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Saks V (ed) (2007) Molecular system bioenergetics—energy for life, basic principles, organization
and dynamics of cellular energetics. Wiley-VCH, Weinheim
Saks V (2008) The phosphocreatine-creatine kinase system helps to shape muscle cells and keep
them healthy and alive. J Physiol 586(Pt 12):2817-8
Saks V (2009) Molecular system bioenergetics-new aspects of metabolic research. Int J Mol Sci 10
(8):3655-7
Saks V, Strumia E (1993) Phosphocreatine: molecular and cellular aspects of the mechanism of
cardioprotective action. Curr Ther Res 53(5):565-98
Saks VA, Lipina NV, Sharov VG, Smirnov VN, Chazov E, Grosse R (1977) The localization of the
MM isozyme of creatine phosphokinase on the surface membrane of myocardial cells and its
functional coupling to ouabain-inhibited (Na+, K+)-ATPase. Biochim Biophys Acta 465
(3):550-8
Saks VA, Rosenshtraukh LV, Smirnov VN, Chazov EI (1978) Role of creatine phosphokinase in
cellular function and metabolism. Can J Physiol Pharmacol 56(5):691-706
Saks VA, Belikova YO, Kuznetsov AV (1991) In vivo regulation of mitochondrial respiration in
cardiomyocytes: specific restrictions for intracellular diffusion of ADP. Biochim Biophys Acta
1074(2):302-11
Saks V, Dos Santos P, Gellerich FN, Diolez P (1998) Quantitative studies of enzyme-substrate
compartmentation, functional coupling and metabolic channelling in muscle cells. Mol Cell
Biochem 184(1-2):291-307
Saks VA, Kaambre T, Sikk P, Eimre M, Orlova E, Paju K et al. (2001) Intracellular energetic units
in red muscle cells. Biochem J 356(Pt 2):643-57
Saks V, Dzeja P, Schlattner U, Vendelin M, Terzic A, Wallimann T (2006a) Cardiac system
bioenergetics: metabolic basis of the Frank-Starling law. J Physiol 571(Pt 2):253-73
Saks V, Favier R, Guzun R, Schlattner U, Wallimann T (2006b) Molecular system bioenergetics:
regulation of substrate supply in response to heart energy demands. J Physiol 577(Pt 3):769-77
Saks V, Dzeja P, Schlattner U, Vendelin M, Terzic A, Wallimann T (2006c) Cardiac system
bioenergetics: metabolic basis of the Frank-Starling law. J Physiol 571(Pt 2):253-73.
doi: 10.1113/jphysiol.2005.101444
Saks V, Kaambre T, Guzun R, Anmann T, Sikk P, Schlattner U et al. (2007a) The creatine kinase
phosphotransfer network: thermodynamic and kinetic considerations, the impact of the mito-
chondrial outer membrane and modelling approaches. Subcell Biochem 46:27-65
Saks V, Anmann T, Guzun R, Kaambre T, Sikk P, Schlattner U et al. (2007b) The creatine kinase
phosphotransfer network: thermodynamic and kinetic considerations, the impact of the mito-
chondrial outer membrane and modelling approaches. In: Wyss M, Salomons G (eds) Creatine
and creatine kinase in health and disease. Springer, Dordrecht, pp 27-66
Saks VA, Dzeja P, Guzun R, Aliev MK, Vendelin M, Terzic A, Wallimann T (2007c) System
analysis of cardiac energetics—excitation-contraction coupling: integration of mitochondrial
respiration, phosphotransfer pathways, metabolic pacing and substrate supply in the heart. In:
Saks V (ed) Molecular system bioenergetics. Energy for Life. Wiley, Weinheim, GmbH,
pp 367-405
Saks V, Monge C, Anmann T, Dzeja P (2007d) Integrated and organized cellular energetic
systems: theories of cell energetics, compartmentation and metabolic channeling. In: Saks V
(ed) Molecular system bioenergetics. Energy for life. Wiley, Weinheim, GmbH, pp 59-110
Saks V, Guzun R, Timohhina N, Tepp K, Varikmaa M, Monge C et al. (2010) Structure-function
relationships in feedback regulation of energy fluxes in vivo in health and disease: mitochon-
drial interactosome. Biochim Biophys Acta 1797(6-7):678-97
Saks V, Kuznetsov AV, Gonzalez-Granillo M, Tepp K, Timohhina N, Karu-Varikmaa M et al.
(2012) Intracellular energetic units regulate metabolism in cardiac cells. J Mol Cell Cardiol
52:419-36
Salt I, Celler JW, Hawley SA, Prescott A, Woods A, Carling D et al. (1998) AMP-activated protein
kinase: greater AMP dependence, and preferential nuclear
localization, of complexes
containing the alpha2 isoform. Biochem J 334(Pt 1):177-87
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