Chronic enrichment of hepatic endoplasmic reticulum-mitochondria contact leads to mitochondrial dysfunction in obesity

被引:625
作者
Arruda, Ana Paula [1 ,2 ,3 ]
Pers, Benedicte M. [1 ,2 ,3 ]
Parlakguel, Guenes [1 ,2 ,3 ]
Gueney, Ekin [1 ,2 ,3 ]
Inouye, Karen [1 ,2 ,3 ]
Hotamisligil, Goekhan S. [1 ,2 ,3 ]
机构
[1] Harvard Univ, Sch Publ Hlth, Dept Genet & Complex Dis, Boston, MA 02115 USA
[2] Harvard Univ, Sch Publ Hlth, Sabri Ulker Ctr, Boston, MA 02115 USA
[3] Broad Inst Harvard & MIT, Boston, MA USA
基金
美国国家卫生研究院;
关键词
INSULIN-RESISTANCE; MITOFUSIN; 2; ER STRESS; OXIDATIVE STRESS; SKELETAL-MUSCLE; ADIPOSE-TISSUE; CA2+ TRANSFER; CALCIUM; LIVER; DISEASE;
D O I
10.1038/nm.3735
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Proper function of the endoplasmic reticulum (ER) and mitochondria is crucial for cellular homeostasis, and dysfunction at either site has been linked to pathophysiological states, including metabolic diseases. Although the ER and mitochondria play distinct cellular roles, these organelles also form physical interactions with each other at sites defined as mitochondria-associated ER membranes (MAMs), which are essential for calcium, lipid and metabolite exchange. Here we show that in the liver, obesity leads to a marked reorganization of MAMs resulting in mitochondrial calcium overload, compromised mitochondrial oxidative capacity and augmented oxidative stress. Experimental induction of ER-mitochondria interactions results in oxidative stress and impaired metabolic homeostasis, whereas downregulation of PACS-2 or IP3R1, proteins important for ER-mitochondria tethering or calcium transport, respectively, improves mitochondrial oxidative capacity and glucose metabolism in obese animals. These findings establish excessive ER-mitochondrial coupling as an essential component of organelle dysfunction in obesity that may contribute to the development of metabolic pathologies such as insulin resistance and diabetes.
引用
收藏
页码:1427 / 1435
页数:9
相关论文
共 53 条
[1]
Upregulated function of mitochondria-associated ER membranes in Alzheimer disease [J].
Area-Gomez, Estela ;
Castillo, Maria Del Carmen Lara ;
Tambini, Marc D. ;
Guardia-Laguarta, Cristina ;
de Groof, Ad J. C. ;
Madra, Moneek ;
Ikenouchi, Junichi ;
Umeda, Masato ;
Bird, Thomas D. ;
Sturley, Stephen L. ;
Schon, Eric A. .
EMBO JOURNAL, 2012, 31 (21) :4106-4123
[2]
Integrative genomics identifies MCU as an essential component of the mitochondrial calcium uniporter [J].
Baughman, Joshua M. ;
Perocchi, Fabiana ;
Girgis, Hany S. ;
Plovanich, Molly ;
Belcher-Timme, Casey A. ;
Sancak, Yasemin ;
Bao, X. Robert ;
Strittmatter, Laura ;
Goldberger, Olga ;
Bogorad, Roman L. ;
Koteliansky, Victor ;
Mootha, Vamsi K. .
NATURE, 2011, 476 (7360) :341-U111
[3]
Mitochondrial Adaptations and Dysfunctions in Nonalcoholic Fatty Liver Disease [J].
Begriche, Karima ;
Massart, Julie ;
Robin, Marie-Anne ;
Bonnet, Fabrice ;
Fromenty, Bernard .
HEPATOLOGY, 2013, 58 (04) :1497-1507
[4]
Increase in endoplasmic reticulum stress-related proteins and genes in adipose tissue of obese, insulin-resistant individuals [J].
Boden, Guenther ;
Duan, Xanbao ;
Homko, Carol ;
Molina, Ezequiel J. ;
Song, WeiWei ;
Perez, Oscar ;
Cheung, Peter ;
Merali, Salim .
DIABETES, 2008, 57 (09) :2438-2444
[5]
An anti-diabetes agent protects the mouse brain from defective insulin signaling caused by Alzheimer's disease-associated Aβ oligomers [J].
Bomfim, Theresa R. ;
Forny-Germano, Leticia ;
Sathler, Luciana B. ;
Brito-Moreira, Jordano ;
Houzel, Jean-Christophe ;
Decker, Helena ;
Silverman, Michael A. ;
Kazi, Hala ;
Melo, Helen M. ;
McClean, Paula L. ;
Holscher, Christian ;
Arnold, Steven E. ;
Talbot, Konrad ;
Klein, William L. ;
Munoz, Douglas P. ;
Ferreira, Sergio T. ;
De Felice, Fernanda G. .
JOURNAL OF CLINICAL INVESTIGATION, 2012, 122 (04) :1339-1353
[6]
Mitochondrial dysfunction results from oxidative stress in the skeletal muscle of diet-induced insulin-resistant mice [J].
Bonnard, Charlotte ;
Durand, Annie ;
Peyrol, Simone ;
Chanseaume, Emilie ;
Chauvin, Marie-Agnes ;
Morio, Beatrice ;
Vidal, Hubert ;
Rieusset, Jennifer .
JOURNAL OF CLINICAL INVESTIGATION, 2008, 118 (02) :789-800
[7]
Increased ER-mitochondrial coupling promotes mitochondrial respiration and bioenergetics during early phases of ER stress [J].
Bravo, Roberto ;
Miguel Vicencio, Jose ;
Parra, Valentina ;
Troncoso, Rodrigo ;
Pablo Munoz, Juan ;
Bui, Michael ;
Quiroga, Clara ;
Rodriguez, Andrea E. ;
Verdejo, Hugo E. ;
Ferreira, Jorge ;
Iglewski, Myriam ;
Chiong, Mario ;
Simmen, Thomas ;
Zorzano, Antonio ;
Hill, Joseph A. ;
Rothermel, Beverly A. ;
Szabadkai, Gyorgy ;
Lavandero, Sergio .
JOURNAL OF CELL SCIENCE, 2011, 124 (13) :2143-2152
[8]
Insulin resistance in non-diabetic patients with non-alcoholic fatty liver disease: sites and mechanisms [J].
Bugianesi, E ;
Gastaldelli, A ;
Vanni, E ;
Gambino, R ;
Cassader, M ;
Baldi, S ;
Ponti, V ;
Pagano, G ;
Ferrannini, E ;
Rizzetto, M .
DIABETOLOGIA, 2005, 48 (04) :634-642
[9]
Essential Regulation of Cell Bioenergetics by Constitutive InsP3 Receptor Ca2+ Transfer to Mitochondria [J].
Cardenas, Cesar ;
Miller, Russell A. ;
Smith, Ian ;
Bui, Thi ;
Molgo, Jordi ;
Mueller, Marioly ;
Vais, Horia ;
Cheung, King-Ho ;
Yang, Jun ;
Parker, Ian ;
Thompson, Craig B. ;
Birnbaum, Morris J. ;
Hallows, Kenneth R. ;
Foskett, J. Kevin .
CELL, 2010, 142 (02) :270-283
[10]
Foxo1 integrates insulin signaling with mitochondrial function in the liver [J].
Cheng, Zhiyong ;
Guo, Shaodong ;
Copps, Kyle ;
Dong, Xiaochen ;
Kollipara, Ramya ;
Rodgers, Joseph T. ;
Depinho, Ronald A. ;
Puigserver, Pere ;
White, Morris F. .
NATURE MEDICINE, 2009, 15 (11) :1307-U105