Exercise training remodels subcutaneous adipose tissue in adults with obesity even without weight loss

被引:25
作者
Ahn, Cheehoon [1 ]
Ryan, Benjamin J. [1 ]
Schleh, Michael W. [1 ]
Varshney, Pallavi [1 ]
Ludzki, Alison C. [1 ]
Gillen, Jenna B. [1 ,2 ]
Van Pelt, Douglas W. [1 ]
Pitchford, Lisa M. [1 ]
Howton, Suzette M. [1 ]
Rode, Thomas [1 ]
Hummel, Scott L. [3 ,4 ]
Burant, Charles F. [5 ]
Little, Jonathan P. [6 ]
Horowitz, Jeffrey F. [1 ]
机构
[1] Univ Michigan, Sch Kinesiol, Substrate Metab Lab, 830 N Univ Ave, Ann Arbor, MI 48109 USA
[2] Univ Toronto, Fac Kinesiol & Phys Educ, Toronto, ON, Canada
[3] Univ Michigan, Dept Internal Med, Div Cardiol, Ann Arbor, MI 48109 USA
[4] Ann Arbor Vet Affairs Hlth Syst, Ann Arbor, MI USA
[5] Univ Michigan, Dept Internal Med, Div Metab Endocrinol & Diabet, Ann Arbor, MI 48109 USA
[6] Univ British Columbia, Sch Hlth & Exercise Sci, Kelowna, BC, Canada
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2022年 / 600卷 / 09期
基金
加拿大健康研究院; 美国国家卫生研究院;
关键词
adipose tissue; exercise training; high-intensity interval training; TUMOR-NECROSIS-FACTOR; IMPROVED INSULIN SENSITIVITY; MESSENGER-RNA EXPRESSION; FACTOR-ALPHA; MITOCHONDRIAL BIOGENESIS; METABOLIC-RESPONSE; LIPID MOBILIZATION; INDUCED INCREASE; GENE-EXPRESSION; FAT INTAKE;
D O I
10.1113/JP282371
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Excessive adipose tissue mass underlies much of the metabolic health complications in obesity. Although exercise training is known to improve metabolic health in individuals with obesity, the effects of exercise training without weight loss on adipose tissue structure and metabolic function remain unclear. Thirty-six adults with obesity (body mass index = 33 +/- 3 kg center dot m(-2)) were assigned to 12 weeks (4 days week(-1)) of either moderate-intensity continuous training (MICT; 70% maximal heart rate, 45 min; n = 17) or high-intensity interval training (HIIT; 90% maximal heart rate, 10 x 1 min; n = 19), maintaining their body weight throughout. Abdominal subcutaneous adipose tissue (aSAT) biopsy samples were collected once before and twice after training (1 day after last exercise and again 4 days later). Exercise training modified aSAT morphology (i.e. reduced fat cell size, increased collagen type 5a3, both P <= 0.05, increased capillary density, P = 0.05) and altered protein abundance of factors that regulate aSAT remodelling (i.e. reduced matrix metallopeptidase 9; P = 0.02; increased angiopoietin-2; P < 0.01). Exercise training also increased protein abundance of factors that regulate lipid metabolism (e.g. hormone sensitive lipase and fatty acid translocase; P <= 0.03) and key proteins involved in the mitogen-activated protein kinase pathway when measured the day after the last exercise session. However, most of these exercise-mediated changes were no longer significant 4 days after exercise. Importantly, MICT and HIIT induced remarkably similar adaptations in aSAT. Collectively, even in the absence of weight loss, 12 weeks of exercise training induced changes in aSAT structure, as well as factors that regulate metabolism and the inflammatory signal pathway in adults with obesity. Key points Exercise training is well-known to improve metabolic health in obesity, although how exercise modifies the structure and metabolic function of adipose tissue, in the absence of weight loss, remains unclear. We report that both 12 weeks of moderate-intensity continuous training (MICT) and 12 weeks of high-intensity interval training (HIIT) induced modifications in adipose tissue structure and factors that regulate adipose tissue remodelling, metabolism and the inflammatory signal pathway in adults with obesity, even without weight loss (with no meaningful differences between MICT and HIIT). The modest modifications in adipose tissue structure in response to 12 weeks of MICT or HIIT did not lead to changes in the rate of fatty acid release from adipose tissue. These results expand our understanding about the effects of two commonly used exercise training prescriptions (MICT and HIIT) on adipose tissue remodelling that may lead to advanced strategies for improving metabolic health outcomes in adults with obesity.
引用
收藏
页码:2127 / 2146
页数:20
相关论文
共 82 条
[61]   Expression of the thermogenic nuclear hormone receptor coactivator PGC-1α is reduced in the adipose tissue of morbidly obese subjects [J].
Semple, RK ;
Crowley, VC ;
Sewter, CP ;
Laudes, M ;
Christodoulides, C ;
Considine, RV ;
Vidal-Puig, A ;
O'Rahilly, S .
INTERNATIONAL JOURNAL OF OBESITY, 2004, 28 (01) :176-179
[62]   Diet/exercise versus pioglitazone:: Effects of insulin sensitization with decreasing or increasing fat mass on adipokines and inflammatory markers [J].
Shadid, Samyah ;
Stehouwer, Coen D. A. ;
Jensen, Michael D. .
JOURNAL OF CLINICAL ENDOCRINOLOGY & METABOLISM, 2006, 91 (09) :3418-3425
[63]   Enhanced expression of PAI-1 in visceral fat: Possible contributor to vascular disease in obesity [J].
Shimomura, I ;
Funahashi, T ;
Takahashi, M ;
Maeda, K ;
Kotani, K ;
Nakamura, T ;
Yamashita, S ;
Miura, M ;
Fukuda, Y ;
Takemura, K ;
Tokunaga, K ;
Matsuzawa, Y .
NATURE MEDICINE, 1996, 2 (07) :800-803
[64]   Metabolic cross-talk between skeletal muscle and adipose tissue in high-intensity interval training vs. moderate-intensity continuous training by regulation of PGC-1α [J].
Shirvani, Hossein ;
Arabzadeh, Ehsan .
EATING AND WEIGHT DISORDERS-STUDIES ON ANOREXIA BULIMIA AND OBESITY, 2020, 25 (01) :17-24
[65]   Exercise training reduces fatty acid availability and improves the insulin sensitivity of glucose metabolism [J].
Shojaee-Moradie, F. ;
Baynes, K. C. R. ;
Pentecost, C. ;
Bell, J. D. ;
Thomas, E. L. ;
Jackson, N. C. ;
Stolinski, M. ;
Whyte, M. ;
Lovell, D. ;
Bowes, S. B. ;
Gibney, J. ;
Jones, R. H. ;
Umpleby, A. M. .
DIABETOLOGIA, 2007, 50 (02) :404-413
[66]   Circadian Regulation of Lipid Mobilization in White Adipose Tissues [J].
Shostak, Anton ;
Meyer-Kovac, Judit ;
Oster, Henrik .
DIABETES, 2013, 62 (07) :2195-2203
[67]  
SJOSTROM L, 1974, ACTA MED SCAND, V195, P201
[68]   Contributions of total body fat, abdominal subcutaneous adipose tissue compartments, and visceral adipose tissue to the metabolic complications of obesity [J].
Smith, SR ;
Lovejoy, JC ;
Greenway, F ;
Ryan, D ;
deJonge, L ;
de la Bretonne, J ;
Volafova, J ;
Bray, GA .
METABOLISM-CLINICAL AND EXPERIMENTAL, 2001, 50 (04) :425-435
[69]   Adipose Tissue Extracellular Matrix and Vascular Abnormalities in Obesity and Insulin Resistance [J].
Spencer, Michael ;
Unal, Resat ;
Zhu, Beibei ;
Rasouli, Neda ;
McGehee, Robert E., Jr. ;
Peterson, Charlotte A. ;
Kern, Philip A. .
JOURNAL OF CLINICAL ENDOCRINOLOGY & METABOLISM, 2011, 96 (12) :E1990-E1998
[70]   Subcutaneous abdominal adipose tissue blood flow: Variation within and between subjects and relationship to obesity [J].
Summers, LKM ;
Samra, JS ;
Humphreys, SM ;
Morris, RJ ;
Frayn, KN .
CLINICAL SCIENCE, 1996, 91 (06) :679-683