Person: Spiegelman, Bruce
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Publication A Chemical Screen Probing the Relationship between Mitochondrial Content and Cell Size
(Public Library of Science, 2012) Kitami, Toshimori; Logan, David J.; Negri, Joseph; Hasaka, Thomas; Tolliday, Nicola J.; Carpenter, Anne E.; Spiegelman, Bruce; Mootha, VamsiThe cellular content of mitochondria changes dynamically during development and in response to external stimuli, but the underlying mechanisms remain obscure. To systematically identify molecular probes and pathways that control mitochondrial abundance, we developed a high-throughput imaging assay that tracks both the per cell mitochondrial content and the cell size in confluent human umbilical vein endothelial cells. We screened 28,786 small molecules and observed that hundreds of small molecules are capable of increasing or decreasing the cellular content of mitochondria in a manner proportionate to cell size, revealing stereotyped control of these parameters. However, only a handful of compounds dissociate this relationship. We focus on one such compound, BRD6897, and demonstrate through secondary assays that it increases the cellular content of mitochondria as evidenced by fluorescence microscopy, mitochondrial protein content, and respiration, even after rigorous correction for cell size, cell volume, or total protein content. BRD6897 increases uncoupled respiration 1.6-fold in two different, non-dividing cell types. Based on electron microscopy, BRD6897 does not alter the percent of cytoplasmic area occupied by mitochondria, but instead, induces a striking increase in the electron density of existing mitochondria. The mechanism is independent of known transcriptional programs and is likely to be related to a blockade in the turnover of mitochondrial proteins. At present the molecular target of BRD6897 remains to be elucidated, but if identified, could reveal an important additional mechanism that governs mitochondrial biogenesis and turnover.
Publication A PGC1-(\alpha)-dependent Myokine that Drives Brown-fat-like Development of White Fat and Thermogenesis
(Nature Publishing Group, 2012) Boström, Pontus; Wu, Jun; Jedrychowski, Mark; Korde, Anisha; Ye, Li; Lo, James C; Rasbach, Kyle A.; Boström, Elisabeth Almer; Choi, Jang Hyun; Long, Jonathan Zhong; Kajimura, Shingo; Zingaretti, Maria Cristina; Vind, Birgitte F.; Tu, Hua; Cinti, Saverio; Højlund, Kurt; Gygi, Steven; Spiegelman, BruceExercise benefits a variety of organ systems in mammals, and some of the best-recognized effects of exercise on muscle are mediated by the transcriptional co-activator PPAR-γ co-activator-1 α (PGC1-α). Here we show in mouse that PGC1-α expression in muscle stimulates an increase in expression of FNDC5, a membrane protein that is cleaved and secreted as a newly identified hormone, irisin. Irisin acts on white adipose cells in culture and in vivo to stimulate UCP1 expression and a broad program of brown-fat-like development. Irisin is induced with exercise in mice and humans, and mildly increased irisin levels in the blood cause an increase in energy expenditure in mice with no changes in movement or food intake. This results in improvements in obesity and glucose homeostasis. Irisin could be therapeutic for human metabolic disease and other disorders that are improved with exercise.
Publication Irisin and the therapeutic benefits of exercise
(BioMed Central, 2012) Spiegelman, Bruce; Korsmeyer, Stanley JPublication An Erk/Cdk5 axis controls the diabetogenic actions of PPARγ
(2014) Banks, Alexander; McAllister, Fiona E.; Camporez, João Paulo G.; Zushin, Peter-James H.; Jurczak, Michael J.; Laznik-Bogoslavski, Dina; Shulman, Gerald I.; Gygi, Steven; Spiegelman, BruceObesity-linked insulin resistance is a major precursor to the development of type 2 diabetes. Previous work has shown that phosphorylation of PPARγ at serine 273 by Cdk5 stimulates diabetogenic gene expression in adipose tissues1. Inhibition of this modification is a key therapeutic mechanism for anti-diabetic PPARγ ligand drugs, such as the thiazolidinediones and PPARγ partial/non-agonists2. To better understand the importance of this obesity-linked PPARγ phosphorylation, we created mice that ablated Cdk5 specifically in adipose tissues. Surprisingly, these mice have both a paradoxical increase in PPARγ phosphorylation at S273 and worsened insulin resistance. Unbiased proteomic studies show that ERK kinases are activated in these KO animals. We show here that ERK directly phosphorylates S273 of PPARγ in a robust manner and that Cdk5 suppresses ERKs through direct action on a novel site in MEK, the ERK kinase. Importantly, pharmacological MEK and ERK inhibition markedly improves insulin resistance in both obese wild type and ob/ob mice, and also completely reverses the deleterious effects of the Cdk5 ablation. These data show that an ERK/Cdk5 axis controls PPARγ function and suggest that MEK/ERK inhibitors may hold promise for the treatment of type 2 diabetes.
Publication Se-Jin Lee, myostatin discoverer, elected to the National Academy of Science
(BioMed Central, 2012) Glass, David; Spiegelman, BruceSe-Jin Lee was elected member to the National Academy of Sciences on 28 April 2012. Dr Lee is responsible for the discovery of myostatin, a critical regulator of skeletal muscle mass and function. He also determined the primary binding receptor for myostatin, and has characterized additional transforming growth factor–β family members acting in this pathway.
Publication β-Aminoisobutyric Acid Induces Browning of White Fat and Hepatic β-Oxidation and Is Inversely Correlated with Cardiometabolic Risk Factors
(Elsevier BV, 2014) Roberts, Lee D.; Boström, Pontus; O’Sullivan, John F.; Schinzel, Robert T.; Lewis, Gregory; Dejam, Andre; Lee, Youn-Kyoung; Palma, Melinda J.; Calhoun, Sondra; Georgiadi, Anastasia; Chen, Ming-Huei; Ramachandran, Vasan S.; Larson, Martin G.; Bouchard, Claude; Rankinen, Tuomo; Souza, Amanda L.; Clish, Clary B.; Wang, Thomas J.; Estall, Jennifer L.; Soukas, Alexander; Cowan, Chad; Spiegelman, Bruce; Gerszten, RobertThe transcriptional coactivator peroxisome proliferator-activated receptor-gamma coactivator-1α (PGC-1α) regulates metabolic genes in skeletal muscle and contributes to the response of muscle to exercise. Muscle PGC-1α transgenic expression and exercise both increase the expression of thermogenic genes within white adipose. How the PGC-1α-mediated response to exercise in muscle conveys signals to other tissues remains incompletely defined. We employed a metabolomic approach to examine metabolites secreted from myocytes with forced expression of PGC-1α, and identified β-aminoisobutyric acid (BAIBA) as a small molecule myokine. BAIBA increases the expression of brown adipocyte-specific genes in white adipocytes and β-oxidation in hepatocytes both in vitro and in vivo through a PPARα-mediated mechanism, induces a brown adipose-like phenotype in human pluripotent stem cells, and improves glucose homeostasis in mice. In humans, plasma BAIBA concentrations are increased with exercise and inversely associated with metabolic risk factors. BAIBA may thus contribute to exercise-induced protection from metabolic diseases.
Publication Sensitivity of Lipid Metabolism and Insulin Signaling to Genetic Alterations in Hepatic Peroxisome Proliferator–Activated Receptor-(\gamma) Coactivator-1(\alpha) Expression
(American Diabetes Association, 2009) Estall, Jennifer Lynn; Kahn, Mario; Cooper, Marcus P.; Fisher, FFolliott; Wu, Michele K.; Laznik, Dina; Qu, Lishu; Cohen, David E.; Shulman, Gerald I.; Spiegelman, BruceObjective: The peroxisome proliferator–activated receptor-(\gamma) coactivator (PGC)-1 family of transcriptional coactivators controls hepatic function by modulating the expression of key metabolic enzymes. Hepatic gain of function and complete genetic ablation of PGC-1(\alpha) show that this coactivator is important for activating the programs of gluconeogenesis, fatty acid oxidation, oxidative phosphorylation, and lipid secretion during times of nutrient deprivation. However, how moderate changes in PGC-1(\alpha) activity affect metabolism and energy homeostasis has yet to be determined. Research Design and Methods: To identify key metabolic pathways that may be physiologically relevant in the context of reduced hepatic PGC-1(\alpha) levels, we used the Cre/Lox system to create mice heterozygous for PGC-1(\alpha) specifically within the liver (LH mice). Results: These mice showed fasting hepatic steatosis and diminished ketogenesis associated with decreased expression of genes involved in mitochondrial (\beta)-oxidation. LH mice also exhibited high circulating levels of triglyceride that correlated with increased expression of genes involved in triglyceride-rich lipoprotein assembly. Concomitant with defects in lipid metabolism, hepatic insulin resistance was observed both in LH mice fed a high-fat diet as well as in primary hepatocytes. Results: These data highlight both the dose-dependent and long-term effects of reducing hepatic PGC-1(\alpha) levels, underlining the importance of tightly regulated PGC-1(\alpha) expression in the maintenance of lipid homeostasis and glucose metabolism.
Publication Cell biology of fat storage
(The American Society for Cell Biology, 2016) Cohen, Paul; Spiegelman, BruceThe worldwide epidemic of obesity and type 2 diabetes has greatly increased interest in the biology and physiology of adipose tissues. Adipose (fat) cells are specialized for the storage of energy in the form of triglycerides, but research in the last few decades has shown that fat cells also play a critical role in sensing and responding to changes in systemic energy balance. White fat cells secrete important hormone-like molecules such as leptin, adiponectin, and adipsin to influence processes such as food intake, insulin sensitivity, and insulin secretion. Brown fat, on the other hand, dissipates chemical energy in the form of heat, thereby defending against hypothermia, obesity, and diabetes. It is now appreciated that there are two distinct types of thermogenic fat cells, termed brown and beige adipocytes. In addition to these distinct properties of fat cells, adipocytes exist within adipose tissue, where they are in dynamic communication with immune cells and closely influenced by innervation and blood supply. This review is intended to serve as an introduction to adipose cell biology and to familiarize the reader with how these cell types play a role in metabolic disease and, perhaps, as targets for therapeutic development.
Publication Irisin ERKs the Fat
(American Diabetes Association, 2014) Wu, Jun; Spiegelman, BrucePublication Mitochondrial ROS regulate thermogenic energy expenditure and sulfenylation of UCP1
(2017) Chouchani, Edward; Kazak, Lawrence; Jedrychowski, Mark; Lu, Gina Z.; Erickson, Brian; Szpyt, John; Pierce, Kerry A.; Laznik-Bogoslavski, Dina; Vetrivelan, Ramalingam; Clish, Clary B.; Robinson, Alan J.; Gygi, Steve P.; Spiegelman, BruceBrown adipose tissue (BAT) can dissipate chemical energy as heat through thermogenic respiration, which requires uncoupling protein 1 (UCP1)1,2. Thermogenesis from BAT and beige adipose can combat obesity and diabetes3, encouraging investigation of factors that control UCP1-dependent respiration in vivo. Herein we show that acutely activated BAT thermogenesis is defined by a substantial increase in mitochondrial reactive oxygen species (ROS) levels. Remarkably, this process supports in vivo BAT thermogenesis, as pharmacological depletion of mitochondrial ROS results in hypothermia upon cold exposure, and inhibits UCP1-dependent increases in whole body energy expenditure. We further establish that thermogenic ROS alter BAT cysteine thiol redox status to drive increased respiration, and Cys253 of UCP1 is a key target. UCP1 Cys253 is sulfenylated during thermogenesis, while mutation of this site desensitizes the purine nucleotide inhibited state of the carrier to adrenergic activation and uncoupling. These studies identify BAT mitochondrial ROS induction as a mechanism that drives UCP1-dependent thermogenesis and whole body energy expenditure, which opens the way to develop improved therapeutic strategies for combating metabolic disorders.