Adipose tissue thickness and wearable muscle oxygen saturation during graded treadmill running: a site-specific mixed-effects analysis

Wearable continuous-wave near-infrared spectroscopy (CW-NIRS) provides a device-derived estimate of local muscle oxygen saturation (SmO₂), rather than a direct or absolute measure of microvascular oxygen saturation. Subcutaneous adipose tissue thickness (ATT) may influence the interpretation and reliability of wearable SmO₂, particularly in between-subject comparisons during graded exercise. This study examined the site-specific associations of ATT with the SmO₂–intensity relationship during graded treadmill running and generated model-based predictions at a common ATT reference. A total of 157 healthy adults, including 79 habitually physically active and 78 recreationally untrained participants, completed a graded treadmill exercise test with continuous SmO₂ monitoring at the bilateral vastus lateralis and right gastrocnemius lateralis. Local ATT was estimated from skinfold thickness at each monitoring site. Stage-wise SmO₂ responses were analysed using site-specific linear mixed-effects models including relative exercise intensity, group, sex, mean-centred ATT, group × intensity, and ATT × intensity, with a participant-specific random intercept. Adjusted marginal predictions were subsequently generated at the site-specific mean ATT. SmO₂ declined progressively with increasing exercise intensity at all monitored sites, with significant negative associations at VL-R (β = −66.18, p < 0.001), VL-L (β = −64.26, p < 0.001), and GL-R (β = −35.39, p < 0.001). Habitually physically active participants exhibited lower exercise SmO₂ than recreationally untrained participants at the vastus lateralis, with significant group effects at VL-R (β = 11.57, p < 0.05) and VL-L (β = 12.47, p < 0.05). ATT effects were site-specific, with a significant ATT × intensity interaction at VL-L (β = 2.60, p < 0.05) and a significant positive ATT main effect at GL-R (β = 3.20, p < 0.05). Predictions generated at a common ATT reference showed reduced ATT-related dependence while retaining the observed between-group patterns. ATT was associated with the between-subject variation in wearable CW-NIRS-derived SmO₂ during graded treadmill running in a site-specific manner. Site-specific mixed-effects adjustment can provide marginal SmO₂ predictions at a common ATT reference and reduce ATT-related dependence in model-derived estimates. This statistical procedure does not correct the underlying optical signal or establish improved measurement validity; external validation against an independent criterion is required.

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Journal
BMC Sports Science Medicine and Rehabilitation
Published
2026-09-14
DOI
https://doi.org/10.1186/s13102-026-02072-2
Primary Topic
Cardiovascular and exercise physiology
Type
article
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article

Adipose tissue thickness and wearable muscle oxygen saturation during graded treadmill running: a site-specific mixed-effects analysis

Wen Xu, Long Yu, Shiyao Xia, Liya Xu et al.
BMC Sports Science Medicine and Rehabilitation
Cardiovascular and exercise physiology
article

Adipose tissue thickness and wearable muscle oxygen saturation during graded treadmill running: a site-specific mixed-effects analysis

Wen Xu, Long Yu, Shiyao Xia, Liya Xu, Fangguo Li
article en

Abstract

Wearable continuous-wave near-infrared spectroscopy (CW-NIRS) provides a device-derived estimate of local muscle oxygen saturation (SmO₂), rather than a direct or absolute measure of microvascular oxygen saturation. Subcutaneous adipose tissue thickness (ATT) may influence the interpretation and reliability of wearable SmO₂, particularly in between-subject comparisons during graded exercise. This study examined the site-specific associations of ATT with the SmO₂–intensity relationship during graded treadmill running and generated model-based predictions at a common ATT reference. A total of 157 healthy adults, including 79 habitually physically active and 78 recreationally untrained participants, completed a graded treadmill exercise test with continuous SmO₂ monitoring at the bilateral vastus lateralis and right gastrocnemius lateralis. Local ATT was estimated from skinfold thickness at each monitoring site. Stage-wise SmO₂ responses were analysed using site-specific linear mixed-effects models including relative exercise intensity, group, sex, mean-centred ATT, group × intensity, and ATT × intensity, with a participant-specific random intercept. Adjusted marginal predictions were subsequently generated at the site-specific mean ATT. SmO₂ declined progressively with increasing exercise intensity at all monitored sites, with significant negative associations at VL-R (β = −66.18, p < 0.001), VL-L (β = −64.26, p < 0.001), and GL-R (β = −35.39, p < 0.001). Habitually physically active participants exhibited lower exercise SmO₂ than recreationally untrained participants at the vastus lateralis, with significant group effects at VL-R (β = 11.57, p < 0.05) and VL-L (β = 12.47, p < 0.05). ATT effects were site-specific, with a significant ATT × intensity interaction at VL-L (β = 2.60, p < 0.05) and a significant positive ATT main effect at GL-R (β = 3.20, p < 0.05). Predictions generated at a common ATT reference showed reduced ATT-related dependence while retaining the observed between-group patterns. ATT was associated with the between-subject variation in wearable CW-NIRS-derived SmO₂ during graded treadmill running in a site-specific manner. Site-specific mixed-effects adjustment can provide marginal SmO₂ predictions at a common ATT reference and reduce ATT-related dependence in model-derived estimates. This statistical procedure does not correct the underlying optical signal or establish improved measurement validity; external validation against an independent criterion is required.

BMC Sports Science Medicine and Rehabilitation
China Mobile (China) (CN), Zhejiang University (CN)
Openalex Percentile: Top 5%
Cardiovascular and exercise physiology
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