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Poor glycaemic control is associated with reduced exercise performance and oxygen economy during cardio-pulmonary
Othmar Moser1,2, Max L Eckstein1,2, Olivia McCarthy1,2
1Diabetes Research Group, Medical School, Swansea University, SA2 8PP Swansea, UK.
Insights
Poor glycaemic control in type 1 diabetes is linked to reduced exercise capacity and less efficient oxygen use during cardio-pulmonary exercise testing. Exercise training may help improve functional capacity despite high HbA1c levels.
Area of Science:
- Cardiology
- Endocrinology
- Exercise Physiology
Background:
- Glycaemic control, measured by HbA1c, is crucial for individuals with type 1 diabetes.
- Functional capacity impacts daily life and exercise tolerance in diabetic patients.
Purpose of the Study:
- To investigate the relationship between HbA1c levels and functional capacity in type 1 diabetes patients.
- To assess the effect of glycaemic control on cardiorespiratory responses during exercise testing.
Main Methods:
- Sixty-four type 1 diabetes patients underwent cardiopulmonary exercise testing.
- Stepwise linear regression and ANOVA were used to analyze HbA1c and cardiorespiratory data.
- Data were adjusted for potential confounders.
Main Results:
- HbA1c correlated with time to exhaustion and oxygen consumption at the heart rate turn point.
- Significant differences in exercise duration and oxygen consumption were observed across HbA1c quartiles.
- Cardiorespiratory variables explained 55% of the variance in time to exhaustion.
Conclusions:
- Poor glycaemic control is associated with reduced exercise economy and earlier fatigue in type 1 diabetes.
- Exercise training may mitigate the negative effects of poor glycaemic control on functional capacity.
Background:
To explore the impact of glycaemic control (HbA1c) on functional capacity during cardio-pulmonary exercise testing in people with type 1 diabetes.
Methods:
Sixty-four individuals with type 1 diabetes (age: 34 ± 8 years; 13 females, HbA1c: 7.8 ± 1% (62 ± 13 mmol/mol), duration of diabetes: 17 ± 9 years) performed a cardio-pulmonary cycle ergometer exercise test until volitional exhaustion. Stepwise linear regression was used to explore relationships between HbA1c and cardio-respiratory data with p ≤ 0.05. Furthermore, participants were divided into quartiles based on HbA1c levels and cardio-respiratory data were analysed by one-way ANOVA. Multiple regression analysis was performed to explore the relationships between changes in time to exhaustion and cardio-respiratory data. Data were adjusted for confounder.
Results:
HbA1c was related to time to exhaustion and oxygen consumption at the power output elicited at the sub-maximal threshold of the heart rate turn point (r = 0.47, R2 = 0.22, p = 0.03). Significant differences were found at time to exhaustion between QI vs. QIV and at oxygen consumption at the power output elicited at the heart rate turn point between QI vs. QII and QI vs. QIV (p < 0.05). Changes in oxygen uptake, power output and in oxygen consumption at the power output elicited at the heart rate turn point and at maximum power output explained 55% of the variance in time to exhaustion (r = 0.74, R2 = 0.55, p < 0.01).
Conclusions:
Poor glycaemic control is related to less economical use of oxygen at sub-maximal work rates and an earlier time to exhaustion during cardio-pulmonary exercise testing. However, exercise training could have the same potential to counteract the influence of poor glycaemic control on functional capacity. Trial registration NCT01704417. Date of registration: October 11, 2012.
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