10 research outputs found

    Analytical strategies for the comprehensive profiling of histone post translational modifications by mass spectrometry and implications for functional analyses

    Get PDF
    Le long bio-polymère d'ADN est condensé à l’intérieur du noyau des cellules eukaryotes à l'aide de petites protéines appelées histones. En plus de leurs fonctions condensatrices,ces histones sont également la cible de nombreuses modifications post-traductionnelles(MPT), particulièrement au niveau de leur section N-terminale. Ces modifications réversibles font partie d’un code d’histones épi-génétique transmissible qui orchestre et module dynamiquement certains événements impliquant la chromatine, tels l’activation et la désactivation de gènes ainsi que la duplication et la réparation d’ADN. Ces modifications sont impliquées subséquemment dans la signalisation et la progression de cancers, tels que la leucémie. En conséquence, l'élucidation des modifications d’histones est importante pour comprendre leurs fonctions biologiques. Une méthodologie analytique a été mise au point en laboratoire pour isoler, détecter, et quantifier les MPT d’histones en utilisant une approche rapide à deux volets à l’aide d’outils bioinformatiques spécialisés. La méthodologie développée en laboratoire a été validée en utilisant des histones de souche sauvage ainsi que deux types d’histones mutants déficients en enzymes acétyltransferase. Des trois sources d’histones utilisées, la seule MPT qui a démontré un changement significatif est l’acétylation de l’histone H3 à lysine 56 (H3K56ac). L’expression et la stoechiométrie de cette MPT, issue de cellules de souche sauvage et de cellules mutantes, ont été déterminées avec précision et comparées. Les fonctions de balayage polyvalentes d'un instrument à trappe ionique quadrupôle linéaire hybride ont été utilisées pour améliorer la détection de protéines intactes. Le mode de balayage « enhanced multiply charged » (EMC) a été modifié pour contenir et détecter les ions de protéines intactes situées dans la trappe ionique linéaire. Ce mode de balayage nommé « targeted EMC » (tEMC) a permis de quadrupler le niveau de sensibilité (signal/interférence), et quintupler la résolution du mode de balayage conventionnel. De plus, la capacité de séparation des charges du tEMC a réduit de façon significative les effets de « space charge » dans la trappe ionique linéaire. La résolution supérieure du mode tEMC a permis de différencier plusieurs isoformes modifiées, particulièrement pour l’histone H3. L’analyse des peptides d’histones trypsiques à l’aide du mode de balayage « MRM » a permis le séquençage et la quantification de MPT avec un haut degré de précision. La seule MPT qui était sous-exprimée entre l’histone de souche sauvage et le mutant DOT1L fut la méthylation de l’histone H3 lysine 79(H3K79me1). Les effets de deux inhibiteurs d’enzymes HDAC (HDACi) sur l’expression de MPT d’histone ont été évalués en utilisant la méthodologie analytique mentionnée. Les histones extraites de cellules normales et cancéreuses ont été exposées à du Vorinostat(SAHA) ou du Entinostat (MS-275) pour une période de 24 à 72 heures. Deux histones furent principalement affectées, soit H3 et H4. Étonnamment, les mêmes effets n'ont pas été détectés lorsque les cellules normales ont été traitées avec le HDACi pour une période de 48 à 72 heures. Une méthode absolue de quantification avec une courbe d’étalonnage a été développée pour le peptide H3K56ac. Contrairement à certaines publications, nos résultats démontrent que cette MPT est présente dans les cellules mammifères avec une stoechiométrie très basse (< 0,1%) et n'est pas surexprimée de façon significative après le traitement au HDACi.In eukaryotic cells, the lengthy DNA biopolymer is condensed into the cell nucleus with the aid of small packaging proteins called histones. In addition to their packing functions,histones are also targets of numerous post translational modifications (PTMs), especially on their N-terminus. These reversible modifications are believed to be constituents of a heritable epigenetic “histone code” that dynamically orchestrate and modulate chromatin based events such as gene activation and silencing, DNA replication and repair, and are also involved in the downstream signaling and progression of cancers, such as leukemia. Thus, the elucidation of histone PTMs is important in understanding their biological function. An analytical workflow was designed and set-up in the laboratory to isolate, detect, and quantitate histone PTM, using a two-pronged, unbiased, and rapid approach with specialized bioinformatic tools. The workflow was validated using histones from wildtype, and 2 mutants deficient in acetyltransferase activity. Between the three histone sources, the only PTM that demonstrated any change was acetylation at histone H3 lysine 56 (H3K56ac). The down-regulation and stoichiometry of this PTM was accurately assessed between wild-type and mutant cells. The versatile scan functions of a hybrid quadrupole-linear ion trap instrument were exploited to enhance the detection of intact histone proteins. The enhanced multiply charged (EMC) scan was modified in order to contain and detect intact protein ions within the linear ion trap. This targeted EMC (or tEMC) resulted in not only a 4-fold increase in signal-to-noise, but also a 5-fold increase in resolution. Furthermore, the charge separation capability of the tEMC dramatically reduced space charge effects within the linear ion trap. The superior resolution of the tEMC mode allowed for the discimination of many modified histone isoforms, especially for histone H3. Using the bottom-up strategy with multiple reaction monitoring (MRM), histone peptides were quantified and sequenced with a high degree of precision. The only PTM that was down-regulated between wild-type and DOT1L mutant histones was methylation at histone H3 lysine 79 (H3K79me1). The effects of two clinically relevant small molecule HDAC inhibitors (HDACi) on histone PTMs patterns were assessed using the analytical workflow developed. Histones derived from both normal and cancer cells were exposed to either Vorinostat (SAHA) or Entinostat (MS-275) over a 24- to 72 hour period. The two core histones primarily affected were H3 and H4. Surprisingly, the same effects were not observed when normal cells were treated with three doses of SAHA at 24-hour intervals over a 72-hour period. An absolute quantitation method using a calibration curve was developed for H3K56ac. In opposition to other published literature, our findings demonstrate that this PTM is present in very low stoichiometry (< 0.1%) in mammalian cells, and exhibits no significant up-regulation in different cell lines treated with several types of HDACi

    Regulation of the DNA Damage Response and Gene Expression by the Dot1L Histone Methyltransferase and the 53Bp1 Tumour Suppressor

    Get PDF
    Dot1L, a histone methyltransferase that targets histone H3 lysine 79 (H3K79), has been implicated in gene regulation and the DNA damage response although its functions in these processes remain poorly defined.Using the chicken DT40 model system, we generated cells in which the Dot1L gene is disrupted to examine the function and focal recruitment of the 53Bp1 DNA damage response protein. Detailed kinetic and dose response assays demonstrate that, despite the absence of H3K79 methylation demonstrated by mass spectrometry, 53Bp1 focal recruitment is not compromised in these cells. We also describe, for the first time, the phenotypes of a cell line lacking both Dot1L and 53Bp1. Dot1L⁻/⁻ and wild type cells are equally resistant to ionising radiation, whereas 53Bp1⁻/⁻/Dot1L⁻/⁻ cells display a striking DNA damage resistance phenotype. Dot1L and 53Bp1 also affect the expression of many genes. Loss of Dot1L activity dramatically alters the mRNA levels of over 1200 genes involved in diverse biological functions. These results, combined with the previously reported list of differentially expressed genes in mouse ES cells knocked down for Dot1L, demonstrates surprising cell type and species conservation of Dot1L-dependent gene expression. In 53Bp1⁻/⁻ cells, over 300 genes, many with functions in immune responses and apoptosis, were differentially expressed. To date, this is the first global analysis of gene expression in a 53Bp1-deficient cell line.Taken together, our results uncover a negative role for Dot1L and H3K79 methylation in the DNA damage response in the absence of 53Bp1. They also enlighten the roles of Dot1L and 53Bp1 in gene expression and the control of DNA double-strand repair pathways in the context of chromatin

    H3 Lysine 4 Is Acetylated at Active Gene Promoters and Is Regulated by H3 Lysine 4 Methylation

    Get PDF
    Methylation of histone H3 lysine 4 (H3K4me) is an evolutionarily conserved modification whose role in the regulation of gene expression has been extensively studied. In contrast, the function of H3K4 acetylation (H3K4ac) has received little attention because of a lack of tools to separate its function from that of H3K4me. Here we show that, in addition to being methylated, H3K4 is also acetylated in budding yeast. Genetic studies reveal that the histone acetyltransferases (HATs) Gcn5 and Rtt109 contribute to H3K4 acetylation in vivo. Whilst removal of H3K4ac from euchromatin mainly requires the histone deacetylase (HDAC) Hst1, Sir2 is needed for H3K4 deacetylation in heterochomatin. Using genome-wide chromatin immunoprecipitation (ChIP), we show that H3K4ac is enriched at promoters of actively transcribed genes and located just upstream of H3K4 tri-methylation (H3K4me3), a pattern that has been conserved in human cells. We find that the Set1-containing complex (COMPASS), which promotes H3K4me2 and -me3, also serves to limit the abundance of H3K4ac at gene promoters. In addition, we identify a group of genes that have high levels of H3K4ac in their promoters and are inadequately expressed in H3-K4R, but not in set1Δ mutant strains, suggesting that H3K4ac plays a positive role in transcription. Our results reveal a novel regulatory feature of promoter-proximal chromatin, involving mutually exclusive histone modifications of the same histone residue (H3K4ac and H3K4me)

    American Gut: an Open Platform for Citizen Science Microbiome Research

    Get PDF
    McDonald D, Hyde E, Debelius JW, et al. American Gut: an Open Platform for Citizen Science Microbiome Research. mSystems. 2018;3(3):e00031-18

    Modulation of histone H3 lysine 56 acetylation as an antifungal therapeutic strategy

    No full text
    Candida albicans is a major fungal pathogen that causes serious systemic and mucosal infections in immunocompromised individuals. In yeast, histone H3 Lys56 acetylation (H3K56ac) is an abundant modification regulated by enzymes that have fungal-specific properties, making them appealing targets for antifungal therapy. Here we demonstrate that H3K56ac in C. albicans is regulated by the RTT109 and HST3 genes, which respectively encode the H3K56 acetyltransferase (Rtt109p) and deacetylase (Hst3p). We show that reduced levels of H3K56ac sensitize C. albicans to genotoxic and antifungal agents. Inhibition of Hst3p activity by conditional gene repression or nicotinamide treatment results in a loss of cell viability associated with abnormal filamentous growth, histone degradation and gross aberrations in DNA staining. We show that genetic or pharmacological alterations in H3K56ac levels reduce virulence in a mouse model of C. albicans infection. Our results demonstrate that modulation of H3K56ac is a unique strategy for treatment of C. albicans and, possibly, other fungal infections. -\uac 2010 Nature America, Inc. All rights reservedCandida albicans est un champignon pathog\ue8ne d\u2019importance qui cause des infections graves syst\ue9miques et des muqueuses chez les personnes immunod\ue9prim\ue9es. Dans les levures, l\u2019ac\ue9tylation de l\u2019histone H3 Lys56 (H3K56) est une modification abondante, r\ue9gul\ue9e par des enzymes qui pr\ue9sentent des propri\ue9t\ue9s propres aux champignons, ce qui en fait des cibles de choix dans le traitement antifongique. Dans cet article, nous d\ue9montrons que chez C. albicans, l\u2019ac\ue9tylation de H3K56 est r\ue9gul\ue9e par les g\ue8nes RTT109 et HST3 qui codent respectivement pour l\u2019ac\ue9tyltransf\ue9rase (Rtt109p) et la d\ue9ac\ue9tylase (Hst3p) de H3K56. Nous montrons que des taux moindres d\u2019ac\ue9tylation de H3K56 sensibilisent C. albicans aux agents g\ue9notoxiques et antifongiques. L\u2019inhibition de l\u2019activit\ue9 de la Hst3p par r\ue9pression g\ue9nique conditionnelle ou par traitement \ue0 la nicotinamide entra\ueene une perte de viabilit\ue9 cellulaire associ\ue9e \ue0 une croissance filamenteuse anormale, \ue0 une d\ue9gradation de l\u2019histone et \ue0 des aberrations flagrantes observ\ue9es par coloration de l\u2019ADN. Nous montrons que des modifications apport\ue9es aux taux d\u2019ac\ue9tylation de H3K56 par des moyens g\ue9n\ue9tiques ou pharmacologiques r\ue9duisent la virulence chez un mod\ue8le murin d\u2019infection par C. albicans. Nos r\ue9sultats d\ue9montrent que la modulation de l\u2019ac\ue9tylation de H3K56 constitue une strat\ue9gie unique pour le traitement des infections par C. albicans et peut-\ueatre m\ueame d\u2019autres infections fongiques. \ua9 2010 Nature America inc. Tous droits r\ue9serv\ue9s.Peer reviewed: YesNRC publication: Ye

    The Mycobacterium tuberculosis regulatory network and hypoxia

    No full text
    We have taken the first steps towards a complete reconstruction of the Mycobacterium tuberculosis regulatory network based on ChIP-Seq and combined this reconstruction with system-wide profiling of messenger RNAs, proteins, metabolites and lipids during hypoxia and re-aeration. Adaptations to hypoxia are thought to have a prominent role in M. tuberculosis pathogenesis. Using ChIP-Seq combined with expression data from the induction of the same factors, we have reconstructed a draft regulatory network based on 50 transcription factors. This network model revealed a direct interconnection between the hypoxic response, lipid catabolism, lipid anabolism and the production of cell wall lipids. As a validation of this model, in response to oxygen availability we observe substantial alterations in lipid content and changes in gene expression and metabolites in corresponding metabolic pathways. The regulatory network reveals transcription factors underlying these changes, allows us to computationally predict expression changes, and indicates that Rv0081 is a regulatory hub
    corecore