IS THE MUSCLE OXYGENATION LEVEL AN INDICATOR OF THE OXIDATIVE RATE?

1998 ◽  
Vol 30 (Supplement) ◽  
pp. 232
Author(s):  
T. Hamaoka ◽  
T. Katsumura ◽  
T. Shimomitsu ◽  
N. Murase ◽  
S. Nishio ◽  
...  
1999 ◽  
Vol 31 (Supplement) ◽  
pp. S277
Author(s):  
H. Higuchi ◽  
T. Katsumura ◽  
T. Hamaoka ◽  
T. Sako ◽  
K. Esaki ◽  
...  

2011 ◽  
Vol 112 (8) ◽  
pp. 2839-2847 ◽  
Author(s):  
Marc Philippe ◽  
Daniel Wegst ◽  
Tom Müller ◽  
Christian Raschner ◽  
Martin Burtscher

2011 ◽  
Vol 112 (2) ◽  
pp. 561-572 ◽  
Author(s):  
Shinichi Demura ◽  
Shunsuke Yamaji ◽  
Yoshinori Nagasawa ◽  
Masakatsu Nakada
Keyword(s):  

2021 ◽  
Vol 28 (Supplement_1) ◽  
Author(s):  
P Chatzinikolaou ◽  
N Cornelis ◽  
J Claes ◽  
R Buys ◽  
I Fourneau ◽  
...  

Abstract Funding Acknowledgements Type of funding sources: None. Background. Intermittent claudication (IC) is characterized by a cramp-like pain during walking caused by insufficient blood flow to the lower limbs during exercise. The walking impairment caused by IC can lead to a vicious cycle of physical inactivity, decreased quality of life and progression of cardiovascular risk factors. Although current evidence supports the benefits of walking training to increase walking capacity, little is known about its effect on muscle oxygenation in this population. Purpose. The aim of this study was to investigate the effects of a hybrid 12-week walking program (combined center- and home-based walking) on muscle oxygenation of IC patients. Methods. Thirty-seven patients with IC were enrolled of which 33 completed follow-up measurements (age 71 ± 9 yrs, body mass index 26 ± 4 kg/m2, ankle brachial index (ABI) 0.7 ± 0.2) after the 12-week intervention. Outcome measures were pain-free walking capacity (PFWC), maximal walking capacity (MWC) and calf muscle oxygenation, respectively evaluated using a submaximal treadmill test, a Gardner treadmill test and near-infrared spectroscopy (NIRS). Results. After the 12-week intervention, significantly higher values (reported as median and interquartiles) for PFWC (162 m [122, 217] to 272 m [150, 401]; p < 0.001) and MWC (458 m [260, 638] to 611 m [333, 840]; p < 0.001) were observed. As shown in Table 1, NIRS data measured during the submaximal walking test showed an increased availability of oxygenated hemoglobin (p = 0.048) and decreased deoxyhemoglobin (p = 0.013), while total hemoglobin remained unchanged after the 12-week intervention. During the Gardner test, time to reach minimum tissue saturation index (TSI%) increased (p < 0.001), yet no change was noted on minimum TSI during exercise, despite increased MWC. Despite a trend towards faster recovery times, no significant changes were observed after the 12-week intervention. Conclusion. Hybrid walking exercise therapy improves deoxygenation kinetics and walking capacity in IC patients. Increased availability of oxygenated hemoglobin might underly the improvement in walking capacity.


2021 ◽  
Vol 11 (8) ◽  
pp. 3624
Author(s):  
Aurelio Trofè ◽  
Milena Raffi ◽  
David Muehsam ◽  
Andrea Meoni ◽  
Francesco Campa ◽  
...  

Pulsed electromagnetic fields (PEMFs) are used as non-invasive tools to enhance microcirculation and tissue oxygenation, with a modulatory influence on the microvasculature. This study aimed to measure the acute effect of PEMF on muscle oxygenation and its influence on pulmonary oxygen kinetics during exercise. Eighteen male cyclists performed, on different days, a constant-load exercise in both active (ON) and inactive (OFF) PEMF stimulations while deoxyhemoglobin and pulmonary oxygen kinetics, total oxygenation index, and blood lactate were collected. PEMF enhanced muscle oxygenation, with higher values of deoxyhemoglobin both at the primary component and at the steady-state level. Moreover, PEMF accelerated deoxyhemoglobin on-transition kinetic, with a shorter time delay, time constant, and mean response time than the OFF condition. Lactate concentration was higher during stimulation. No differences were found for total oxygenation index and pulmonary oxygen kinetics. Local application of a precise PEMF stimulation can increase the rate of the muscle O2 extraction and utilization. These changes were not accompanied by faster oxygen kinetics, reduced oxygen slow component, or reduced blood lactate level. It seems that oxygen consumption is more influenced by exercise involving large muscle mass like cycling, whereas PEMF might only act at the local level.


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