Increasing energy expenditure through exercise and low ambient temperature offers oxidative protection to the hypothalamus after high-fat feeding to mice

被引:9
作者
Jaroslawska, Julia [1 ]
Gospodarska, Emilia [1 ]
Korytko, Agnieszka [2 ]
机构
[1] Polish Acad Sci, Inst Anim Reprod & Food Res, Dept Biol Funct Food, Tuwima 10 Str, PL-10748 Olsztyn, Poland
[2] Univ Warmia & Mazury, Coll Med, Dept Physiol & Pathophysiol, Olsztyn, Poland
关键词
cold-exposure; diet-induced obesity; exercise training; high-fat diet; hypothalamus; mitochondria; oxidative stress; NEURODEGENERATIVE DISEASES; MITOCHONDRIAL DYSFUNCTION; CALORIC RESTRICTION; SKELETAL-MUSCLE; TNF-ALPHA; STRESS; DIET; INFLAMMATION; BRAIN; CELLS;
D O I
10.1111/jne.13095
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The effects of weight loss produced by increased energy expenditure on measures of oxidative stress and mitochondrial damage have not been investigated in the hypothalamus of diet-induced obese mice. The present study aimed to characterize the effects of either a low housing temperature of 17 degrees C or daily exercise on a treadmill on high-fat diet (HFD)-induced abnormalities in the hypothalamic tissue of mice. Exercise and low ambient temperature protocols were designed to produce energy deficit through increased energy expenditure. Forty mice aged 8 weeks were assigned to one of four conditions: chow diet (n = 10), HFD (n = 10), HFD and 5 weeks of either exercise training (ET; n = 10) or an ambient temperature of 17 degrees C (n = 10). Mice were killed at the age of 31 weeks. In comparison with HFD treatment alone, both interventions reduced body adiposity (14.6% and 27.6% reduction for the ET and 17 degrees C groups, respectively). Moreover, exposing obese mice to ET and 17 degrees C restored mitochondrial DNA content (41.3% and 32.6% increase for the ET and 17 degrees C groups, respectively), decreased level of lipid peroxidation as assessed by the detection of 4-hydroxy-nonenal protein adducts (12.8% and 29.4% reduction for the ET and 17 degrees C groups, respectively) and normalized the expression levels of proinflammatory cytokines (Tnf alpha: 73.9% and 62%; Il1 beta: 54.5% and 39.6%; Il6: 33.1% and 35.6% reduction for the ET and 17 degrees C groups, respectively), as well as several proteins associated with mitochondrial respiratory chain (OxPhos Complex I: 75.7% and 53.9%; Complex III: 33% and 36%; Complex V: 42% and 36.9% reduction for the ET and 17 degrees C groups, respectively) in hypothalamic cells. Negative energy balance induced through either lower ambient temperature or exercise resulted in substantial and similar improvements in markers of inflammation and mitochondrial damage in the hypothalamus of mice with diet-induced obesity, potentially by reducing oxidative stress.
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页数:15
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共 69 条
[1]   LIPID-PEROXIDATION AND SCAVENGER ENZYMES DURING EXERCISE - ADAPTIVE RESPONSE TO TRAINING [J].
ALESSIO, HM ;
GOLDFARB, AH .
JOURNAL OF APPLIED PHYSIOLOGY, 1988, 64 (04) :1333-1336
[2]   Aging and oxidative stress in progressive supranuclear palsy [J].
Aoyama, K ;
Matsubara, K ;
Kobayashi, S .
EUROPEAN JOURNAL OF NEUROLOGY, 2006, 13 (01) :89-92
[3]   Chronic enrichment of hepatic endoplasmic reticulum-mitochondria contact leads to mitochondrial dysfunction in obesity [J].
Arruda, Ana Paula ;
Pers, Benedicte M. ;
Parlakguel, Guenes ;
Gueney, Ekin ;
Inouye, Karen ;
Hotamisligil, Goekhan S. .
NATURE MEDICINE, 2014, 20 (12) :1427-1435
[4]   Lipid Peroxidation: Production, Metabolism, and Signaling Mechanisms of Malondialdehyde and 4-Hydroxy-2-Nonenal [J].
Ayala, Antonio ;
Munoz, Mario F. ;
Argueelles, Sandro .
OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2014, 2014
[5]   Neurodegenerative diseases and oxidative stress [J].
Barnham, KJ ;
Masters, CL ;
Bush, AI .
NATURE REVIEWS DRUG DISCOVERY, 2004, 3 (03) :205-214
[6]   Exercise alters the mitochondrial proteostasis and induces the mitonuclear imbalance and UPRmt in the hypothalamus of mice [J].
Braga, Renata R. ;
Crisol, Barbara M. ;
Bricola, Rafael S. ;
Sant'ana, Marcella R. ;
Nakandakari, Susana C. B. R. ;
Costa, Suleyma O. ;
Prada, Patricia O. ;
da Silva, Adelino S. R. ;
Moura, Leandro P. ;
Pauli, Jose R. ;
Cintra, Dennys E. ;
Ropelle, Eduardo R. .
SCIENTIFIC REPORTS, 2021, 11 (01)
[7]   The Effect of Cold Showering on Health and Work: A Randomized Controlled Trial [J].
Buijze, Geert A. ;
Sierevelt, Inger N. ;
van der Heijden, Bas C. J. M. ;
Dijkgraaf, Marcel G. ;
Frings-Dresen, Monique H. W. .
PLOS ONE, 2016, 11 (09)
[8]   Mitochondrial reactive oxygen species promote production of proinflammatory cytokines and are elevated in TNFR1-associated periodic syndrome (TRAPS) [J].
Bulua, Ariel C. ;
Simon, Anna ;
Maddipati, Ravikanth ;
Pelletier, Martin ;
Park, Heiyoung ;
Kim, Kye-Young ;
Sack, Michael N. ;
Kastner, Daniel L. ;
Siegel, Richard M. .
JOURNAL OF EXPERIMENTAL MEDICINE, 2011, 208 (03) :519-533
[9]   Maternal overnutrition by hypercaloric diets programs hypothalamic mitochondrial fusion and metabolic dysfunction in rat male offspring [J].
Cardenas-Perez, Robbi E. ;
Fuentes-Mera, Lizeth ;
Laura de la Garza, Ana ;
Torre-Villalvazo, Ivan ;
Reyes-Castro, Luis A. ;
Rodriguez-Rocha, Humberto ;
Garcia-Garcia, Aracely ;
Carlos Corona-Castillo, Juan ;
Tovar, Armando R. ;
Zambrano, Elena ;
Ortiz-Lopez, Rocio ;
Saville, Jennifer ;
Fuller, Maria ;
Camacho, Alberto .
NUTRITION & METABOLISM, 2018, 15
[10]   Proteolysis of AKAP121 regulates mitochondrial activity during cellular hypoxia and brain ischaemia [J].
Carlucci, Annalisa ;
Adornetto, Annagrazia ;
Scorziello, Antonella ;
Viggiano, Davide ;
Foca, Mariapaola ;
Cuomo, Ornella ;
Annunziato, Lucio ;
Gottesman, Max ;
Feliciello, Antonio .
EMBO JOURNAL, 2008, 27 (07) :1073-1084