Literature DB >> 21218513

Acute hypoxia and exercise improve insulin sensitivity (S(I) (2*)) in individuals with type 2 diabetes.

Richard Mackenzie1, Neil Maxwell, Paul Castle, Gary Brickley, Peter Watt.   

Abstract

BACKGROUND: hypoxia has been shown to increase glucose uptake in skeletal muscle using the contraction-stimulated pathway, independent of the actions of insulin. Yet, the same stress has also been linked with causing insulin resistance and hyperglycaemia. The aim of this study was to examine the effects of acute hypoxia with and without exercise on insulin sensitivity (S(I)(2*) in individuals with type 2 diabetes.
METHODS: eight type 2 diabetic patients completed 60 min of the following: (1) normoxic rest; (2) hypoxic rest [O(2) = 14.6 (0.4)%]; (3) normoxic exercise and (4) hypoxic exercise [O(2) = 14.6 (0.4)%]. Exercise trials were set at 90% of lactate threshold. Each condition was followed by a labelled intravenous glucose tolerance test to provide estimations of insulin sensitivity (S(I)(2*) and β-cell function.
RESULTS: Two-compartmental analysis showed that insulin sensitivity (S(I)(2*) was higher following hypoxic rest compared with normoxic rest (p = 0.047). Insulin sensitivity (S(I)(2*) was also higher following hypoxic exercise [4.37 (0.48) × 10(-4) /min (µU/mL)] compared with normoxic exercise [3.24 (0.51) × 10(-4) /min (µU/mL)] (p = 0.048). Acute insulin response to glucose was reduced following hypoxic rest versus normoxic rest (p = 0.014).
CONCLUSIONS: this study demonstrated that (1) hypoxic-induced improvements in glucose tolerance in the 4 h following exposure can be attributed to improvements in peripheral insulin sensitivity (S( I)(2*) and (2) exercise and hypoxia have an additive effect on insulin sensitivity (S(I)(2*) in type 2 diabetic patients. Acute hypoxia may therefore improve short-term glycaemic control in individuals with type 2 diabetes. The application of these findings in the clinic will require further investigation. 2010 John Wiley & Sons, Ltd.

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Year:  2011        PMID: 21218513     DOI: 10.1002/dmrr.1156

Source DB:  PubMed          Journal:  Diabetes Metab Res Rev        ISSN: 1520-7552            Impact factor:   4.876


  31 in total

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7.  Normobaric Hypoxia Exposure on Substrate Oxidation Pattern: Sex Differences.

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8.  Chronic Intermittent Hypoxia Exposure Alternative to Exercise Alleviates High-Fat-Diet-Induced Obesity and Fatty Liver.

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9.  Metabolic dysfunction in obstructive sleep apnea: A critical examination of underlying mechanisms.

Authors:  Omar A Mesarwi; Ellora V Sharma; Jonathan C Jun; Vsevolod Y Polotsky
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10.  Increased Cardiometabolic Risk and Worsening Hypoxemia at High Altitude.

Authors:  Catherine H Miele; Alan R Schwartz; Robert H Gilman; Luu Pham; Robert A Wise; Victor G Davila-Roman; Jonathan C Jun; Vsevolod Y Polotsky; J Jaime Miranda; Fabiola Leon-Velarde; William Checkley
Journal:  High Alt Med Biol       Date:  2016-06       Impact factor: 1.981

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