Myoglobin function reassessed

被引:404
作者
Wittenberg, JB [1 ]
Wittenberg, BA [1 ]
机构
[1] Albert Einstein Coll Med, Dept Physiol & Biophys, Bronx, NY 10461 USA
关键词
myoglobin; oxygen; facilitated diffusion; dimensionality in diffusion; heart; red skeletal muscle; nitric oxide; mitochondria; cytochrome oxidase; Krogh cylinder;
D O I
10.1242/jeb.00243
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The heart and those striated muscles that contract for long periods, having available almost limitless oxygen, operate in sustained steady states of low sarcoplasmic oxygen pressure that resist change in response to changing muscle work or oxygen supply. Most of the oxygen pressure drop from the erythrocyte to the mitochondrion occurs across the capillary wall. Within the sarcoplasm, myoglobin, a mobile carrier of oxygen, is developed in response to mitochondrial demand and augments the flow of oxygen to the mitochondria. Myoglobin-facilitated oxygen diffusion, perhaps by virtue of reduction of dimensionality of diffusion from three dimensions towards two dimensions in the narrow spaces available between mitochondria, is rapid relative to other parameters of cell respiration. Consequently, intracellular gradients of oxygen pressure are shallow, and sarcoplasmic oxygen pressure is nearly the same everywhere. Sarcoplasmic oxygen pressure, buffered near 0.33 kPa (2.5 torr; equivalent to approximately 4 mumol l(-1) oxygen) by equilibrium with myoglobin, falls close to the operational K-m of cytochrome oxidase for oxygen, and any small increment in sarcoplasmic oxygen pressure will be countered by increased oxygen utilization. The concentration of nitric oxide within the myocyte results from a balance of endogenous synthesis and removal by oxymyoglobin-catalyzed dioxygenation to the innocuous nitrate. Oxymyoglobin, by controlling sarcoplasmic nitric oxide concentration, helps assure the steady state in which inflow of oxygen into the myocyte equals the rate of oxygen consumption.
引用
收藏
页码:2011 / 2020
页数:10
相关论文
共 97 条
[1]   Myoglobin enhances cardiac performance in antarctic icefish species that express the protein [J].
Acierno, R ;
Agnisola, C ;
Tota, B ;
Sidell, BD .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 1997, 273 (01) :R100-R106
[2]  
Adam G., 1968, Struct. Chem. Mol. Biol, P198
[3]  
[Anonymous], 1977, MODELS BIOL
[4]   LEGHEMOGLOBIN AND RHIZOBIUM RESPIRATION [J].
APPLEBY, CA .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1984, 35 :443-478
[5]   PROPERTIES OF LEGHAEMOGLOBIN IN VIVO, AND ITS ISOLATION AS FERROUS OXYLEGHAEMOGLOBIN [J].
APPLEBY, CA .
BIOCHIMICA ET BIOPHYSICA ACTA, 1969, 188 (02) :222-&
[6]   MEASUREMENT OF MYOGLOBIN DIFFUSIVITY IN THE MYOPLASM OF FROG SKELETAL-MUSCLE FIBERS [J].
BAYLOR, SM ;
PAPE, PC .
JOURNAL OF PHYSIOLOGY-LONDON, 1988, 406 :247-275
[7]  
Berg H. C., 1983, RANDOM WALKS BIOL
[8]  
BERGERSEN FJ, 1973, BIOCHIM BIOPHYS ACTA, V292, P271, DOI 10.1016/0005-2728(73)90271-5
[9]   THE STRUCTURE OF THE MEMBRANE SYSTEMS IN A NOVEL MUSCLE-CELL MODIFIED FOR HEAT-PRODUCTION [J].
BLOCK, BA ;
FRANZINIARMSTRONG, C .
JOURNAL OF CELL BIOLOGY, 1988, 107 (03) :1099-1112
[10]   Near-infrared spectroscopy for monitoring muscle oxygenation [J].
Boushel, R ;
Piantadosi, CA .
ACTA PHYSIOLOGICA SCANDINAVICA, 2000, 168 (04) :615-622