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Dive into the research topics where Phillip G. Doerner is active.

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Featured researches published by Phillip G. Doerner.


Journal of Strength and Conditioning Research | 2011

Postexercise carbohydrate-protein supplementation improves subsequent exercise performance and intracellular signaling for protein synthesis.

Lisa Ferguson-Stegall; Erin L. McCleave; Zhenping Ding; Phillip G. Doerner; Bei Wang; Yi-Hung Liao; Lynne Kammer; Yang Liu; Jungyun Hwang; Benjamin M. Dessard; John L. Ivy

Ferguson-Stegall, L, McCleave, EL, Ding, Z, Doerner III, PG, Wang, B, Liao, Y-H, Kammer, L, Liu, Y, Hwang, J, Dessard, BM, and Ivy, JL. Postexercise carbohydrate-protein supplementation improves subsequent exercise performance and intracellular signaling for protein synthesis. J Strength Cond Res 25(5): 1210-1224, 2011-Postexercise carbohydrate-protein (CHO + PRO) supplementation has been proposed to improve recovery and subsequent endurance performance compared to CHO supplementation. This study compared the effects of a CHO + PRO supplement in the form of chocolate milk (CM), isocaloric CHO, and placebo (PLA) on recovery and subsequent exercise performance. Ten cyclists performed 3 trials, cycling 1.5 hours at 70% &OV0312;o2max plus 10 minutes of intervals. They ingested supplements immediately postexercise and 2 hours into a 4-hour recovery. Biopsies were performed at recovery minutes 0, 45, and 240 (R0, R45, REnd). Postrecovery, subjects performed a 40-km time trial (TT). The TT time was faster in CM than in CHO and in PLA (79.43 ± 2.11 vs. 85.74 ± 3.44 and 86.92 ± 3.28 minutes, p ≤ 0.05). Muscle glycogen resynthesis was higher in CM and in CHO than in PLA (23.58 and 30.58 vs. 7.05 μmol·g−1 wet weight, p ≤ 0.05). The mammalian target of rapamycin phosphorylation was greater at R45 in CM than in CHO or in PLA (174.4 ± 36.3 vs. 131.3 ± 28.1 and 73.7 ± 7.8% standard, p ≤ 0.05) and at REnd in CM than in PLA (94.5 ± 9.9 vs. 69.1 ± 3.8%, p ≤ 0.05). rpS6 phosphorylation was greater in CM than in PLA at R45 (41.0 ± 8.3 vs. 15.3 ± 2.9%, p ≤ 0.05) and REnd (16.8 ± 2.8 vs. 8.4 ± 1.9%, p ≤ 0.05). FOXO3A phosphorylation was greater at R45 in CM and in CHO than in PLA (84.7 ± 6.7 and 85.4 ± 4.7 vs. 69.2 ± 5.5%, p ≤ 0.05). These results indicate that postexercise CM supplementation can improve subsequent exercise performance and provide a greater intracellular signaling stimulus for PRO synthesis compared to CHO and placebo.


Journal of Nutrition and Metabolism | 2011

Aerobic Exercise Training Adaptations Are Increased by Postexercise Carbohydrate-Protein Supplementation

Lisa Ferguson-Stegall; Erin L. McCleave; Zhenping Ding; Phillip G. Doerner; Yang Liu; Bei Wang; Marin Healy; Maximilian Kleinert; Benjamin M. Dessard; David G. Lassiter; Lynne Kammer; John L. Ivy

Carbohydrate-protein supplementation has been found to increase the rate of training adaptation when provided postresistance exercise. The present study compared the effects of a carbohydrate and protein supplement in the form of chocolate milk (CM), isocaloric carbohydrate (CHO), and placebo on training adaptations occurring over 4.5 weeks of aerobic exercise training. Thirty-two untrained subjects cycled 60 min/d, 5 d/wk for 4.5 wks at 75–80% of maximal oxygen consumption (VO2 max). Supplements were ingested immediately and 1 h after each exercise session. VO2 max and body composition were assessed before the start and end of training. VO2 max improvements were significantly greater in CM than CHO and placebo. Greater improvements in body composition, represented by a calculated lean and fat mass differential for whole body and trunk, were found in the CM group compared to CHO. We conclude supplementing with CM postexercise improves aerobic power and body composition more effectively than CHO alone.


Journal of Strength and Conditioning Research | 2010

THE EFFECT OF A LOW CARBOHYDRATE BEVERAGE WITH ADDED PROTEIN ON CYCLING ENDURANCE PERFORMANCE IN TRAINED ATHLETES

Lisa Ferguson-Stegall; Erin L. McCleave; Zhenping Ding; Lynne Kammer; Bei Wang; Phillip G. Doerner; Yang Liu; John L. Ivy

Ferguson-Stegall, L, McCleave, EL, Ding, Z, Kammer, LM, Wang, B, Doerner, PG, Liu, Y, and Ivy, JL. The effect of a low carbohydrate beverage with added protein on cycling endurance performance in trained athletes. J Strength Cond Res 24(10): 2577-2586, 2010-Ingesting carbohydrate plus protein during prolonged variable intensity exercise has demonstrated improved aerobic endurance performance beyond that of a carbohydrate supplement alone. The purpose of the present study was to determine if a supplement containing a mixture of different carbohydrates (glucose, maltodextrin, and fructose) and a moderate amount of protein given during endurance exercise would increase time to exhaustion (TTE), despite containing 50% less total carbohydrate than a carbohydrate-only supplement. We also sought post priori to determine if there was a difference in effect based on percentage of ventilatory threshold (VT) at which the subjects cycled to exhaustion. Fifteen trained male and female cyclists exercised on 2 separate occasions at intensities alternating between 45 and 70% &OV0312;o2max for 3 hours, after which the workload increased to ∼74-85% &OV0312;o2max until exhaustion. Supplements (275 mL) were provided every 20 minutes during exercise, and these consisted of a 3% carbohydrate/1.2% protein supplement (MCP) and a 6% carbohydrate supplement (CHO). For the combined group (n = 15), TTE in MCP did not differ from CHO (31.06 ± 5.76 vs. 26.03 ± 4.27 minutes, respectively, p = 0.064). However, for subjects cycling at or below VT (n = 8), TTE in MCP was significantly greater than for CHO (45.64 ± 7.38 vs. 35.47 ± 5.94 minutes, respectively, p = 0.006). There were no significant differences in TTE for the above VT group (n = 7). Our results suggest that, compared to a traditional 6% CHO supplement, a mixture of carbohydrates plus a moderate amount of protein can improve aerobic endurance at exercise intensities near the VT, despite containing lower total carbohydrate and caloric content.


Journal of Strength and Conditioning Research | 2011

A low carbohydrate-protein supplement improves endurance performance in female athletes.

Erin L. McCleave; Lisa Ferguson-Stegall; Zhenping Ding; Phillip G. Doerner; Bei Wang; Lynne Kammer; John L. Ivy

McCleave, EL, Ferguson-Stegall, L, Ding, Z, Doerner, PG III, Wang, B, Kammer, LM, and Ivy, JL. A low carbohydrate-protein supplement improves endurance performance in female athletes. J Strength Cond Res 25(4): 879-888, 2011-The purpose of this study was to investigate if a low mixed carbohydrate (CHO) plus moderate protein (PRO) supplement, provided during endurance exercise, would improve time to exhaustion (TTE) in comparison to a traditional 6% CHO supplement. Fourteen (n = 14) trained female cyclists and triathletes cycled on 2 separate occasions for 3 hours at intensities varying between 45 and 70% &OV0312;O2max, followed by a ride to exhaustion at an intensity approximating the individuals ventilatory threshold average 75.06% &OV0312;O2max. Supplements (275 mL) were provided every 20 minutes during exercise and were composed of a CHO mixture (1% each of dextrose, fructose, and maltodextrin) + 1.2% PRO (CHO + PRO) or 6% dextrose only (CHO). The TTE was significantly greater with CHO + PRO in comparison to with CHO (49.94 ± 7.01 vs. 42.36 ± 6.21 minutes, respectively, p < 0.05). Blood glucose was significantly lower during the CHO + PRO trial (4.07 ± 0.12 mmol·L−1) compared to during the CHO trial (4.47 ± 0.12 mmol·L−1), with treatment × time interactions occurring from 118 minutes of exercise until exhaustion (p < 0.05). Results from the present study suggest that the addition of a moderate amount of PRO to a low mixed CHO supplement improves endurance performance in women above that of a traditional 6% CHO supplement. Improvement in performance occurred despite CHO + PRO containing a lower CHO and caloric content. It is likely that the greater performance seen with CHO + PRO was a result of the CHO-PRO combination and the use of a mixture of CHO sources.


Journal of Applied Physiology | 2012

An amino acid mixture is essential to optimize insulin-stimulated glucose uptake and GLUT4 translocation in perfused rodent hindlimb muscle

Jeffrey R. Bernard; Yi-Hung Liao; Phillip G. Doerner; Zhenping Ding; Ming Hsieh; Wanyi Wang; Jeffrey L. Nelson; John L. Ivy

The purpose of this study was to investigate whether an amino acid mixture increases glucose uptake across perfused rodent hindlimb muscle in the presence and absence of a submaximal insulin concentration, and if the increase in glucose uptake is related to an increase in GLUT4 plasma membrane density. Sprague-Dawley rats were separated into one of four treatment groups: basal, amino acid mixture, submaximal insulin, or amino acid mixture with submaximal insulin. Glucose uptake was greater for both insulin-stimulated treatments compared with the non-insulin-stimulated treatment groups but amino acids only increased glucose uptake in the presence of insulin. Phosphatidylinositol 3-kinase (PI 3-kinase) activity was greater for both insulin-stimulated treatments with amino acids having no additional impact. Akt substrate of 160 kDa (AS160) phosphorylation, however, was increased by the amino acids in the presence of insulin, but not in the absence of insulin. AMPK was unaffected by insulin or amino acids. Plasma membrane GLUT4 protein concentration was greater in the rats treated with insulin compared with no insulin in the perfusate. In the presence of insulin, amino acids increased GLUT4 density in the plasma membrane but had no effect in the absence of insulin. AS160 phosphorylation and plasma membrane GLUT4 density accounted for 76% of the variability in muscle glucose uptake. Collectively, these findings suggest that the beneficial effects of an amino acid mixture on skeletal muscle glucose uptake, in the presence of a submaximal insulin concentration, are due to an increase in AS160 phosphorylation and plasma membrane-associated GLUT4, but independent of PI 3-kinase and AMPK activation.


Acta Physiologica | 2014

Chromium chloride increases insulin-stimulated glucose uptake in the perfused rat hindlimb

Phillip G. Doerner; Yi-Hung Liao; Zhenping Ding; Wanyi Wang; John L. Ivy; J. R. Bernard

To determine the effect of chromium chloride (CrCl3) on healthy skeletal muscle glucose uptake in the absence and presence of submaximal insulin using the rat hindlimb perfusion technique.


Medicine and Science in Sports and Exercise | 2010

Effects of Chocolate Milk Supplementation on Recovery from Cycling Exercise and Subsequent Time Trial Performance: 2816

Lisa Ferguson-Stegall; Erin L. McCleave; Phillip G. Doerner; Zhenping Ding; Bei Wang; Benjamin M. Dessard; Yang Liu; Lynne Kammer; John L. Ivy


International Journal of Exercise Science: Conference Proceedings | 2010

Effect of a low carbohydrate - moderate protein supplement on endurance performance in female athletes

Erin L. McCleave; Lisa Ferguson-Stegall; Zhenping Ding; Phillip G. Doerner; Bei Wang; Lynne Kammer; John L. Ivy


Archive | 2014

glucose uptake in isolated rat epitrochlearis muscle An amino acid mixture enhances insulin-stimulated

John L. Ivy; Maximilian Kleinert; Yi-Hung Liao; Jeffrey L. Nelson; Jeffrey R. Bernard; Phillip G. Doerner; Zhenping Ding; Ming Hsieh


Archive | 2012

translocation in perfused rodent hindlimb muscle insulin-stimulated glucose uptake and GLUT4 An amino acid mixture is essential to optimize

Wanyi Wang; Jeffrey L. Nelson; John L. Ivy; Jeffrey R. Bernard; Yi-Hung Liao; Phillip G. Doerner; Zhenping Ding

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John L. Ivy

University of Texas at Austin

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Zhenping Ding

University of Texas at Austin

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Bei Wang

University of Texas at Austin

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Lisa Ferguson-Stegall

University of Texas at Austin

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Lynne Kammer

University of Texas at Austin

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Wanyi Wang

University of Texas at Austin

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David G. Lassiter

University of Texas at Austin

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Jeffrey R. Bernard

Saint Mary's College of California

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Jungyun Hwang

University of Texas at Austin

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Maximilian Kleinert

University of Texas at Austin

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