistently, we noted up-regulated levels of HAS2 RNA and protein in TGF-beta-induced EMT in MCF-10A mammary epithelial cells. CONCLUSION: Our findings demonstrate that HAS2 plays a role in aggressive phenotypes of primary breast carcinoma. The strong expression of HAS2 in MCB and the up-regulation of HAS2 in breast cells induced to exhibit EMT implicates an association between HAS2 expression and EMT in breast cancer.CI - (c) 2014 John Wiley & Sons Ltd.

Long noncoding RNA HAS2-AS1 mediates hypoxia-induced invasiveness of oral squamous cell carcinoma.

A hypoxic microenvironment plays important roles in the progression of solid tumors, including oral squamous cell carcinoma (OSCC). Long noncoding RNAs (lncRNAs) have gained much attention in the past few years. However, it is not clear whether lncRNAs can regulate hypoxia adaptation of OSCC or which lncRNAs participate in this process. Using a lncRNA microarray, we analyzed the aberrant lncRNA expression profiles in OSCC tissues compared with paired normal oral mucosa and in hypoxic OSCC cells compared with normoxic OSCC cells. The top 10 lncRNAs that had more than threefold increase with P-value <0.01 in both microarray data were validated by qRT-PCR. Among the top 10 lncRNAs, hyaluronan synthase 2 antisense 1 (HAS2-AS1) was the only one that has a hypoxia-responsive element (HRE) on its promoter region and has been validated to increase in OSCC tissues and in cells cultured under hypoxia. tumor HAS2-AS1 levels were closely associated with lymph node metastasis and hypoxic tumor status in patients with OSCC. Moreover, the hypoxia-induced HAS2-AS1 expression is dependent on HIF-1alpha which directly binds to and activates the transcription of HAS2-AS1. In addition, HAS2-AS1 mediates hypoxia-induced epithelial mesenchymal transition of OSCC cells via stabilizing HAS2. In conclusion, our results suggest that hypoxia would induce an overexpression of HAS2-AS1 in an HIF-1alpha dependent manner. The increase of HAS2-AS1 plays important roles mediating the hypoxia-regulated EMT and invasiveness of OSCC.CI - (c) 2017 Wiley Periodicals, Inc.

TGFbeta2-mediated production of hyaluronan is important for the induction of epicardial cell differentiation and invasion.

In the developing heart, the epicardium is a major source of progenitor cells that contribute to the formation of the coronary vessel system. These epicardial progenitors give rise to the different cellular components of the coronary vasculature by undergoing a number of morphological and physiological changes collectively known as epithelial to mesenchymal transformation (EMT). However, the specific signaling mechanisms that regulate epicardial EMT are yet to be delineated. In this study we investigated the role of TGFbeta2 and hyaluronan (HA) during epicardial EMT and how signals from these two molecules are integrated during this important process. Here we show that TGFbeta2 induces MEKK3 activation, which in turn promotes ERK1/2 and ERK5 phosphorylation. TGFbeta2 also increases Has2 expression and subsequent HA production. Nevertheless, inhibition of MEKK3 kinase activity, silencing of ERK5 or pharmacological disruption of ERK1/2 activation significantly abrogates this response. Thus, TGFbeta2 promotes Has2 expression and HA production through a MEKK3/ERK1/2/5-dependent cascade. Furthermore, TGFbeta2 is able to induce epicardial cell invasion and differentiation but not proliferation. However, inhibition of MEKK3-dependent pathways, degradation of HA by hyaluronidases or blockade of CD44, significantly impairs the biological response to TGFbeta2. Taken together, these findings demonstrate that TGFbeta2 activation of MEKK3/ERK1/2/5 signaling modulates Has2 expression and HA production leading to the induction of EMT events. This is an important and novel mechanism showing how TGFbeta2 and HA signals are integrated to regulate changes in epicardial cell behavior.CI - Published by Elsevier Inc.

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