Home LiteratureArticle Details
PMID: 19033663 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Targeting lactate-fueled respiration selectively kills hypoxic tumor cells in mice.

The Journal of clinical investigation ·Vol. 118 ·No. 12 ·2008-12-00 ·Pages 3930-42

Sonveaux P, Végran F, Schroeder T, Wergin MC, Verrax J, Rabbani ZN, De Saedeleer CJ, Kennedy KM, Diepart C, Jordan BF, Kelley MJ, Gallez B, Wahl ML, Feron O, Dewhirst MW

Abstract

Tumors contain oxygenated and hypoxic regions, so the tumor cell population is heterogeneous. Hypoxic tumor cells primarily use glucose for glycolytic energy production and release lactic acid, creating a lactate gradient that mirrors the oxygen gradient in the tumor. By contrast, oxygenated tumor cells have been thought to primarily use glucose for oxidative energy production. Although lactate is generally considered a waste product, we now show that it is a prominent substrate that fuels the oxidative metabolism of oxygenated tumor cells. There is therefore a symbiosis in which glycolytic and oxidative tumor cells mutually regulate their access to energy metabolites. We identified monocarboxylate transporter 1 (MCT1) as the prominent path for lactate uptake by a human cervix squamous carcinoma cell line that preferentially utilized lactate for oxidative metabolism. Inhibiting MCT1 with alpha-cyano-4-hydroxycinnamate (CHC) or siRNA in these cells induced a switch from lactate-fueled respiration to glycolysis. A similar switch from lactate-fueled respiration to glycolysis by oxygenated tumor cells in both a mouse model of lung carcinoma and xenotransplanted human colorectal adenocarcinoma cells was observed after administration of CHC. This retarded tumor growth, as the hypoxic/glycolytic tumor cells died from glucose starvation, and rendered the remaining cells sensitive to irradiation. As MCT1 was found to be expressed by an array of primary human tumors, we suggest that MCT1 inhibition has clinical antitumor potential.

MeSH Terms
Animals Cell Hypoxia/genetics Cell Line, Tumor Drug Delivery Systems/methods Gene Expression Regulation, Neoplastic/genetics Glucose/metabolism Glycolysis/genetics Humans Lactic Acid/metabolism Mice Mice, Inbred BALB C Monocarboxylic Acid Transporters/biosynthesis,genetics Neoplasm Transplantation Neoplasms, Experimental/drug therapy,genetics,metabolism,pathology Oxidation-Reduction Oxygen/metabolism Symporters/biosynthesis,genetics Transplantation, Heterologous
Chemicals
Monocarboxylic Acid Transporters Symporters monocarboxylate transport protein 1 Lactic Acid Glucose Oxygen
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Sonveaux Pierre
Unit of Pharmacology & Therapeutics, Université catholique de Louvain, Brussels, Belgium. pierre.sonveaux@uclouvain.be
Végran Frédérique
Schroeder Thies
Wergin Melanie C
Verrax Julien
Rabbani Zahid N
De Saedeleer Christophe J
Kennedy Kelly M
Diepart Caroline
Jordan Bénédicte F
Kelley Michael J
Gallez Bernard
Wahl Miriam L
Feron Olivier
Dewhirst Mark W
References (49)
49 references, click to expand
  1. Characterisation of human monocarboxylate transporter 4 substantiates its role in lactic acid efflux from skeletal muscle.
    J Physiol. 2000 Dec 1;529 Pt 2:285-93 PMID: 11101640
  2. The effects of endotoxin on oxygen consumption of various cell types in vitro: an EPR oximetry study.
    Free Radic Biol Med. 1995 Apr;18(4):641-7 PMID: 7750788
  3. Effects of vascular endothelial growth factor on the lymphocyte-endothelium interactions: identification of caveolin-1 and nitric oxide as control points of endothelial cell anergy.
    J Immunol. 2007 Feb 1;178(3):1505-11 PMID: 17237399
  4. The role of monocarboxylate transporters in uptake of lactic acid in HeLa cells.
    Int J Pharm. 2006 Nov 15;325(1-2):48-54 PMID: 16887304
  5. Reduced expression of GNA11 and silencing of MCT1 in human breast cancers.
    Oncology. 2003;64(4):380-8 PMID: 12759536
  6. The low-affinity monocarboxylate transporter MCT4 is adapted to the export of lactate in highly glycolytic cells.
    Biochem J. 2000 Aug 15;350 Pt 1:219-27 PMID: 10926847
  7. Tissue gradients of energy metabolites mirror oxygen tension gradients in a rat mammary carcinoma model.
    Int J Radiat Oncol Biol Phys. 2001 Nov 1;51(3):840-8 PMID: 11699496
  8. Observations on the carbohydrate metabolism of tumours.
    Biochem J. 1929;23(3):536-45 PMID: 16744238
  9. Regulatory mechanisms in carbohydrate metabolism. IV. Pasteur effect and Crabtree effect in ascites tumor cells.
    J Biol Chem. 1959 May;234(5):1036-41 PMID: 13654314
  10. The proton-linked monocarboxylate transporter (MCT) family: structure, function and regulation.
    Biochem J. 1999 Oct 15;343 Pt 2:281-99 PMID: 10510291
  11. Irradiation-induced angiogenesis through the up-regulation of the nitric oxide pathway: implications for tumor radiotherapy.
    Cancer Res. 2003 Mar 1;63(5):1012-9 PMID: 12615716
  12. The H+-linked monocarboxylate transporter (MCT1/SLC16A1): a potential therapeutic target for high-risk neuroblastoma.
    Mol Pharmacol. 2006 Dec;70(6):2108-15 PMID: 17000864
  13. Comparison of metabolic pathways between cancer cells and stromal cells in colorectal carcinomas: a metabolic survival role for tumor-associated stroma.
    Cancer Res. 2006 Jan 15;66(2):632-7 PMID: 16423989
  14. Mechanisms of pyruvate inhibition of oxidant-induced apoptosis in human endothelial cells.
    Microvasc Res. 2003 Sep;66(2):91-101 PMID: 12935767
  15. Increased expression of monocarboxylate transporters 1, 2, and 4 in colorectal carcinomas.
    Virchows Arch. 2008 Feb;452(2):139-46 PMID: 18188595
  16. L-lactate transport in Ehrlich ascites-tumour cells.
    Biochem J. 1976 Feb 15;154(2):405-14 PMID: 7237
  17. Training intensity-dependent and tissue-specific increases in lactate uptake and MCT-1 in heart and muscle.
    J Appl Physiol (1985). 1998 Mar;84(3):987-94 PMID: 9480961
  18. Short-term training increases human muscle MCT1 and femoral venous lactate in relation to muscle lactate.
    Am J Physiol. 1998 Jan;274(1):E102-7 PMID: 9458754
  19. Expression of monocarboxylate transporter MCT1 in normal and neoplastic human CNS tissues.
    Neuroreport. 2001 Mar 26;12(4):761-5 PMID: 11277580
  20. Regulation of intracellular pH in human melanoma: potential therapeutic implications.
    Mol Cancer Ther. 2002 Jun;1(8):617-28 PMID: 12479222
  21. Endurance training, expression, and physiology of LDH, MCT1, and MCT4 in human skeletal muscle.
    Am J Physiol Endocrinol Metab. 2000 Apr;278(4):E571-9 PMID: 10751188
  22. 'The metabolism of tumours': 70 years later.
    Novartis Found Symp. 2001;240:251-60; discussion 260-4 PMID: 11727934
  23. Causes and consequences of tumour acidity and implications for treatment.
    Mol Med Today. 2000 Jan;6(1):15-9 PMID: 10637570
  24. The role of lactic acid in autocrine B-cell growth stimulation.
    Proc Natl Acad Sci U S A. 1991 Dec 15;88(24):11081-5 PMID: 1662382
  25. The SLC16 gene family-from monocarboxylate transporters (MCTs) to aromatic amino acid transporters and beyond.
    Pflugers Arch. 2004 Feb;447(5):619-28 PMID: 12739169
  26. Is there a critical tissue oxygen tension for bioenergetic status and cellular pH regulation in solid tumors?
    Experientia. 1996 May 15;52(5):464-8 PMID: 8641384
  27. Mitochondrial respiration defects in cancer cells cause activation of Akt survival pathway through a redox-mediated mechanism.
    J Cell Biol. 2006 Dec 18;175(6):913-23 PMID: 17158952
  28. Inhibition of glucose oxidation by alpha-cyano-4-hydroxycinnamic acid stimulates feeding in rats.
    Physiol Behav. 2004 Jan;80(4):489-98 PMID: 14741234
  29. Monocarboxylate transporter (MCT) mediates the transport of gamma-hydroxybutyrate in human kidney HK-2 cells.
    Pharm Res. 2007 Jun;24(6):1067-78 PMID: 17377745
  30. The plasma membrane lactate transporter MCT4, but not MCT1, is up-regulated by hypoxia through a HIF-1alpha-dependent mechanism.
    J Biol Chem. 2006 Apr 7;281(14):9030-7 PMID: 16452478
  31. A new transplantable mouse liver tumor of spontaneous origin.
    Cancer Res. 1966 Jan;26(1):143-8 PMID: 5901739
  32. Cancer's molecular sweet tooth and the Warburg effect.
    Cancer Res. 2006 Sep 15;66(18):8927-30 PMID: 16982728
  33. Exploiting tumour hypoxia in cancer treatment.
    Nat Rev Cancer. 2004 Jun;4(6):437-47 PMID: 15170446
  34. Insulinotropic action of methyl pyruvate: enzymatic and metabolic aspects.
    Arch Biochem Biophys. 1996 Nov 15;335(2):245-57 PMID: 8914921
  35. Colocalization of MCT1, CD147, and LDH in mitochondrial inner membrane of L6 muscle cells: evidence of a mitochondrial lactate oxidation complex.
    Am J Physiol Endocrinol Metab. 2006 Jun;290(6):E1237-44 PMID: 16434551
  36. Role of lactate in the brain energy metabolism: revealed by Bioradiography.
    Neurosci Res. 2004 Jan;48(1):13-20 PMID: 14687877
  37. Human cells lacking mtDNA: repopulation with exogenous mitochondria by complementation.
    Science. 1989 Oct 27;246(4929):500-3 PMID: 2814477
  38. Elevated tumor lactate concentrations predict for an increased risk of metastases in head-and-neck cancer.
    Int J Radiat Oncol Biol Phys. 2001 Oct 1;51(2):349-53 PMID: 11567808
  39. Preconditioning of the tumor vasculature and tumor cells by intermittent hypoxia: implications for anticancer therapies.
    Cancer Res. 2006 Dec 15;66(24):11736-44 PMID: 17178869
  40. Inhibition of lactate transport and glycolysis in Ehrlich ascites tumor cells by bioflavonoids.
    Biochemistry. 1979 Aug 7;18(16):3506-11 PMID: 38832
  41. Modulation of the tumor vasculature functionality by ionizing radiation accounts for tumor radiosensitization and promotes gene delivery.
    FASEB J. 2002 Dec;16(14):1979-81 PMID: 12397083
  42. Mechanisms underlying hypoxia development in tumors.
    Adv Exp Med Biol. 2003;510:51-6 PMID: 12580404
  43. High lactate levels predict likelihood of metastases, tumor recurrence, and restricted patient survival in human cervical cancers.
    Cancer Res. 2000 Feb 15;60(4):916-21 PMID: 10706105
  44. Concepts of oxygen transport at the microcirculatory level.
    Semin Radiat Oncol. 1998 Jul;8(3):143-50 PMID: 9634491
  45. Intracellular acidification abrogates the heat shock response and compromises survival of human melanoma cells.
    Mol Cancer Ther. 2003 Apr;2(4):383-8 PMID: 12700282
  46. Endothelial nitric oxide synthase targeting to caveolae. Specific interactions with caveolin isoforms in cardiac myocytes and endothelial cells.
    J Biol Chem. 1996 Sep 13;271(37):22810-4 PMID: 8798458
  47. Oncogenic alterations of metabolism.
    Trends Biochem Sci. 1999 Feb;24(2):68-72 PMID: 10098401
  48. Silencing of monocarboxylate transporters via small interfering ribonucleic acid inhibits glycolysis and induces cell death in malignant glioma: an in vitro study.
    Neurosurgery. 2004 Dec;55(6):1410-9; discussion 1419 PMID: 15574223
  49. Correlation of high lactate levels in head and neck tumors with incidence of metastasis.
    Am J Pathol. 1997 Feb;150(2):409-15 PMID: 9033256
Article Info
Journal
The Journal of clinical investigation
Abbr.
J Clin Invest
ISSN
0021-9738
Published
2008-12-00
Epub
2008-00-20
Pages
3930-42
Language
English
Region
United States
NLM ID
7802877
PMCID
PMC2582933
Subset
IM
Grants
NCI NIH HHS · CA56690 · United States
NCI NIH HHS · R21 CA091565 · United States
NCI NIH HHS · CA91565 · United States
NCI NIH HHS · R01 CA040355 · United States
NCI NIH HHS · P01 CA056690 · United States
NCI NIH HHS · CA40355 · United States
Corrections
CommentIn
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com