119 research outputs found

    Cellular Responses to Replication Problems

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    During every S-phase cells need to duplicate their genomes so that both daughter cells inherit complete copies of genetic information. It is a tremendous task, given the large sizes of mammalian genomes and the required precision of DNA replication. A major threat to the accuracy and efficiency of DNA synthesis is the presence of damaged DNA, e.g. abasic sites, single stranded DNA breaks, DNA crosslinks and adducts. This damage can be caused by exogenous age

    Intersemiotic Translation of Ancient Myth in the Production of Phaedra by Maja Kleczewska

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    The present paper tends to analyze the procedure of intersemiotic translation of ancient myth of Phaedra, in its written version by Euripides (Hippolytus), into the contemporary stage production of Phaedra by Maja Kleczewska. The analysis of the performance is preceded by the extended introduction regarding reception of myth in general, and reception of Phaedra myth in particular. In this context, theories of Hans Blumenberg and Gilbert Durand are recalled in order to establish the understanding of myth’s transformation. Myth of Phaedra is scrutinized diachronically and synchronically within the background of Maurice Merleau-Ponty’s idea of body and sexuality. The theatre production is explored with reference to its textual basis (Euripides, Seneca, Tasnádi, Enquist) on the one hand, and in relation to the contemporary theories of actor’s body (Erika Fischer-Lichte, Hans-Thies Lehmann). The overarching goal of the paper is to analyze the procedure of intersemiotic translation of the mythical core of Phaedra myth (defined in terms of body) into actor’s body on stage (defined in its phenomenology).finansowanie z program SONATA Narodowego Centrum Nauki (DEC-2012/07/D/HS2/01106

    In the Universe of Cassandra: The Ancient Topos of Clairvoyance in the Futuristic World of Minority Report (2002)

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    The figure of Cassandra is well-known from numerous representations in ancient and modern literature as an archetype of a woman who has the power to see the future, but whose visions are not believed. In ancient Greek literature, Cassandra was an important character serving as a prophet of an approaching catastrophe. In her modern adaptations, this figure became a metaphor in psychoanalytical research on human moral behaviour (Melanie Klein and the Cassandra complex) developed in feminist writing. Cassandra has also been of interest to filmmakers, with perhaps the best adaptation of the subject of Cassandra’s clairvoyance being Steven Spielberg’s film Minority Report. Loosely based on Philip K. Dick’s 1956 short story The Minority Report, the plot presents a version of the Cassandra myth, in which a woman together with male twins operate as a group mind to predict future crimes. Their visions are used by the state to prevent the crimes and imprison the would-be criminals. This article offers a thorough analysis of all the ancient and modern features of the metaphor of Cassandra employed in this movie within the overarching framework of the central theme of free will vs. determinism. According to this approach, the central theme is examined with reference to ancient Aristotelian and Stoic moral philosophy, the modern feminist psychoanalysis of Melanie Klein, and the political philosophy and legal issues in the post-9/11 world

    Replication-Dependent Unhooking of DNA Interstrand Cross-Links by the NEIL3 Glycosylase

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    During eukaryotic DNA interstrand cross-link (ICL) repair, cross-links are resolved (“unhooked”) by nucleolytic incisions surrounding the lesion. In vertebrates, ICL repair is triggered when replication forks collide with the lesion, leading to FANCI-FANCD2-dependent unhooking and formation of a double-strand break (DSB) intermediate. Using Xenopus egg extracts, we describe here a replication-coupled ICL repair pathway that does not require incisions or FANCI-FANCD2. Instead, the ICL is unhooked when one of the two N-glycosyl bonds forming the cross-link is cleaved by the DNA glycosylase NEIL3. Cleavage by NEIL3 is the primary unhooking mechanism for psoralen and abasic site ICLs. When N-glycosyl bond cleavage is prevented, unhooking occurs via FANCI-FANCD2-dependent incisions. In summary, we identify an incision-independent unhooking mechanism that avoids DSB formation and represents the preferred pathway of ICL repair in a vertebrate cell-free system

    Replication-Dependent Unhooking of DNA Interstrand Cross-Links by the NEIL3 Glycosylase

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    During eukaryotic DNA interstrand cross-link (ICL) repair, cross-links are resolved (“unhooked”) by nucleolytic incisions surrounding the lesion. In vertebrates, ICL repair is triggered when replication forks collide with the lesion, leading to FANCI-FANCD2-dependent unhooking and formation of a double-strand break (DSB) intermediate. Using Xenopus egg extracts, we describe here a replication-coupled ICL repair pathway that does not require incisions or FANCI-FANCD2. Instead, the ICL is unhooked when one of the two N-glycosyl bonds forming the cross-link is cleaved by the DNA glycosylase NEIL3. Cleavage by NEIL3 is the primary unhooking mechanism for psoralen and abasic site ICLs. When N-glycosyl bond cleavage is prevented, unhooking occurs via FANCI-FANCD2-dependent incisions. In summary, we identify an incision-independent unhooking mechanism that avoids DSB formation and represents the preferred pathway of ICL repair in a vertebrate cell-free system

    The structure-specific endonuclease Ercc1-Xpf is required to resolve DNA insterstrand cross-link-induced double-strand breaks

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    Interstrand cross-links (ICLs) are an extremely toxic class of DNA damage incurred during normal metabolism or cancer chemotherapy. ICLs covalently tether both strands of duplex DNA, preventing the strand unwinding that is essential for polymerase access. The mechanism of ICL repair in mammalian cells is poorly understood. However, genetic data implicate the Ercc1-Xpf endonuclease and proteins required for homologous recombination-mediated double-strand break (DSB) repair. To examine the role of Ercc1-Xpf in ICL repair, we monitored the phosphorylation of histone variant H2AX (gamma-H2AX). The phosphoprotein accumulates at DSBs, forming foci that can be detected by immunostaining. Treatment of wild-type cells with mitomycin C (MMC) induced gamma-H2AX foci and increased the amount of DSBs detected by pulsed-field gel electrophoresis. Surprisingly, gamma-H2AX foci were also induced in Ercc1(-/-) cells by MMC treatment. Thus, DSBs occur after cross-link damage via an Ercc1-independent mechanism. Instead, ICL-induced DSB formation required cell cycle progression into S phase, suggesting that DSBs are an intermediate of ICL repair that form during DNA replication. In Ercc1(-/-) cells, MMC-induced gamma-H2AX foci persisted at least 48 h longer than in wild-type cells, demonstrating that Ercc1 is required for the resolution of cross-link-induced DSBs. MMC triggered sister chromatid exchanges in wild-type cells but chromatid fusions in Ercc1(-/-) and Xpf mutant cells, indicating that in their absence, repair of DSBs is prevented. Collectively, these data support a role for Ercc1-Xpf in processing ICL-induced DSBs so that these cytotoxic intermediates can be repaired by homologous recombination

    Metnase promotes restart and repair of stalled and collapsed replication forks

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    Metnase is a human protein with methylase (SET) and nuclease domains that is widely expressed, especially in proliferating tissues. Metnase promotes non-homologous end-joining (NHEJ), and knockdown causes mild hypersensitivity to ionizing radiation. Metnase also promotes plasmid and viral DNA integration, and topoisomerase IIα (TopoIIα)-dependent chromosome decatenation. NHEJ factors have been implicated in the replication stress response, and TopoIIα has been proposed to relax positive supercoils in front of replication forks. Here we show that Metnase promotes cell proliferation, but it does not alter cell cycle distributions, or replication fork progression. However, Metnase knockdown sensitizes cells to replication stress and confers a marked defect in restart of stalled replication forks. Metnase promotes resolution of phosphorylated histone H2AX, a marker of DNA double-strand breaks at collapsed forks, and it co-immunoprecipitates with PCNA and RAD9, a member of the PCNA-like RAD9–HUS1–RAD1 intra-S checkpoint complex. Metnase also promotes TopoIIα-mediated relaxation of positively supercoiled DNA. Metnase is not required for RAD51 focus formation after replication stress, but Metnase knockdown cells show increased RAD51 foci in the presence or absence of replication stress. These results establish Metnase as a key factor that promotes restart of stalled replication forks, and implicate Metnase in the repair of collapsed forks
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