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Dive into the research topics where Eric Verdin is active.

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Featured researches published by Eric Verdin.


Molecular Cell | 2003

The Human Sir2 Ortholog, SIRT2, Is an NAD + -Dependent Tubulin Deacetylase.

Brian J. North; Brett Marshall; Margie T. Borra; John M. Denu; Eric Verdin

The silent information regulator 2 protein (Sir2p) of Saccharomyces cerevisiae is an NAD-dependent histone deacetylase that plays a critical role in transcriptional silencing. Here, we report that a human ortholog of Sir2p, sirtuin type 2 (SIRT2), is a predominantly cytoplasmic protein that colocalizes with microtubules. SIRT2 deacetylates lysine-40 of alpha-tubulin both in vitro and in vivo. Knockdown of SIRT2 via siRNA results in tubulin hyperacetylation. SIRT2 colocalizes and interacts in vivo with HDAC6, another tubulin deacetylase. Enzymatic analysis of recombinant SIRT2 in comparison to a yeast homolog of Sir2 protein (Hst2p) shows a striking preference of SIRT2 for acetylated tubulin peptide as a substrate relative to acetylated histone H3 peptide. These observations establish SIRT2 as a bona fide tubulin deacetylase.


Nature | 2010

SIRT3 regulates mitochondrial fatty-acid oxidation by reversible enzyme deacetylation

Matthew D. Hirschey; Tadahiro Shimazu; Eric S. Goetzman; Enxuan Jing; Bjoern Schwer; David B. Lombard; Carrie A. Grueter; Charles Harris; Sudha B. Biddinger; Olga Ilkayeva; Robert D. Stevens; Yu Li; Asish K. Saha; Neil B. Ruderman; James R. Bain; Christopher B. Newgard; Robert V. Farese; Frederick W. Alt; C. Ronald Kahn; Eric Verdin

Sirtuins are NAD+-dependent protein deacetylases. They mediate adaptive responses to a variety of stresses, including calorie restriction and metabolic stress. Sirtuin 3 (SIRT3) is localized in the mitochondrial matrix, where it regulates the acetylation levels of metabolic enzymes, including acetyl coenzyme A synthetase 2 (refs 1, 2). Mice lacking both Sirt3 alleles appear phenotypically normal under basal conditions, but show marked hyperacetylation of several mitochondrial proteins. Here we report that SIRT3 expression is upregulated during fasting in liver and brown adipose tissues. During fasting, livers from mice lacking SIRT3 had higher levels of fatty-acid oxidation intermediate products and triglycerides, associated with decreased levels of fatty-acid oxidation, compared to livers from wild-type mice. Mass spectrometry of mitochondrial proteins shows that long-chain acyl coenzyme A dehydrogenase (LCAD) is hyperacetylated at lysine 42 in the absence of SIRT3. LCAD is deacetylated in wild-type mice under fasted conditions and by SIRT3 in vitro and in vivo; and hyperacetylation of LCAD reduces its enzymatic activity. Mice lacking SIRT3 exhibit hallmarks of fatty-acid oxidation disorders during fasting, including reduced ATP levels and intolerance to cold exposure. These findings identify acetylation as a novel regulatory mechanism for mitochondrial fatty-acid oxidation and demonstrate that SIRT3 modulates mitochondrial intermediary metabolism and fatty-acid use during fasting.


Molecular and Cellular Biology | 2007

Mammalian Sir2 Homolog SIRT3 Regulates Global Mitochondrial Lysine Acetylation

David B. Lombard; Frederick W. Alt; Hwei Ling Cheng; Jakob Bunkenborg; Ryan S. Streeper; Raul Mostoslavsky; Jennifer Kim; George D. Yancopoulos; David M. Valenzuela; Andrew J. Murphy; Yinhua Yang; Yaohui Chen; Matthew D. Hirschey; Roderick T. Bronson; Marcia C. Haigis; Leonard Guarente; Robert V. Farese; Sherman M. Weissman; Eric Verdin; Bjoern Schwer

ABSTRACT Homologs of the Saccharomyces cerevisiae Sir2 protein, sirtuins, promote longevity in many organisms. Studies of the sirtuin SIRT3 have so far been limited to cell culture systems. Here, we investigate the localization and function of SIRT3 in vivo. We show that endogenous mouse SIRT3 is a soluble mitochondrial protein. To address the function and relevance of SIRT3 in the regulation of energy metabolism, we generated and phenotypically characterized SIRT3 knockout mice. SIRT3-deficient animals exhibit striking mitochondrial protein hyperacetylation, suggesting that SIRT3 is a major mitochondrial deacetylase. In contrast, no mitochondrial hyperacetylation was detectable in mice lacking the two other mitochondrial sirtuins, SIRT4 and SIRT5. Surprisingly, despite this biochemical phenotype, SIRT3-deficient mice are metabolically unremarkable under basal conditions and show normal adaptive thermogenesis, a process previously suggested to involve SIRT3. Overall, our results extend the recent finding of lysine acetylation of mitochondrial proteins and demonstrate that SIRT3 has evolved to control reversible lysine acetylation in this organelle.


Cell Metabolism | 2010

Calorie Restriction Reduces Oxidative Stress by SIRT3-Mediated SOD2 Activation

Xiaolei Qiu; Katharine Brown; Matthew D. Hirschey; Eric Verdin; Danica Chen

A major cause of aging and numerous diseases is thought to be cumulative oxidative stress, resulting from the production of reactive oxygen species (ROS) during respiration. Calorie restriction (CR), the most robust intervention to extend life span and ameliorate various diseases in mammals, reduces oxidative stress and damage. However, the underlying mechanism is unknown. Here, we show that the protective effects of CR on oxidative stress and damage are diminished in mice lacking SIRT3, a mitochondrial deacetylase. SIRT3 reduces cellular ROS levels dependent on superoxide dismutase 2 (SOD2), a major mitochondrial antioxidant enzyme. SIRT3 deacetylates two critical lysine residues on SOD2 and promotes its antioxidative activity. Importantly, the ability of SOD2 to reduce cellular ROS and promote oxidative stress resistance is greatly enhanced by SIRT3. Our studies identify a defense program that CR provokes to reduce oxidative stress and suggest approaches to combat aging and oxidative stress-related diseases.


Molecular Cell | 2002

Enzymatic activity associated with class II HDACs is dependent on a multiprotein complex containing HDAC3 and SMRT/N-CoR.

Wolfgang Fischle; Franck Dequiedt; Michael J. Hendzel; Matthew G. Guenther; Mitchell A. Lazar; Wolfgang Voelter; Eric Verdin

Histone deacetylases (HDACs) play a key role in regulating eukaryotic gene expression. The HDAC domain, homologous to the yeast repressors RPD3 and HDA1, is considered necessary and sufficient for enzymatic activity. Here, we show that the catalytic domain of HDAC4 interacts with HDAC3 via the transcriptional corepressor N-CoR/SMRT. All experimental conditions leading to the suppression of HDAC4 binding to SMRT/N-CoR and to HDAC3 result in the loss of enzymatic activity associated with HDAC4. In vitro reconstitution experiments indicate that HDAC4 and other class II HDACs are inactive in the context of the SMRT/N-CoR-HDAC3 complex and do not contribute to its enzymatic activity. These observations indicate that class II HDACs regulate transcription by bridging the enzymatically active SMRT/N-CoR-HDAC3 complex and select transcription factors independently of any intrinsic HDAC activity.


Trends in Genetics | 2003

Class II histone deacetylases: versatile regulators

Eric Verdin; Franck Dequiedt; Herbert G. Kasler

Histone acetylation and deacetylation play essential roles in modifying chromatin structure and regulating gene expression in eukaryotes. Histone deacetylases (HDACs) catalyze the deacetylation of lysine residues in the histone N-terminal tails and are found in large multiprotein complexes with transcriptional co-repressors. Human HDACs are grouped into three classes based on their similarity to known yeast factors: class I HDACs are similar to the yeast transcriptional repressor yRPD3, class II HDACs to yHDA1 and class III HDACs to ySIR2. In this review, we focus on the biology of class II HDACs. These newly discovered enzymes have been implicated as global regulators of gene expression during cell differentiation and development. We discuss their emerging biological functions and the molecular mechanisms by which they are regulated.


Proceedings of the National Academy of Sciences of the United States of America | 2006

Reversible lysine acetylation controls the activity of the mitochondrial enzyme acetyl-CoA synthetase 2.

Bjoern Schwer; Jakob Bunkenborg; Regis O. Verdin; Jens S. Andersen; Eric Verdin

We report that human acetyl-CoA synthetase 2 (AceCS2) is a mitochondrial matrix protein. AceCS2 is reversibly acetylated at Lys-642 in the active site of the enzyme. The mitochondrial sirtuin SIRT3 interacts with AceCS2 and deacetylates Lys-642 both in vitro and in vivo. Deacetylation of AceCS2 by SIRT3 activates the acetyl-CoA synthetase activity of AceCS2. This report identifies the first acetylated substrate protein of SIRT3. Our findings show that a mammalian sirtuin directly controls the activity of a metabolic enzyme by means of reversible lysine acetylation. Because the activity of a bacterial ortholog of AceCS2, called ACS, is controlled via deacetylation by a bacterial sirtuin protein, our observation highlights the conservation of a metabolic regulatory pathway from bacteria to humans.


The EMBO Journal | 2003

HIV reproducibly establishes a latent infection after acute infection of T cells in vitro

Albert Jordan; Dwayne Bisgrove; Eric Verdin

The presence of latent reservoirs has prevented the eradication of human immunodeficiency virus (HIV) from infected patients successfully treated with anti‐retroviral therapy. The mechanism of postintegration latency is poorly understood, partly because of the lack of an in vitro model. We have used an HIV retroviral vector or a full‐length HIV genome expressing green fluorescent protein to infect a T lymphocyte cell line in vitro and highly enrich for latently infected cells. HIV latency occurred reproducibly, albeit with low frequency, during an acute infection. Clonal cell lines derived from latent populations showed no detectable basal expression, but could be transcriptionally activated after treatment with phorbol esters or tumor necrosis factor α. Direct sequencing of integration sites demonstrated that latent clones frequently contain HIV integrated in or close to alphoid repeat elements in heterochromatin. This is in contrast to a productive infection where integration in or near heterochromatin is disfavored. These observations demonstrate that HIV can reproducibly establish a latent infection as a consequence of integration in or near heterochromatin.


Nature Reviews Molecular Cell Biology | 2014

The growing landscape of lysine acetylation links metabolism and cell signalling.

Chunaram Choudhary; Brian T. Weinert; Yuya Nishida; Eric Verdin; Matthias Mann

Lysine acetylation is a conserved protein post-translational modification that links acetyl-coenzyme A metabolism and cellular signalling. Recent advances in the identification and quantification of lysine acetylation by mass spectrometry have increased our understanding of lysine acetylation, implicating it in many biological processes through the regulation of protein interactions, activity and localization. In addition, proteins are frequently modified by other types of acylations, such as formylation, butyrylation, propionylation, succinylation, malonylation, myristoylation, glutarylation and crotonylation. The intricate link between lysine acylation and cellular metabolism has been clarified by the occurrence of several such metabolite-sensitive acylations and their selective removal by sirtuin deacylases. These emerging findings point to new functions for different lysine acylations and deacylating enzymes and also highlight the mechanisms by which acetylation regulates various cellular processes.


The EMBO Journal | 1996

Transcriptional activation and chromatin remodeling of the HIV-1 promoter in response to histone acetylation.

C Van Lint; Stéphane Emiliani; M Ott; Eric Verdin

After integration in the host cell genome, the HIV‐1 provirus is packaged into chromatin. A specific chromatin disruption occurs in the HIV‐1 promoter during transcriptional activation in response to TNF‐alpha, suggesting that chromatin plays a repressive role in HIV‐1 transcription and that chromatin modification(s) might result in transcriptional activation. We have treated several cell lines latently infected with HIV‐1 with two new specific inhibitors of histone deacetylase, trapoxin (TPX) and trichostatin A (TSA), to cause a global hyperacetylation of cellular histones. Treatment with both drugs results in the transcriptional activation of the HIV‐1 promoter and in a marked increase in virus production. Dose‐response curves and kinetic analysis show a close correlation between the level of histone acetylation and HIV‐1 gene expression. In contrast, both TPX and TSA have little or no effect on HIV‐1 promoter activity following transient transfection of an HIV‐1 promoter‐reporter plasmid. Activation of HIV‐1 transcription by TSA and TPX treatment occurs in the absence of NF‐kappa B induction. Chromatin analysis of the HIV‐1 genome shows that a single nucleosome (nuc‐1) located at the transcription start and known to be disrupted following TNF‐alpha treatment, is also disrupted following TPX or TSA treatment. This disruption is independent of transcription as it is resistant to alpha‐amanitin. These observations further support the crucial role played by nuc‐1 in the suppression of HIV‐1 transcription during latency and demonstrate that transcriptional activation of HIV‐1 can proceed through a chromatin modification.

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Carine Van Lint

Université libre de Bruxelles

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Melanie Ott

University of California

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Brian J. North

University of California

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Bjoern Schwer

University of California

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Bradford W. Gibson

Buck Institute for Research on Aging

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Hyung W. Lim

University of California

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