16 research outputs found

    Search for dark matter produced in association with bottom or top quarks in √s = 13 TeV pp collisions with the ATLAS detector

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    A search for weakly interacting massive particle dark matter produced in association with bottom or top quarks is presented. Final states containing third-generation quarks and miss- ing transverse momentum are considered. The analysis uses 36.1 fb−1 of proton–proton collision data recorded by the ATLAS experiment at √s = 13 TeV in 2015 and 2016. No significant excess of events above the estimated backgrounds is observed. The results are in- terpreted in the framework of simplified models of spin-0 dark-matter mediators. For colour- neutral spin-0 mediators produced in association with top quarks and decaying into a pair of dark-matter particles, mediator masses below 50 GeV are excluded assuming a dark-matter candidate mass of 1 GeV and unitary couplings. For scalar and pseudoscalar mediators produced in association with bottom quarks, the search sets limits on the production cross- section of 300 times the predicted rate for mediators with masses between 10 and 50 GeV and assuming a dark-matter mass of 1 GeV and unitary coupling. Constraints on colour- charged scalar simplified models are also presented. Assuming a dark-matter particle mass of 35 GeV, mediator particles with mass below 1.1 TeV are excluded for couplings yielding a dark-matter relic density consistent with measurements

    Combinations of single-top-quark production cross-section measurements and vertical bar f(LV)V(tb)vertical bar determinations at root s=7 and 8 TeV with the ATLAS and CMS experiments

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    This paper presents the combinations of single-top-quark production cross-section measurements by the ATLAS and CMS Collaborations, using data from LHC proton-proton collisions at = 7 and 8 TeV corresponding to integrated luminosities of 1.17 to 5.1 fb(-1) at = 7 TeV and 12.2 to 20.3 fb(-1) at = 8 TeV. These combinations are performed per centre-of-mass energy and for each production mode: t-channel, tW, and s-channel. The combined t-channel cross-sections are 67.5 +/- 5.7 pb and 87.7 +/- 5.8 pb at = 7 and 8 TeV respectively. The combined tW cross-sections are 16.3 +/- 4.1 pb and 23.1 +/- 3.6 pb at = 7 and 8 TeV respectively. For the s-channel cross-section, the combination yields 4.9 +/- 1.4 pb at = 8 TeV. The square of the magnitude of the CKM matrix element V-tb multiplied by a form factor f(LV) is determined for each production mode and centre-of-mass energy, using the ratio of the measured cross-section to its theoretical prediction. It is assumed that the top-quark-related CKM matrix elements obey the relation |V-td|, |V-ts| << |V-tb|. All the |f(LV)V(tb)|(2) determinations, extracted from individual ratios at = 7 and 8 TeV, are combined, resulting in |f(LV)V(tb)| = 1.02 +/- 0.04 (meas.) +/- 0.02 (theo.). All combined measurements are consistent with their corresponding Standard Model predictions.Peer reviewe

    Measurement of the inclusive isolated-photon cross section in pp collisions at √s = 13 TeV using 36 fb−1 of ATLAS data

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    The differential cross section for isolated-photon production in pp collisions is measured at a centre-of-mass energy of 13 TeV with the ATLAS detector at the LHC using an integrated luminosity of 36.1 fb. The differential cross section is presented as a function of the photon transverse energy in different regions of photon pseudorapidity. The differential cross section as a function of the absolute value of the photon pseudorapidity is also presented in different regions of photon transverse energy. Next-to-leading-order QCD calculations from Jetphox and Sherpa as well as next-to-next-to-leading-order QCD calculations from Nnlojet are compared with the measurement, using several parameterisations of the proton parton distribution functions. The predictions provide a good description of the data within the experimental and theoretical uncertainties. [Figure not available: see fulltext.

    Die Rolle DREAM/MMB-vermittelter mitotischer Genexpression unterhalb von mutiertem K-Ras in Lungenkrebs

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    The evolutionary conserved Myb-MuvB (MMB) multiprotein complex has an essential role in transcriptional activation of mitotic genes. MMB target genes as well as the MMB associated transcription factor B-Myb and FoxM1 are highly expressed in a range of different cancer types. The elevated expression of these genes correlates with an advanced tumor state and a poor prognosis. This suggests that MMB could contribute to tumorigenesis by mediating overexpression of mitotic genes. Although MMB has been extensively characterized biochemically, the requirement for MMB to tumorigenesis in vivo remains largely unknown and has not been tested directly so far. In this study, conditional knockout of the MMB core member Lin9 inhibits tumor formation in vivo in a mouse model of lung cancer driven by oncogenic K-Ras and loss of p53. The incomplete recombination observed within tumors points towards an enormous selection pressure against the complete loss of Lin9. RNA interference (RNAi)-mediated depletion of Lin9 or the MMB associated subunit B-Myb provides evidence that MMB is required for the expression of mitotic genes in lung cancer cells. Moreover, it was demonstrated that proliferation of lung cancer cells strongly depends on MMB. Furthermore, in this study, the relationship of MMB to the p53 tumor suppressor was investigated in a primary lung cancer cell line with restorable p53 function. Expression analysis revealed that mitotic genes are downregulated after p53 re-expression. Moreover, activation of p53 induces formation of the repressive DREAM complex and results in enrichment of DREAM at mitotic gene promoters. Conversely, MMB is displaced at these promoters. Based on these findings the following model is proposed: In p53-negative cells, mitogenic stimuli foster the switch from DREAM to MMB. Thus, mitotic genes are overexpressed and may promote chromosomal instability and tumorigenesis. This study provides evidence that MMB contributes to the upregulation of G2/M phase-specific genes in p53-negative cells and suggests that inhibition of MMB (or its target genes) might be a strategy for treatment of lung cancer.Der evolutionär konservierte Myb-MuvB (MMB) Multiproteinkomplex hat eine wesentliche Rolle in der transkriptionellen Aktivierung mitotischer Gene. Zielgene des MMB sowie die MMB assoziierten Transkriptionsfaktoren B-Myb und FoxM1 sind hoch exprimiert in einer Bandbreite verschiedener Krebsarten. Die erhöhte Expression dieser Gene korreliert mit einem fortgeschrittenen Tumorstadium und einer geringen Prognose. Das weißt auf darauf hin, dass MMB an der Tumorentstehung beteiligt sein könnte indem es die Überexpression mitotischer Gene fördert. Obwohl MMB biochemisch eingehend untersucht wurde, ist die Erfordernis von MMB zur Tumorentstehung in vivo weitestgehend unbekannt und wurde bisher nicht direkt getestet. In dieser Studie hemmt der konditionale Knockout der MMB Kerneinheit Lin9 die Tumorbildung in vivo in einem Lungenkrebs-Mausmodell angetrieben durch onkogenes K-Ras und den Verlust von p53. Die unvollständige Rekombination welche in Tumoren beobachtet wurde deutet auf einen starken Selektionsdruck gegen den kompletten Verlust von Lin9 hin. Die Verminderung von Lin9 und der MMB- assoziierten Untereinheit B-Myb durch RNAi-Interferenz (RNAi) liefert Beweise dafür, dass MMB für die Expression mitotischer Gene in Lungenkrebszellen notwendig ist. Zudem wurde gezeigt, dass das Zellwachstum von Lungenkrebszellen stark von MMB abhängig ist. Weiterhin wurde der Zusammenhang zwischen MMB und dem p53-Tumorsuppressor in einer primären Lungenkrebszelllinie mit wiederherstellbarer p53-Funktion untersucht. Expressionsanalysen zeigen, dass mitotische Gene nach Re-expression von p53 runterreguliert werden. Außerdem induziert die Aktivierung von p53 die Bildung des repressiven DREAM-Komplexes und führt zu einer Anreicherung von DREAM an Promotoren mitotischer Gene. Im Gegenzug wird MMB an den Promotoren verdrängt. Basierend auf den Ergebnissen wird das folgende Model vorgeschlagen: In p53- negativen Zellen begünstigen mitogene Reize den Wechsel von DREAM zu MMB. Dadurch werden mitotische Gene überexprimiert und können so chromosomale Instabilität und Tumorentstehung fördern Diese Studie liefert Hinweise, dass MMB an der Hochregulation G2/M- Phasenspezifischer Gene in p53-negativen Zellen beteiligt ist und dass die Hemmung von MMB (oder seiner Zielgene) eine Strategie zur Behandlung von Lungenkrebs sein könnte

    LIN9, a Subunit of the DREAM Complex, Regulates Mitotic Gene Expression and Proliferation of Embryonic Stem Cells

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    The DREAM complex plays an important role in regulation of gene expression during the cell cycle. We have previously shown that the DREAM subunit LIN9 is required for early embryonic development and for the maintenance of the inner cell mass in vitro. In this study we examined the effect of knocking down LIN9 on ESCs. We demonstrate that depletion of LIN9 alters the cell cycle distribution of ESCs and results in an accumulation of cells in G2 and M and in an increase of polyploid cells. Genome-wide expression studies showed that the depletion of LIN9 results in downregulation of mitotic genes and in upregulation of differentiation-specific genes. ChIP-on chip experiments showed that mitotic genes are direct targets of LIN9 while lineage specific markers are regulated indirectly. Importantly, depletion of LIN9 does not alter the expression of pluripotency markers SOX2, OCT4 and Nanog and LIN9 depleted ESCs retain alkaline phosphatase activity. We conclude that LIN9 is essential for proliferation and genome stability of ESCs by activating genes with important functions in mitosis and cytokinesis

    Validation of LIN9 target genes in ESCs.

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    <p>(A) & (C) Validation of microarray results by RT-qPCR. The expression of the indicated genes in control transfected cells and cells transfected with pSUPER-LIN9 was compared. (B) Expression of Cyclin B1 in control transfected ESCs and ESCs transfected with pSUPER-LIN9 was analyzed by immunoblotting. Tubulin was used as control for equal loading.</p

    Gene expression changes after depletion of LIN9 in ESCs.

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    <p>(A) Number of up- and downregulated genes in LIN9 depleted cells identified by microarray analysis. For a list of regulated genes see Supplemental <a href="http://www.plosone.org/article/info:doi/10.1371/journal.pone.0062882#pone.0062882.s002" target="_blank">Table S1</a> (B) & (C) GO analysis was applied to differentially expressed genes. Listed are the top fifteen overrepresented GO terms according to the p-value. For complete lists of GO terms with a p-value of less than 0.05 see Supplemental <a href="http://www.plosone.org/article/info:doi/10.1371/journal.pone.0062882#pone.0062882.s003" target="_blank">Table S2</a> and <a href="http://www.plosone.org/article/info:doi/10.1371/journal.pone.0062882#pone.0062882.s004" target="_blank">S3</a>.</p

    Cell cycle arrest in G2/M after depletion of LIN9.

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    <p>(A) Alkaline-phosphatase (AP) staining of control cells and LIN9 depleted cells. Scale bar: 200 µM (B) Expression of pluripotency markers Oct4 and Sox2 was analyzed in control-depleted cells and LIN9 depleted cells by RT-qPCR. (C) The cell cycle profile of LIN9 depleted ESCs and of control cells was analyzed by flow cytometry.</p

    Identification of direct targets of LIN9 by ChIP-on-chip.

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    <p>(A) Functional categories of targets of LIN9 identified by ChIP-on-chip. LIN9 bound promoters were analyzed for enrichment of Gene Ontology terms. Shown are the top fifteen overrepresented GO terms according to the p-value. For a complete list bound promoters and GO terms with a p-value of less than 0.05 see Supplemental <a href="http://www.plosone.org/article/info:doi/10.1371/journal.pone.0062882#pone.0062882.s005" target="_blank">Tables S4</a> and <a href="http://www.plosone.org/article/info:doi/10.1371/journal.pone.0062882#pone.0062882.s006" target="_blank">S5</a>. (B) Mitotic genes are direct targets of LIN9 in ESCs. Comparison of gene expression data and ChIP-on-chip data. Shown are genes that are downregulated after depletion of LIN9 and that have a known function in mitosis. “√” indicates that binding of LIN9 to the promoter was detected by ChIP-on-chip. “−” indicates that no binding was detected. (C) Binding of LIN9 to the promoters of randomly selected mitotic targets genes was confirmed by conventional ChIP.</p
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