Cardiac system bioenergetics: metabolic basis of the Frank-Starling law

被引:189
作者
Saks, V
Dzeja, P
Schlattner, U
Vendelin, M
Terzic, A
Wallimann, T
机构
[1] Univ Grenoble 1, Lab Bioenerget, INSERM, Struct & Quantitat Bioenerget Res Grp, F-38041 Grenoble 9, France
[2] NICPB, Lab Bioenerget, Tallinn, Estonia
[3] Mayo Clin, Coll Med, Div Cardiovasc Dis, Dept Med, Rochester, MN USA
[4] Mayo Clin, Coll Med, Dept Mol Pharmacol, Rochester, MN USA
[5] Mayo Clin, Coll Med, Dept Expt Therapeut, Rochester, MN USA
[6] ETH Honggerberg, Swiss Fed Inst Technol, Inst Cell Biol, HPM, CH-8093 Zurich, Switzerland
[7] Univ Paris Sud, Fac Pharm, INSERM, U446, F-92296 Chatenay Malabry, France
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2006年 / 571卷 / 02期
关键词
D O I
10.1113/jphysiol.2005.101444
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The fundamental principle of cardiac behaviour is described by the Frank-Starling law relating force of contraction during systole with end-diastolic volume. While both work and respiration rates increase linearly with imposed load, the basis of mechano-energetic coupling in heart muscle has remained a long-standing enigma. Here, we highlight advances made in understanding of complex cellular and molecular mechanisms that orchestrate coupling of mitochondrial oxidative phosphorylation with ATP utilization for muscle contraction. Cardiac system bioenergetics critically depends on an interrelated metabolic infrastructure regulating mitochondrial respiration and energy fluxes throughout cellular compartments. The data reviewed indicate the significance of two interrelated systems regulating mitochondrial respiration and energy fluxes in cells: (1) the creatine kinase, adenylate kinase and glycolytic pathways that communicate flux changes generated by cellular ATPases within structurally organized enzymatic modules and networks; and (2) a secondary system based on mitochondrial participation in cellular calcium cycle, which adjusts substrate oxidation and energy-transducing processes to meet increasing cellular energy demands. By conveying energetic signals to metabolic sensors, coupled phosphotransfer reactions provide a high-fidelity regulation of the excitation-contraction cycle. Such integration of energetics with calcium signalling systems provides the basis for 'metabolic pacing', synchronizing the cellular electrical and mechanical activities with energy supply processes.
引用
收藏
页码:253 / 273
页数:21
相关论文
共 170 条
[1]   Coupling of cell energetics with membrane metabolic sensing - Integrative signaling through creatine kinase phosphotransfer disrupted by M-CK gene knock-out [J].
Abraham, MR ;
Selivanov, VA ;
Hodgson, DM ;
Pucar, D ;
Zingman, LV ;
Wieringa, B ;
Dzeja, PP ;
Aleksee, AE ;
Terzic, A .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (27) :24427-24434
[2]   ATP-sensitive K+ channel channel/enzyme multimer:: Metabolic gating in the heart [J].
Alekseev, AE ;
Hodgson, DM ;
Karger, AB ;
Park, S ;
Zingman, LV ;
Terzic, A .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2005, 38 (06) :895-905
[3]   Compartmentalized energy transfer in cardiomyocytes: Use of mathematical modeling for analysis of in vivo regulation of respiration [J].
Aliev, MK ;
Saks, VA .
BIOPHYSICAL JOURNAL, 1997, 73 (01) :428-445
[4]   THE EFFECTS OF MUSCLE LENGTH ON INTRACELLULAR CALCIUM TRANSIENTS IN MAMMALIAN CARDIAC-MUSCLE [J].
ALLEN, DG ;
KURIHARA, S .
JOURNAL OF PHYSIOLOGY-LONDON, 1982, 327 (JUN) :79-94
[5]   Metabolic consequences of functional complexes of mitochondria, myofibrils and sarcoplasmic reticulum in muscle cells [J].
Andrienko, T ;
Kuznetsov, AV ;
Kaambre, T ;
Usson, Y ;
Orosco, A ;
Appaix, F ;
Tiivel, T ;
Sikk, P ;
Vendelin, M ;
Margreiter, R ;
Saks, VA .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2003, 206 (12) :2059-2072
[6]   Synchronized whole cell oscillations in mitochondrial metabolism triggered by a local release of reactive oxygen species in cardiac myocytes [J].
Aon, MA ;
Cortassa, S ;
Marbán, E ;
O'Rourke, B .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (45) :44735-44744
[7]   A method for the study of the perfused pancreas. [J].
Babkin, BP ;
Starling, EH .
JOURNAL OF PHYSIOLOGY-LONDON, 1926, 61 (02) :245-247
[8]   Cardiac energy metabolism homeostasis: Role of cytosolic calcium [J].
Balaban, RS .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2002, 34 (10) :1259-1271
[9]   Mitochondrial transport of cations: Channels, exchangers, and permeability transition [J].
Bernardi, P .
PHYSIOLOGICAL REVIEWS, 1999, 79 (04) :1127-1155
[10]   Calcium signalling: Dynamics, homeostasis and remodelling [J].
Berridge, MJ ;
Bootman, MD ;
Roderick, HL .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2003, 4 (07) :517-529