Literature DB >> 19837898

Allometry of skeletal muscle fine structure allows maintenance of aerobic capacity during ontogenetic growth.

Steven Young1, Stuart Egginton.   

Abstract

Controversy exists over the scaling of oxygen consumption with body mass in vertebrates. A combination of biochemical and structural analyses were used to examine whether individual elements influencing oxygen delivery and demand within locomotory muscle respond similarly during ontogenetic growth of striped bass. Mass-specific metabolic enzyme activity confirmed that glycolytic capacity scaled positively in deep white muscle (regression slope, b=0.1 to 0.8) over a body mass range of approximately 20-1500 g, but only creatine phosphokinase showed positive scaling in lateral red muscle (b=0.5). Although oxidative enzymes showed negative allometry in red muscle (b=-0.01 to -0.02), mass-specific myoglobin content scaled positively (b=0.7). Capillary to fibre ratio of red muscle was higher in larger (1.42+/-0.15) than smaller (1.20+/-0.15) fish, suggesting progressive angiogenesis. By contrast, capillary density decreased (1989+/-161 vs 2,962+/-305 mm(-2)) as a result of larger fibre size (658+/-31 vs 307+/-24 microm(2) in 1595 g and 22.9 g fish, respectively). Thus, facilitated and convective delivery of O(2) show opposite allometric trends. Relative mitochondrial content of red muscle (an index of O(2) demand) varied little with body mass overall, but declined from approximately 40% fibre volume in the smallest to approximately 30% in the largest fish. However, total content per fibre increased, suggesting that mitochondrial biogenesis supported aerobic capacity during fibre growth. Heterogeneous fibre size indicates both hypertrophic and hyperplastic growth, although positive scaling of fibre myofibrillar content (b=0.085) may enhance specific force generation in larger fish. Modelling intracellular P(O(2)) distribution suggests such integrated structural modifications are required to maintain adequate oxygen delivery (calculated P(O(2)) 5.15+/-0.02 kPa and 5.21+/-0.01 kPa in small and large fish, respectively).

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Year:  2009        PMID: 19837898     DOI: 10.1242/jeb.029512

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


  3 in total

1.  Right Ventricular Angiogenesis is an Early Adaptive Response to Chronic Hypoxia-Induced Pulmonary Hypertension.

Authors:  Todd M Kolb; Jacelyn Peabody; Philip Baddoura; Jon Fallica; Jason R Mock; Benjamin D Singer; Franco R D'Alessio; Mahendra Damarla; Rachel L Damico; Paul M Hassoun
Journal:  Microcirculation       Date:  2015-11       Impact factor: 2.628

2.  Vascular Injury in the Zebrafish Tail Modulates Blood Flow and Peak Wall Shear Stress to Restore Embryonic Circular Network.

Authors:  Kyung In Baek; Shyr-Shea Chang; Chih-Chiang Chang; Mehrdad Roustaei; Yichen Ding; Yixuan Wang; Justin Chen; Ryan O'Donnell; Hong Chen; Julianne W Ashby; Xiaolei Xu; Julia J Mack; Susana Cavallero; Marcus Roper; Tzung K Hsiai
Journal:  Front Cardiovasc Med       Date:  2022-03-18

3.  Metabolic shifts in the Antarctic fish Notothenia rossii in response to rising temperature and PCO2.

Authors:  Anneli Strobel; Swaantje Bennecke; Elettra Leo; Katja Mintenbeck; Hans O Pörtner; Felix C Mark
Journal:  Front Zool       Date:  2012-10-18       Impact factor: 3.172

  3 in total

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