Results for 'genome dynamics'

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  1.  6
    Nucleic acids movement and its relation to genome dynamics of repetitive DNA.Eduard Kejnovsky & Pavel Jedlicka - 2022 - Bioessays 44 (4):2100242.
    There is growing evidence of evolutionary genome plasticity. The evolution of repetitive DNA elements, the major components of most eukaryotic genomes, involves the amplification of various classes of mobile genetic elements, the expansion of satellite DNA, the transfer of fragments or entire organellar genomes and may have connections with viruses. In addition to various repetitive DNA elements, a plethora of large and small RNAs migrate within and between cells during individual development as well as during evolution and contribute to (...)
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  2.  8
    Foraminifera as a model of the extensive variability in genome dynamics among eukaryotes.Eleanor J. Goetz, Mattia Greco, Hannah B. Rappaport, Agnes K. M. Weiner, Laura M. Walker, Samuel Bowser, Susan Goldstein & Laura A. Katz - 2022 - Bioessays 44 (10):2100267.
    Knowledge of eukaryotic life cycles and associated genome dynamics stems largely from research on animals, plants, and a small number of “model” (i.e., easily cultivable) lineages. This skewed sampling results in an underappreciation of the variability among the many microeukaryotic lineages, which represent the bulk of eukaryotic biodiversity. The range of complex nuclear transformations that exists within lineages of microbial eukaryotes challenges the textbook understanding of genome and nuclear cycles. Here, we look in‐depth at Foraminifera, an ancient (...)
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  3.  9
    The dynamic role of cohesin in maintaining human genome architecture.Abhishek Agarwal, Sevastianos Korsak, Ashutosh Choudhury & Dariusz Plewczynski - 2023 - Bioessays 45 (10):2200240.
    Recent advances in genomic and imaging techniques have revealed the complex manner of organizing billions of base pairs of DNA necessary for maintaining their functionality and ensuring the proper expression of genetic information. The SMC proteins and cohesin complex primarily contribute to forming higher‐order chromatin structures, such as chromosomal territories, compartments, topologically associating domains (TADs) and chromatin loops anchored by CCCTC‐binding factor (CTCF) protein or other genome organizers. Cohesin plays a fundamental role in chromatin organization, gene expression and regulation. (...)
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  4.  13
    Ancient Genomes Reveal Unexpected Horse Domestication and Management Dynamics.Ludovic Orlando - 2020 - Bioessays 42 (1):1900164.
    The horse was essential to past human societies but became a recreational animal during the twentieth century as the world became increasingly mechanized. As the author reviews here, recent studies of ancient genomes have revisited the understanding of horse domestication, from the very early stages to the most modern developments. They have uncovered several extinct lineages roaming the far ends of Eurasia some 4000 years ago. They have shown that the domestic horse has been significantly reshaped during the last millennium (...)
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  5.  13
    How genomic and developmental dynamics affect evolutionary processes.Gabriel Dover - 2000 - Bioessays 22 (12):1153-1159.
    Evolutionary genetics is concerned with natural selection and neutral drift, to the virtual exclusion of almost everything else. In its current focus on DNA variation, it reduces phenotypes to symbols. Varying phenotypes, however, are the units of evolution, and, if we want a comprehensive theory of evolution, we need to consider both the internal and external evolutionary forces that shape the development of phenotypes. Genetic systems are redundant, modular and subject to a variety of genomic mechanisms of “turnover” (transposition, gene (...)
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  6.  11
    Genome editing: the dynamics of continuity, convergence, and change in the engineering of life.Paul Martin, Michael Morrison, Ilke Turkmendag, Brigitte Nerlich, Aisling McMahon, Stevienna de Saille & Andrew Bartlett - 2020 - New Genetics and Society 39 (2):219-242.
    Genome editing enables very accurate alterations to DNA. It promises profound and potentially disruptive changes in healthcare, agriculture, industry, and the environment. This paper presents a multidisciplinary analysis of the contemporary development of genome editing and the tension between continuity and change. It draws on the idea that actors involved in innovation are guided by “sociotechnical regimes” composed of practices, institutions, norms, and cultural beliefs. The analysis focuses on how genome editing is emerging in different domains and (...)
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  7.  16
    Cell Fate and Developmental Regulation Dynamics by Polycomb Proteins and 3D Genome Architecture.Vincent Loubiere, Anne-Marie Martinez & Giacomo Cavalli - 2019 - Bioessays 41 (3):1800222.
    Targeted transitions in chromatin states at thousands of genes are essential drivers of eukaryotic development. Therefore, understanding the in vivo dynamics of epigenetic regulators is crucial for deciphering the mechanisms underpinning cell fate decisions. This review illustrates how, in addition to its cell memory function, the Polycomb group of transcriptional regulators orchestrates temporal, cell and tissue‐specific expression of master genes during development. These highly sophisticated developmental transitions are dependent on the context‐ and tissue‐specific assembly of the different types of (...)
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  8. The genome as a developmental organ.Ehud Lamm - 2014 - Journal of Physiology 592 (11):2237-2244.
    This paper applies the conceptual toolkit of Evolutionary Developmental Biology (evo‐devo) to the evolution of the genome and the role of the genome in organism development. This challenges both the Modern Evolutionary Synthesis, the dominant view in evolutionary theory for much of the 20th century, and the typically unreflective analysis of heredity by evo‐devo. First, the history of the marginalization of applying system‐thinking to the genome is described. Next, the suggested framework is presented. Finally, its application to (...)
     
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  9.  6
    Crowdfunding Conservation Science: Tracing the Participatory Dynamics of Native Parrot Genome Sequencing.Hallam Stevens & Courtney Addison - 2022 - Science, Technology, and Human Values 47 (3):568-596.
    Who gets to practice and participate in science? Research teams in Puerto Rico and New Zealand have each sequenced the genomes of parrot populations native to these locales: the iguaca and kākāpō, respectively. In both cases, crowdfunding and social media were instrumental in garnering public interest and funding. These forms of Internet-mediated participation impacted how conservation science was practiced in these cases and shaped emergent social roles and relations. As citizens “follow,” fund, and “like” the labor of conservation, they create (...)
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  10.  64
    The genome in space and time: Does form always follow function?Zhijun Duan & Carl Anthony Blau - 2012 - Bioessays 34 (9):800-810.
    Recent systematic studies using newly developed genomic approaches have revealed common mechanisms and principles that underpin the spatial organization of eukaryotic genomes and allow them to respond and adapt to diverse functional demands. Genomes harbor, interpret, and propagate genetic and epigenetic information, and the three‐dimensional (3D) organization of genomes in the nucleus should be intrinsically linked to their biological functions. However, our understanding of the mechanisms underlying both the topological organization of genomes and the various nuclear processes is still largely (...)
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  11.  18
    Cajal body function in genome organization and transcriptome diversity.Iain A. Sawyer, David Sturgill, Myong-Hee Sung, Gordon L. Hager & Miroslav Dundr - 2016 - Bioessays 38 (12):1197-1208.
    Nuclear bodies contribute to non‐random organization of the human genome and nuclear function. Using a major prototypical nuclear body, the Cajal body, as an example, we suggest that these structures assemble at specific gene loci located across the genome as a result of high transcriptional activity. Subsequently, target genes are physically clustered in close proximity in Cajal body‐containing cells. However, Cajal bodies are observed in only a limited number of human cell types, including neuronal and cancer cells. Ultimately, (...)
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  12. Sexes, species, and genomes: why males and females are not like humans and chimpanzees.Sarah S. Richardson - 2010 - Biology and Philosophy 25 (5):823-841.
    This paper describes, analyzes, and critiques the construction of separate “male” and “female” genomes in current human genome research. Comparative genomic work on human sex differences conceives of the sexes as like different species, with different genomes. I argue that this construct is empirically unsound, distortive to research, and ethically questionable. I propose a conceptual model of biological sex that clarifies the distinction between species and sexes as genetic classes. The dynamic interdependence of the sexes makes them “dyadic kinds” (...)
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  13. Genes versus Genomes: The Role of Genome Organization in Evolution.Ehud Lamm - 2010 - Dissertation, Tel Aviv University
    Recent and not so recent advances in our molecular understanding of the genome make the once prevalent view of the genome as a passive container of genetic information (i.e., genes) untenable, and emphasize the importance of the internal organization and re-organization dynamics of the genome for both development and evolution. While this conclusion is by now well accepted, the construction of a comprehensive conceptual framework for studying the genome as a dynamic system, capable of self-organization (...)
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  14.  6
    Transposon dynamics and the epigenetic switch hypothesis.Stefan Linquist & Brady Fullerton - 2021 - Theoretical Medicine and Bioethics 42 (3):137-154.
    The recent explosion of interest in epigenetics is often portrayed as the dawning of a scientific revolution that promises to transform biomedical science along with developmental and evolutionary biology. Much of this enthusiasm surrounds what we call the epigenetic switch hypothesis, which regards certain examples of epigenetic inheritance as an adaptive organismal response to environmental change. This interpretation overlooks an alternative explanation in terms of coevolutionary dynamics between parasitic transposons and the host genome. This raises a question about (...)
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  15.  23
    Complexities in genome structure and evolution.Michael Purugganan - 2010 - In Massimo Pigliucci & Gerd Muller (eds.), Evolution – the Extended Synthesis. MIT Press. pp. 117--134.
    This chapter analyzes the revolutionary impact of genomic science on the study of evolution, and addresses the issues that modern evolutionary biology has either learned or needs to grapple with in the age of genomics. It suggests that transposable elements are genomic constituents which can result in novel genes or gene functions. The chapter proposes that although epigenetic changes remain compatible with the Modern Synthesis, dissecting the details could possibly result in new insights into the dynamics of the evolutionary (...)
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  16.  52
    Beyond the genome: community-level analysis of the microbial world.Iratxe Zarraonaindia, Daniel P. Smith & Jack A. Gilbert - 2013 - Biology and Philosophy 28 (2):261-282.
    The development of culture-independent strategies to study microbial diversity and function has led to a revolution in microbial ecology, enabling us to address fundamental questions about the distribution of microbes and their influence on Earth’s biogeochemical cycles. This article discusses some of the progress that scientists have made with the use of so-called “omic” techniques (metagenomics, metatranscriptomics, and metaproteomics) and the limitations and major challenges these approaches are currently facing. These ‘omic methods have been used to describe the taxonomic structure (...)
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  17.  21
    Dynamic mutations as digital genetic modulators of brain development, function and dysfunction.Jess Nithianantharajah & Anthony J. Hannan - 2007 - Bioessays 29 (6):525-535.
    A substantial portion of the human genome has been found to consist of simple sequence repeats, including microsatellites and minisatellites. Microsatellites, tandem repeats of 1–6 nucleotides, form the template for dynamic mutations, which involve heritable changes in the lengths of repeat sequences. In recent years, a large number of human disorders have been found to be caused by dynamic mutations, the most common of which are trinucleotide repeat expansion diseases. Dynamic mutations are common to numerous nervous system disorders, including (...)
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  18.  21
    The Human Genome Project and the Right to Intellectual Property.Ascensión Cambrón - 2000 - Global Bioethics 13 (3-4):53-66.
    This work examines the scientific and social objectives of the Human Genome Project. Scientific ones are “to map the human genome” while social ones are “to improve the human health and welfare”. Ten years after this project has begun, their scientific aims are fullfilled, but their social ones are still pending. The reason for that is that both scientists and policy makers have forgotten something: the current configuration for the right to intellectual property—patents —grants to the discoverers of (...)
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  19. The Metastable Genome: A Lamarckian Organ in a Darwinian World?Ehud Lamm - 2011 - In Eva Jablonka & Snait Gissis (eds.), Transformations of Lamarckism: from subtle fluids to molecular biology. MIT Press.
    This article is arranged around two general claims and a thought experiment. I begin by suggesting that the genome should be studied as a developmental system, and that genes supervene on genomes (rather than the other way around). I move on to present a thought experiment that illustrates the implications a dynamic view of the genome has for central concepts in biology, in particular the information content of the genome, and the notion of responses to stress.
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  20.  14
    Replication dynamics in fission and budding yeasts through DNA polymerase tracking.Enrique Vázquez & Francisco Antequera - 2015 - Bioessays 37 (10):1067-1073.
    The dynamics of eukaryotic DNA polymerases has been difficult to establish because of the difficulty of tracking them along the chromosomes during DNA replication. Recent work has addressed this problem in the yeasts Schizosaccharomyces pombe and Saccharomyces cerevisiae through the engineering of replicative polymerases to render them prone to incorporating ribonucleotides at high rates. Their use as tracers of the passage of each polymerase has provided a picture of unprecedented resolution of the organization of replicons and replication origins in (...)
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  21.  24
    The dynamics of cell cycle regulation.John J. Tyson, Attila Csikasz-Nagy & Bela Novak - 2002 - Bioessays 24 (12):1095-1109.
    Major events of the cell cycle—DNA synthesis, mitosis and cell division—are regulated by a complex network of protein interactions that control the activities of cyclin‐dependent kinases. The network can be modeled by a set of nonlinear differential equations and its behavior predicted by numerical simulation. Computer simulations are necessary for detailed quantitative comparisons between theory and experiment, but they give little insight into the qualitative dynamics of the control system and how molecular interactions determine the fundamental physiological properties of (...)
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  22.  25
    Dynamic Aspects of Human Genetics: Is the Human Germline the Bioethical Key to Human Genetic Engineering?Nicolae Morar - 2022 - American Journal of Bioethics 22 (9):46-49.
    The advent of CRISPR has drastically moved the possibility of genetically modifying human genomes from the space of science fiction into nearby reality. Whether one considers the positive results f...
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  23.  76
    CRISPR: a new principle of genome engineering linked to conceptual shifts in evolutionary biology.Eugene V. Koonin - 2019 - Biology and Philosophy 34 (1):9.
    The CRISPR-Cas systems of bacterial and archaeal adaptive immunity have become a household name among biologists and even the general public thanks to the unprecedented success of the new generation of genome editing tools utilizing Cas proteins. However, the fundamental biological features of CRISPR-Cas are of no lesser interest and have major impacts on our understanding of the evolution of antivirus defense, host-parasite coevolution, self versus non-self discrimination and mechanisms of adaptation. CRISPR-Cas systems present the best known case in (...)
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  24.  15
    Dynamics of DNA methylation during development.Michael Brandeis, Mira Ariel & Howard Cedar - 1993 - Bioessays 15 (11):709-713.
    DNA methylation plays a role in the repression of gene expression in animal cells. In the mouse preimplantation embryo, most genes are unmethylated but a wave of de novo methylation prior to gastrulation generates a bimodal pattern characterized by unmethylated CpG island‐containing housekeeping genes and fully modified tissue‐specific genes. Demethylaton of individual genes then takes place during cell type specific differentiation, and this demodification may be a required step in the process of transcriptional activation. DNA modification is also involved in (...)
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  25.  3
    Kierkegaard After the Genome: Science, Existence and Belief in This World.Ada S. Jaarsma - 2017 - Cham: Imprint: Palgrave Macmillan.
    This book brings Søren Kierkegaard's nineteenth-century existentialist project into our contemporary age, applying his understanding of "freedom" and "despair" to science and science studies, queer, decolonial and critical race theory, and disability studies. The book draws out the materialist dimensions of belief, examining the existential dynamics of phenomena like placebos, epigenetics, pedagogy, and scientific inquiry itself. Each chapter dramatizes the ways in which abstractions like "race" or "genes" and even "belief" are sites of contested practices with pressing political significance. (...)
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  26.  4
    Symbolic Extensions Applied to Multiscale Structure of Genomes.Tomasz Downarowicz, Dante Travisany, Martin Montecino & Alejandro Maass - 2014 - Acta Biotheoretica 62 (2):145-169.
    A genome of a living organism consists of a long string of symbols over a finite alphabet carrying critical information for the organism. This includes its ability to control post natal growth, homeostasis, adaptation to changes in the surrounding environment, or to biochemically respond at the cellular level to various specific regulatory signals. In this sense, a genome represents a symbolic encoding of a highly organized system of information whose functioning may be revealed as a natural multilayer structure (...)
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  27.  18
    Dynamic regulation of DNA methylation coupled transcriptional repression: BDNF regulation by MeCP2.Paul A. Wade - 2004 - Bioessays 26 (3):217-220.
    A recurrent theme in eukaryotic genome regulation stipulates that the properties of DNA are strongly influenced by the nucleoprotein complex into which it is assembled. Methylation of cytosine residues in vertebrate genomes has been implicated in influencing the assembly of locally repressive chromatin architecture. Current models suggest that covalent modification of DNA results in heritable, long‐term transcriptional silencing. In October of 2003, two manuscripts1,2 were published that challenge important aspects of this model, suggesting that modulation of both DNA methylation (...)
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  28.  20
    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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  29.  9
    Evolution of sex: Using experimental genomics to select among competing theories.Nathaniel P. Sharp & Sarah P. Otto - 2016 - Bioessays 38 (8):751-757.
    Few topics have intrigued biologists as much as the evolution of sex. Understanding why sex persists despite its costs requires not just rigorous theoretical study, but also empirical data on related fundamental issues, including the nature of genetic variance for fitness, patterns of genetic interactions, and the dynamics of adaptation. The increasing feasibility of examining genomes in an experimental context is now shedding new light on these problems. Using this approach, McDonald et al. recently demonstrated that sex uncouples beneficial (...)
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  30.  14
    The Exocyst: Dynamic Machine or Static Tethering Complex?Hisayo Nishida-Fukuda - 2019 - Bioessays 41 (8):1900056.
    The exocyst is a conserved octameric complex that physically tethers a vesicle to the plasma membrane, prior to membrane fusion. It is important not only for secretion and membrane delivery but also, in mammalian cells, for cytokinesis, ciliogenesis, autophagy, tumorigenesis, and host defense. The combination of genome editing and advanced light microscopy of exocyst subunits in living cells has recently shown the complex to be much more dynamic than previously appreciated, and exposed how little we still know about its (...)
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  31.  49
    The Limits of Traditional Approaches to Informed Consent for Genomic Medicine.Thomas May, Kaija L. Zusevics, Arthur Derse, Kimberly A. Strong, Jessica Jeruzal, Alison La Pean Kirschner, Michael H. Farrell & Ryan Spellecy - 2014 - HEC Forum 26 (3):185-202.
    This paper argues that it will be important for new genomic technologies to recognize the limits of traditional approaches to informed consent, so that other-regarding implications of genomic information can be properly contextualized and individual rights respected. Respect for individual autonomy will increasingly require dynamic consideration of the interrelated dimensions of individual and broader community interests, so that the interests of one do not undermine fundamental interests of the other. In this, protection of individual rights will be a complex interplay (...)
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  32.  14
    Dynamic feelings about metaphors for genes: Implications for research and genetic policy.Celeste M. Condit - 2009 - Genomics, Society and Policy 5 (3):1-15.
    People respond to metaphors as much with regard to the emotions that they generate as to their referential, comparative contents. Interviews with non-geneticists about preferred metaphors for gene-environment interaction that illustrate this tendency are reported. These interviews also reveal the dynamic tendency of such emotional responses. A second set of interviews shows that lay people may preferentially use a metaphor of "virus" or "disease" for talking about genes, as opposed to the coding metaphors transmitted through the mass media and reportedly (...)
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  33.  6
    Evolutionary Species in Light of Population Genomics.Beckett Sterner - 2019 - Philosophy of Science 86 (5):1087-1098.
    Evolutionary conceptions of species place special weight on each species having dynamic independence as a unit of evolution. However, the idea that species have their own historical fates, tendencies, or roles has resisted systematic analysis. Growing evidence from population genomics shows that many paradigm species regularly engage in hybridization. How can species be defined in terms of independent evolutionary identities if their genomes are dynamically coupled through lateral exchange? I introduce the concept of a “composite lineage” to distinguish species and (...)
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  34.  42
    Single-cell Hi-C bridges microscopy and genome-wide sequencing approaches to study 3D chromatin organization.Sergey V. Ulianov, Kikue Tachibana-Konwalski & Sergey V. Razin - 2017 - Bioessays 39 (10):1700104.
    Recent years have witnessed an explosion of the single-cell biochemical toolbox including chromosome conformation capture -based methods that provide novel insights into chromatin spatial organization in individual cells. The observations made with these techniques revealed that topologically associating domains emerge from cell population averages and do not exist as static structures in individual cells. Stochastic nature of the genome folding is likely to be biologically relevant and may reflect the ability of chromatin fibers to adopt a number of alternative (...)
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  35.  40
    Single-cell Hi-C bridges microscopy and genome-wide sequencing approaches to study 3D chromatin organization.Sergey V. Ulianov, Kikue Tachibana-Konwalski & Sergey V. Razin - 2017 - Bioessays 39 (10):1700104.
    Recent years have witnessed an explosion of the single-cell biochemical toolbox including chromosome conformation capture -based methods that provide novel insights into chromatin spatial organization in individual cells. The observations made with these techniques revealed that topologically associating domains emerge from cell population averages and do not exist as static structures in individual cells. Stochastic nature of the genome folding is likely to be biologically relevant and may reflect the ability of chromatin fibers to adopt a number of alternative (...)
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  36.  13
    How to Do What Is Right, Not What Is Easy: Requirements for Assessment of Genome-Edited and Genetically Modified Organisms under Ethical Guidelines.T. Dassler & T. Antonsen - 2021 - Food Ethics 6 (2).
    Summary/abstractAn ethical assessment is a complex, dynamic and comprehensive process that requires both ethical expertise and practical knowledge. An ethical assessment of a genetically modified organism (GMO, including genome edited organisms) must follow accepted and transparent methods and be based in relevant considerations. In addition, the Ethical guidelines must include a broad and adequate range of values, so that no groups, stakeholders, agents or areas are left out.
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  37. The role of constrained self-organization in genome structural evolution.Richard Sternberg - 1996 - Acta Biotheoretica 44 (2).
    A hypothesis of genome structural evolution is explored. Rapid and cohesive alterations in genome organization are viewed as resulting from the dynamic and constrained interactions of chromosomal subsystem components. A combination of macromolecular boundary conditions and DNA element involvement in far-from-equilibrium reactions is proposed to increase the complexity of genomic subsystems via the channelling of genome turnover; interactions between subsystems create higher-order subsystems expanding the phase space for further genetic evolution. The operation of generic constraints on structuration (...)
     
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  38.  12
    GC‐biased gene conversion links the recombination landscape and demography to genomic base composition.Carina F. Mugal, Claudia C. Weber & Hans Ellegren - 2015 - Bioessays 37 (12):1317-1326.
    The origin and evolutionary dynamics of the spatial heterogeneity in genomic base composition have been debated since its discovery in the 1970s. With the recent availability of numerous genome sequences from a wide range of species it has been possible to address this question from a comparative perspective, and similarities and differences in base composition between groups of organisms are becoming evident. Ample evidence suggests that the contrasting dynamics of base composition are driven by GC‐biased gene conversion (...)
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  39.  19
    Australian Aboriginal and Torres Strait Islander Collections of Genetic Heritage: The Legal, Ethical and Practical Considerations of a Dynamic Consent Approach to Decision Making.Megan Prictor, Sharon Huebner, Harriet J. A. Teare, Luke Burchill & Jane Kaye - 2020 - Journal of Law, Medicine and Ethics 48 (1):205-217.
    Dynamic Consent is both a model and a specific web-based tool that enables clear, granular communication and recording of participant consent choices over time. The DC model enables individuals to know and to decide how personal research information is being used and provides a way in which to exercise legal rights provided in privacy and data protection law. The DC tool is flexible and responsive, enabling legal and ethical requirements in research data sharing to be met and for online health (...)
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  40.  9
    Uncertain futures and unsolicited findings in pediatric genomic sequencing: guidelines for return of results in cases of developmental delay.Candice Cornelis, Wybo Dondorp, Ineke Bolt, Guido de Wert, Marieke van Summeren, Eva Brilstra, Nine Knoers & Annelien L. Bredenoord - 2023 - BMC Medical Ethics 24 (1):1-10.
    Background Massively parallel sequencing techniques, such as whole exome sequencing (WES) and whole genome sequencing (WGS), may reveal unsolicited findings (UFs) unrelated to the diagnostic aim. Such techniques are frequently used for diagnostic purposes in pediatric cases of developmental delay (DD). Yet policy guidelines for informed consent and return of UFs are not well equipped to address specific moral challenges that may arise in these children’s situations. Discussion In previous empirical studies conducted by our research group, we found that (...)
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  41.  11
    Researching the future: scenarios to explore the future of human genome editing.Cynthia Selin, Lauren Lambert, Stephanie Morain, John P. Nelson, Dorit Barlevy, Mahmud Farooque, Haley Manley & Christopher T. Scott - 2023 - BMC Medical Ethics 24 (1):1-12.
    Background Forward-looking, democratically oriented governance is needed to ensure that human genome editing serves rather than undercuts public values. Scientific, policy, and ethics communities have recognized this necessity but have demonstrated limited understanding of how to fulfill it. The field of bioethics has long attempted to grapple with the unintended consequences of emerging technologies, but too often such foresight has lacked adequate scientific grounding, overemphasized regulation to the exclusion of examining underlying values, and failed to adequately engage the public. (...)
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  42.  32
    Circadian rhythms and mood: Opportunities for multi‐level analyses in genomics and neuroscience.Jun Z. Li - 2014 - Bioessays 36 (3):305-315.
    In the healthy state, both circadian rhythm and mood are stable against perturbations, yet they are capable of adjusting to altered internal cues or ongoing changes in external conditions. The dual demands of stability and flexibility are met by the collective properties of complex neural networks. Disruption of this balance underlies both circadian rhythm abnormality and mood disorders. However, we do not fully understand the network properties that govern the crosstalk between the circadian system and mood regulation. This puzzle reflects (...)
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  43.  24
    The rise, fall and renaissance of microsatellites in eukaryotic genomes.Emmanuel Buschiazzo & Neil J. Gemmell - 2006 - Bioessays 28 (10):1040-1050.
    Microsatellites are among the most versatile of genetic markers, being used in an impressive number of biological applications. However, the evolutionary dynamics of these markers remain a source of contention. Almost 20 years after the discovery of these ubiquitous simple sequences, new genomic data are clarifying our understanding of the structure, distribution and variability of microsatellites in genomes, especially for the eukaryotes. While these new data provide a great deal of descriptive information about the nature and abundance of microsatellite (...)
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  44.  7
    The Role of Expectations of Science in Shaping Research Policy: A Discursive Analysis of the Creation of Genome Canada.Margaret A. Lemay - 2020 - Minerva 58 (2):235-260.
    This paper examines the promise of science and its role in shaping research policy. The promise of science is characterized by expectations of science, which are embedded in promissory discourses that envision futures made possible through advances in promising science. Through a single case study of the origins of Genome Canada, the research was guided by the question: How did expectations of genomics shape the creation of Genome Canada? A conceptualization of discursive power and expectations of genomics storylines (...)
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  45.  50
    Strategic differentiation and integration of genomic-level heritabilities facilitate individual differences in preparedness and plasticity of human life history.Michael A. Woodley of Menie, Aurelio José Figueredo, Tomás Cabeza de Baca, Heitor B. F. Fernandes, Guy Madison, Pedro S. A. Wolf & Candace J. Black - 2015 - Frontiers in Psychology 6:134325.
    The Continuous Parameter Estimation Model is applied to develop individual genomic-level heritabilities for the latent hierarchical structure and developmental dynamics of Life History (LH) strategy LH strategies relate to the allocations of bioenergetic resources into different domains of fitness. LH has moderate to high population-level heritability in humans, both at the level of the high-order Super-K Factor and the lower-order factors, the K-Factor, Covitality Factor, and General Factor of Personality (GFP). Several important questions remain unexplored. We developed measures of (...)
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  46.  28
    Closing the (nuclear) envelope on the genome: How nuclear lamins interact with promoters and modulate gene expression.Philippe Collas, Eivind G. Lund & Anja R. Oldenburg - 2014 - Bioessays 36 (1):75-83.
    The nuclear envelope shapes the functional organization of the nucleus. Increasing evidence indicates that one of its main components, the nuclear lamina, dynamically interacts with the genome, including the promoter region of specific genes. This seems to occur in a manner that accords developmental significance to these interactions. This essay addresses key issues raised by recent data on the association of nuclear lamins with the genome. We discuss how lamins interact with large chromatin domains and with spatially restricted (...)
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    Pioneer factors and ATP‐dependent chromatin remodeling factors interact dynamically: A new perspective.Erin E. Swinstead, Ville Paakinaho, Diego M. Presman & Gordon L. Hager - 2016 - Bioessays 38 (11):1150-1157.
    Transcription factor (TF) signaling regulates gene transcription and requires a complex network of proteins. This network includes co‐activators, co‐repressors, multiple TFs, histone‐modifying complexes, and the basal transcription machinery. It has been widely appreciated that pioneer factors, such as FoxA1 and GATA1, play an important role in opening closed chromatin regions, thereby allowing binding of a secondary factor. In this review we will focus on a newly proposed model wherein multiple TFs, such as steroid receptors (SRs), can function in a pioneering (...)
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  48.  2
    From specific gene regulation to genomic networks: a global analysis of transcriptional regulation in Escherichia coli.Denis Thieffry, Araceli M. Huerta, Ernesto Pérez-Rueda & Julio Collado-Vides - 1998 - Bioessays 20 (5):433-440.
    Because a large number of molecular mechanisms involved in gene regulation have been described during the last decades, it is now becoming possible to address questions about the global structure of gene regulatory networks, at least in the case of some of the best-characterized organisms.This paper presents a global characterization of the transcriptional regulation in Escherichiacoli on the basis of the current data. The connectivity of the corresponding network was evaluated by analyzing the distribution of the number of genes regulated (...)
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    From specific gene regulation to genomic networks: a global analysis of transcriptional regulation in Escherichia coli.Denis Thieffry, Araceli M. Huerta, Ernesto Pérez-Rueda & Julio Collado-Vides - 1998 - Bioessays 20 (5):433-440.
    Because a large number of molecular mechanisms involved in gene regulation have been described during the last decades, it is now becoming possible to address questions about the global structure of gene regulatory networks, at least in the case of some of the best-characterized organisms.This paper presents a global characterization of the transcriptional regulation in Escherichiacoli on the basis of the current data. The connectivity of the corresponding network was evaluated by analyzing the distribution of the number of genes regulated (...)
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  50.  3
    From specific gene regulation to genomic networks: a global analysis of transcriptional regulation in Escherichia coli.Denis Thieffry, Araceli M. Huerta, Ernesto Pérez-Rueda & Julio Collado-Vides - 1998 - Bioessays 20 (5):433-440.
    Because a large number of molecular mechanisms involved in gene regulation have been described during the last decades, it is now becoming possible to address questions about the global structure of gene regulatory networks, at least in the case of some of the best-characterized organisms.This paper presents a global characterization of the transcriptional regulation in Escherichiacoli on the basis of the current data. The connectivity of the corresponding network was evaluated by analyzing the distribution of the number of genes regulated (...)
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