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The Versatile Role of microRNA-30a in Human Cancer

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MicroRNAs (miRNAs) are a group of noncoding RNA molecules of 20-23 nucleotides length that negatively regulate gene expressions in numerous cellular processes. Through complementary paring with target mRNAs, miRNAs have frequently emerged as dual regulators of cancer development by acting on multiple signaling pathways, thereby act as novel biomarkers for cancer diagnosis, prognosis, and prediction of response to treatment. As one of them, miR-30a has been found to act as an onco-suppressor of tumorigenesis pathways through inhibition of cellular proliferation, migration and invasion. Simultaneously, miR-30a plays a progressing role in several types of cancer, determined by relevant target genes as well. In the present review, we summarize recent research regarding miR-30a, including its biological function, expression and regulation, especially focusing on its role in cancer development and progression. Clinically, miR-30a may serve as a potential target in the diagnosis and therapy of human cancer.

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Abstract A1: SIAH E3 ligase as a novel anticancer drug target to inhibit RAS-mediated tumorigenesis and metastasis in human cancer cells
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  • Yang Liao + 5 more

The central importance of the ERBB/RAS signal transduction cascade has been well established in human cancer. As such, novel approaches to counteract activated ERBB/RAS signals constitute important measures to reverse tumorigenesis and metastasis in human cancers. Instead of targeting an upstream signaling module such as ERBB/RAS/MEK/MAPK/AKT/mTOR, we targeted the most downstream signaling module in the ERBB/RAS pathway called the SIAH-dependent proteolytic machinery. SIAHs are the human homologs of Seven-In-Absentia (SINA), an evolutionarily conserved RING E3 ligase, an essential downstream signaling module and a critical “gatekeeper” required for proper Drosophila RAS signal transduction. Guided by the insights and principles learned from Drosophila RAS signaling pathway, we conducted preclinical studies to examine SIAH function in the context of RAS-mediated tumorigenesis and metastasis in human cancer cells.We found that (1) SIAH is a novel biomarker for human cancer, i.e. it specifically decorates proliferating tumor cells (not stromal cells in the tumor microenvironment). SIAH expression is progressively and markedly upregulated as human cancer progresses to the advanced stages in human pancreatic, lung, breast and prostate cancers; and (2) inhibiting the proteolytic function of SIAH is highly effective to abolish tumorigenesis and metastasis in eight of the most aggressive human cancer cell lines known in the literature that include pancreatic cancer cells (MiaPaCa and Panc-1), lung cancer cells (A549), invasive breast cancer cells (MDA-MB-231, MDA-MB-468 and MDA-MB-435) and hormonal-refractory prostate cancer cells (PC-3 and DU-145) in soft agar as well as in athymic nude mice. These findings suggest that SIAH may be an attractive new therapeutic target for novel anti-RAS and anti-cancer therapy in human cancer. As a highly evolutionarily conserved E3 ligase and consistent with its “gatekeeper” function identified in the ERBB/RAS signaling pathway, SIAH is well positioned to become a next-generation and potent anticancer drug target to block the tumor-promoting RAS pathway and to treat the most aggressive types of human cancers. “Using anti-SIAH molecules to block active RAS signaling in human cancer” may be another example of “from the bench [basic science from fruitflies (model organism) to human cancers] to the bedside story [translational medicine in the near future]”. Anti-SIAH-based anticancer strategy may aid in expanding our arsenal of novel anticancer therapies. By attacking the oncogenic ERBB/RAS pathway using multi-pronged synergistic inhibitions at upstream (EGFR/HER2 membrane receptors), midstream (RAS/RAF/MEK/mTOR) and downstream (SIAH E3 ligase) signaling modules in parallel, we may be in a great position to halt the genesis, progression and metastasis of the most aggressive and lethal types of human cancers. If successful, we hope to translate our findings to the cancer clinics to treat many cancer patients with metastatic diseases in the future. Citation Information: Cancer Res 2009;69(23 Suppl):A1.

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Proline-Directed Protein Kinase FA as a Potential Target for Diagnosis and Therapy of Human Cancers
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Proline-directed protein kinase FA (PDPK FA) was originally identified as a phosphatase activating factor (FA) but has subsequently been characterized as a multisubstrate/multifunctional PDPK possibly associated with human cancers. In recent years, the immunohistochemical study revealed that PDPK FA was highly expressed in tumor mass and preferentially overexpressed in the invasive lesions of the resected tissue sections obtained from various types of cancer patients. The clinicopathologic study further revealed a close correlation of the overexpression of PDPK FA with poor prognosis of the cancer patients. The antisense gene therapy study also confirmed that due to its multisubstrate/multifunctional PDPK nature, the overexpression of PDPK FA is essential for the development of malignant growth, tumorigenesis, invasion, metastasis, anti-differentiation, anti-apoptosis and chemoresistance in human cancers. From immunohistochemical, clinicopathologic and antisense gene therapeutic studies combined together, PDPK FA has emerged as a key regulator of all aspects of neoplasia. In this way, nature provides prima facie evidence of a particular protein kinase's pivotal importance to the neoplastic state. PDPK FA therefore represents a newly-described, previously-undiscovered novel signal transducing target for diagnosis, disease monitoring, drug screening and therapy of human cancers.

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The role of eukaryotic translation initiation factor 6 in tumors
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Implications of the p53 tumor-suppressor gene in clinical oncology.
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  • F Chang + 2 more

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Abstract 1032: The acetylcholine signaling pathway: A novel molecular target for lung cancers
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Cigarette smoking is a major risk factor for all types of lung cancers. Nicotine, the addictive component of cigarettes, accelerates the growth and angiogenesis of human lung cancers. The biological activity of nicotine is mediated by nicotinic acetylcholine receptors (nAChRs). The endogenous ligand of nAChRs is acetylcholine (ACh). We show that both human SCLCs and NSCLCs contain all proteins of the acetylcholine signaling pathway, namely nAChRs, choline acetyltransferase (ChAT), vesicular acetylcholine transporter (VAChT), choline transporter (ChT1) and acetylcholinesterase (AChE). ACh functions as an autocrine growth factor for human lung cancer cells. Lung adenocarcinoma (LAC), squamous cell carcinoma (SCC-L) and invasive mucinous adenocarcinoma (IMA) express a diverse array of nAChRs. In addition, normal human lung cells also express nAChRs and other ACh signaling proteins. Nicotine amplifies the ACh signaling loop in human lung cancer cells. It increases the levels of alpha7-nAChR subunit in human SCC-Ls. The alpha7-nAChR is responsible for the proliferative and pro-angiogenic activity of nicotine in lung cancer. The level of alpha7-nAChR was analyzed in human SCC-L samples isolated from patients. It was found that the level of alpha7-nAChR in SCC-L patients (who are heavy smokers) was much higher than that of moderate smoker suffering from SCC-Ls. Nicotine was also found to elevate the levels of ChAT and VAChT in human lung cancers. The acetylcholine signaling pathway may be a useful molecular target for the diagnosis and therapy of human lung cancers in smokers. Our results are also relevant to lung cancer patients who are exposed to nicotine via secondhand smoke, nicotine patches, gums or electronic cigarettes. Citation Format: Kathleen C. Brown, Jamie K. Lau, Haley E. Perry, Brent A. Thornhill, Cathryn D. Stevenson, William D. Rollyson, Cody A. Stover, Dennie V. Jones, Joseph F. Pulliam, Piyali Dasgupta. The acetylcholine signaling pathway: A novel molecular target for lung cancers. [abstract]. In: Proceedings of the 106th Annual Meeting of the American Association for Cancer Research; 2015 Apr 18-22; Philadelphia, PA. Philadelphia (PA): AACR; Cancer Res 2015;75(15 Suppl):Abstract nr 1032. doi:10.1158/1538-7445.AM2015-1032

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  • Research Article
  • Cite Count Icon 29
  • 10.3389/fonc.2020.553714
MicroRNA-24 in Cancer: A Double Side Medal With Opposite Properties.
  • Oct 2, 2020
  • Frontiers in oncology
  • Sumei Wang + 5 more

MicroRNA-24 (miR-24) has been widely studied in a variety of human cancers, which plays different roles in specific type of cancers. In the present review, we summarized the recent surveys regarding the role of miR-24 in different human cancers. On the one hand, miR-24 was reported to be down-regulated in some types of cancer, indicating its role as a tumor suppressor. On the other hand, it has shown that miR-24 was up-regulated in some other types of cancer, even in the same type of cancer, suggesting the role of miR-24 being as an oncogene. Firstly, miR-24 was dysregualted in human cancers, which is related to the clinical performance of cancer patients. Thus miR-24 could be used as a potential non-invasive diagnostic marker in human cancers. Secondly, miR-24 was associated with the tumor initiation and progression, being as a promoter or inhibitor. Therefore, miR-24 might be an effective prognostic biomarker in different type of cancers. Lastly, the abnormal expression of miR-24 was involved in the chemo- and radio- therapies of cancer patients, indicating the role of miR-24 being as a predictive biomarker to cancer treatment. Totally, miR-24 contributes to tumorigenesis, tumor progression, and tumor therapy, which closely related to clinic. The present review shows that miR-24 plays a double role in human cancers and provides plenty of evidences to apply miR-24 as a potential novel therapeutic target in treating human cancers.

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  • Research Article
  • Cite Count Icon 6
  • 10.3389/fimmu.2022.888757
Ferroptosis-Associated Molecular Features to Aid Patient Clinical Prognosis and Therapy Across Human Cancers
  • Jun 20, 2022
  • Frontiers in Immunology
  • Kaisa Cui + 9 more

Ferroptosis is a new non-apoptotic form that regulates cell death and is mainly dependent on iron-mediated oxidative damage and subsequent cell membrane damage. Ferroptosis may be a potential therapeutic strategy for immunotherapy, chemotherapy, and radiotherapy in human cancers. Numerous studies have analyzed ferroptosis-correlated signatures or genes, but a systematic landscape of associations among tumor ferroptosis, clinical outcomes, tumor microenvironment, and therapies in human cancers is lacking. Here, we developed a relative ferroptosis level (RFL) combined with drive/suppress regulators and validated it in the Gene Expression Omnibus datasets of ferroptotic drug treatment. Based on this effective evaluation method, we classified about 7,000 tumor samples into high and low RFL groups in each cancer type and observed that high RFL cases demonstrate favorable survival outcomes in nine cancer types from The Cancer Genome Atlas. Then, several RFL-correlated candidate genes that have not been reported to be ferroptosis-related were selected and experimentally validated in five cancer cell lines using Erastin treatment. We further showed that both immunostimulatory and immunosuppressive phenotypes were observed in high RFL tumors, suggesting that the consideration of ferroptosis could be a potential strategy in cancer immunotherapy. Moreover, we found that high RFL cases/cells showed responder or sensitivity to chemotherapy and radiotherapy. Our study provides a comprehensive molecular-level understanding of ferroptosis and may have practical implications for clinical cancer therapies, including immunotherapy, chemotherapy, and radiotherapy.

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