Exercise regulates lipid droplet dynamics in normal and fatty liver

被引:41
作者
Pino-de la Fuente, Francisco [1 ]
Quezada, Laura [1 ]
Sepulveda, Carlos [1 ,6 ]
Monsalves-Alvarez, Matias [1 ]
Rodriguez, Juan M. [1 ]
Sacristan, Camila [2 ]
Chiong, Mario [3 ]
Llanos, Miguel [4 ]
Espinosa, Alejandra [2 ]
Troncoso, Rodrigo [1 ,3 ,5 ]
机构
[1] Univ Chile, Lab Invest Nutr & Actividad Fis LABINAF, INTA, Santiago, Chile
[2] Univ Chile, Fac Med, Dept Tecnol Med, Santiago, Chile
[3] Univ Chile, Fac Ciencias Quim & Farmaceut, Adv Ctr Chron Dis ACCDiS, Santiago, Chile
[4] Univ Chile, INTA, Lab Nutr & Regulac Metab, Santiago, Chile
[5] Univ Chile, ARC, Santiago, Chile
[6] Clin MEDS, Lab Ciencias Ejercicio, Santiago, Chile
来源
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR AND CELL BIOLOGY OF LIPIDS | 2019年 / 1864卷 / 12期
关键词
Lipid droplets; Liver; NAFLD; Steatosis; Exercise; PHYSICAL-ACTIVITY; DISEASE NAFLD; AUTOPHAGY; DIET; INFLAMMATION; OBESITY; MUSCLE; MICE;
D O I
10.1016/j.bbalip.2019.158519
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Lipids droplets (LD) are dynamics organelles that accumulate neutral lipids during nutrient surplus. LD alternates between periods of growth and consumption through regulated processes including as de novo lipogenesis, lipolysis and lipophagy. The liver is a central tissue in the regulation of lipid metabolism. Non-Alcoholic Fatty Liver Diseases (NAFLD) is result of the accumulation of LD in liver. Several works have been demonstrated a positive effect of exercise on reduction of liver fat. However, the study of the exercise on liver LD dynamics is far from being understood. Here we investigated the effect of chronic exercise in the regulation of LD dynamics using a mouse model of high fat diet-induced NAFLD. Mice were fed with a high-fat diet or control diet for 12 weeks; then groups were divided into chronic exercise or sedentary for additional 8 weeks. Our results showed that exercise reduced fasting glycaemia, insulin and triacylglycerides, also liver damage. However, exercise did not affect the intrahepatic triacylglycerides levels and the number of LD but reduced their size. In addition, exercise decreased the SREBP-1c levels, without changes in lipolysis, mitochondrial proteins or autophagy/lipophagy markers. Unexpectedly in the control mice, exercise increased the number of LD, also PLIN2, SREBP-1c, FAS, ATGL, HSL and MTTP levels. Our findings show that exercise rescues the liver damage in a model of NAFLD reducing the size of LD and normalizing protein markers of de novo lipogenesis and lipolysis. Moreover, exercise increases proteins associated to LD dynamics in the control mice.
引用
收藏
页数:10
相关论文
共 41 条
[1]   Exercise training improves liver steatosis in mice [J].
Alex, Sheril ;
Boss, Andreas ;
Heerschap, Arend ;
Kersten, Sander .
NUTRITION & METABOLISM, 2015, 12
[2]   Management of nonalcoholic fatty liver disease: An evidence-based clinical practice review [J].
Arab, Juan P. ;
Candia, Roberto ;
Zapata, Rodrigo ;
Munoz, Cristian ;
Arancibia, Juan P. ;
Poniachik, Jaime ;
Soza, Alejandro ;
Fuster, Francisco ;
Brahm, Javier ;
Sanhueza, Edgar ;
Contreras, Jorge ;
Carolina Cuellar, M. ;
Arrese, Marco ;
Riquelme, Arnoldo .
WORLD JOURNAL OF GASTROENTEROLOGY, 2014, 20 (34) :12182-12201
[3]   Recent Insights into the Pathogenesis of Nonalcoholic Fatty Liver Disease [J].
Arab, Juan Pablo ;
Arrese, Marco ;
Trauner, Michael .
ANNUAL REVIEW OF PATHOLOGY: MECHANISMS OF DISEASE, VOL 13, 2018, 13 :321-350
[4]   The effects of detraining and training on adipose tissue lipid droplet in obese mice after chronic high-fat diet [J].
Bae, Ju Yong ;
Woo, Jinhee ;
Roh, Hee Tae ;
Lee, Yul Hyo ;
Ko, Kangeun ;
Kang, Sunghwun ;
Shin, Ki Ok .
LIPIDS IN HEALTH AND DISEASE, 2017, 16
[5]   Regulation of acetyl-CoA carboxylase [J].
Brownsey, RW ;
Boone, AN ;
Elliott, JE ;
Kulpa, JE ;
Lee, WM .
BIOCHEMICAL SOCIETY TRANSACTIONS, 2006, 34 :223-227
[6]   Non-invasive assessment of NAFLD as systemic disease-A machine learning perspective [J].
Canbay, Ali ;
Kaelsch, Julia ;
Neumann, Ursula ;
Rau, Monika ;
Hohenester, Simon ;
Baba, Hideo A. ;
Rust, Christian ;
Geier, Andreas ;
Heider, Dominik ;
Sowa, Jan-Peter .
PLOS ONE, 2019, 14 (03)
[7]  
Cho Jinkyung, 2014, J Exerc Nutrition Biochem, V18, P339, DOI 10.5717/jenb.2014.18.4.339
[8]   Adipose Tissue Remodeling: its Role in energy Metabolism and Metabolic Disorders [J].
Choe, Sung Sik ;
Huh, Jin Young ;
Hwang, In Jae ;
Kim, Jong In ;
Kim, Jae Bum .
FRONTIERS IN ENDOCRINOLOGY, 2016, 7
[9]   Distinct lipid droplet characteristics and distribution unmask the apparent contradiction of the athlete's paradox [J].
Daemen, Sabine ;
Gemmink, Anne ;
Brouwers, Bram ;
Meex, Ruth C. R. ;
Huntjens, Peter R. ;
Schaart, Gert ;
Moonen-Komips, Esther ;
Jorgensen, Johanna ;
Hoeks, Joris ;
Schrauwen, Patrick ;
Hesselink, Matthijs K. C. .
MOLECULAR METABOLISM, 2018, 17 :71-81
[10]   Exercise-induced AMPK activation and IL-6 muscle production are disturbed in adiponectin knockout mice [J].
Diniz, Tiego A. ;
Jonco Aquino Junior, Jefferson Comin ;
Mosele, Francielle Caroline ;
Cabral-Santos, Carolina ;
de Lima Junior, Edson Alves ;
de Souza Teixeira, Alexandre Abilio ;
Lira, Fabio Santos ;
Rosa Neto, Jose Cesar .
CYTOKINE, 2019, 119 :71-80