STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effect

<p>Abstract</p> <p>Background</p> <p>The Signal Transducer and Activator of Transcription 1 (STAT1) has traditionally been regarded as a transmitter of interferon signaling and a pro-apoptotic tumour suppressor. Recent data have identified new functions of STAT1 associa...

Full description

Bibliographic Details
Main Authors: MacDermed Dhara M, Beckett Michael A, Beveridge Mara G, Sood Ravi F, Wakim Bassam T, Pitroda Sean P, Weichselbaum Ralph R, Khodarev Nikolai N
Format: Article
Language:English
Published: BMC 2009-11-01
Series:BMC Medicine
Online Access:http://www.biomedcentral.com/1741-7015/7/68
id doaj-b0f2e37f4048499e8e786d51452633d9
record_format Article
spelling doaj-b0f2e37f4048499e8e786d51452633d92020-11-25T00:06:17ZengBMCBMC Medicine1741-70152009-11-01716810.1186/1741-7015-7-68STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effectMacDermed Dhara MBeckett Michael ABeveridge Mara GSood Ravi FWakim Bassam TPitroda Sean PWeichselbaum Ralph RKhodarev Nikolai N<p>Abstract</p> <p>Background</p> <p>The Signal Transducer and Activator of Transcription 1 (STAT1) has traditionally been regarded as a transmitter of interferon signaling and a pro-apoptotic tumour suppressor. Recent data have identified new functions of STAT1 associated with tumourigenesis and resistance to genotoxic stress, including ionizing radiation (IR) and chemotherapy. To investigate the mechanisms contributing to the tumourigenic functions of STAT1, we performed a combined transcriptomic-proteomic expressional analysis and found that STAT1 is associated with regulation of energy metabolism with potential implication in the Warburg effect.</p> <p>Methods</p> <p>We generated a stable knockdown of STAT1 in the SCC61 human squamous cell carcinoma cell line, established tumour xenografts in athymic mice, and compared transcriptomic and proteomic profiles of STAT1 wild-type (WT) and knockdown (KD) untreated or irradiated (IR) tumours. Transcriptional profiling was based on Affymetrix Human GeneChip<sup>® </sup>Gene 1.0 ST microarrays. Proteomes were determined from the tandem mass spectrometry (MS/MS) data by searching against the human subset of the UniProt database. Data were analysed using Significance Analysis of Microarrays for ribonucleic acid and Visualize software for proteins. Functional analysis was performed with Ingenuity Pathway Analysis with statistical significance measured by Fisher's exact test.</p> <p>Results</p> <p>Knockdown of STAT1 led to significant growth suppression in untreated tumours and radio sensitization of irradiated tumours. These changes were accompanied by alterations in the expression of genes and proteins of glycolysis/gluconeogenesis (GG), the citrate cycle (CC) and oxidative phosphorylation (OP). Of these pathways, GG had the most concordant changes in gene and protein expression and demonstrated a STAT1-dependent expression of genes and proteins consistent with tumour-specific glycolysis. In addition, IR drastically suppressed the GG pathway in STAT1 KD tumours without significant change in STAT1 WT tumours.</p> <p>Conclusion</p> <p>Our results identify a previously uncharacterized function of STAT1 in tumours: expressional regulation of genes encoding proteins involved in glycolysis, the citrate cycle and mitochondrial oxidative phosphorylation, with predominant regulation of glycolytic genes. STAT1-dependent expressional regulation of glycolysis suggests a potential role for STAT1 as a transcriptional modulator of genes responsible for the Warburg effect.</p> http://www.biomedcentral.com/1741-7015/7/68
collection DOAJ
language English
format Article
sources DOAJ
author MacDermed Dhara M
Beckett Michael A
Beveridge Mara G
Sood Ravi F
Wakim Bassam T
Pitroda Sean P
Weichselbaum Ralph R
Khodarev Nikolai N
spellingShingle MacDermed Dhara M
Beckett Michael A
Beveridge Mara G
Sood Ravi F
Wakim Bassam T
Pitroda Sean P
Weichselbaum Ralph R
Khodarev Nikolai N
STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effect
BMC Medicine
author_facet MacDermed Dhara M
Beckett Michael A
Beveridge Mara G
Sood Ravi F
Wakim Bassam T
Pitroda Sean P
Weichselbaum Ralph R
Khodarev Nikolai N
author_sort MacDermed Dhara M
title STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effect
title_short STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effect
title_full STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effect
title_fullStr STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effect
title_full_unstemmed STAT1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the Warburg effect
title_sort stat1-dependent expression of energy metabolic pathways links tumour growth and radioresistance to the warburg effect
publisher BMC
series BMC Medicine
issn 1741-7015
publishDate 2009-11-01
description <p>Abstract</p> <p>Background</p> <p>The Signal Transducer and Activator of Transcription 1 (STAT1) has traditionally been regarded as a transmitter of interferon signaling and a pro-apoptotic tumour suppressor. Recent data have identified new functions of STAT1 associated with tumourigenesis and resistance to genotoxic stress, including ionizing radiation (IR) and chemotherapy. To investigate the mechanisms contributing to the tumourigenic functions of STAT1, we performed a combined transcriptomic-proteomic expressional analysis and found that STAT1 is associated with regulation of energy metabolism with potential implication in the Warburg effect.</p> <p>Methods</p> <p>We generated a stable knockdown of STAT1 in the SCC61 human squamous cell carcinoma cell line, established tumour xenografts in athymic mice, and compared transcriptomic and proteomic profiles of STAT1 wild-type (WT) and knockdown (KD) untreated or irradiated (IR) tumours. Transcriptional profiling was based on Affymetrix Human GeneChip<sup>® </sup>Gene 1.0 ST microarrays. Proteomes were determined from the tandem mass spectrometry (MS/MS) data by searching against the human subset of the UniProt database. Data were analysed using Significance Analysis of Microarrays for ribonucleic acid and Visualize software for proteins. Functional analysis was performed with Ingenuity Pathway Analysis with statistical significance measured by Fisher's exact test.</p> <p>Results</p> <p>Knockdown of STAT1 led to significant growth suppression in untreated tumours and radio sensitization of irradiated tumours. These changes were accompanied by alterations in the expression of genes and proteins of glycolysis/gluconeogenesis (GG), the citrate cycle (CC) and oxidative phosphorylation (OP). Of these pathways, GG had the most concordant changes in gene and protein expression and demonstrated a STAT1-dependent expression of genes and proteins consistent with tumour-specific glycolysis. In addition, IR drastically suppressed the GG pathway in STAT1 KD tumours without significant change in STAT1 WT tumours.</p> <p>Conclusion</p> <p>Our results identify a previously uncharacterized function of STAT1 in tumours: expressional regulation of genes encoding proteins involved in glycolysis, the citrate cycle and mitochondrial oxidative phosphorylation, with predominant regulation of glycolytic genes. STAT1-dependent expressional regulation of glycolysis suggests a potential role for STAT1 as a transcriptional modulator of genes responsible for the Warburg effect.</p>
url http://www.biomedcentral.com/1741-7015/7/68
work_keys_str_mv AT macdermeddharam stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
AT beckettmichaela stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
AT beveridgemarag stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
AT soodravif stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
AT wakimbassamt stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
AT pitrodaseanp stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
AT weichselbaumralphr stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
AT khodarevnikolain stat1dependentexpressionofenergymetabolicpathwayslinkstumourgrowthandradioresistancetothewarburgeffect
_version_ 1725423021445873664