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Dive into the research topics where Maxime W.C. Rousseaux is active.

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Featured researches published by Maxime W.C. Rousseaux.


Human Molecular Genetics | 2010

Loss of the Parkinson’s Disease-linked gene DJ-1 perturbs mitochondrial dynamics

Isabella Irrcher; Hossein Aleyasin; E.L. Seifert; Sarah J. Hewitt; S. Chhabra; Maryam Phillips; Anne Kathrin Lutz; Maxime W.C. Rousseaux; L. Bevilacqua; A. Jahani-Asl; Steve Callaghan; J.G. MacLaurin; Konstanze F. Winklhofer; Patrizia Rizzu; P. Rippstein; Raymond H. Kim; Carol X. Q. Chen; Edward A. Fon; Ruth S. Slack; M.E. Harper; H.M. McBride; Tak W. Mak; David S. Park

Growing evidence highlights a role for mitochondrial dysfunction and oxidative stress as underlying contributors to Parkinsons disease (PD) pathogenesis. DJ-1 (PARK7) is a recently identified recessive familial PD gene. Its loss leads to increased susceptibility of neurons to oxidative stress and death. However, its mechanism of action is not fully understood. Presently, we report that DJ-1 deficiency in cell lines, cultured neurons, mouse brain and lymphoblast cells derived from DJ-1 patients display aberrant mitochondrial morphology. We also show that these DJ-1-dependent mitochondrial defects contribute to oxidative stress-induced sensitivity to cell death since reversal of this fragmented mitochondrial phenotype abrogates neuronal cell death. Reactive oxygen species (ROS) appear to play a critical role in the observed defects, as ROS scavengers rescue the phenotype and mitochondria isolated from DJ-1 deficient animals produce more ROS compared with control. Importantly, the aberrant mitochondrial phenotype can be rescued by the expression of Pink1 and Parkin, two PD-linked genes involved in regulating mitochondrial dynamics and quality control. Finally, we show that DJ-1 deficiency leads to altered autophagy in murine and human cells. Our findings define a mechanism by which the DJ-1-dependent mitochondrial defects contribute to the increased sensitivity to oxidative stress-induced cell death that has been previously reported.


Neuron | 2007

Role of Cdk5-Mediated Phosphorylation of Prx2 in MPTP Toxicity and Parkinson's Disease

Dianbo Qu; Juliet Rashidian; Matthew P. Mount; Hossein Aleyasin; Mohammad Parsanejad; Arman Lira; Emdadul Haque; Yi Zhang; Steve Callaghan; Mireille Daigle; Maxime W.C. Rousseaux; Ruth S. Slack; Paul R. Albert; Inez Vincent; John Woulfe; David S. Park

We reported previously that calpain-mediated Cdk5 activation is critical for mitochondrial toxin-induced dopaminergic death. Here, we report a target that mediates this loss. Prx2, an antioxidant enzyme, binds Cdk5/p35. Prx2 is phosphorylated at T89 in neurons treated with MPP+ and/or MPTP in animals in a calpain/Cdk5/p35-dependent manner. This phosphorylation reduces Prx2 peroxidase activity. Consistent with this, p35-/- neurons show reduced oxidative stress upon MPP+ treatment. Expression of Prx2 and Prx2T89A, but not the phosphorylation mimic Prx2T89E, protects cultured and adult neurons following mitochondrial insult. Finally, downregulation of Prx2 increases oxidative stress and sensitivity to MPP+. We propose a mechanistic model by which mitochondrial toxin leads to calpain-mediated Cdk5 activation, reduced Prx2 activity, and decreased capacity to eliminate ROS. Importantly, increased Prx2 phosphorylation also occurs in nigral neurons from postmortem tissue from Parkinsons disease patients when compared to control, suggesting the relevance of this pathway in the human condition.


Proceedings of the National Academy of Sciences of the United States of America | 2010

DJ-1 protects the nigrostriatal axis from the neurotoxin MPTP by modulation of the AKT pathway

Hossein Aleyasin; Maxime W.C. Rousseaux; Paul C. Marcogliese; Sarah J. Hewitt; Isabella Irrcher; Alvin P. Joselin; Mohammad Parsanejad; Raymond H. Kim; Patrizia Rizzu; Steve Callaghan; Ruth S. Slack; Tak W. Mak; David S. Park

Loss-of-function DJ-1 (PARK7) mutations have been linked with a familial form of early onset Parkinson disease. Numerous studies have supported the role of DJ-1 in neuronal survival and function. Our initial studies using DJ-1-deficient neurons indicated that DJ-1 specifically protects the neurons against the damage induced by oxidative injury in multiple neuronal types and degenerative experimental paradigms, both in vitro and in vivo. However, the manner by which oxidative stress-induced death is ameliorated by DJ-1 is not completely clear. We now present data that show the involvement of DJ-1 in modulation of AKT, a major neuronal prosurvival pathway induced upon oxidative stress. We provide evidence that DJ-1 promotes AKT phosphorylation in response to oxidative stress induced by H2O2 in vitro and in vivo following 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) treatment. Moreover, we show that DJ-1 is necessary for normal AKT-mediated protective effects, which can be bypassed by expression of a constitutively active form of AKT. Taken together, these data suggest that DJ-1 is crucial for full activation of AKT upon oxidative injury, which serves as one explanation for the protective effects of DJ-1.


Proceedings of the National Academy of Sciences of the United States of America | 2007

The Parkinson's disease gene DJ-1 is also a key regulator of stroke-induced damage

Hossein Aleyasin; Maxime W.C. Rousseaux; Maryam Phillips; Raymond H. Kim; Ross Bland; Steve Callaghan; Ruth S. Slack; Matthew J. During; Tak W. Mak; David S. Park

Recent evidence has indicated that common mechanisms play roles among multiple neurological diseases. However, the specifics of these pathways are not completely understood. Stroke is caused by the interruption of blood flow to the brain, and cumulative evidence supports the critical role of oxidative stress in the ensuing neuronal death process. DJ-1 (PARK7) has been identified as the gene linked to early-onset familial Parkinsons disease. Currently, our work also shows that DJ-1 is central to death in both in Vitro and in Vivo models of stroke. Loss of DJ-1 increases the sensitivity to excitotoxicity and ischemia, whereas expression of DJ-1 can reverse this sensitivity and indeed provide further protection. Importantly, DJ-1 expression decreases markers of oxidative stress after stroke insult in Vivo, suggesting that DJ-1 protects through alleviation of oxidative stress. Consistent with this finding, we demonstrate the essential role of the oxidation-sensitive cysteine-106 residue in the neuroprotective activity of DJ-1 after stroke. Our work provides an important example of how a gene seemingly specific for one disease, in this case Parkinsons disease, also appears to be central in other neuropathological conditions such as stroke. It also highlights the important commonalities among differing neuropathologies.


Nature Cell Biology | 2010

The role of Cdk5-mediated apurinic/apyrimidinic endonuclease 1 phosphorylation in neuronal death.

En Huang; Dianbo Qu; Yi Zhang; Katerina Venderova; M. Emdadul Haque; Maxime W.C. Rousseaux; Ruth S. Slack; John Woulfe; David S. Park

Accumulating evidence suggests that deregulated cyclin-dependent kinase 5 (Cdk5) plays a critical part in neuronal death. However, the pathogenic targets of Cdk5 are not fully defined. Here we demonstrate that the Cdk5 activator p35 interacts directly with apurinic/apyrimidinic endonuclease 1 (Ape1), a protein crucial for base excision repair (BER) following DNA damage. Cdk5 complexes phosphorylate Ape1 at Thr 232 and thereby reduces its apurinic/apyrimidinic (AP) endonuclease activity. Ape1 phosphorylation is dependent on Cdk5 in in vitro and in vivo. The reduced endonuclease activity of phosphorylated Ape1 results in accumulation of DNA damage and contributes to neuronal death. Overexpression of Ape1WT and Ape1T232A, but not the phosphorylation mimic Ape1T232E, protects neurons against MPP+/MPTP. Loss of Ape1 sensitizes neurons to death. Importantly, increased phosphorylated Ape1 was also observed in post-mortem brain tissue from patients with Parkinsons and Alzheimers diseases, suggesting a potential link between Ape1 phosphorylation and the pathogenesis of neurodegenerative diseases.


The Journal of Neuroscience | 2009

Essential role of cytoplasmic cdk5 and Prx2 in multiple ischemic injury models, in vivo

Juliet Rashidian; Maxime W.C. Rousseaux; Katerina Venderova; Dianbo Qu; Steve Callaghan; Maryam Phillips; Ross Bland; Matthew J. During; Zixu Mao; Ruth S. Slack; David S. Park

Recent evidence suggests that abnormal activation of cyclin-dependent kinase 5 (cdk5) is a critical prodeath signal in stroke. However, the mechanism(s) by which cdk5 promotes death is unclear. Complicating the role of cdk5 are the observations that cdk5 can exist in multiple cellular regions and possess both prosurvival and prodeath characteristics. In particular, the critical role of cytoplasmic or nuclear cdk5 in neuronal jury, in vivo, is unclear. Therefore, we determined where cdk5 was activated in models of ischemia and how manipulation of cdk5 in differing compartments may affect neuronal death. Here, we show a critical function for cytoplasmic cdk5 in both focal and global models of stroke, in vivo. Cdk5 is activated in the cytoplasm and expression of DNcdk5 localized to the cytoplasm is protective. Importantly, we also demonstrate the antioxidant enzyme Prx2 (peroxiredoxin 2) as a critical cytoplasmic target of cdk5. In contrast, the role of cdk5 in the nucleus is context-dependent. Following focal ischemia, nuclear cdk5 is activated and functionally relevant while there is no evidence for such activation following global ischemia. Importantly, myocyte enhancer factor 2D (MEF2D), a previously described nuclear target of cdk5 in vitro, is also phosphorylated by cdk5 following focal ischemia. In addition, MEF2D expression in this paradigm ameliorates death. Together, our results address the critical issue of cdk5 activity compartmentalization, as well as define critical substrates for both cytoplasmic and nuclear cdk5 activity in adult models of stroke.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Progressive dopaminergic cell loss with unilateral-to-bilateral progression in a genetic model of Parkinson disease.

Maxime W.C. Rousseaux; Paul C. Marcogliese; Dianbo Qu; Sarah J. Hewitt; Sarah Seang; Raymond H. Kim; Ruth S. Slack; Michael G. Schlossmacher; Diane C. Lagace; Tak W. Mak; David S. Park

DJ-1 mutations cause autosomal recessive early-onset Parkinson disease (PD). We report a model of PD pathology: the DJ1-C57 mouse. A subset of DJ-1–nullizygous mice, when fully backcrossed to a C57BL/6J background, display dramatic early-onset unilateral loss of dopaminergic (DA) neurons in their substantia nigra pars compacta, progressing to bilateral degeneration of the nigrostriatal axis with aging. In addition, these mice exhibit age-dependent bilateral degeneration at the locus ceruleus nucleus and display mild motor behavior deficits at aged time points. These findings effectively recapitulate the early stages of PD. Therefore, the DJ1-C57 mouse provides a tool to study the preclinical aspects of neurodegeneration. Importantly, by exome sequencing, we identify candidate modifying genes that segregate with the phenotype, providing potentially critical clues into how certain genes may influence the penetrance of DJ-1–related degeneration in mice.


eLife | 2015

A native interactor scaffolds and stabilizes toxic ATAXIN-1 oligomers in SCA1

Cristian A. Lasagna-Reeves; Maxime W.C. Rousseaux; Marcos J. Guerrero-Muñoz; Jeehye Park; Paymaan Jafar-Nejad; Ronald Richman; Nan Lu; Urmi Sengupta; Alexandra Litvinchuk; Harry T. Orr; Rakez Kayed; Huda Y. Zoghbi

Recent studies indicate that soluble oligomers drive pathogenesis in several neurodegenerative proteinopathies, including Alzheimer and Parkinson disease. Curiously, the same conformational antibody recognizes different disease-related oligomers, despite the variations in clinical presentation and brain regions affected, suggesting that the oligomer structure might be responsible for toxicity. We investigated whether polyglutamine-expanded ATAXIN-1, the protein that underlies spinocerebellar ataxia type 1, forms toxic oligomers and, if so, what underlies their toxicity. We found that mutant ATXN1 does form oligomers and that oligomer levels correlate with disease progression in the Atxn1154Q/+ mice. Moreover, oligomeric toxicity, stabilization and seeding require interaction with Capicua, which is expressed at greater ratios with respect to ATXN1 in the cerebellum than in less vulnerable brain regions. Thus, specific interactors, not merely oligomeric structure, drive pathogenesis and contribute to regional vulnerability. Identifying interactors that stabilize toxic oligomeric complexes could answer longstanding questions about the pathogenesis of other proteinopathies. DOI: http://dx.doi.org/10.7554/eLife.07558.001


Nature Genetics | 2017

Disruption of the ATXN1-CIC complex causes a spectrum of neurobehavioral phenotypes in mice and humans

Hsiang Chih Lu; Qiumin Tan; Maxime W.C. Rousseaux; Wei Wang; Ronald Richman; Ying Wooi Wan; Szu Ying Yeh; Jay M. Patel; Xiuyun Liu; Tao Lin; Yoontae Lee; John D. Fryer; Jing Han; Maria H. Chahrour; Richard H. Finnell; Yunping Lei; Maria E. Zurita-Jimenez; Priyanka Ahimaz; Kwame Anyane-Yeboa; Lionel Van Maldergem; Daphné Lehalle; Nolwenn Jean-Marçais; Anne Laure Mosca-Boidron; Julien Thevenon; Margot A. Cousin; Della E. Bro; Brendan C. Lanpher; Eric W. Klee; Nora Alexander; Matthew N. Bainbridge

Gain-of-function mutations in some genes underlie neurodegenerative conditions, whereas loss-of-function mutations in the same genes have distinct phenotypes. This appears to be the case with the protein ataxin 1 (ATXN1), which forms a transcriptional repressor complex with capicua (CIC). Gain of function of the complex leads to neurodegeneration, but ATXN1–CIC is also essential for survival. We set out to understand the functions of the ATXN1–CIC complex in the developing forebrain and found that losing this complex results in hyperactivity, impaired learning and memory, and abnormal maturation and maintenance of upper-layer cortical neurons. We also found that CIC activity in the hypothalamus and medial amygdala modulates social interactions. Informed by these neurobehavioral features in mouse mutants, we identified five individuals with de novo heterozygous truncating mutations in CIC who share similar clinical features, including intellectual disability, attention deficit/hyperactivity disorder (ADHD), and autism spectrum disorder. Our study demonstrates that loss of ATXN1–CIC complexes causes a spectrum of neurobehavioral phenotypes.


PLOS ONE | 2014

DJ-1 Interacts with and Regulates Paraoxonase-2, an Enzyme Critical for Neuronal Survival in Response to Oxidative Stress

Mohammad Parsanejad; Noam Bourquard; Dianbo Qu; Yi Zhang; En Huang; Maxime W.C. Rousseaux; Hossein Aleyasin; Isabella Irrcher; Steve Callaghan; Dominique C. Vaillant; Raymond H. Kim; Ruth S. Slack; Tak W. Mak; Srinivasa T. Reddy; Daniel Figeys; David S. Park

Loss-of-function mutations in DJ-1 (PARK7) gene account for about 1% of all familial Parkinsons disease (PD). While its physiological function(s) are not completely clear, DJ-1 protects neurons against oxidative stress in both in vitro and in vivo models of PD. The molecular mechanism(s) through which DJ-1 alleviates oxidative stress-mediated damage remains elusive. In this study, we identified Paraoxonase-2 (PON2) as an interacting target of DJ-1. PON2 activity is elevated in response to oxidative stress and DJ-1 is crucial for this response. Importantly, we showed that PON2 deficiency hypersensitizes neurons to oxidative stress induced by MPP+ (1-methyl-4-phenylpyridinium). Conversely, over-expression of PON2 protects neurons in this death paradigm. Interestingly, PON2 effectively rescues DJ-1 deficiency-mediated hypersensitivity to oxidative stress. Taken together, our data suggest a model by which DJ-1 exerts its antioxidant activities, at least partly through regulation of PON2.

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Huda Y. Zoghbi

Baylor College of Medicine

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Ruth S. Slack

Ottawa Hospital Research Institute

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Tak W. Mak

University Health Network

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Cristian A. Lasagna-Reeves

University of Texas Medical Branch

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