58 research outputs found

    Neurons are MHC Class I-Dependent Targets for CD8 T Cells upon Neurotropic Viral Infection

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    Following infection of the central nervous system (CNS), the immune system is faced with the challenge of eliminating the pathogen without causing significant damage to neurons, which have limited capacities of renewal. In particular, it was thought that neurons were protected from direct attack by cytotoxic T lymphocytes (CTL) because they do not express major histocompatibility class I (MHC I) molecules, at least at steady state. To date, most of our current knowledge on the specifics of neuron-CTL interaction is based on studies artificially inducing MHC I expression on neurons, loading them with exogenous peptide and applying CTL clones or lines often differentiated in culture. Thus, much remains to be uncovered regarding the modalities of the interaction between infected neurons and antiviral CD8 T cells in the course of a natural disease. Here, we used the model of neuroinflammation caused by neurotropic Borna disease virus (BDV), in which virus-specific CTL have been demonstrated as the main immune effectors triggering disease. We tested the pathogenic properties of brain-isolated CD8 T cells against pure neuronal cultures infected with BDV. We observed that BDV infection of cortical neurons triggered a significant up regulation of MHC I molecules, rendering them susceptible to recognition by antiviral CTL, freshly isolated from the brains of acutely infected rats. Using real-time imaging, we analyzed the spatio-temporal relationships between neurons and CTL. Brain-isolated CTL exhibited a reduced mobility and established stable contacts with BDV-infected neurons, in an antigen- and MHC-dependent manner. This interaction induced rapid morphological changes of the neurons, without immediate killing or impairment of electrical activity. Early signs of neuronal apoptosis were detected only hours after this initial contact. Thus, our results show that infected neurons can be recognized efficiently by brain-isolated antiviral CD8 T cells and uncover the unusual modalities of CTL-induced neuronal damage

    Human brain harbors single nucleotide somatic variations in functionally relevant genes possibly mediated by oxidative stress

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    Somatic variation in DNA can cause cells to deviate from the preordained genomic path in both disease and healthy conditions. Here, using exome sequencing of paired tissue samples, we show that the normal human brain harbors somatic single base variations measuring up to 0.48% of the total variations. Interestingly, about 64% of these somatic variations in the brain are expected to lead to non-synonymous changes, and as much as 87% of these represent G:C>T:A transversion events. Further, the transversion events in the brain were mostly found in the frontal cortex, whereas the corpus callosum from the same individuals harbors the reference genotype. We found a significantly higher amount of 8-OHdG (oxidative stress marker) in the frontal cortex compared to the corpus callosum of the same subjects (p<0.01), correlating with the higher G:C>T:A transversions in the cortex. We found significant enrichment for axon guidance and related pathways for genes harbouring somatic variations. This could represent either a directed selection of genetic variations in these pathways or increased susceptibility of some loci towards oxidative stress. This study highlights that oxidative stress possibly influence single nucleotide somatic variations in normal human brain

    The role of the mammalian DNA end-processing enzyme polynucleotide kinase 3'-phosphatase in spinocerebellar ataxia Type 3 pathogenesis

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    DNA strand-breaks (SBs) with non-ligatable ends are generated by ionizing radiation, oxidative stress, various chemotherapeutic agents, and also as base excision repair (BER) intermediates. Several neurological diseases have already been identified as being due to a deficiency in DNA end-processing activities. Two common dirty ends, 3'-P and 5'-OH, are processed by mammalian polynucleotide kinase 3'-phosphatase (PNKP), a bifunctional enzyme with 3'-phosphatase and 5'-kinase activities. We have made the unexpected observation that PNKP stably associates with Ataxin-3 (ATXN3), a polyglutamine repeat-containing protein mutated in spinocerebellar ataxia type 3 (SCA3), also known as Machado-Joseph Disease (MJD). This disease is one of the most common dominantly inherited ataxias worldwide; the defect in SCA3 is due to CAG repeat expansion (from the normal 14-41 to 55-82 repeats) in the ATXN3 coding region. However, how the expanded form gains its toxic function is still not clearly understood. Here we report that purified wild-type (WT) ATXN3 stimulates, and by contrast the mutant form specifically inhibits, PNKP's 3' phosphatase activity in vitro. ATXN3-deficient cells also show decreased PNKP activity. Furthermore, transgenic mice conditionally expressing the pathological form of human ATXN3 also showed decreased 3'-phosphatase activity of PNKP, mostly in the deep cerebellar nuclei, one of the most affected regions in MJD patients' brain. Finally, long amplicon quantitative PCR analysis of human MJD patients' brain samples showed a significant accumulation of DNA strand breaks. Our results thus indicate that the accumulation of DNA strand breaks due to functional deficiency of PNKP is etiologically linked to the pathogenesis of SCA3/MJD.This research was supported by USPHS grant NS073976 (TKH) and P30 ES 06676 that support the NIEHS Center Cell Biology Core and Molecular Genomics Core of UTMB’s NIEHS Center for DNA sequencing. TKP is supported by CA129537 and CA154320. This work was also supported by Fundação para a Ciência e Tecnologia through the project [PTDC/SAU-GMG/101572/2008] and through fellowships [SFRH/BPD/91562/2012 to ASF, SFRH/BD/51059/2010 to ANC]. IB is supported by NIEHS R01 ES018948 and NIAID/AI06288

    Neuronal enhancers are hotspots for DNA single-strand break repair

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    Defects in DNA repair frequently lead to neurodevelopmental and neurodegenerative diseases, underscoring the particular importance of DNA repair in long-lived post-mitotic neurons1,2. The cellular genome is subjected to a constant barrage of endogenous DNA damage, but surprisingly little is known about the identity of the lesion(s) that accumulate in neurons and whether they accrue throughout the genome or at specific loci. Here we show that post-mitotic neurons accumulate unexpectedly high levels of DNA single-strand breaks (SSBs) at specific sites within the genome. Genome-wide mapping reveals that SSBs are located within enhancers at or near CpG dinucleotides and sites of DNA demethylation. These SSBs are repaired by PARP1 and XRCC1-dependent mechanisms. Notably, deficiencies in XRCC1-dependent short-patch repair increase DNA repair synthesis at neuronal enhancers, whereas defects in long-patch repair reduce synthesis. The high levels of SSB repair in neuronal enhancers are therefore likely to be sustained by both short-patch and long-patch processes. These data provide the first evidence of site- and cell-type-specific SSB repair, revealing unexpected levels of localized and continuous DNA breakage in neurons. In addition, they suggest an explanation for the neurodegenerative phenotypes that occur in patients with defective SSB repair

    Role of Si concentration on the magnetic and mechanical behavior of rapidly solidified Fe-Si laminations

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    The magnetic and mechanical properties of rapidly solified Fe-Si laminations have been investigated as a function of Si concentration in the range 3 wt% - 7.8 wt%. Magnetic loss (dc -10kHz) and tensile stress-strain experiments, cariied out as a function of grain size, put in evidence the magnetic softening and the mechanical hardening following the increase of the Si concentration. In particular when the concentration CSi= 6.7 wt% is attained, the total loss passes, at all frequencies, through a minimum value, which correlates with the vanishing of the magnetostriction constant. At the same time, mechanical hardening occurs, with monotonical increase of yield stress and work hardening rate with CSi. The magnetic analysis, while showing, on the one hand,a direct link between coercivity and magnetostriction, puts in evidence the relationship existing between the hysteresis and the excess loss components and lead to a quantitative assessment of the overall energy loo dependence on the Si content. A Hall-Petch law for the yield stress ans the fracture stress vs grain size is verified at all compositions. This permits one, in particular, to single out a direct contribution to material hardening coming from phase ordering when CSi > -4 wt

    Role of Si concentration on the magnetic and mechanical behavior of rapidly solidified Fe-Si laminations

    No full text
    The magnetic and mechanical properties of rapidly solified Fe-Si laminations have been investigated as a function of Si concentration in the range 3 wt% - 7.8 wt%. Magnetic loss (dc -10kHz) and tensile stress-strain experiments, cariied out as a function of grain size, put in evidence the magnetic softening and the mechanical hardening following the increase of the Si concentration. In particular when the concentration CSi= 6.7 wt% is attained, the total loss passes, at all frequencies, through a minimum value, which correlates with the vanishing of the magnetostriction constant. At the same time, mechanical hardening occurs, with monotonical increase of yield stress and work hardening rate with CSi. The magnetic analysis, while showing, on the one hand,a direct link between coercivity and magnetostriction, puts in evidence the relationship existing between the hysteresis and the excess loss components and lead to a quantitative assessment of the overall energy loo dependence on the Si content. A Hall-Petch law for the yield stress ans the fracture stress vs grain size is verified at all compositions. This permits one, in particular, to single out a direct contribution to material hardening coming from phase ordering when CSi > -4 wt

    Tau reduction prevents Aβ-induced axonal transport deficits by blocking activation of GSK3β

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    © 2015 Vossel et al.Axonal transport deficits in Alzheimer's disease (AD) are attributed to amyloid β (Aβ) peptides and pathological forms of the microtubuleassociated protein tau. Genetic ablation of tau prevents neuronal overexcitation and axonal transp
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