Literature DB >> 4031762

Patterns in mammalian muscle energetics.

M J Kushmerick.   

Abstract

A description of cellular energetics of muscular contraction is given in terms of the rates and extents of high-energy phosphate splitting during contractile activity, in terms of high-energy phosphate resynthesis by respiration and net anaerobic glycolysis, and in terms of the associated uptake and/or release of H+. These chemical changes have been studied quantitatively by rapid freeze-clamping methods and by 31P-NMR methods. The pattern of chemical changes in a fast-twitch glycolytic muscle is rapid depletion of phosphocreatine and later ATP levels, cellular acidification, and a much slower rate of resynthesis of high-energy phosphate compounds during the recovery period afterwards than occurs in the slow-twitch oxidative muscles. In steady-state contractile activity below the maximal, graded levels of high-energy phosphates and of cellular respiration are achieved in both fast-twitch and slow-twitch muscles. Within the metabolic range up to the maximal aerobic capacity, which differs several-fold for different fibre types, this gradation is mediated by the creatine kinase reaction and phosphocreatine stores. Thus while the amount of enzyme present and the content of phosphocreatine differs among muscles of different types, the same general energetic function is seen to occur in all muscle cells. The creatine kinase reaction is both an energy reservoir and a buffer preventing large swings in the ATP/ADP ratios.

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Year:  1985        PMID: 4031762     DOI: 10.1242/jeb.115.1.165

Source DB:  PubMed          Journal:  J Exp Biol        ISSN: 0022-0949            Impact factor:   3.312


  8 in total

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Authors:  Russell T Hepple; Richard A Howlett; Casey A Kindig; Creed M Stary; Michael C Hogan
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2.  Model of sarcomeric Ca2+ movements, including ATP Ca2+ binding and diffusion, during activation of frog skeletal muscle.

Authors:  S M Baylor; S Hollingworth
Journal:  J Gen Physiol       Date:  1998-09       Impact factor: 4.086

3.  Anaerobic energy production and O2 deficit-debt relationship during exhaustive exercise in humans.

Authors:  J Bangsbo; P D Gollnick; T E Graham; C Juel; B Kiens; M Mizuno; B Saltin
Journal:  J Physiol       Date:  1990-03       Impact factor: 5.182

4.  Anaerobic energy expenditure and mechanical efficiency during exhaustive leg press exercise.

Authors:  Esteban M Gorostiaga; Ion Navarro-Amézqueta; Roser Cusso; Ylva Hellsten; Jose A L Calbet; Mario Guerrero; Cristina Granados; Miriam González-Izal; Javier Ibáñez; Mikel Izquierdo
Journal:  PLoS One       Date:  2010-10-19       Impact factor: 3.240

5.  Elevated muscle glycogen and anaerobic energy production during exhaustive exercise in man.

Authors:  J Bangsbo; T E Graham; B Kiens; B Saltin
Journal:  J Physiol       Date:  1992       Impact factor: 5.182

Review 6.  Energy metabolism design of the striated muscle cell.

Authors:  Brian Glancy; Robert S Balaban
Journal:  Physiol Rev       Date:  2021-03-18       Impact factor: 46.500

7.  Non-invasive MRI and spectroscopy of mdx mice reveal temporal changes in dystrophic muscle imaging and in energy deficits.

Authors:  Christopher R Heier; Alfredo D Guerron; Alexandru Korotcov; Stephen Lin; Heather Gordish-Dressman; Stanley Fricke; Raymond W Sze; Eric P Hoffman; Paul Wang; Kanneboyina Nagaraju
Journal:  PLoS One       Date:  2014-11-12       Impact factor: 3.240

8.  Bioenergetic and Metabolic Impairments in Induced Pluripotent Stem Cell-Derived Cardiomyocytes Generated from Duchenne Muscular Dystrophy Patients.

Authors:  Lubna Willi; Ifat Abramovich; Jonatan Fernandez-Garcia; Bella Agranovich; Margarita Shulman; Helena Milman; Polina Baskin; Binyamin Eisen; Daniel E Michele; Michael Arad; Ofer Binah; Eyal Gottlieb
Journal:  Int J Mol Sci       Date:  2022-08-29       Impact factor: 6.208

  8 in total

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