Modelling the impact of changes in the extracellular environment on the cytosolic free NAD+/NADH ratio during cell culture

被引:10
|
作者
Kelly, Ross A. [1 ]
Leedale, Joseph [2 ]
Harrell, Andy [3 ]
Beard, Daniel A. [4 ]
Randle, Laura E. [5 ]
Chadwick, Amy E. [6 ]
Webb, Steven D. [1 ,2 ]
机构
[1] Liverpool John Moores Univ, Dept Appl Math, Liverpool, Merseyside, England
[2] Univ Liverpool, EPSRC Liverpool Ctr Math Healthcare, Dept Math Sci, Liverpool, Merseyside, England
[3] GlaxoSmithKline, David Jack Ctr Res, Ware, Herts, England
[4] Univ Michigan, Dept Mol & Integrat Physiol, Ann Arbor, MI 48109 USA
[5] Liverpool John Moores Univ, Dept Pharm & Biomol Sci, Liverpool, Merseyside, England
[6] Univ Liverpool, Dept Mol & Clin Pharmacol, MRC Ctr Drug Safety Sci, Liverpool, Merseyside, England
来源
PLOS ONE | 2018年 / 13卷 / 11期
基金
英国工程与自然科学研究理事会; 英国生物技术与生命科学研究理事会;
关键词
ENERGY-METABOLISM; LIVER CELLS; GLYCOLYSIS; RESPIRATION; TRANSPORTER; GLUCONEOGENESIS; MITOCHONDRIA; SUBSTRATE; PYRUVATE; PROTEIN;
D O I
10.1371/journal.pone.0207803
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Cancer cells depend on glucose metabolism via glycolysis as a primary energy source, despite the presence of oxygen and fully functioning mitochondria, in order to promote growth, proliferation and longevity. Glycolysis relies upon NAD(+) to accept electrons in the glyceraldehyde-3-phosphate dehydrogenase (GAPDH) reaction, linking the redox state of the cytosolic NAD(+) pool to glycolytic rate. The free cytosolic NAD(+)/NADH ratio is involved in over 700 oxidoreductive enzymatic reactions and as such, the NAD(+)/NADH ratio is regarded as a metabolic readout of overall cellular redox state. Many experimental techniques that monitor or measure total NAD(+) and NADH are unable to distinguish between protein-bound and unbound forms. Yet total NAD(+)/NADH measurements yield little information, since it is the free forms of NAD(+) and NADH that determine the kinetic and thermodynamic influence of redox potential on glycolytic rate. Indirect estimations of free NAD(+)/NADH are based on the lactate/pyruvate (L/P) ratio at chemical equilibrium, but these measurements are often undermined by high lability. To elucidate the sensitivity of the free NAD(+)/NADH ratio to changes in extracellular substrate, an in silico model of hepatocarcinoma glycolysis was constructed and validated against in vitro data. Model simulations reveal that over experimentally relevant concentrations, changes in extracellular glucose and lactate concentration during routine cancer cell culture can lead to significant deviations in the NAD(+)/NADH ratio. Based on the principles of chemical equilibrium, the model provides a platform from which experimentally challenging situations may be examined, suggesting that extracellular substrates play an important role in cellular redox and bioenergetic homeostasis.
引用
收藏
页数:21
相关论文
共 45 条
  • [31] Water-insoluble material from apple pomace makes changes in intracellular NAD+/NADH ratio and pyrophosphate content and stimulates fermentative production of hydrogen
    Sato, Osamu
    Suzuki, Yuma
    Sato, Yuki
    Sasaki, Shinsuke
    Sonoki, Tomonori
    JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2015, 119 (05) : 543 - 547
  • [32] α-Tocopherol administration blocks adaptive changes in cell NADH/NAD+ redox state and mitochondrial function leading to inhibition of gastric mucosa cell proliferation in rats
    Olguin-Martinez, Marisela
    Hernandez-Espinosa, Diego R.
    Hernandez-Munoz, Rolando
    FREE RADICAL BIOLOGY AND MEDICINE, 2013, 65 : 1090 - 1100
  • [33] Efficient production of androstenedione by repeated batch fermentation in waste cooking oil media through regulating NAD+ /NADH ratio and strengthening cell vitality of Mycobacterium neoaurum
    Zhou, Xiuling
    Zhang, Yang
    Shen, Yanbing
    Zhang, Xiao
    Xu, Shuangping
    Shang, Zhihua
    Xia, Menglei
    Wang, Min
    BIORESOURCE TECHNOLOGY, 2019, 279 : 209 - 217
  • [34] The extracellular lactate-to-pyruvate ratio modulates the sensitivity to oxidative stress-induced apoptosis via the cytosolic NADH/NAD + redox state (vol 26, pg 38, 2021)
    Go, Simei
    Kramer, Thorquil T.
    Verhoeven, Arthur J.
    Elferink, Ronald P. J. Oude
    Chang, Jung-Chin
    APOPTOSIS, 2024, 29 (11-12) : 1858 - 1859
  • [35] Changes in cell wall and extracellular polysaccharides during the culture cycle of Rubus fruticosus cells in suspension culture
    Chambat, G
    Cartier, N
    Lefebvre, A
    Marais, MF
    Joseleau, JP
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 1997, 35 (08) : 655 - 664
  • [36] During the refractory period for radiation-induced transactivation of EGFR additional irradiation is associated with altered PARP cleavage, failure of XRCC1 upregulation, and changes in cellular NAD+/NADH
    Hagan, MP
    Yacoub, A
    Dent, P
    RADIOTHERAPY AND ONCOLOGY, 2004, 73 : S86 - S87
  • [37] FREE AMINO-ACIDS OF RAT ASTROCYTES IN PRIMARY CULTURE - CHANGES DURING CELL MATURATION
    HOLOPAINEN, I
    OJA, SS
    MARNELA, KM
    KONTRO, P
    INTERNATIONAL JOURNAL OF DEVELOPMENTAL NEUROSCIENCE, 1986, 4 (05) : 493 - 496
  • [38] Changes in soluble and membrane-bound isoforms of calcium-calmodulin-dependent and -independent NAD+ kinase, during the culture of after-ripened and dormant seeds of Avena sativa
    Gallais, S
    de Crescenzo, MAP
    Laval-Martin, DL
    AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 2000, 27 (07): : 649 - 658
  • [39] Synthesis and Characterization of 4,11-Diaminoanthra[2,3-b]furan-5,10-diones: Tumor Cell Apoptosis through tNOX-Modulated NAD+/NADH Ratio and SIRT1
    Tikhomirov, Alexander S.
    Shchekotikhin, Andrey E.
    Lee, Yi-Hui
    Chen, Yi-Ann
    Yeh, Chia-An
    Tatarskiy, Victor V., Jr.
    Dezhenkova, Lyubov G.
    Glazunova, Valeria A.
    Balzarini, Jan
    Shtil, Alexander A.
    Preobrazhenskaya, Maria N.
    Chueh, Pin Ju
    JOURNAL OF MEDICINAL CHEMISTRY, 2015, 58 (24) : 9522 - 9534
  • [40] Modelling size distribution changes of plant cell aggregates during batch growth of Capsicum frutescens suspension culture
    Mavituna, Ferda
    Yoon, Sung-Yong H.
    Park, Jong M.
    CHEMICAL ENGINEERING SCIENCE, 2016, 148 : 1 - 13