Role of NADH/NAD+ transport activity and glycogen store on skeletal muscle energy metabolism during exercise: in silico studies

被引:34
作者
Li, Yanjun [1 ,2 ]
Dash, Ranjan K. [5 ,6 ]
Kim, Jaeyeon [1 ,2 ]
Saidel, Gerald M. [1 ,2 ]
Cabrera, Marco E. [1 ,2 ,3 ,4 ]
机构
[1] Case Western Reserve Univ, Ctr Modeling Integrated Metab Syst, Cleveland, OH 44106 USA
[2] Case Western Reserve Univ, Dept Biomed Engn, Cleveland, OH 44106 USA
[3] Case Western Reserve Univ, Dept Physiol & Biophys, Cleveland, OH 44106 USA
[4] Case Western Reserve Univ, Dept Pediat, Cleveland, OH 44106 USA
[5] Med Coll Wisconsin, Biotechnol & Bioengn Ctr, Milwaukee, WI 53226 USA
[6] Med Coll Wisconsin, Dept Physiol, Milwaukee, WI 53226 USA
来源
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY | 2009年 / 296卷 / 01期
基金
美国国家卫生研究院; 美国国家航空航天局;
关键词
ischemia; metabolic regulation; mathematical model; computer simulations; MALATE-ASPARTATE SHUTTLE; ATP TURNOVER RATES; OXIDATIVE-PHOSPHORYLATION; PROLONGED EXERCISE; REDOX STATE; COMPUTATIONAL MODEL; CELLULAR-METABOLISM; GLUTAMINE SYNTHESIS; BIOPHYSICAL MODEL; KNEE EXTENSION;
D O I
10.1152/ajpcell.00094.2008
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Li Y, Dash RK, Kim J, Saidel GM, Cabrera ME. Role of NADH/NAD(+) transport activity and glycogen store on skeletal muscle energy metabolism during exercise: in silico studies. Am J Physiol Cell Physiol 296: C25-C46, 2009. First published October 1, 2008; doi:10.1152/ajpcell.00094.2008.-Skeletal muscle can maintain ATP concentration constant during the transition from rest to exercise, whereas metabolic reaction rates may increase substantially. Among the key regulatory factors of skeletal muscle energy metabolism during exercise, the dynamics of cytosolic and mitochondrial NADH and NAD(+) have not been characterized. To quantify these regulatory factors, we have developed a physiologically based computational model of skeletal muscle energy metabolism. This model integrates transport and reaction fluxes in distinct capillary, cytosolic, and mitochondrial domains and investigates the roles of mitochondrial NADH/NAD(+) transport (shuttling) activity and muscle glycogen concentration (stores) during moderate intensity exercise (60% maximal O-2 consumption). The underlying hypothesis is that the cytosolic redox state (NADH/NAD(+)) is much more sensitive to a metabolic disturbance in contracting skeletal muscle than the mitochondrial redox state. This hypothesis was tested by simulating the dynamic metabolic responses of skeletal muscle to exercise while altering the transport rate of reducing equivalents (NADH and NAD(+)) between cytosol and mitochondria and muscle glycogen stores. Simulations with optimal parameter estimates showed good agreement with the available experimental data from muscle biopsies in human subjects. Compared with these simulations, a 20% increase (or similar to 20% decrease) in mitochondrial NADH/NAD(+) shuttling activity led to an similar to 70% decrease (or similar to 3-fold increase) in cytosolic redox state and an similar to 35% decrease (or similar to 25% increase) in muscle lactate level. Doubling (or halving) muscle glycogen concentration resulted in an similar to 50% increase (or similar to 35% decrease) in cytosolic redox state and an similar to 30% increase (or similar to 25% decrease) in muscle lactate concentration. In both cases, changes in mitochondrial redox state were minimal. In conclusion, the model simulations of exercise response are consistent with the hypothesis that mitochondrial NADH/NAD(+) shuttling activity and muscle glycogen stores affect primarily the cytosolic redox state. Furthermore, muscle lactate production is regulated primarily by the cytosolic redox state.
引用
收藏
页码:C25 / C46
页数:22
相关论文
共 106 条
[1]   SUBSTRATE TURNOVER DURING PROLONGED EXERCISE IN MAN - SPLANCHNIC AND LEG METABOLISM OF GLUCOSE, FREE FATTY-ACIDS, AND AMINO-ACIDS [J].
AHLBORG, G ;
FELIG, P ;
HAGENFELDT, L ;
HENDLER, R ;
WAHREN, J .
JOURNAL OF CLINICAL INVESTIGATION, 1974, 53 (04) :1080-1090
[2]   Top-down control analysis of ATP turnover, glycolysis and oxidative phosphorylation in rat hepatocytes [J].
Ainscow, EK ;
Brand, MD .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1999, 263 (03) :671-685
[3]  
Alberty R. A., 2003, THERMODYNAMICS BIOCH
[4]   Calculation of standard transformed Gibbs energies and standard transformed enthalpies of biochemical reactants [J].
Alberty, RA .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1998, 353 (01) :116-130
[5]   REGULATION OF OXIDATIVE-PHOSPHORYLATION IN THE MAMMALIAN-CELL [J].
BALABAN, RS .
AMERICAN JOURNAL OF PHYSIOLOGY, 1990, 258 (03) :C377-C389
[6]   Glycogen availability does not affect the TCA cycle or TAN pools during prolonged, fatiguing exercise [J].
Baldwin, J ;
Snow, RJ ;
Gibala, MJ ;
Garnham, A ;
Howarth, K ;
Febbraio, MA .
JOURNAL OF APPLIED PHYSIOLOGY, 2003, 94 (06) :2181-2187
[7]   Malate-aspartate shuttle, cytoplasmic NADH redox potential, and energetics in vascular smooth muscle [J].
Barron, JT ;
Gu, LP ;
Parrillo, JE .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 1998, 30 (08) :1571-1579
[8]   MODULATION OF MUSCLE AND PULMONARY O-2 UPTAKES BY CIRCULATORY DYNAMICS DURING EXERCISE [J].
BARSTOW, TJ ;
LAMARRA, N ;
WHIPP, BJ .
JOURNAL OF APPLIED PHYSIOLOGY, 1990, 68 (03) :979-989
[9]   A biophysical model of the mitochondrial respiratory system and oxidative phosphorylation [J].
Beard, DA .
PLOS COMPUTATIONAL BIOLOGY, 2005, 1 (04) :252-264
[10]   Thermodynamic constraints for biochemical networks [J].
Beard, DA ;
Babson, E ;
Curtis, E ;
Qian, H .
JOURNAL OF THEORETICAL BIOLOGY, 2004, 228 (03) :327-333