Results for 'DNA'

286+ found
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  1. Recognition as a valued human being: Perspectives of mental health service users.Kristin Ådnøy Eriksen, Bengt Sundfør, Bengt Karlsson, Maj-Britt Råholm & Maria Arman - 2012 - Nursing Ethics 19 (3):357-368.
    The acknowledgement of basic human vulnerability in relationships between mental health service users and professionals working in community-based mental health services (in Norway) was a starting point. The purpose was to explore how users of these services describe and make sense of their meetings with other people. The research is collaborative, with researcher and person with experienced-based knowledge cooperating through the research process. Data is derived from 19 interviews with 11 people who depend on mental health services for assistance at (...)
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  2.  79
    Strengthening practical wisdom.Kristin Ådnøy Eriksen, Hellen Dahl, Bengt Karlsson & Maria Arman - 2014 - Nursing Ethics 21 (6):707-719.
    Background: Practical wisdom, understood as knowing how to be or act in any present situation with clients, is believed to be an essential part of the knowledge needed to be a professional mental health worker. Exploring processes of adapting, extending knowledge and refining tacit knowledge grounded in mental health workers’ experiences with being in practice may bring awareness of how mental health workers reflect, learn and practice professional ‘artistry’. Research question: The aim of the article was to explore mental health (...)
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  3. (1 other version)Synthetic DNA and mitochondrial donation: no need for donor eggs?Adrian Villalba, Iain Brassington, Anna Smajdor & Daniela Cutas - 2025 - Journal of Medical Ethics.
    Mitochondrial replacement therapy has been developed in order to prevent the transmission of mitochondrial mutations, yet it raises ethical concerns, particularly regarding the involvement of third-party DNA and the risks associated with donor procedures. This paper explores an alternative approach using synthetic DNA (synDNA) to construct mitochondrial organelles, thereby bypassing the need for donor oocytes and bypassing risks to donors. We argue that those who support mitochondrial replacement techniques as an ethically acceptable means of preventing the transmission of mitochondrial disease (...)
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  4.  91
    DNA topoisomerases: Advances in understanding of cellular roles and multi‐protein complexes via structure‐function analysis.Shannon J. McKie, Keir C. Neuman & Anthony Maxwell - 2021 - Bioessays 43 (4):2000286.
    DNA topoisomerases, capable of manipulating DNA topology, are ubiquitous and indispensable for cellular survival due to the numerous roles they play during DNA metabolism. As we review here, current structural approaches have revealed unprecedented insights into the complex DNA‐topoisomerase interaction and strand passage mechanism, helping to advance our understanding of their activities in vivo. This has been complemented by single‐molecule techniques, which have facilitated the detailed dissection of the various topoisomerase reactions. Recent work has also revealed the importance of topoisomerase (...)
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  5. DNA Methylation in Embryo Development: Epigenetic Impact of ART.Sebastian Canovas, Pablo J. Ross, Gavin Kelsey & Pilar Coy - 2017 - Bioessays 39 (11):1700106.
    DNA methylation can be considered a component of epigenetic memory with a critical role during embryo development, and which undergoes dramatic reprogramming after fertilization. Though it has been a focus of research for many years, the reprogramming mechanism is still not fully understood. Recent results suggest that absence of maintenance at DNA replication is a major factor, and that there is an unexpected role for TET3-mediated oxidation of 5mC to 5hmC in guarding against de novo methylation. Base-resolution and genome-wide profiling (...)
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  6. Integrating DNA barcode data and taxonomic practice: Determination, discovery, and description.Paul Z. Goldstein & Rob DeSalle - 2011 - Bioessays 33 (2):135-147.
    DNA barcodes, like traditional sources of taxonomic information, are potentially powerful heuristics in the identification of described species but require mindful analytical interpretation. The role of DNA barcoding in generating hypotheses of new taxa in need of formal taxonomic treatment is discussed, and it is emphasized that the recursive process of character evaluation is both necessary and best served by understanding the empirical mechanics of the discovery process. These undertakings carry enormous ramifications not only for the translation of DNA sequence (...)
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  7.  69
    DNA methylation reprogramming in cancer: Does it act by re‐configuring the binding landscape of Polycomb repressive complexes?James P. Reddington, Duncan Sproul & Richard R. Meehan - 2014 - Bioessays 36 (2):134-140.
    DNA methylation is a repressive epigenetic mark vital for normal development. Recent studies have uncovered an unexpected role for the DNA methylome in ensuring the correct targeting of the Polycomb repressive complexes throughout the genome. Here, we discuss the implications of these findings for cancer, where DNA methylation patterns are widely reprogrammed. We speculate that cancer‐associated reprogramming of the DNA methylome leads to an altered Polycomb binding landscape, influencing gene expression by multiple modes. As the Polycomb system is responsible for (...)
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  8. DNA supercoiling helps to unlink sister duplexes after replication.Alexander Vologodskii - 2010 - Bioessays 32 (1):9-12.
    DNA supercoiling is one of the mechanisms that can help unlinking of newly replicated DNA molecules. Although DNA topoisomerases, which catalyze the strand passing of DNA segments through one another, make the unlinking problem solvable in principle, it remains difficult to complete the process that enables the separation of the sister duplexes. A few different mechanisms were developed by nature to solve the problem. Some of the mechanisms are very intuitive while the others, like topology simplification by type II DNA (...)
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  9. DNA patents and scientific discovery and innovation: Assessing benefits and risks.David B. Resnik - 2001 - Science and Engineering Ethics 7 (1):29-62.
    This paper focuses on the question of whether DNA patents help or hinder scientific discovery and innovation. While DNA patents create a wide variety of possible benefits and harms for science and technology, the evidence we have at this point in time supports the conclusion that they will probably promote rather than hamper scientific discovery and innovation. However, since DNA patenting is a relatively recent phenomena and the biotechnology industry is in its infancy, we should continue to gather evidence about (...)
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  10. The DNA Technology (Use and Application) Regulation Bill, 2019: A Critical Analysis.Deepa Kansra, Manpreet Dhillon, Mandira Narain, Prabhat Mishra, Nupur Chowdhury & P. Puneeth - 2021 - Indian Law Institute Law Review 1 (Winter):278-301.
    The aim of this paper is to explain the emergence and use of DNA fingerprinting technology in India, noting the specific concerns faced by the Indian Legal System related to the use of this novel forensic technology in the justice process. Furthermore, the proposed construction of a National DNA Data Bank is discussed taking into consideration the challenges faced by the government in legislating the DNA Bill into law. A critical analysis of the DNA Technology (Use and Application) Regulation Bill, (...)
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  11.  80
    DNA replication timing: Biochemical mechanisms and biological significance.Nicholas Rhind - 2022 - Bioessays 44 (11):2200097.
    The regulation of DNA replication is a fascinating biological problem both from a mechanistic angle—How is replication timing regulated?—and from an evolutionary one—Why is replication timing regulated? Recent work has provided significant insight into the first question. Detailed biochemical understanding of the mechanism and regulation of replication initiation has made possible robust hypotheses for how replication timing is regulated. Moreover, technical progress, including high‐throughput, single‐molecule mapping of replication initiation and single‐cell assays of replication timing, has allowed for direct testing of (...)
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  12.  52
    Recombinant DNA and Genome-editing Technologies: Embodied Utopias and Heterotopias.Eva Šlesingerová - 2021 - Body and Society 27 (2):32-57.
    Recombinant DNA technology is an essential area of life engineering. The main aim of research in this field is to experimentally explore the possibilities of repairing damaged human DNA, healing or enhancing future human bodies. Based on ethnographic research in a Czech biochemical laboratory, the article explores biotechnological corporealities and their specific ontology through dealings with bio-objects, the bodywork of scientists. Using the complementary concepts of utopia and heterotopia, the text addresses the situation of bodies and bio-objects in a laboratory. (...)
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  13. Divine dna? “Secular” and “religious” representations of science in nonfiction science television programs.Will Mason-Wilkes - 2020 - Zygon 55 (1):6-26.
    Through analysis of film sequences focusing on DNA in two British Broadcasting Corporation nonfiction science television programs, Wonders of Life and Bang! Goes the Theory, first broadcast in 2013, contrasting “religious” and “secular” representations of science are identified. In the “religious” portrayal, immutable scientific knowledge is revealed to humanity by nature with minimal human intervention. Science provides a creation story, “explanatory omnicompetence,” and makes life existentially meaningful. In the “secular” portrayal, scientific knowledge is changeable; is produced through technical skill in (...)
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  14.  75
    Recombinational DNA repair is regulated by compartmentalization of DNA lesions at the nuclear pore complex.Vincent Géli & Michael Lisby - 2015 - Bioessays 37 (12):1287-1292.
    The nuclear pore complex (NPC) is emerging as a center for recruitment of a class of “difficult to repair” lesions such as double‐strand breaks without a repair template and eroded telomeres in telomerase‐deficient cells. In addition to such pathological situations, a recent study by Su and colleagues shows that also physiological threats to genome integrity such as DNA secondary structure‐forming triplet repeat sequences relocalize to the NPC during DNA replication. Mutants that fail to reposition the triplet repeat locus to the (...)
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  15.  52
    DNA pedagogy: between sociology of science and historical-epistemic issues (Pedagogia del DNA: tra sociologia della scienza e questioni storico-epistemiche).Teresa Celestino - 2023 - Science and Philosophy 11 (2):7-28.
    The pedagogical function of science teaching may benefit from an analysis of the historical-epistemic dimension, without neglecting the socio-political context in which a given research was carried out. In the case of DNA structure, the background of its discovery is particularly complex. Starting from the analysis of some papers, the view on the circumstances that led to their drafting broadens. We try to answer the fundamental question for any educator: why teach all that? Ethics issues are related to the general (...)
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  16.  63
    Discovering DNA Methylation, the History and Future of the Writing on DNA.Joshua D. Tompkins - 2022 - Journal of the History of Biology 55 (4):865-887.
    DNA methylation is a quintessential epigenetic mechanism. Widely considered a stable regulator of gene silencing, it represents a form of “molecular braille,” chemically printed on DNA to regulate its structure and the expression of genetic information. However, there was a time when methyl groups simply existed in cells, mysteriously speckled across the cytosine building blocks of DNA. Why was the code of life chemically modified, apparently by “no accident of enzyme action” (Wyatt 1951 )? If all cells in a body (...)
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  17. The ethics of synthetic DNA.Villalba Adrian, Anna Smajdor, Iain Brassington & Daniela Cutas - forthcoming - Journal of Medical Ethics.
    In this paper, we discuss the ethical concerns that may arise from the synthesis of human DNA. To date, only small stretches of DNA have been constructed, but the prospect of generating human genomes is becoming feasible. At the same time, the significance of genes for identity, health and reproduction is coming under increased scrutiny. We examine the implications of DNA synthesis and its impact on debates over the relationship with our DNA and the ownership of our genes, its potential (...)
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  18.  78
    Forensic DNA databases in European countries: is size linked to performance?Susana Silva, Helena Machado & Filipe Santos - 2013 - Life Sciences, Society and Policy 9 (1):1-13.
    The political and financial investments in the implementation of forensic DNA databases and the ethical issues related to their use and expansion justify inquiries into their performance and general utility. The main function of a forensic DNA database is to produce matches between individuals and crime scene stains, which requires a constant input of individual profiles and crime scene stains. This is conditioned, among other factors, by the legislation, namely the criteria for inclusion of profiles and the periods of time (...)
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  19. DNA Fingerprinting and the Offertory Prayer: A Sermon.Kim L. Beckmann - 1999 - Zygon 34 (3):537-541.
    This Christian sermon uses a DNA lab experience as a basis for theological reflection on ourselves and our offering. Who are we to God? What determines the self that we offer? Can the alphabet of DNA shed light for us on the Word of God in our lives? This first attempt to introduce the language and laboratory environment of genetic testing (represented by DNA fingerprinting) within a parish preaching context juxtaposes liturgical, scientific, and biblical language and settings for fresh insights.
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  20.  96
    DNA replication timing: Coordinating genome stability with genome regulation on the X chromosome and beyond.Amnon Koren - 2014 - Bioessays 36 (10):997-1004.
    Recent studies based on next‐generation DNA sequencing have revealed that the female inactive X chromosome is replicated in a rapid, unorganized manner, and undergoes increased rates of mutation. These observations link the organization of DNA replication timing to gene regulation on one hand, and to the generation of mutations on the other hand. More generally, the exceptional biology of the inactive X chromosome highlights general principles of genome replication. Cells may control replication timing by a combination of intrinsic replication origin (...)
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  21.  28
    Recombinant DNA: science, ethics, and politics.John Richards (ed.) - 1978 - New York: Academic Press.
    Science; Ethics; Politics; Beyond recombinant dna.
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  22.  99
    Integrating DNA methylation dynamics into a framework for understanding epigenetic codes.Keith E. Szulwach & Peng Jin - 2014 - Bioessays 36 (1):107-117.
    Genomic function is dictated by a combination of DNA sequence and the molecular mechanisms controlling access to genetic information. Access to DNA can be determined by the interpretation of covalent modifications that influence the packaging of DNA into chromatin, including DNA methylation and histone modifications. These modifications are believed to be forms of “epigenetic codes” that exist in discernable combinations that reflect cellular phenotype. Although DNA methylation is known to play important roles in gene regulation and genomic function, its contribution (...)
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  23.  20
    (2 other versions)DNA and The Commons.David Koepsell - 2015 - In Michael Boylan, Who Owns You? Wiley. pp. 119–136.
    This chapter contains sections titled: Current Schemes of Intellectual Property Protection Existing Forms of Property Protection Brute Facts and Genes Unique Property Protection for DNA? The Notion of the Commons The Commons as a Choice The Commons by Necessity DNA as a Commons Is DNA More like Ideas or Radio Spectra?
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  24.  90
    DNA Conformation Regulates Gene Expression: The MYC Promoter and Beyond.Olga Zaytseva & Leonie M. Quinn - 2018 - Bioessays 40 (4):1700235.
    Emerging evidence suggests that DNA topology plays an instructive role in cell fate control through regulation of gene expression. Transcription produces torsional stress, and the resultant supercoiling of the DNA molecule generates an array of secondary structures. In turn, local DNA architecture is harnessed by the cell, acting within sensory feedback mechanisms to mediate transcriptional output. MYC is a potent oncogene, which is upregulated in the majority of cancers; thus numerous studies have focused on detailed understanding of its regulation. Dissection (...)
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  25. From DNA- to NA-centrism and the conditions for gene-centrism revisited.Alexis De Tiège, Koen Tanghe, Johan Braeckman & Yves Van de Peer - 2014 - Biology and Philosophy 29 (1):55-69.
    First the ‘Weismann barrier’ and later on Francis Crick’s ‘central dogma’ of molecular biology nourished the gene-centric paradigm of life, i.e., the conception of the gene/genome as a ‘central source’ from which hereditary specificity unidirectionally flows or radiates into cellular biochemistry and development. Today, due to advances in molecular genetics and epigenetics, such as the discovery of complex post-genomic and epigenetic processes in which genes are causally integrated, many theorists argue that a gene-centric conception of the organism has become problematic. (...)
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  26.  58
    DNA adenine methylation in eukaryotes: Enzymatic mark or a form of DNA damage?Matthias Bochtler & Humberto Fernandes - 2021 - Bioessays 43 (3):2000243.
    Abstract6‐methyladenine (6mA) is fairly abundant in nuclear DNA of basal fungi, ciliates and green algae. In these organisms, 6mA is maintained near transcription start sites in ApT context by a parental‐strand instruction dependent maintenance methyltransferase and is positively associated with transcription. In animals and plants, 6mA levels are high only in organellar DNA. The 6mA levels in nuclear DNA are very low. They are attributable to nucleotide salvage and the activity of otherwise mitochondrial METTL4, and may be considered as a (...)
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  27.  76
    DNA G‐Quadruplexes (G4s) Modulate Epigenetic (Re)Programming and Chromatin Remodeling.Anna Varizhuk, Ekaterina Isaakova & Galina Pozmogova - 2019 - Bioessays 41 (9):1900091.
    Here, the emerging data on DNA G‐quadruplexes (G4s) as epigenetic modulators are reviewed and integrated. This concept has appeared and evolved substantially in recent years. First, persistent G4s (e.g., those stabilized by exogenous ligands) were linked to the loss of the histone code. More recently, transient G4s (i.e., those formed upon replication or transcription and unfolded rapidly by helicases) were implicated in CpG island methylation maintenance and de novo CpG methylation control. The most recent data indicate that there are direct (...)
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  28. Commercial DNA tests and police investigations: a broad bioethical perspective.Nina F. de Groot, Britta C. van Beers & Gerben Meynen - 2021 - Journal of Medical Ethics 47 (12):788-795.
    Over 30 million people worldwide have taken a commercial at-home DNA test, because they were interested in their genetic ancestry, disease predisposition or inherited traits. Yet, these consumer DNA data are also increasingly used for a very different purpose: to identify suspects in criminal investigations. By matching a suspect’s DNA with DNA from a suspect’s distant relatives who have taken a commercial at-home DNA test, law enforcement can zero in on a perpetrator. Such forensic use of consumer DNA data has (...)
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  29.  97
    (1 other version)DNA Patents and Human Dignity.David B. Resnik - 2001 - Journal of Law, Medicine and Ethics 29 (2):152-165.
    Those objecting to human DNA patenting frequently do so on the grounds that the practice violates or threatens human dignity. For example, from 1993 to 1994, more than thirty organizations representing indigenous peoples approved formal declarations objecting to the National Institutes of Health's bid to patent viral DNA taken from subjects in Papua New Guinea and the Solomon Islands. Although these were not patents on human DNA, the organizations argued that the patents could harm and exploit indigenous peoples and violate (...)
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  30.  62
    DNA barcoding and the changing ontological commitments of taxonomy.James W. E. Lowe & David S. Ingram - 2023 - Biology and Philosophy 38 (4):1-27.
    This paper assesses the effect of DNA barcoding—the use of informative genetic markers to identify and discriminate between species—on taxonomy. Throughout, we interpret this in terms of _varipraxis_, a concept we introduce to make sense of the treatment of biological variation by scientists and other practitioners. From its inception, DNA barcoding was criticised for being reductive, in attempting to replace multiple forms of taxonomic evidence with just one: DNA sequence variation in one or a few indicative genes. We show, though, (...)
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  31.  21
    DNA and Family Matters.Madeline Kilty - 2016 - Germany: LAP Lambert Academic Publishing.
    Under the terms of the UN Convention on the Rights of the Child, which Australia has ratified, children have a right to know who their genetic parents are. As a result, we have a duty to establish these facts and to make this information available for children to access should they wish to know. Introducing mandatory DNA testing of newborns and their alleged genetic parents is one viable option to ensure that this information is available for children to access. Indeed, (...)
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  32.  98
    DNA-Banken und Treuhandschaft [DNA Banking and Trusteeship].Doris Schröder & Garrath Williams - 2002 - Ethik in der Medizin 14 (2):84-95.
    Definition of the problem:The frequency and scope of human genetic banking has increased significantly in recent years and is set to expand still further. Two of the major growth areas in medical research, pharmacogenomics and population genetics, rely on large DNA banks to provide extensive, centralised and standardised genetic information as well as clinical and personal data. This development raises ethical concerns. Arguments and conclusion: Our article focuses on the appropriateness of informed consent as a means to safeguard both research (...)
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  33. Silent witness, articulate collective: Dna evidence and the inference of visible traits.Amade M'charek - 2008 - Bioethics 22 (9):519-528.
    DNA profiling is a well-established technology for use in the criminal justice system, both in courtrooms and elsewhere. The fact that DNA profiles are based on non-coding DNA and do not reveal details about the physical appearance of an individual has contributed to the acceptability of this type of evidence. Its success in criminal investigation, combined with major innovations in the field of genetics, have contributed to a change of role for this type of evidence. Nowadays DNA evidence is not (...)
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  34.  67
    Forensic DNA phenotyping in Europe: views “on the ground” from those who have a professional stake in the technology.Gabrielle Samuel & Barbara Prainsack - 2019 - New Genetics and Society 38 (2):119-141.
    Forensic DNA phenotyping (FDP) is an emerging technology that seeks to make probabilistic inferences regarding a person’s observable characteristics (“phenotype”) from DNA. The aim is to aid criminal investigations by helping to identify unknown suspected perpetrators, or to help with non-criminal missing persons cases. Here we provide results from the analysis of 36 interviews with those who have a professional stake in FDP, including forensic scientists, police officers, lawyers, government agencies and social scientists. Located in eight EU countries, these individuals (...)
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  35. Junk or functional DNA? ENCODE and the function controversy.Pierre-Luc Germain, Emanuele Ratti & Federico Boem - 2014 - Biology and Philosophy 29 (6):807-831.
    In its last round of publications in September 2012, the Encyclopedia Of DNA Elements (ENCODE) assigned a biochemical function to most of the human genome, which was taken up by the media as meaning the end of ‘Junk DNA’. This provoked a heated reaction from evolutionary biologists, who among other things claimed that ENCODE adopted a wrong and much too inclusive notion of function, making its dismissal of junk DNA merely rhetorical. We argue that this criticism rests on misunderstandings concerning (...)
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  36.  67
    Optimizing DNA hypomethylating therapy in acute myeloid leukemia and myelodysplastic syndromes.Jasmin Straube, Steven W. Lane & Therese Vu - 2021 - Bioessays 43 (10):2100125.
    The DNA hypomethylating agents (HMA) azacitidine (AZA) and decitabine (DAC) improve survival and transfusion independence in myelodysplastic syndrome (MDS) and enable a low intensity cytotoxic treatment for aged AML patients unsuitable for intensive chemotherapy, particularly in combination with novel agents. The proposed mechanism of AZA and DAC relies on active DNA replication and therefore patient responses are only observed after multiple cycles of treatment. Although extended dosing may provide the optimal scheduling, the reliance of injectable formulation of the drug limits (...)
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  37.  5
    Hidden Fungal DNA Structures May Shape Sequencing Outcomes.Paul W. Thomas - 2026 - Bioessays 48 (6):e70153.
    Fungal DNA is systematically under‐detected in shotgun metagenomics, likely due in part to physical barriers like melanized cell walls and complex DNA conformations. Additionally, Oxford Nanopore Technologies sequencing with native fungal DNA often results in rapid pore clogging and unusual translocation dynamics, possibly due to intrinsic, yet undescribed, structural complexities. Exploring these signals could reveal novel fungal genome architectures, enhance sequencing accuracy, and drive advances in fungal biology.
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  38.  70
    DNA packaging and cutting by phage terminases: Control in phage T4 by a synaptic mechanism.Lindsay W. Black - 1995 - Bioessays 17 (12):1025-1030.
    Phage DNA packaging occurs by DNA translocation into a prohead. Terminases are enzymes which initiate DNA packaging by cutting the DNA concatemer, and they are closely fitted structurally to the portal vertex of the prohead to form a ‘packasome’. Analysis among a number of phages supports an active role of the terminases in coupling ATP hydrolysis to DNA translocation through the portal. In phage T4 the small terminase subunit promotes a sequence‐specific terminase gene amplification within the chromosome. This link between (...)
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  39.  83
    Ancient DNA: Using molecular biology to explore the past.Terence A. Brown & Keri A. Brown - 1994 - Bioessays 16 (10):719-726.
    Ancient DNA has been discovered in many types of preserved biological material, including bones, mummies, museum skins, insects in amber and plant fossils, and has become an important research tool in disciplines as diverse as archaeology, conservation biology and forensic science. In archaeology, ancient DNA can contribute both to the interpretation of individual sites and to the development of hypotheses about past populations. Site interpretation is aided by DNA‐based sex typing of fragmentary human bones, and by the use of genetic (...)
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  40.  72
    DNA topoisomerases and DNA repair.C. S. Downes & R. T. Johnson - 1988 - Bioessays 8 (6):179-184.
    DNA topoisomerases are enzymes that can modify, and may regulate, the topological state of DNA through concerted breaking and rejoining of the DNA strands. They have been believed to be directly involved in DNA excision repair, and perhaps to be required for the control of repair as well. The vicissitudes of this hypothesis provide a noteworthy example of the dangers of interpreting cellular phenomena without genetic information and vice versa.
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  41.  65
    DNA microarrays in the clinic: how soon, how extensively?Bertrand R. Jordan - 2007 - Bioessays 29 (7):699-705.
    Although DNA microarrays are now widely used in research settings, they have been slow to penetrate clinical practice in spite of their apparent advantages. This is due to the very different requirements for a clinical test in contrast to a research tool, and to a strict necessity for demonstrated clinical utility. There is a clear differentiation between two types of DNA array tests: “genomic” diagnostics, developed to ascertain the presence or absence of mutations, deletions or duplications, and for which clinical (...)
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  42.  83
    DNA damage tolerance, mismatch repair and genome instability.P. Karran & M. Bignami - 1994 - Bioessays 16 (11):833-839.
    DNA mismatch repair is an important pathway of mutation avoidance. It also contributes to the cytotoxic effects of some kinds of DNA damage, and cells defective in mismatch repair are resistant, or tolerant, to the presence of some normally cytotoxic base analogues in their DNA. The absence of a particular mismatch binding function from some mammalian cells confers resistance to the base analogues O6‐methylguanine and 6‐thioguanine in DNA. Cells also acquire a spontaneous mutator phenotype as a consequence of this defect. (...)
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  43.  84
    Long DNA palindromes, cruciform structures, genetic instability and secondary structure repair.David R. F. Leach - 1994 - Bioessays 16 (12):893-900.
    Long DNA palindromes pose a threat to genome stability. This instability is primarily mediated by slippage on the lagging strand of the replication fork between short directly repeated sequences close to the ends of the palindrome. The role of the palindrome is likely to be the juxtaposition of the directly repeated sequences by intrastrand base‐pairing. This intra‐strand base‐pairing, if present on both strands, results in a cruciform structure. In bacteria, cruciform structures have proved difficult to detect in vivo, suggesting that (...)
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  44.  79
    DNA helicases: Enzymes with essential roles in all aspects of DNA metabolism.Steven W. Matson, Daniel W. Bean & James W. George - 1994 - Bioessays 16 (1):13-22.
    DNA helicases catalyze the disruption of the hydrogen bonds that hold the two strands of double‐stranded DNA together. This energy‐requiring unwinding reaction results in the formation of the single‐stranded DNA required as a template or reaction intermediate in DNA replication, repair and recombination. A combination of biochemical and genetic studies have been used to probe and define the roles of the multiple DNA helicases found in E. coli. This work and similar efforts in eukaryotic cells, although far from complete, have (...)
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  45.  64
    Intrinsic DNA bends: an organizer of local chromatin structure for transcription.Takashi Ohyama - 2001 - Bioessays 23 (8):708-715.
    DNA with a curved trajectory of its helix axis is called bent DNA, or curved DNA. Interestingly, biologically important DNA regions often contain this structure, irrespective of the origin of DNA. In the last decade, considerable progress has been made in clarifying one role of bent DNA in prokaryotic transcription and its mechanism of action. However, the role of bent DNA in eukaryotic transcription remains unclear. Our recent study raises the possibility that bent DNA is implicated in the “functional packaging” (...)
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  46.  68
    DNA polymerase epsilon: The latest member in the family of mammalian DNA polymerases.Juhani E. Syväoja - 1990 - Bioessays 12 (11):533-536.
    DNA polymerase epsilon is a mammalian polymerase that has a tightly associated 3′→5′ exonuclease activity. Because of this readily detectable exonuclease activity, the enzyme has been regarded as a form of DNA polymerase delta, an enzyme which, together with DNA polymerase alpha, is in all probability required for the replication of chromosomal DNA. Recently, it was discovered that DNA polymerase epsilon is both catalytically and structurally distinct from DNA polymerase delta. The most striking difference between the two DNA polymerases is (...)
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  47.  95
    Mammalian DNA ligases.Alan E. Tomkinson & David S. Levin - 1997 - Bioessays 19 (10):893-901.
    DNA joining enzymes play an essential role in the maintenance of genomic integrity and stability. Three mammalian genes encoding DNA ligases, LIG1, LIG3 and LIG4, have been identified. Since DNA ligase II appears to be derived from DNA ligase III by a proteolytic mechanism, the three LIG genes can account for the four biochemically distinct DNA ligase activities, DNA ligases I, II, III and IV, that have been purified from mammalian cell extracts. It is probable that the specific cellular roles (...)
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  48.  28
    Eukaryotic DNA topoisomerase IIβ.Richard W. Padgett, Pradeep Das & Srikant Krishna - 1998 - Bioessays 20 (3):215-226.
    Type II DNA topoisomerase activity is required to change DNA topology. It is important in the relaxation of DNA supercoils generated by cellular processes, such as transcription and replication, and it is essential for the condensation of chromosomes and their segregation during mitosis. In mammals this activity is derived from at least two isoforms, termed DNA topoisomerase IIα and β. The α isoform is involved in chromosome condensation and segregation, whereas the role of the β isoform is not yet clear. (...)
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  49.  57
    Loss of DNA methylation disrupts syncytiotrophoblast development: Proposed consequences of aberrant germline gene activation.Georgia Lea & Courtney W. Hanna - 2024 - Bioessays 46 (1):2300140.
    DNA methylation is a repressive epigenetic modification that is essential for development and its disruption is widely implicated in disease. Yet, remarkably, ablation of DNA methylation in transgenic mouse models has limited impact on transcriptional states. Across multiple tissues and developmental contexts, the predominant transcriptional signature upon loss of DNA methylation is the de‐repression of a subset of germline genes, normally expressed in gametogenesis. We recently reported loss of de novo DNA methyltransferase DNMT3B resulted in up‐regulation of germline genes and (...)
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  50. DNA Repair: The Search for Homology.James E. Haber - 2018 - Bioessays 40 (5):1700229.
    The repair of chromosomal double‐strand breaks (DSBs) by homologous recombination is essential to maintain genome integrity. The key step in DSB repair is the RecA/Rad51‐mediated process to match sequences at the broken end to homologous donor sequences that can be used as a template to repair the lesion. Here, in reviewing research about DSB repair, I consider the many factors that appear to play important roles in the successful search for homology by several homologous recombination mechanisms.
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