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Diffusion and physical constraints limit oxidative capacity, capillary supply and size of muscle fibres in mice and humans

  • Hans Degens
  • , Guy A M Messa
  • , Jason Tallis
  • , Alessandra Bosutti
  • , Tomas Venckunas
  • , Ismail Adeniran
  • , Rob C I Wüst
  • , Paul W Hendrickse

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

It has been suggested that angiogenesis during skeletal muscle fibre hypertrophy allows escape from the 'size constraint', which is the inverse relationship between oxidative capacity and muscle fibre cross-sectional area (FCSA). It is, however, not known whether there are any limitations to the combinations of FCSA, oxidative capacity and capillary supply to an individual fibre. We determined the FCSA, oxidative capacity and capillary supply to fibres from highly resistance-trained men before and after superimposed endurance training, recreationally active men and women, and different mouse muscles. Both the oxidative capacity and the number of capillaries around a fibre (CAF) per FCSA (CAF/FCSA) showed an upper limit at each FCSA, irrespective of species, muscle origin or training status. The upper limit of fibre oxidative capacity was likely determined by diffusion constraints. The upper limit of CAF/FCSA was determined by physical constraints where (i) there is no further reduction in maximal diffusion distance to the core of a fibre beyond a CAF of 2, and (ii) the reduction in fibre area supplied by a capillary diminishes exponentially with an increase in CAF. The calculated upper limits of oxidative capacity and CAF/FCSA of a fibre of a given FCSA were linearly related. Irrespective of species, sex, muscle of origin and training status, our data indicate that diffusion limitations and physical limitations to capillary placement around a fibre place an upper limit on the oxidative capacity and capillary supply to a fibre of a given size, respectively.

Original languageEnglish
Pages (from-to)212-225
Number of pages14
JournalExperimental Physiology
Volume111
Issue number1
Early online date7 Jun 2025
DOIs
Publication statusPublished - 1 Jan 2026

Bibliographical note

© 2025 The Author(s). Experimental Physiology published by John Wiley & Sons Ltd on behalf of The Physiological Society.

Funding

informationWe acknowledge the UK Space Agency (ST/S0001735/1), the European Space Agency (ESA; 16-16ESA AGBR-0013, contract number 4000113871/15/NL/PG), the National Aeronautics and Space Administration (NASA; contract number 80JSC018P0078) and the Italian Space Agency (MIAG project ASI n.2021-13-U.0) for funding. We acknowledge the UK Space Agency (ST/S0001735/1), the European Space Agency (ESA; 16‐16ESA AGBR‐0013, contract number 4000113871/15/NL/PG), the National Aeronautics and Space Administration (NASA; contract number 80JSC018P0078) and the Italian Space Agency (MIAG project ASI n.2021‐13‐U.0) for funding.

FundersFunder number
Agenzia Spaziale Italiana
ESA
European Space Agency4000113871/15/NL/PG, 16‐16ESA AGBR‐0013
MIAGASI n.2021-13-U.0, 2021‐13‐U.0
UK Space AgencyST/S0001735/1
National Aeronautics and Space Administration80JSC018P0078

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