» Articles » PMID: 21177946

Molecules in Motion: Influences of Diffusion on Metabolic Structure and Function in Skeletal Muscle

Overview
Journal J Exp Biol
Specialty Biology
Date 2010 Dec 24
PMID 21177946
Citations 34
Authors
Affiliations
Soon will be listed here.
Abstract

Metabolic processes are often represented as a group of metabolites that interact through enzymatic reactions, thus forming a network of linked biochemical pathways. Implicit in this view is that diffusion of metabolites to and from enzymes is very fast compared with reaction rates, and metabolic fluxes are therefore almost exclusively dictated by catalytic properties. However, diffusion may exert greater control over the rates of reactions through: (1) an increase in reaction rates; (2) an increase in diffusion distances; or (3) a decrease in the relevant diffusion coefficients. It is therefore not surprising that skeletal muscle fibers have long been the focus of reaction-diffusion analyses because they have high and variable rates of ATP turnover, long diffusion distances, and hindered metabolite diffusion due to an abundance of intracellular barriers. Examination of the diversity of skeletal muscle fiber designs found in animals provides insights into the role that diffusion plays in governing both rates of metabolic fluxes and cellular organization. Experimental measurements of metabolic fluxes, diffusion distances and diffusion coefficients, coupled with reaction-diffusion mathematical models in a range of muscle types has started to reveal some general principles guiding muscle structure and metabolic function. Foremost among these is that metabolic processes in muscles do, in fact, appear to be largely reaction controlled and are not greatly limited by diffusion. However, the influence of diffusion is apparent in patterns of fiber growth and metabolic organization that appear to result from selective pressure to maintain reaction control of metabolism in muscle.

Citing Articles

Folate-engineered chitosan nanoparticles: next-generation anticancer nanocarriers.

Kesharwani P, Halwai K, Jha S, Mughram M, Salman Almujri S, Almalki W Mol Cancer. 2024; 23(1):244.

PMID: 39482651 PMC: 11526716. DOI: 10.1186/s12943-024-02163-z.


Diffusion of brain metabolites highlights altered brain microstructure in type C hepatic encephalopathy: a 9.4 T preliminary study.

Mosso J, Briand G, Pierzchala K, Simicic D, Sierra A, Abdollahzadeh A Front Neurosci. 2024; 18:1344076.

PMID: 38572151 PMC: 10987698. DOI: 10.3389/fnins.2024.1344076.


Discretised Flux Balance Analysis for Reaction-Diffusion Simulation of Single-Cell Metabolism.

Chew Y, Spill F Bull Math Biol. 2024; 86(4):39.

PMID: 38448618 PMC: 11390822. DOI: 10.1007/s11538-024-01264-6.


Migratory songbirds exhibit seasonal modulation of the oxygen cascade.

Ivy C, Guglielmo C J Exp Biol. 2023; 226(17).

PMID: 37534524 PMC: 10482389. DOI: 10.1242/jeb.245975.


Intraspecific variation in muscle growth of two distinct populations of Port Jackson sharks under projected end-of-century temperatures.

Thomas P, Peele E, Yopak K, Brown C, Huveneers C, Gervais C Comp Biochem Physiol A Mol Integr Physiol. 2023; 283:111467.

PMID: 37348808 PMC: 10353705. DOI: 10.1016/j.cbpa.2023.111467.


References
1.
OBrien K, Mueller I . The unique mitochondrial form and function of Antarctic channichthyid icefishes. Integr Comp Biol. 2011; 50(6):993-1008. DOI: 10.1093/icb/icq038. View

2.
Nyack A, Locke B, Valencia A, Dillaman R, Kinsey S . Scaling of postcontractile phosphocreatine recovery in fish white muscle: effect of intracellular diffusion. Am J Physiol Regul Integr Comp Physiol. 2007; 292(5):R2077-88. DOI: 10.1152/ajpregu.00467.2006. View

3.
Hubley M, Locke B, Moerland T . Reaction-diffusion analysis of the effects of temperature on high-energy phosphate dynamics in goldfish skeletal muscle. J Exp Biol. 1997; 200(Pt 6):975-88. DOI: 10.1242/jeb.200.6.975. View

4.
Dix D, Eisenberg B . In situ hybridization and immunocytochemistry in serial sections of rabbit skeletal muscle to detect myosin expression. J Histochem Cytochem. 1988; 36(12):1519-26. DOI: 10.1177/36.12.3057072. View

5.
Wagner P . Diffusive resistance to O2 transport in muscle. Acta Physiol Scand. 2000; 168(4):609-14. DOI: 10.1046/j.1365-201x.2000.00712.x. View