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Dive into the research topics where Carmen Priolo is active.

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Featured researches published by Carmen Priolo.


Proceedings of the National Academy of Sciences of the United States of America | 2010

B-Raf(V600E) and thrombospondin-1 promote thyroid cancer progression.

Carmelo Nucera; Alessandro Porrello; Zeus A. Antonello; Michal Mekel; Matthew A. Nehs; Thomas J. Giordano; Damien Gerald; Laura E. Benjamin; Carmen Priolo; Efisio Puxeddu; Stephen Finn; Barbara Jarzab; Richard A. Hodin; Alfredo Pontecorvi; Vânia Nosé; Jack Lawler; Sareh Parangi

Although B-RafV600E is the most common somatic mutation in papillary thyroid carcinoma (PTC), how it induces tumor aggressiveness is not fully understood. Using gene set enrichment analysis and in vitro and in vivo functional studies, we identified and validated a B-RafV600E gene set signature associated with tumor progression in PTCs. An independent cohort of B-RafV600E-positive PTCs showed significantly higher expression levels of many extracellular matrix genes compared with controls. We performed extensive in vitro and in vivo validations on thrombospondin-1 (TSP-1), because it has been previously shown to be important in the regulation of tumor angiogenesis and metastasis and is present in abundance in tumor stroma. Knockdown of B-RafV600E resulted in TSP-1 down-regulation and a reduction of adhesion and migration/invasion of human thyroid cancer cells. Knockdown of TSP-1 resulted in a similar phenotype. B-RafV600E cells in which either B-RafV600E or TSP-1 were knocked down were implanted orthotopically into the thyroids of immunocompromised mice, resulting in significant reduction in tumor size and fewer pulmonary metastases from the primary carcinoma as compared with the control cells. Treatment of orthotopic thyroid tumors, initiated 1 week after tumor cell implantation with PLX4720, an orally available selective inhibitor of B-RafV600E, caused a significant tumor growth delay and decreased distant metastases, without evidence of toxicity. In conclusion, B-RafV600E plays an important role in PTC progression through genes (i.e., TSP-1) important in tumor invasion and metastasis. Testing of a patients thyroid cancer for B-RafV600E will yield important information about potential tumor aggressiveness and also allow for future use of targeted therapies with selective B-RafV600E inhibitors, such as PLX4720.


Cancer Research | 2006

The Isopeptidase USP2a Protects Human Prostate Cancer from Apoptosis

Carmen Priolo; Dan Tang; Mohan Brahamandan; Barbara Benassi; Ewa Sicinska; Shuji Ogino; Antonella Farsetti; Alessandro Porrello; Stephen Finn; Johann Zimmermann; Phillip G. Febbo; Massinio Loda

Deubiquitinating enzymes can prevent the destruction of protein substrates prior to proteasomal degradation. The ubiquitin-specific protease 2a (USP2a) deubiquitinates the antiapoptotic proteins Fatty Acid Synthase and Mdm2. Here, we show that when USP2a is overexpressed in nontransformed cells, it exhibits oncogenic behavior both in vitro and in vivo and prevents apoptosis induced by chemotherapeutic agents. Notably, USP2a silencing in several human cancer cell lines results in apoptosis. Gene set enrichment analysis, which focuses on groups of genes sharing biological function or regulatory pathways, was done on microarray expression data from human prostate cancers. The cell death-related gene set, as well as a selected cluster of validated p53 target genes, were significantly enriched in the low USP2a expression group of tumors. Conversely, genes implicated in fatty acid metabolism were significantly associated with tumors expressing high USP2a (44%). The expression profile analysis is consistent with the effects of USP2a on its known targets, i.e., Fatty Acid Synthase and Mdm2, defining a subset of prostate tumors resistant to apoptosis. USP2a thus represents a therapeutic target in prostate cancer.


Journal of Clinical Investigation | 2009

Endothelial NOS, estrogen receptor β, and HIFs cooperate in the activation of a prognostic transcriptional pattern in aggressive human prostate cancer

Simona Nanni; Valentina Benvenuti; Annalisa Grasselli; Carmen Priolo; Aurora Aiello; Stefania Mattiussi; Claudia Colussi; Vittoria Lirangi; Barbara Illi; Manuela D’Eletto; Anna Maria Cianciulli; Michele Gallucci; Piero De Carli; Steno Sentinelli; Marcella Mottolese; Paolo Carlini; Lidia Strigari; Stephen Finn; Elke Mueller; Giorgio Arcangeli; Carlo Gaetano; Maurizio C. Capogrossi; Raffaele Perrone Donnorso; Silvia Bacchetti; Ada Sacchi; Alfredo Pontecorvi; Massimo Loda; Antonella Farsetti

The identification of biomarkers that distinguish between aggressive and indolent forms of prostate cancer (PCa) is crucial for diagnosis and treatment. In this study, we used cultured cells derived from prostate tissue from patients with PCa to define a molecular mechanism underlying the most aggressive form of PCa that involves the functional activation of eNOS and HIFs in association with estrogen receptor beta (ERbeta). Cells from patients with poor prognosis exhibited a constitutively hypoxic phenotype and increased NO production. Upon estrogen treatment, formation of ERbeta/eNOS, ERbeta/HIF-1alpha, or ERbeta/HIF-2alpha combinatorial complexes led to chromatin remodeling and transcriptional induction of prognostic genes. Tissue microarray analysis, using an independent cohort of patients, established a hierarchical predictive power for these proteins, with expression of eNOS plus ERbeta and nuclear eNOS plus HIF-2alpha being the most relevant indicators of adverse clinical outcome. Genetic or pharmacologic modulation of eNOS expression and activity resulted in reciprocal conversion of the transcriptional signature in cells from patients with bad or good outcome, respectively, highlighting the relevance of eNOS in PCa progression. Our work has considerable clinical relevance, since it may enable the earlier diagnosis of aggressive PCa through routine biopsy assessment of eNOS, ERbeta, and HIF-2alpha expression. Furthermore, proposing eNOS as a therapeutic target fosters innovative therapies for PCa with NO inhibitors, which are employed in preclinical trials in non-oncological diseases.


Laboratory Investigation | 2008

Overexpression of fatty acid synthase is associated with palmitoylation of Wnt1 and cytoplasmic stabilization of β-catenin in prostate cancer

Michelangelo Fiorentino; Giorgia Zadra; Emanuele Palescandolo; Giuseppe Fedele; Dyane Bailey; Christopher Fiore; Paul L. Nguyen; Toshiro Migita; Raffaella Zamponi; Dolores Di Vizio; Carmen Priolo; Chandan Sharma; Wanling Xie; Martin E. Hemler; Lorelei A. Mucci; Edward Giovannucci; Stephen Finn; Massimo Loda

Fatty acid synthase (FASN), a key metabolic enzyme for liponeogenesis highly expressed in several human cancers, displays oncogenic properties such as resistance to apoptosis and induction of proliferation when overexpressed. To date, no mechanism has been identified to explain the oncogenicity of FASN in prostate cancer. We generated immortalized prostate epithelial cells (iPrECs) overexpressing FASN, and found that 14C-acetate incorporation into palmitate synthesized de novo by FASN was significantly elevated in immunoprecipitated Wnt-1 when compared to isogenic cells not overexpressing FASN. Overexpression of FASN caused membranous and cytoplasmic β-catenin protein accumulation and activation, whereas FASN knockdown by short-hairpin RNA resulted in a reduction in the extent of β-catenin activation. Orthotopic transplantation of iPrECs overexpressing FASN in nude mice resulted in invasive tumors that overexpressed β-catenin. A strong significant association between FASN and cytoplasmic (stabilized) β-catenin immunostaining was found in 862 cases of human prostate cancer after computerized subtraction of the membranous β-catenin signal (P<0.001, Spearmans ρ=0.33). We propose that cytoplasmic stabilization of β-catenin through palmitoylation of Wnt-1 and subsequent activation of the pathway is a potential mechanism of FASN oncogenicity in prostate cancer.


Molecular Cancer Research | 2006

Epithelial-restricted gene profile of primary cultures from human prostate tumors: a molecular approach to predict clinical behavior of prostate cancer

Simona Nanni; Carmen Priolo; Annalisa Grasselli; Manuela D'Eletto; Roberta Merola; Fabiola Moretti; Michele Gallucci; Piero De Carli; Steno Sentinelli; Anna Maria Cianciulli; Marcella Mottolese; Paolo Carlini; Diego Arcelli; Mauro Helmer-Citterich; Carlo Gaetano; Massimo Loda; Alfredo Pontecorvi; Silvia Bacchetti; Ada Sacchi; Antonella Farsetti

The histopathologic and molecular heterogeneity of prostate cancer and the limited availability of human tumor tissue make unraveling the mechanisms of prostate carcinogenesis a challenging task. Our goal was to develop an ex vivo model that could be reliably used to define a prognostic signature based on gene expression profiling of cell cultures that maintained the tumor phenotype. To this end, we derived epithelial cultures from tissue explanted from 59 patients undergoing radical prostatectomy or cistoprostatectomy because of prostate benign hyperplasia/prostate cancer or bladder carcinoma. Patient selection criteria were absence of hormonal neoadjuvant treatment before surgery and diagnosis of clinically localized disease. Using this unique experimental material, we analyzed expression of 22,500 transcripts on the Affymetrix Human U133A GeneChip platform (Affymetrix, Inc., High Wycombe, United Kingdom). Cultures from normal/hyperplastic tissues with a prevalent luminal phenotype and from normal prostate epithelial tissue with basal phenotype (PrEC) served as controls. We have established a large number of prostate primary cultures highly enriched in the secretory phenotype. From them, we derived an epithelial-restricted transcriptional signature that (a) differentiated normal from tumor cells and (b) clearly separated cancer-derived lines into two distinct groups, which correlated with indolent or aggressive clinical behavior of the disease. Our findings provide (a) a method to expand human primary prostate carcinoma cells with a luminal phenotype, (b) a powerful experimental model to study primary prostate cancer biology, and (c) a novel means to characterize these tumors from a molecular genetic standpoint for prognostic and/or predictive purposes. (Mol Cancer Res 2006;4(2):79–92)


Embo Molecular Medicine | 2014

A novel direct activator of AMPK inhibits prostate cancer growth by blocking lipogenesis

Giorgia Zadra; Cornelia Photopoulos; Svitlana Tyekucheva; Pedram Heidari; Qing Ping Weng; Giuseppe Fedele; Hong Liu; Natalia Scaglia; Carmen Priolo; Ewa Sicinska; Umar Mahmood; Sabina Signoretti; Neal Birnberg; Massimo Loda

5′AMP‐activated kinase (AMPK) constitutes a hub for cellular metabolic and growth control, thus representing an ideal therapeutic target for prostate cancers (PCas) characterized by increased lipogenesis and activation of mTORC1 pathway. However, whether AMPK activation itself is sufficient to block cancer cell growth remains to be determined. A small molecule screening was performed and identified MT 63–78, a specific and potent direct AMPK activator. Here, we show that direct activation of AMPK inhibits PCa cell growth in androgen sensitive and castration resistant PCa (CRPC) models, induces mitotic arrest, and apoptosis. In vivo, AMPK activation is sufficient to reduce PCa growth, whereas the allelic loss of its catalytic subunits fosters PCa development. Importantly, despite mTORC1 blockade, the suppression of de novo lipogenesis is the underpinning mechanism responsible for AMPK‐mediated PCa growth inhibition, suggesting AMPK as a therapeutic target especially for lipogenesis‐driven PCas. Finally, we demonstrate that MT 63–78 enhances the growth inhibitory effect of AR signaling inhibitors MDV3100 and abiraterone. This study thus provides a rationale for their combined use in CRPC treatment.


Clinical Cancer Research | 2010

New strategies in Prostate Cancer: targeting lipogenic pathways and the energy sensor AMPK

Giorgia Zadra; Carmen Priolo; Akash Patnaik; Massimo Loda

Although the role of metabolic syndrome (MS) and a high fat diet in prostate cancer (PCa) risk is still a matter of intense debate, it is becoming increasingly clear that obesity can cause perturbations in metabolic pathways that contribute to the pathogenesis and progression of PCa. Moreover, prostate epithelial cells per se undergo a series of metabolic changes, including an increase in de novo lipogenesis, during the process of tumor formation. These metabolic alterations, at both the cellular and organismal levels, are intertwined with genetic aberrations necessary for neoplastic transformation. Thus, altered metabolism is currently subject to intense research efforts and might provide preventative and therapeutic opportunities, as well as a platform for biomarker development. In this article, we review evidence that the metabolic sensor 5′-AMP-activated protein kinase (AMPK), which physiologically integrates nutritional and hormonal signals and regulates cell survival and growth-related metabolic pathways to preserve intracellular ATP levels, represents a link between energy homeostasis and cancer. Thus, when AMPK is not activated, as in the setting of MS and obesity, systemic metabolic alterations permissive to the development of PCa are allowed to proceed unchecked. Hence, the use of AMPK activators and inhibitors of key lipogenic enzymes may represent a promising therapeutic strategy for PCa. Clin Cancer Res; 16(13); 3322–8. ©2010 AACR.


Clinical Cancer Research | 2009

FOXA1 Is a Potential Oncogene in Anaplastic Thyroid Carcinoma

Carmelo Nucera; Jérôme Eeckhoute; Stephen Finn; Jason S. Carroll; Azra H. Ligon; Carmen Priolo; Guido Fadda; Mary Toner; Orla Sheils; Marco Attard; Alfredo Pontecorvi; Vânia Nosé; Massimo Loda; Myles Brown

Purpose: FOXA1 is a mammalian endodermal transcription factor belonging to the human forkhead box gene family that plays a role in certain tumor types. Here, we investigated the potential role of FOXA1 in human thyroid carcinomas. Experimental Design: We examined the level of FOXA1 expression and gene copy number by immunohistochemistry and fluorescence in situ hybridization, respectively, in a cohort of benign and malignant thyroid tumors. In addition, we examined the role of FOXA1 in the proliferation of an undifferentiated thyroid carcinoma cell line by short hairpin RNA-mediated silencing. Results: We show that FOXA1 is overexpressed in human anaplastic thyroid carcinomas (ATC). In addition, we identify FOXA1 DNA copy number gain within the 14q21.1 locus in both an ATC cell line and human ATC cases. Silencing of FOXA1 in an ATC cell line causes G1 growth arrest and reduction of cell proliferation. Moreover, we observe a potential link between FOXA1 and the cell cycle machinery by identifying p27kip1 up-regulation on FOXA1 silencing. Conclusions:FOXA1 is overexpressed in aggressive thyroid cancers and involved in cell cycle progression in an ATC cell line. Therefore, FOXA1 may be an important oncogene in thyroid tumorigenesis and a potential new therapeutic target for the treatment of anaplastic thyroid cancers.


American Journal of Pathology | 2010

Establishment and Genomic Characterization of Mouse Xenografts of Human Primary Prostate Tumors

Carmen Priolo; Michelle Agostini; Natalie Vena; Azra H. Ligon; Michelangelo Fiorentino; Eyoung Shin; Antonella Farsetti; Alfredo Pontecorvi; Ewa Sicinska; Massimo Loda

Serum prostate-specific antigen screening has led to earlier detection and surgical treatment of prostate cancer, favoring an increasing incidence-to-mortality ratio. However, about one third of tumors that are diagnosed when still confined to the prostate can relapse within 10 years from the first treatment. The challenge is therefore to identify prognostic markers of aggressive versus indolent tumors. Although several preclinical models of advanced prostate tumors are available, a model that recapitulates the genetic and growth behavior of primary tumors is still lacking. Here, we report a complete histopathological and genomic characterization of xenografts derived from primary localized low- and high-grade human prostate tumors that were implanted under the renal capsule of immunodeficient mice. We obtained a tumor take of 56% and show that these xenografts maintained the histological as well as most genomic features of the parental tumors. Serum prostate-specific antigen levels were measurable only in tumor xenograft-bearing mice, but not in those implanted with either normal prostate tissue or in tumors that likely regressed. Finally, we show that a high proliferation rate, but not the pathological stage or the Gleason grade of the original tumor, was a fundamental prerequisite for tumor take in mice. This mouse xenograft model represents a useful preclinical model of primary prostate tumors for their biological characterization, biomarker discovery, and drug testing.


Cancer Research | 2014

AKT1 and MYC Induce Distinctive Metabolic Fingerprints in Human Prostate Cancer

Carmen Priolo; Saumyadipta Pyne; Joshua Rose; Erzsébet Ravasz Regan; Giorgia Zadra; Cornelia Photopoulos; Stefano Cacciatore; Denise Schultz; Natalia Scaglia; Jonathan E. McDunn; Angelo M. De Marzo; Massimo Loda

Cancer cells may overcome growth factor dependence by deregulating oncogenic and/or tumor-suppressor pathways that affect their metabolism, or by activating metabolic pathways de novo with targeted mutations in critical metabolic enzymes. It is unknown whether human prostate tumors develop a similar metabolic response to different oncogenic drivers or a particular oncogenic event results in its own metabolic reprogramming. Akt and Myc are arguably the most prevalent driving oncogenes in prostate cancer. Mass spectrometry-based metabolite profiling was performed on immortalized human prostate epithelial cells transformed by AKT1 or MYC, transgenic mice driven by the same oncogenes under the control of a prostate-specific promoter, and human prostate specimens characterized for the expression and activation of these oncoproteins. Integrative analysis of these metabolomic datasets revealed that AKT1 activation was associated with accumulation of aerobic glycolysis metabolites, whereas MYC overexpression was associated with dysregulated lipid metabolism. Selected metabolites that differentially accumulated in the MYC-high versus AKT1-high tumors, or in normal versus tumor prostate tissue by untargeted metabolomics, were validated using absolute quantitation assays. Importantly, the AKT1/MYC status was independent of Gleason grade and pathologic staging. Our findings show how prostate tumors undergo a metabolic reprogramming that reflects their molecular phenotypes, with implications for the development of metabolic diagnostics and targeted therapeutics.

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Dive into the Carmen Priolo's collaboration.

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Elizabeth P. Henske

Brigham and Women's Hospital

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Jane Yu

Brigham and Women's Hospital

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Damir Khabibullin

Brigham and Women's Hospital

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Harilaos Filippakis

Brigham and Women's Hospital

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Andrey Parkhitko

Brigham and Women's Hospital

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Barbara Ogorek

Brigham and Women's Hospital

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Carmelo Nucera

Beth Israel Deaconess Medical Center

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