Literature DB >> 25702942

Effects of hyperglycemia on lonidamine-induced acidification and de-energization of human melanoma xenografts and sensitization to melphalan.

Kavindra Nath1, David S Nelson, Daniel F Heitjan, Rong Zhou, Dennis B Leeper, Jerry D Glickson.   

Abstract

We seek to exploit the natural tendency of melanomas and other tumors to convert glucose to lactate as a method for the selective intracellular acidification of cancer cells and for the potentiation of the activity of nitrogen-mustard antineoplastic agents. We performed this study to evaluate whether the induction of hyperglycemia (26 mM) could enhance the effects of lonidamine (LND, 100 mg/kg; intraperitoneally) on the induction of intracellular acidification, bioenergetic decline and potentiation of the activity of melphalan (LPAM) against DB-1 melanoma xenografts in mice. Intracellular pH (pHi ), extracellular pH (pHe ) and bioenergetics (β-nucleoside triphosphate to inorganic phosphate ratio, β-NTP/Pi) were reduced by 0.7 units (p < 0.001), 0.3 units (p > 0.05) and 51.4% (p < 0.05), respectively. The therapeutic response to LPAM (7.5 mg/kg; intravenously) + LND (100 mg/kg; intraperitoneally) was reduced by about a factor of three under hyperglycemic conditions relative to normoglycemia, producing a growth delay of 7.76 days (tumor doubling time, 5.31 days; cell kill, 64%) compared with LND alone of 1.70 days and LPAM alone of 0.29 days. Under normoglycemic conditions, LND plus LPAM produced a growth delay of 17.75 days, corresponding to a cell kill of 90% at the same dose for each of these agents. The decrease in tumor cell kill under hyperglycemic conditions correlates with an increase in tumor ATP levels resulting from increased glycolytic activity. However, hyperglycemia substantially increases lactic acid production in tumors by a factor of approximately six (p < 0.05), but hyperglycemia did not increase the effects of LND on acidification of the tumor, most probably because of the strong buffering action of carbon dioxide (the pKa of carbonic acid is 6.4). Therefore, this study demonstrates that the addition of glucose during treatment with LND diminishes the activity of this agent.
Copyright © 2015 John Wiley & Sons, Ltd.

Entities:  

Keywords:  MRS; lonidamine; melphalan; monocarboxylate transport inhibitor; tumor acidification; tumor de-energization

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Year:  2015        PMID: 25702942      PMCID: PMC4361035          DOI: 10.1002/nbm.3260

Source DB:  PubMed          Journal:  NMR Biomed        ISSN: 0952-3480            Impact factor:   4.044


  33 in total

1.  Reduction of intracellular pH as a strategy to enhance the pH-dependent cytotoxic effects of melphalan for human breast cancer cells.

Authors:  Philip Wong; Carol Lee; Ian F Tannock
Journal:  Clin Cancer Res       Date:  2005-05-01       Impact factor: 12.531

2.  Melphalan resistance and photoaffinity labelling of P-glycoprotein in multidrug-resistant Chinese hamster ovary cells: reversal of resistance by cyclosporin A and hyperthermia.

Authors:  B Larrivée; D A Averill
Journal:  Biochem Pharmacol       Date:  1999-07-15       Impact factor: 5.858

3.  Comparison of common gamma-chain cytokines, interleukin-2, interleukin-7, and interleukin-15 for the in vitro generation of human tumor-reactive T lymphocytes for adoptive cell transfer therapy.

Authors:  Shujuan Liu; John Riley; Steven Rosenberg; Maria Parkhurst
Journal:  J Immunother       Date:  2006 May-Jun       Impact factor: 4.456

4.  Mechanism of action of lonidamine in the 9L brain tumor model involves inhibition of lactate efflux and intracellular acidification.

Authors:  O Ben-Yoseph; J C Lyons; C W Song; B D Ross
Journal:  J Neurooncol       Date:  1998-01       Impact factor: 4.130

Review 5.  The proton-linked monocarboxylate transporter (MCT) family: structure, function and regulation.

Authors:  A P Halestrap; N T Price
Journal:  Biochem J       Date:  1999-10-15       Impact factor: 3.857

6.  Whole-body hyperthermia and lonidamine as adjuvant therapy to treatment with cisplatin with or without local radiation in mouse bearing the Lewis lung carcinoma.

Authors:  B A Teicher; S A Holden; G Ara; K Menon
Journal:  Int J Hyperthermia       Date:  1995 Sep-Oct       Impact factor: 3.914

7.  31P-MRS measurements of extracellular pH of tumors using 3-aminopropylphosphonate.

Authors:  R J Gillies; Z Liu; Z Bhujwalla
Journal:  Am J Physiol       Date:  1994-07

8.  Mechanism of action of the antineoplastic drug lonidamine: 31P and 13C nuclear magnetic resonance studies.

Authors:  H Ben-Horin; M Tassini; A Vivi; G Navon; O Kaplan
Journal:  Cancer Res       Date:  1995-07-01       Impact factor: 12.701

9.  Metabolic response of AH13r rat tumours to cyclophosphamide as monitored by pO2 and pH semi-microelectrodes.

Authors:  E Jähde; S Roszinski; T Volk; K H Glüsenkamp; G Wiedemann; M F Rajewsky
Journal:  Eur J Cancer       Date:  1992       Impact factor: 9.162

10.  Multidrug resistance protein-mediated transport of chlorambucil and melphalan conjugated to glutathione.

Authors:  K Barnouin; I Leier; G Jedlitschky; A Pourtier-Manzanedo; J König; W D Lehmann; D Keppler
Journal:  Br J Cancer       Date:  1998       Impact factor: 7.640

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  9 in total

1.  Optical Redox Imaging of Lonidamine Treatment Response of Melanoma Cells and Xenografts.

Authors:  He N Xu; Min Feng; Kavindra Nath; David Nelson; Jeff Roman; Huaqing Zhao; Zhenwu Lin; Jerry Glickson; Lin Z Li
Journal:  Mol Imaging Biol       Date:  2019-06       Impact factor: 3.488

Review 2.  Cancer cell behaviors mediated by dysregulated pH dynamics at a glance.

Authors:  Katharine A White; Bree K Grillo-Hill; Diane L Barber
Journal:  J Cell Sci       Date:  2017-02-15       Impact factor: 5.285

Review 3.  Mechanism of antineoplastic activity of lonidamine.

Authors:  Kavindra Nath; Lili Guo; Bethany Nancolas; David S Nelson; Alexander A Shestov; Seung-Cheol Lee; Jeffrey Roman; Rong Zhou; Dennis B Leeper; Andrew P Halestrap; Ian A Blair; Jerry D Glickson
Journal:  Biochim Biophys Acta       Date:  2016-08-04

4.  The anti-tumour agent lonidamine is a potent inhibitor of the mitochondrial pyruvate carrier and plasma membrane monocarboxylate transporters.

Authors:  Bethany Nancolas; Lili Guo; Rong Zhou; Kavindra Nath; David S Nelson; Dennis B Leeper; Ian A Blair; Jerry D Glickson; Andrew P Halestrap
Journal:  Biochem J       Date:  2016-02-01       Impact factor: 3.857

5.  Effect of Lonidamine on Systemic Therapy of DB-1 Human Melanoma Xenografts with Temozolomide.

Authors:  Kavindra Nath; David S Nelson; Jeffrey Roman; Mary E Putt; Seung-Cheol Lee; Dennis B Leeper; Jerry D Glickson
Journal:  Anticancer Res       Date:  2017-07       Impact factor: 2.480

Review 6.  The Potential of Lonidamine in Combination with Chemotherapy and Physical Therapy in Cancer Treatment.

Authors:  Yaxin Huang; Guohui Sun; Xiaodong Sun; Feifan Li; Lijiao Zhao; Rugang Zhong; Yongzhen Peng
Journal:  Cancers (Basel)       Date:  2020-11-11       Impact factor: 6.639

7.  Statistical analysis of comparative tumor growth repeated measures experiments in the ovarian cancer patient derived xenograft (PDX) setting.

Authors:  Ann L Oberg; Ethan P Heinzen; Xiaonan Hou; Mariam M Al Hilli; Rachel M Hurley; Andrea E Wahner Hendrickson; Krista M Goergen; Melissa C Larson; Marc A Becker; Jeanette E Eckel-Passow; Matthew J Maurer; Scott H Kaufmann; Paul Haluska; S John Weroha
Journal:  Sci Rep       Date:  2021-04-13       Impact factor: 4.379

8.  Comparison of the Lonidamine Potentiated Effect of Nitrogen Mustard Alkylating Agents on the Systemic Treatment of DB-1 Human Melanoma Xenografts in Mice.

Authors:  Kavindra Nath; David S Nelson; Mary E Putt; Dennis B Leeper; Bradley Garman; Katherine L Nathanson; Jerry D Glickson
Journal:  PLoS One       Date:  2016-06-10       Impact factor: 3.240

9.  Effect of Differences in Metabolic Activity of Melanoma Models on Response to Lonidamine plus Doxorubicin.

Authors:  Kavindra Nath; Jeffrey Roman; David S Nelson; Lili Guo; Seung-Cheol Lee; Stepan Orlovskiy; Kevin Muriuki; Daniel F Heitjan; Stephen Pickup; Dennis B Leeper; Ian A Blair; Mary E Putt; Jerry D Glickson
Journal:  Sci Rep       Date:  2018-10-02       Impact factor: 4.379

  9 in total

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