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HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer

Warburg effect has emerged as a potential hallmark of many cancers. However, the molecular mechanisms that led to this metabolic state of aerobic glycolysis, particularly in ovarian cancer (OVCA) have not been completely elucidated. HSulf-1 predominantly functions by limiting the bioavailability of...

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Autores principales: Mondal, Susmita, Roy, Debarshi, Camacho-Pereira, Juliana, Khurana, Ashwani, Chini, Eduardo, Yang, Lifeng, Baddour, Joelle, Stilles, Katherine, Padmabandu, Seth, Leung, Sam, Kalloger, Steve, Gilks, Blake, Lowe, Val, Dierks, Thomas, Hammond, Edward, Dredge, Keith, Nagrath, Deepak, Shridhar, Viji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4741796/
https://www.ncbi.nlm.nih.gov/pubmed/26378042
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author Mondal, Susmita
Roy, Debarshi
Camacho-Pereira, Juliana
Khurana, Ashwani
Chini, Eduardo
Yang, Lifeng
Baddour, Joelle
Stilles, Katherine
Padmabandu, Seth
Leung, Sam
Kalloger, Steve
Gilks, Blake
Lowe, Val
Dierks, Thomas
Hammond, Edward
Dredge, Keith
Nagrath, Deepak
Shridhar, Viji
author_facet Mondal, Susmita
Roy, Debarshi
Camacho-Pereira, Juliana
Khurana, Ashwani
Chini, Eduardo
Yang, Lifeng
Baddour, Joelle
Stilles, Katherine
Padmabandu, Seth
Leung, Sam
Kalloger, Steve
Gilks, Blake
Lowe, Val
Dierks, Thomas
Hammond, Edward
Dredge, Keith
Nagrath, Deepak
Shridhar, Viji
author_sort Mondal, Susmita
collection PubMed
description Warburg effect has emerged as a potential hallmark of many cancers. However, the molecular mechanisms that led to this metabolic state of aerobic glycolysis, particularly in ovarian cancer (OVCA) have not been completely elucidated. HSulf-1 predominantly functions by limiting the bioavailability of heparan binding growth factors and hence their downstream signaling. Here we report that HSulf-1, a known putative tumor suppressor, is a negative regulator of glycolysis. Silencing of HSulf-1 expression in OV202 cell line increased glucose uptake and lactate production by upregulating glycolytic genes such as Glut1, HKII, LDHA, as well as metabolites. Conversely, HSulf-1 overexpression in TOV21G cells resulted in the down regulation of glycolytic enzymes and reduced glycolytic phenotype, supporting the role of HSulf-1 loss in enhanced aerobic glycolysis. HSulf-1 deficiency mediated glycolytic enhancement also resulted in increased inhibitory phosphorylation of pyruvate dehydrogenase (PDH) thus blocking the entry of glucose flux into TCA cycle. Consistent with this, metabolomic and isotope tracer analysis showed reduced glucose flux into TCA cycle. Moreover, HSulf-1 loss is associated with lower oxygen consumption rate (OCR) and impaired mitochondrial function. Mechanistically, lack of HSulf-1 promotes c-Myc induction through HB-EGF-mediated p-ERK activation. Pharmacological inhibition of c-Myc reduced HB-EGF induced glycolytic enzymes implicating a major role of c-Myc in loss of HSulf-1 mediated altered glycolytic pathway in OVCA. Similarly, PG545 treatment, an agent that binds to heparan binding growth factors and sequesters growth factors away from their ligand also blocked HB-EGF signaling and reduced glucose uptake in vivo in HSulf-1 deficient cells.
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spelling pubmed-47417962016-03-11 HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer Mondal, Susmita Roy, Debarshi Camacho-Pereira, Juliana Khurana, Ashwani Chini, Eduardo Yang, Lifeng Baddour, Joelle Stilles, Katherine Padmabandu, Seth Leung, Sam Kalloger, Steve Gilks, Blake Lowe, Val Dierks, Thomas Hammond, Edward Dredge, Keith Nagrath, Deepak Shridhar, Viji Oncotarget Research Paper Warburg effect has emerged as a potential hallmark of many cancers. However, the molecular mechanisms that led to this metabolic state of aerobic glycolysis, particularly in ovarian cancer (OVCA) have not been completely elucidated. HSulf-1 predominantly functions by limiting the bioavailability of heparan binding growth factors and hence their downstream signaling. Here we report that HSulf-1, a known putative tumor suppressor, is a negative regulator of glycolysis. Silencing of HSulf-1 expression in OV202 cell line increased glucose uptake and lactate production by upregulating glycolytic genes such as Glut1, HKII, LDHA, as well as metabolites. Conversely, HSulf-1 overexpression in TOV21G cells resulted in the down regulation of glycolytic enzymes and reduced glycolytic phenotype, supporting the role of HSulf-1 loss in enhanced aerobic glycolysis. HSulf-1 deficiency mediated glycolytic enhancement also resulted in increased inhibitory phosphorylation of pyruvate dehydrogenase (PDH) thus blocking the entry of glucose flux into TCA cycle. Consistent with this, metabolomic and isotope tracer analysis showed reduced glucose flux into TCA cycle. Moreover, HSulf-1 loss is associated with lower oxygen consumption rate (OCR) and impaired mitochondrial function. Mechanistically, lack of HSulf-1 promotes c-Myc induction through HB-EGF-mediated p-ERK activation. Pharmacological inhibition of c-Myc reduced HB-EGF induced glycolytic enzymes implicating a major role of c-Myc in loss of HSulf-1 mediated altered glycolytic pathway in OVCA. Similarly, PG545 treatment, an agent that binds to heparan binding growth factors and sequesters growth factors away from their ligand also blocked HB-EGF signaling and reduced glucose uptake in vivo in HSulf-1 deficient cells. Impact Journals LLC 2015-09-10 /pmc/articles/PMC4741796/ /pubmed/26378042 Text en Copyright: © 2015 Mondal et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Mondal, Susmita
Roy, Debarshi
Camacho-Pereira, Juliana
Khurana, Ashwani
Chini, Eduardo
Yang, Lifeng
Baddour, Joelle
Stilles, Katherine
Padmabandu, Seth
Leung, Sam
Kalloger, Steve
Gilks, Blake
Lowe, Val
Dierks, Thomas
Hammond, Edward
Dredge, Keith
Nagrath, Deepak
Shridhar, Viji
HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer
title HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer
title_full HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer
title_fullStr HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer
title_full_unstemmed HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer
title_short HSulf-1 deficiency dictates a metabolic reprograming of glycolysis and TCA cycle in ovarian cancer
title_sort hsulf-1 deficiency dictates a metabolic reprograming of glycolysis and tca cycle in ovarian cancer
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4741796/
https://www.ncbi.nlm.nih.gov/pubmed/26378042
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