Hauton, D., Kissane, R.W.P., McCullagh, J. et al. (1 more author) (2026) Skeletal muscle adaptation to muscle activity and hypoxia: Differential structural and metabolic remodelling. Journal of Physiology. ISSN: 0022-3751
Abstract
Delivery and utilisation of oxygen are critical determinants of skeletal muscle function, and therefore aerobic performance. Angiogenesis, the process of microvascular bed expansion, may be initiated by several tissue-level stimuli (e.g. of haemodynamic, myogenic or metabolic origin), which are typically present during dynamic exercise. Understanding the relative contribution of these distinct physiological stimuli to skeletal muscle remodelling is needed to develop effective therapeutic strategies to alleviate impaired tissue oxygen supply. In the present study, we uncoupled the predominantly mechanotransductive (i.e. elevated vascular shear stress and cyclical muscle activation) and predominantly chemotransductive (i.e. local tissue hypoxia) stimuli present during exercise by exposing C57b6 mice to either indirect muscle stimulation (10 Hz; ST) or systemic hypoxia (10% oxygen; H), for 7 days, respectively. Furthermore, we combined these stimuli (H+ST) to determine whether the effects were additive. After 7 days of intervention, the tibialis anterior muscle was sampled for histological quantification of microvascular supply and metabolomics analysis. We showed that ST promoted a significant angiogenic response within the muscle whereas H did not. Interestingly, the combined H+ST group had a blunted angiogenic response. Branch-chain amino acid levels were significantly decreased following ST, H and H+ST, consistent with an increased metabolic requirement for ATP, which represents an energy deficit. Proximate metabolites of the glycolytic pathway were significantly reduced following hypoxia, but not stimulation. Together, these observations are commensurate with mechanotransduction triggering structural remodelling of muscle that preserves the metabolome of muscle tissue, whereas chemotransduction inhibits the angiogenic response induced by ST, possibly as a consequence of altered glycolytic metabolism.
Metadata
| Item Type: | Article |
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| Authors/Creators: |
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| Copyright, Publisher and Additional Information: | © 2026 The Author(s). This is an open access article under the terms of the Creative Commons Attribution License (CC-BY 4.0), which permits unrestricted use, distribution and reproduction in any medium, provided the original work is properly cited. |
| Keywords: | angiogenesis, exercise, hypoxia, metabolomics |
| Dates: |
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| Institution: | The University of Leeds |
| Academic Units: | The University of Leeds > Faculty of Biological Sciences (Leeds) > School of Biomedical Sciences (Leeds) |
| Date Deposited: | 09 Mar 2026 12:13 |
| Last Modified: | 08 Jun 2026 13:24 |
| Status: | Published online |
| Publisher: | Wiley |
| Identification Number: | 10.1113/JP290009 |
| Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:238727 |

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