37 research outputs found

    Bmi1 loss produces an increase in astroglial cells and a decrease in neural stem cell population and proliferation

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    The polycomb transcriptional repressor Bmi1 promotes cell cycle progression, controls cell senescence, and is implicated in brain development. Loss of Bmi1 leads to a decreased brain size and causes progressive ataxia and epilepsy. Recently, Bmi1 was shown to control neural stem cell (NSC) renewal. However, the effect of Bmi1 loss on neural cell fate in vivo and the question whether the action of Bmi1 was intrinsic to the NSCs remained to be investigated. Here, we show that Bmi1 is expressed in the germinal zone in vivo and in NSCs as well as in progenitors proliferating in vitro, but not in differentiated cells. Loss of Bmi1 led to a decrease in proliferation in zones known to contain progenitors: the newborn cortex and the newborn and adult subventricular zone. This decrease was accentuated in vitro, where we observed a drastic reduction in NSC proliferation and renewal because of NSC-intrinsic effects of Bmi1 as shown by the means of RNA interference. Bmi1(-/-) mice also presented more astrocytes at birth, and a generalized gliosis at postnatal day 30. At both stages, colocalization of bromodeoxyuridine and GFAP demonstrated that Bmi1 loss did not prevent astrocyte precursor proliferation. Supporting these observations, Bmi1(-/-) neurospheres generate preferentially astrocytes probably attributable to a different responsiveness to environmental factors. Bmi1 is therefore necessary for NSC renewal in a cell-intrinsic mode, whereas the altered cell pattern of the Bmi1(-/-) brain shows that in vivo astrocyte precursors can proliferate in the absence of Bmi1

    USP9X deubiquitylating enzyme maintains RAPTOR protein levels, mTORC1 signalling and proliferation in neural progenitors

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    USP9X, is highly expressed in neural progenitors and, essential for neural development in mice. In humans, mutations in USP9X are associated with neurodevelopmental disorders. To understand USP9X's role in neural progenitors, we studied the effects of altering its expression in both the human neural progenitor cell line, ReNcell VM, as well as neural stem and progenitor cells derived from Nestin-cre conditionally deleted Usp9x mice. Decreasing USP9X resulted in ReNcell VM cells arresting in G0 cell cycle phase, with a concomitant decrease in mTORC1 signalling, a major regulator of G0/G1 cell cycle progression. Decreased mTORC1 signalling was also observed in Usp9x-null neurospheres and embryonic mouse brains. Further analyses revealed, (i) the canonical mTORC1 protein, RAPTOR, physically associates with Usp9x in embryonic brains, (ii) RAPTOR protein level is directly proportional to USP9X, in both loss- and gain-of-function experiments in cultured cells and, (iii) USP9X deubiquitlyating activity opposes the proteasomal degradation of RAPTOR. EdU incorporation assays confirmed Usp9x maintains the proliferation of neural progenitors similar to Raptor-null and rapamycin-treated neurospheres. Interestingly, loss of Usp9x increased the number of sphere-forming cells consistent with enhanced neural stem cell self-renewal. To our knowledge, USP9X is the first deubiquitylating enzyme shown to stabilize RAPTOR.Caitlin R. Bridges, Men-Chee Tan, Susitha Premarathne, Devathri Nanayakkara, Bernadette Bellette, Dusan Zencak, Deepti Domingo, Jozef Gecz, Mariyam Murtaza, Lachlan A. Jolly and Stephen A. Woo

    CHMP1A encodes an essential regulator of BMI1-INK4A in cerebellar development

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    Charged multivesicular body protein 1A (CHMP1A; also known as chromatin-modifying protein 1A) is a member of the ESCRT-III (endosomal sorting complex required for transport-III) complex but is also suggested to localize to the nuclear matrix and regulate chromatin structure. Here, we show that loss-of-function mutations in human CHMP1A cause reduced cerebellar size (pontocerebellar hypoplasia) and reduced cerebral cortical size (microcephaly). CHMP1A-mutant cells show impaired proliferation, with increased expression of INK4A, a negative regulator of stem cell proliferation. Chromatin immunoprecipitation suggests loss of the normal INK4A repression by BMI in these cells. Morpholino-based knockdown of zebrafish chmp1a resulted in brain defects resembling those seen after bmi1a and bmi1b knockdown, which were partially rescued by INK4A ortholog knockdown, further supporting links between CHMP1A and BMI1-mediated regulation of INK4A. Our results suggest that CHMP1A serves as a critical link between cytoplasmic signals and BMI1-mediated chromatin modifications that regulate proliferation of central nervous system progenitor cells

    Bmi1 Is Down-Regulated in the Aging Brain and Displays Antioxidant and Protective Activities in Neurons

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    Aging increases the risk to develop several neurodegenerative diseases, although the underlying mechanisms are poorly understood. Inactivation of the Polycomb group gene Bmi1 in mice results in growth retardation, cerebellar degeneration, and development of a premature aging-like phenotype. This progeroid phenotype is characterized by formation of lens cataracts, apoptosis of cortical neurons, and increase of reactive oxygen species (ROS) concentrations, owing to p53-mediated repression of antioxidant response (AOR) genes. Herein we report that Bmi1 expression progressively declines in the neurons of aging mouse and human brains. In old brains, p53 accumulates at the promoter of AOR genes, correlating with a repressed chromatin state, down-regulation of AOR genes, and increased oxidative damages to lipids and DNA. Comparative gene expression analysis further revealed that aging brains display an up-regulation of the senescence-associated genes IL-6, p19Arf and p16Ink4a, along with the pro-apoptotic gene Noxa, as seen in Bmi1-null mice. Increasing Bmi1 expression in cortical neurons conferred robust protection against DNA damage-induced cell death or mitochondrial poisoning, and resulted in suppression of ROS through activation of AOR genes. These observations unveil that Bmi1 genetic deficiency recapitulates aspects of physiological brain aging and that Bmi1 over-expression is a potential therapeutic modality against neurodegeneration

    GSK3ÎČ Regulates Differentiation and Growth Arrest in Glioblastoma

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    Cancers are driven by a population of cells with the stem cell properties of self-renewal and unlimited growth. As a subpopulation within the tumor mass, these cells are believed to constitute a tumor cell reservoir. Pathways controlling the renewal of normal stem cells are deregulated in cancer. The polycomb group gene Bmi1, which is required for neural stem cell self-renewal and also controls anti-oxidant defense in neurons, is upregulated in several cancers, including medulloblastoma. We have found that Bmi1 is consistently and highly expressed in GBM. Downregulation of Bmi1 by shRNAs induced a differentiation phenotype and reduced expression of the stem cell markers Sox2 and Nestin. Interestingly, expression of glycogen synthase kinase 3 beta (GSK3ÎČ), which was found to be consistently expressed in primary GBM, also declined. This suggests a functional link between Bmi1 and GSK3ÎČ. Interference with GSK3ÎČ activity by siRNA, the specific inhibitor SB216763, or lithium chloride (LiCl) induced tumor cell differentiation. In addition, tumor cell apoptosis was enhanced, the formation of neurospheres was impaired, and clonogenicity reduced in a dose-dependent manner. GBM cell lines consist mainly of CD133-negative (CD133-) cells. Interestingly, ex vivo cells from primary tumor biopsies allowed the identification of a CD133- subpopulation of cells that express stem cell markers and are depleted by inactivation of GSK3ÎČ. Drugs that inhibit GSK3, including the psychiatric drug LiCl, may deplete the GBM stem cell reservoir independently of CD133 status

    Switches, Excitable Responses and Oscillations in the Ring1B/Bmi1 Ubiquitination System

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    In an active, self-ubiquitinated state, the Ring1B ligase monoubiquitinates histone H2A playing a critical role in Polycomb-mediated gene silencing. Following ubiquitination by external ligases, Ring1B is targeted for proteosomal degradation. Using biochemical data and computational modeling, we show that the Ring1B ligase can exhibit abrupt switches, overshoot transitions and self-perpetuating oscillations between its distinct ubiquitination and activity states. These different Ring1B states display canonical or multiply branched, atypical polyubiquitin chains and involve association with the Polycomb-group protein Bmi1. Bistable switches and oscillations may lead to all-or-none histone H2A monoubiquitination rates and result in discrete periods of gene (in)activity. Switches, overshoots and oscillations in Ring1B catalytic activity and proteosomal degradation are controlled by the abundances of Bmi1 and Ring1B, and the activities and abundances of external ligases and deubiquitinases, such as E6-AP and USP7

    Bmi-1 Absence Causes Premature Brain Degeneration

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    Bmi-1, a polycomb transcriptional repressor, is implicated in cell cycle regulation and cell senescence. Its absence results in generalized astrogliosis and epilepsy during the postnatal development, but the underlying mechanisms are poorly understood. Here, we demonstrate the occurrence of oxidative stress in the brain of four-week-old Bmi-1 null mice. The mice showed various hallmarks of neurodegeneration including synaptic loss, axonal demyelination, reactive gliosis and brain mitochondrial damage. Moreover, astroglial glutamate transporters and glutamine synthetase decreased in the Bmi-1 null hippocampus, which might contribute to the sporadic epileptic-like seizures in these mice. These results indicate that Bmi-1 is required for maintaining endogenous antioxidant defenses in the brain, and its absence subsequently causes premature brain degeneration

    The role of Bmi1 in CNS development and in retinal degeneration

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    SUMMARY : The present work addresses several aspects of cell cycle regulation, cell fate specification and cell death in the central nervous system (CNS), specifically the cortex and the retina. More precisely, we investigated the role of Bmi1, a polycomb family gene required for stem cell proliferation and self-renewal, in the development of the cerebral cortex, as well as in the genesis of the retina. These data, together with studies published during the last two decades concerning cell cycle re-activation in apoptotic neurons in the CNS, raised the question of a possible link between regulation of the cell cycle during development and during retinal degeneration. 1. The effects of Bmi1 loss in the cerebral cortex : Consistently with our and others' observations on failure of Bmi9-/- stem cells to proliferate and self-renew in vitro, the Bmi9-/- cerebral cortex presented slight defects in proliferation in stem/progenitor cells compartments in vivo. This was in accordance with the pattern of Bmi1 expression in the developing forebrain. The modest proliferation defects, compared to the drastic consequences of Bmi9 loss in vitro, suggest that cell-extrinsic mechanisms may partially compensate for Bmi1 deletion in vivo during cortical histogenesis. Nevertheless, we observed a decreased proliferating activity in neurogenic regions of the adult telencephalon, more precisely in the subventricular zone, showing that Bmi1 controls neural stem/progenitor proliferation during adulthood in vivo. Our data also highlight an increased production of astrocytes at birth, and a generalized gliosis in the adult Bmi9-/- brain. Importantly, glial progenitors and astrocytes retained the ability to proliferate in the absence of Bmi1. 2. The effects of Bmi1 loss in the retina : The pattern of expression of Bmi1 during development and in the adult retina suggests a role for Bmi1 in cell fate specification and differentiation rather than in proliferation. While the layering and the global structure of the retina appear normal in Bmi1 /adult mice, immunohistochemĂŹcal analysis revealed defects in the three major classes of retinal interneurons, namely: horizontal, bipolar and amacrine cells. Electroretinogram recordings in Bmi9-/- mice are coherent with the defects observed at the histological level, with a reduced b-wave and low-profile oscillatory potentials. These results show that Bmi1 controls not only proliferation, but also cell type generation, as previously observed in the cerebellum. 3. Cell cycle events and related neuroprotective strategies in retinal degeneration : In several neurodegenerative disorders, neurons re-express cell cycle proteins such as cyclin dependent kinases (Cdks) prior to apoptosis. Here, we show for the first time that this is also the case during retinal degeneration. Rd1 mice carry a recessive defect (PdeĂłbrd/rd) that causes retinal degeneration and serves as a model of retinitis pigmentosa. We found that photoreceptors express Cdk4 and Cdk2, and undergo DNA synthesis prior to cell death. To interfere with the reactivation of Cdk-related pathways, we deleted E2fs or Brni1, which normally allow cell cycle progression. While deleting E2f1 (downstream of Cdk4/6) in Rd1 mice provides only temporary protection, knocking out Bmi1 (upstream of Cdks) leads to an extensive neuroprotective effect, independent of p16ink4a or p19arf, two tumor suppressors regulated by Bmi1. Analysis of Cdks and the DNA repair-related protein Ligase IV showed that Bmi1 acts downstream of DNA repair events and upstream of Cdks in this neurodegenerative mechanism. Expression of Cdks during an acute model of retinal degeneration, light damage-induced photoreceptor death, points to a role for Bmi1 and cell cycle proteins in retinal degeneration. Considering the similarity with the cell cycle-related apoptotic pathway observed in other neurodegenerative diseases, Bmi1 is a possible general target to prevent or delay neuronal death. RESUME : Ce travail aborde plusieurs aspects de la rĂ©gulation du cycle cellulaire, de la spĂ©cification du devenir des cellules et de la mort cellulaire dans le systĂšme nerveux centrale (SNC), plus particuliĂšrement dans le cortex cĂ©rĂ©bral et dans la rĂ©tine. Nous nous sommes intĂ©ressĂ©s au gĂšne Bmi1, appartenant Ă  la famille polycomb et nĂ©cessaire Ă  la prolifĂ©ration et au renouvellement des cellules souches. Nous avons visĂ© Ă  dissĂ©quer son rĂŽle dans le dĂ©veloppement du cortex et de la rĂ©tine. Ces donnĂ©es, ainsi qu'une sĂ©rie de travaux publiĂ©s au cours des deux derniĂšres dĂ©cennies concernant la rĂ©activation du cycle cellulaire dans les neurones en voie d'apoptose dans le SNC, nous ont ensuite poussĂ© Ă  chercher un lien entre la rĂ©gulation du cycle cellulaire pendant le dĂ©veloppement et au cours de la dĂ©gĂ©nĂ©rescence rĂ©tinienne. 1. Les effets de l'inactivation de Bmi1 dans le cortex cĂ©rĂ©bral : En accord avec l'incapacitĂ© des cellules souches neurales in vitro Ă  prolifĂ©rer et Ă  se renouveler en absence de Bmi1, le cortex cĂ©rĂ©bral des souris Bmi1-/- prĂ©sente de lĂ©gers dĂ©fauts de prolifĂ©ration dans les compartiments contenant les cellules souches neurales. Ceci est en accord avec le profil d'expression de Bmi1 dans le tĂ©lencĂ©phale. Les consĂ©quences de la dĂ©lĂ©tion de Bmi1 sont toutefois nettement moins prononcĂ©es in vivo qu'in vitro ; cette diffĂ©rence suggĂšre l'existence de mĂ©canismes pouvant partiellement compenser l'absence de Bmi1 pendant la corticogenĂšse. NĂ©anmoins, l'observation d'une rĂ©duction de la prolifĂ©ration dans la zone sous-ventriculaire, la zone majeure de neurogenĂšse dans le tĂ©lencĂ©phale adulte, montre que Bmi1 contrĂŽle la prolifĂ©ration des cellules souche/progĂ©nitrices neurales chez la souris adulte. Nos rĂ©sultats dĂ©montrent par ailleurs une augmentation de la production d'astrocytes Ă  la naissance ainsi qu'une gliose gĂ©nĂ©ralisĂ©e Ă  l'Ă©tat adulte chez les souris Bmi1-/-. Les progĂ©niteurs gliaux et les astrocytes conservent donc leur capacitĂ© Ă  prolifĂ©rer en absence de Bmi1. 2. Les effets de l'inactivation de Bmi1 dans la rĂ©tine : Le profil d'expression de Bmi1 pendant fe dĂ©veloppement ainsi que dans la rĂ©tine adulte suggĂšre un rĂŽle de Bmi1 dans la spĂ©cification de certains types cellulaires et dans la diffĂ©rentiation plutĂŽt que dans la prolifĂ©ration. Alors que la structure et la lamination de la rĂ©tine semblent normales chez les souris Bmi1-/-, l'analyse par immunohistochimie amis en Ă©vidence des dĂ©fauts au niveau des trois classes d'interneurones rĂ©tiniens (les cellules horizontales, bipolaires et amacrines). Les Ă©lectrorĂ©tinogrammes des souris Bmi1-/- sont cohĂ©rents avec les dĂ©fauts observĂ©s au niveau histologique et montrent une rĂ©duction de l'onde « b » et des potentiels oscillatoires. Ces rĂ©sultats montrent que Bmi1 contrĂŽle la gĂ©nĂ©ration de certaines sous-populations de neurones, comme dĂ©montrĂ© auparavant au niveau de cervelet. 3. RĂ©activation du cycle cellulaire et stratĂ©gies thĂ©raoeutiaues dans les dĂ©gĂ©nĂ©rescences rĂ©tiniennes : Dans plusieurs maladies neurodĂ©gĂ©nĂ©ratives, les neurones rĂ©-expriment des protĂ©ines du cycle cellulaire telles que les kinases cycline-dĂ©pendantes (Cdk) avant d'entrer en apoptose. Nous avons dĂ©montrĂ© que c'est aussi le cas dans les dĂ©gĂ©nĂ©rescences rĂ©tiniennes. Les souris Rd1 portent une mutation rĂ©cessive (Pde6brd/rd) qui induit une dĂ©gĂ©nĂ©rescence de la rĂ©tine et sont utilisĂ©es comme modĂšle animal de rĂ©tinite pigmentaire. Nous avons observĂ© que les photorĂ©cepteurs expriment Cdk4 et Cdk2, et entament une synthĂšse d'ADN avant de mourir par apoptose. Pour interfĂ©rer avec la rĂ©activation les mĂ©canismes Cdk-dĂ©pendants, nous avons inactivĂ© les gĂšnes E2f et Bmi1, qui permettent normalement la progression du cycle cellulaire. Nous avons mis en Ă©vidence que la dĂ©lĂ©tion de E2f1 (en aval de Cdk4/6) dans les souris Rd1 permet une protection transitoire des photorĂ©cepteurs. Toutefois, l'inactivation de Bmi1 (en amont des Cdk) est corrĂ©lĂ©e Ă  une neuroprotection bien plus durable et ceci indĂ©pendamment de p16ink4a et p19arf, deux suppresseurs de tumeurs normalement rĂ©gulĂ©s par Bmi1. L'analyse des Cdk et de la ligase IV (une protĂ©ine impliquĂ©e dans les mĂ©canismes de rĂ©paration de l'ADN) a montrĂ© que Bmi1 agit en aval des Ă©vĂ©nements de rĂ©paration de l'ADN et en amont des Cdk dans la cascade apoptotique dans les photorĂ©cepteurs des souris Rd1. Nous avons Ă©galement observĂ© la prĂ©sence de Cdk dans un modĂšle aigu de dĂ©gĂ©nĂ©rescence rĂ©tinienne induit par une exposition des animaux Ă  des niveaux toxiques de lumiĂšre. Nos rĂ©sultats suggĂšrent donc un rĂŽle gĂ©nĂ©ral de Bmi1 et des protĂ©ines du cycle cellulaire dans les dĂ©gĂ©nĂ©rescences de la rĂ©tine. Si l'on considĂšre la similaritĂ© avec les Ă©vĂ©nements de rĂ©activation du cycle cellulaire observĂ©s dans d'autres maladies neurodĂ©gĂ©nĂ©ratives, Bmi1 pourrait ĂȘtre une cible thĂ©rapeutique gĂ©nĂ©rale pour prĂ©venir la mort neuronale
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