Results for 'Phage'

58 found
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  1.  23
    The phage‐host arms race: Shaping the evolution of microbes.Adi Stern & Rotem Sorek - 2011 - Bioessays 33 (1):43-51.
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  2.  93
    Phage and the Origins of Molecular Biology.J. Cairns, G. S. Stent & J. D. Watson - 1968 - Journal of the History of Biology 1 (1):155-161.
  3.  8
    Phage lysis‐lysogeny switches and programmed cell death: Danse macabre.Sean Benler & Eugene V. Koonin - 2020 - Bioessays 42 (12):2000114.
    Exploration of immune systems in prokaryotes, such as restriction‐modification or CRISPR‐Cas, shows that both innate and adaptive systems possess programmed cell death (PCD) potential. The key outstanding question is how the immune systems sense and “predict” infection outcomes to “decide” whether to fight the pathogen or induce PCD. There is a striking parallel between this life‐or‐death decision faced by the cell and the decision by temperate viruses to protect or kill their hosts, epitomized by the lysis‐lysogeny switch of bacteriophage Lambda. (...)
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  4. The Future of Phage: Ethical challenges of using phage viruses to treat bacterial infections.Jonathan Anomaly - 2020 - Public Health Ethics 13.
  5.  17
    A century of phage research: Bacteriophages and the shaping of modern biology.Eric C. Keen - 2015 - Bioessays 37 (1):6-9.
    Graphical Abstract2015 marks the centennial of the discovery of bacteriophages, viruses that infect bacteria. Phages have been central to some of biology's most meaningful advances over the past hundred years (shown here); they greatly influence the workings of the biosphere, and are poised to play expanded roles in biomedicine, biotechnology, and ecology.
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  6.  20
    Soil phage ecology: abundance, distribution, and interactions with bacterial hosts.Kurt E. Williamson - 2011 - In Witzany (ed.), Biocommunication in Soil Microorganisms. Springer. pp. 113--136.
  7.  22
    Biocommunication of Phages.Guenther Witzany - 2020 - Cham, Schweiz: Springer.
    This is the first book to systemize all levels of communicative behavior of phages. Phages represent the most diverse inhabitants on this planet. Until today they are completely underestimated in their number, skills and competences and still remain the dark matter of biology. Phages have serious effects on global energy and nutrient cycles. Phages actively compete for host. They can distinguish between ‘self’ and ‘non-self’. They process and evaluate available information and then modify their behaviour accordingly. These diverse competences show (...)
  8.  11
    Memory in bacteria and phage.Josep Casadesús & Richard D'Ari - 2002 - Bioessays 24 (6):512-518.
    Whenever the state of a biological system is not determined solely by present conditions but depends on its past history, we can say that the system has memory. Bacteria and bacteriophage use a variety of memory mechanisms, some of which seem to convey adaptive value. A genetic type of heritable memory is the programmed inversion of specific DNA sequences, which causes switching between alternative patterns of gene expression. Heritable memory can also be based on epigenetic circuits, in which a system (...)
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  9.  61
    Phosphorus-32 in the Phage Group: radioisotopes as historical tracers of molecular biology.Angela N. H. Creager - 2009 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 40 (1):29-42.
    The recent historiography of molecular biology features key technologies, instruments and materials, which offer a different view of the field and its turning points than preceding intellectual and institutional histories. Radioisotopes, in this vein, became essential tools in postwar life science research, including molecular biology, and are here analyzed through their use in experiments on bacteriophage. Isotopes were especially well suited for studying the dynamics of chemical transformation over time, through metabolic pathways or life cycles. Scientists labeled phage with (...)
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  10.  23
    The Future of Phage: Ethical Challenges of Using Phage Therapy to Treat Bacterial Infections.Jonathan Anomaly - 2020 - Public Health Ethics 13 (1):82-88.
    For over a century, scientists have run experiments using phage viruses to treat bacterial infections. Until recently, the results were inconclusive because the mechanisms viruses use to attack bacteria were poorly understood. With the development of molecular biology, scientists now have a better sense of how phage work, and how they can be used to target infections. As resistance to traditional antibiotics continues to spread around the world, there is a moral imperative to facilitate research into phage (...)
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  11.  18
    Phosphorus-32 in the Phage Group: radioisotopes as historical tracers of molecular biology.Angela N. H. Creager - 2009 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 40 (1):29-42.
  12.  23
    Communication among phages, bacteria, and soil environments.Stephen T. Abedon - 2011 - In Witzany (ed.), Biocommunication in Soil Microorganisms. Springer. pp. 37--65.
  13.  22
    Deviations from Ultrametricity in Phage Protein Distances.Chad Wagner, Anna Salamon, Robert A. Edwards, Forest Rohwer & Peter Salamon - 2009 - In Institute of Physics Krzysztof Stefanski (ed.), Open Systems and Information Dynamics. World Scientific Publishing Company. pp. 75-84.
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  14.  39
    An RNA Phage Lab: MS2 in Walter Fiers’ Laboratory of Molecular Biology in Ghent, from Genetic Code to Gene and Genome, 1963–1976. [REVIEW]Jérôme Pierrel - 2012 - Journal of the History of Biology 45 (1):109 - 138.
    The importance of viruses as model organisms is well-established in molecular biology and Max Delbrück's phage group set standards in the DNA phage field. In this paper, I argue that RNA phages, discovered in the 1960s, were also instrumental in the making of molecular biology. As part of experimental systems, RNA phages stood for messenger RNA (mRNA), genes and genome. RNA was thought to mediate information transfers between DNA and proteins. Furthermore, RNA was more manageable at the bench (...)
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  15.  32
    The proportional lack of archaeal pathogens: Do viruses/phages hold the key?Erin E. Gill & Fiona Sl Brinkman - 2011 - Bioessays 33 (4):248-254.
    Although Archaea inhabit the human body and possess some characteristics of pathogens, there is a notable lack of pathogenic archaeal species identified to date. We hypothesize that the scarcity of disease‐causing Archaea is due, in part, to mutually‐exclusive phage and virus populations infecting Bacteria and Archaea, coupled with an association of bacterial virulence factors with phages or mobile elements. The ability of bacterial phages to infect Bacteria and then use them as a vehicle to infect eukaryotes may be difficult (...)
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  16.  45
    The Paradox of the Phage Group: Essay Review. [REVIEW]Angela N. H. Creager - 2010 - Journal of the History of Biology 43 (1):183 - 193.
  17.  16
    Ecological and Evolutionary Benefits of Temperate Phage: What Does or Doesn't Kill You Makes You Stronger.Ellie Harrison & Michael A. Brockhurst - 2017 - Bioessays 39 (12):1700112.
    Infection by a temperate phage can lead to death of the bacterial cell, but sometimes these phages integrate into the bacterial chromosome, offering the potential for a more long-lasting relationship to be established. Here we define three major ecological and evolutionary benefits of temperate phage for bacteria: as agents of horizontal gene transfer, as sources of genetic variation for evolutionary innovation, and as weapons of bacterial competition. We suggest that a coevolutionary perspective is required to understand the roles (...)
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  18.  14
    Ethical argument for establishing good manufacturing practice for phage therapy in the UK.Mehrunisha Suleman, Jason R. Clark, Susan Bull & Joshua D. Jones - forthcoming - Journal of Medical Ethics.
    Antimicrobial resistance (AMR) poses an increasing threat to patient care and population health and there is a growing need for novel therapies to tackle AMR. Bacteriophage (phage) therapy is a re-emerging antimicrobial strategy with the potential to transform how bacterial infections are treated in patients and populations. Currently, in the UK, phages can be used as unlicensed medicinal products on a ‘named-patient’ basis. We make an ethical case for why it is crucially important for the UK to invest in (...)
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  19.  15
    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 (...)
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  20.  10
    An RNA Phage Lab: MS2 in Walter Fiers’ Laboratory of Molecular Biology in Ghent, from Genetic Code to Gene and Genome, 1963–1976. [REVIEW]Jérôme Pierrel - 2012 - Journal of the History of Biology 45 (1):109-138.
    The importance of viruses as model organisms is well-established in molecular biology and Max Delbrück’s phage group set standards in the DNA phage field. In this paper, I argue that RNA phages, discovered in the 1960s, were also instrumental in the making of molecular biology. As part of experimental systems, RNA phages stood for messenger RNA, genes and genome. RNA was thought to mediate information transfers between DNA and proteins. Furthermore, RNA was more manageable at the bench than (...)
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  21.  50
    The bacteriophage, its role in immunology: how Macfarlane Burnet’s phage research shaped his scientific style.Neeraja Sankaran - 2010 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 41 (4):367-375.
    The Australian scientist Frank Macfarlane Burnet—winner of the Nobel Prize in 1960 for his contributions to the understanding of immunological tolerance—is perhaps best recognized as one of the formulators of the clonal selection theory of antibody production, widely regarded as the ‘central dogma’ of modern immunology. His work in studies in animal virology, particularly the influenza virus, and rickettsial diseases is also well known. Somewhat less known and publicized is Burnet’s research on bacteriophages, which he conducted in the first decade (...)
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  22.  26
    How bacteriophage came to be used by the Phage Group.William C. Summers - 1993 - Journal of the History of Biology 26 (2):255-267.
  23.  33
    The development of a scientific specialty: The phage group and the origins of molecular biology.Nicholas C. Mullins - 1972 - Minerva 10 (1):51-82.
  24.  20
    The Metaphysics of Causation in Biological Mechanisms: A Case of the Genetic Switch in Lambda Phage.Zvonimir Anić - 2020 - Acta Biotheoretica 69 (3):435-448.
    The emphasis on the organization of entities and their activities and interactions has been labeled one of the most distinct contributions of mechanistic philosophy. In this paper I discuss the manner in which the organization of entities and their activities and interactions participates in bringing about phenomena. I present a well-known example from molecular biology—the functioning of the genetic switch in phage lambda—and discuss Marco J. Nathan’s notion of causation by concentration. Nathan introduces causation by concentration to account for (...)
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  25.  27
    A “chromosomic” recombination theory for multiplicity reactivation in phages.Nils Aall Barricelli - 1956 - Acta Biotheoretica 11 (3-4):107-120.
    With the assumption of inactivation of small traits in bacteriophages “chromosomes” by ultraviolet irradiation the probability of multiplicity reactivation of irradiated phages is calculated. The result appears to be in agreement with the experimental results ofDulbecco.In the mathematical treatment of the problem a distinction is made between ordinary genes, with probability of inactivation negligible relative to the probability of inactivation of the whole phage, and a few vulnerable centers or genes whose probability of inactivation is not negligible. The hypothesis (...)
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  26.  34
    The bacteriophage, its role in immunology: how Macfarlane Burnet’s phage research shaped his scientific style.Neeraja Sankaran - 2010 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 41 (4):367-375.
  27.  3
    DNA packaging by the lambdoid phages – From pure beginnings to applications in genetic engineering.Sherwood Casjens - 1994 - Bioessays 16 (11):847-851.
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  28.  8
    Identification and Analysis of Prophages and Phage Remnants in Soil Bacteria.K. V. Srividhya & S. Krishnaswamy - 2011 - In Witzany (ed.), Biocommunication in Soil Microorganisms. Springer. pp. 137--160.
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  29.  10
    The molecular genetics of small things. Bacteria, plasmids and phages: An introduction to molecular biology. By E. C. C. Lin, R. Goldstein and M. Sylvanen. Harvard University Press, 1984. Pp. 316. £18.50. [REVIEW]David Sherratt - 1986 - Bioessays 4 (4):186-187.
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  30.  31
    Frederic Lawrence Holmes. Reconceiving the Gene: Seymour Benzer’s Adventures in Phage Genetics. Edited by, William C. Summers. xiv + 334 pp., figs., index. New Haven, Conn.: Yale University Press, 2006. $50. [REVIEW]Jane Maienschein - 2007 - Isis 98 (1):212-213.
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  31.  17
    Reconceiving the Gene: Seymour Benzer’s Adventures in Phage Genetics. [REVIEW]Jane Maienschein - 2007 - Isis 98:212-213.
  32.  4
    Book review: A Genetic Switch–Third Edition Phage Lambda Revisited[REVIEW]Gary Gussin - 2004 - Bioessays 26 (11):1254-1255.
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  33.  35
    Book review: A Genetic Switch–Third Edition Phage Lambda Revisited. [REVIEW]Gary Gussin - 2004 - Bioessays 26 (11):1254-1255.
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  34. Compensation for Cures: Paying People to Participate in Challenge Studies.Jonathan Anomaly & Julian Savulescu - 2019 - Bioethics 33 (7):792-797.
    Antibiotic resistance is one of the most pressing public health problems humanity faces. Research into new classes of antibiotics and new kinds of treatments – including risky experimental treatments such as phage therapy and vaccines – is an important part of improving our ability to treat infectious diseases. In order to aid this research, we will argue that we should permit researchers to pay people any amount of money to compensate for the risks of participating in clinical trials, including (...)
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  35.  65
    Viral information.Forest Rohwer & Katie Barott - 2013 - Biology and Philosophy 28 (2):283-297.
    Viruses are major drivers of global biogeochemistry and the etiological agents of many diseases. They are also the winners in the game of life: there are more viruses on the planet than cellular organisms and they encode most of the genetic diversity on the planet. In fact, it is reasonable to view life as a viral incubator. Nevertheless, most ecological and evolutionary theories were developed, and continue to be developed, without considering the virosphere. This means these theories need to be (...)
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  36.  29
    The ecological virus.Maureen A. O'Malley - 2016 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 59:71-79.
    Ecology is usually described as the study of organisms interacting with one another and their environments. From this view of ecology, viruses – not usually considered to be organisms – would merely be part of the environment. Since the late 1980s, however, a growing stream of micrographic, experimental, molecular, and model-based (theoretical) research has been investigating how and why viruses should be understood as ecological actors of the most important sort. Viruses, especially phage, have been revealed as participants in (...)
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  37. Beyond categorical definitions of life: a data-driven approach to assessing lifeness.Christophe Malaterre & Jean-François Chartier - 2019 - Synthese 198 (5):4543-4572.
    The concept of “life” certainly is of some use to distinguish birds and beavers from water and stones. This pragmatic usefulness has led to its construal as a categorical predicate that can sift out living entities from non-living ones depending on their possessing specific properties—reproduction, metabolism, evolvability etc. In this paper, we argue against this binary construal of life. Using text-mining methods across over 30,000 scientific articles, we defend instead a degrees-of-life view and show how these methods can contribute to (...)
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  38.  98
    Wendell Stanley's dream of a free-standing biochemistry department at the University of California, Berkeley.Angela N. H. Creager - 1996 - Journal of the History of Biology 29 (3):331-360.
    Scientists and historians have often presumed that the divide between biochemistry and molecular biology is fundamentally epistemological.100 The historiography of molecular biology as promulgated by Max Delbrück's phage disciples similarly emphasizes inherent differences between the archaic tradition of biochemistry and the approach of phage geneticists, the ur molecular biologists. A historical analysis of the development of both disciplines at Berkeley mitigates against accepting predestined differences, and underscores the similarities between the postwar development of biochemistry and the emergence of (...)
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  39. Causation by Concentration.Marco J. Nathan - 2014 - British Journal for the Philosophy of Science 65 (2):191-212.
    This essay is concerned with concentrations of entities, which play an important—albeit often overlooked—role in scientific explanation. First, I discuss an example from molecular biology to show that concentrations can play an irreducible causal role. Second, I provide a preliminary philosophical analysis of this causal role, suggesting some implications for extant theories of causation. I conclude by introducing the concept of causation by concentration, a form of statistical causation whose widespread presence throughout the sciences has been unduly neglected and which (...)
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  40.  5
    Ecotype formation and prophage domestication during gut bacterial evolution.Nelson Frazão & Isabel Gordo - 2023 - Bioessays 45 (8):2300063.
    How much bacterial evolution occurs in our intestines and which factors control it are currently burning questions. The formation of new ecotypes, some of which capable of coexisting for long periods of time, is highly likely in our guts. Horizontal gene transfer driven by temperate phages that can perform lysogeny is also widespread in mammalian intestines. Yet, the roles of mutation and especially lysogeny as key drivers of gut bacterial adaptation remain poorly understood. The mammalian gut contains hundreds of bacterial (...)
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  41.  24
    Early responses to Avery et al.'s paper on DNA as hereditary material.U. Deichmann - 2004 - Historical Studies in the Physical and Biological Sciences 34 (2):207-232.
    Avery’s et al. ’s 1944 paper provides the first direct evidence of DNA having gene-like properties and marks the beginning of a new phase in early molecular genetics (with a strong focus on chemistry and DNA). The study of its reception shows that on the whole, Avery’s results were immediately appreciated and motivated new research on transformation, the chemical nature of DNA’s biological specificity and bacteria genetics. It shows, too, that initial problems of transferring transformation to other systems and prominent (...)
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  42.  16
    RNA processing in prokaryotic cells.David Apirion & Andras Miczak - 1993 - Bioessays 15 (2):113-120.
    RNA processing in Escherichia coli and some of its phages is reviewed here, with primary emphasis on rRNA and tRNA processing. Three enzymes, RNase III, RNase E and RNase P are responsible for most of the primary endonucleolytic RNA processing events. The first two are proteins, while RNase P is a ribozyme. These three enzymes have unique functions and in their absence, the cleavage events they catalyze are not performed. On the other hand a relatively large number of exonucleases participate (...)
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  43.  9
    Single‐stranded DNA‐containing bacteriophages.Norton D. Zinder - 1986 - Bioessays 5 (2):84-87.
    Roots presents articles on major discoveries that laid the basis for contemporary molecular and cellular biology. In this article, Norton D. Zinder reviews the first findings about the single‐stranded DNA‐containing bacteriophages and what is known today about the genetics and molecular biology of these phages.
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  44.  13
    A case of convergent evolution of nucleic acid binding modules.Peter Graumann & Moharned A. Marahiel - 1996 - Bioessays 18 (4):309-315.
    Divergent evolution can explain how many proteins containing structurally similar domains, which perform a variety of related functions, have evolved from a relatively small number of modules or protein domains. However, it cannot explain how protein domains with similar, but distinguishable, functions and similar, but distinguishable, structures have evolved. Examples of this are the RNA‐binding proteins containing the RNA‐binding domain (RBD), and a newly established protein group, the cold‐shock domain (CSD) protein family. Both protein domains contain conserved RNP motifs on (...)
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  45. On the need for integrative phylogenomics, and some steps toward its creation.Eric Bapteste & Richard M. Burian - 2010 - Biology and Philosophy 25 (4):711-736.
    Recently improved understanding of evolutionary processes suggests that tree-based phylogenetic analyses of evolutionary change cannot adequately explain the divergent evolutionary histories of a great many genes and gene complexes. In particular, genetic diversity in the genomes of prokaryotes, phages, and plasmids cannot be fit into classic tree-like models of evolution. These findings entail the need for fundamental reform of our understanding of molecular evolution and the need to devise alternative apparatus for integrated analysis of these genomes. We advocate the development (...)
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  46.  27
    The study of lysogeny at the Pasteur Institute (1950–1960): an epistemologically open system.Nadine Peyrieras & Michel Morange - 2002 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 33 (3):419-430.
    Many historical studies have been devoted to the French school of molecular biology, in particular to the work of Jacques Monod on adaptive enzymes. By focusing on Francois Jacob's studies on lysogeny between 1950 and 1960, we intend to redress the imbalance of historiography, as well as proposing a more fruitful point of view for understanding the relative importance of international contacts and local traditions in the genesis of the operon model.Elie Wollman and Jacob's work on temperate bacteriophages rendered respectable (...)
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  47.  63
    Mutant Bacteriophages, Frank Macfarlane Burnet, and the Changing Nature of "Genespeak" in the 1930s.Neeraja Sankaran - 2010 - Journal of the History of Biology 43 (3):571 - 599.
    In 1936, Frank Macfarlane Burnet published a paper entitled "Induced lysogenicity and the mutation of bacteriophage within lysogenic bacteria," in which he demonstrated that the introduction of a specific bacteriophage into a bacterial strain consistently and repeatedly imparted a specific property – namely the resistance to a different phage – to the bacterial strain that was originally susceptible to lysis by that second phage. Burnet's explanation for this change was that the first phage was causing a mutation (...)
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  48.  35
    Adaptive mutation: A general phenomenon or special case?Spencer Benson - 1997 - Bioessays 19 (1):9-11.
    A recent article by Galitski and Roth(1) characterizes adaptive reversion of chromosomal lac− mutations in Salmonella typhimurium LT2. Using a classical genetic approach they show that adaptive reversion, as characterized by the appearance of late revertant colonies, is an exception rather than a general phenomenon for reversion of nonsense, missense, frameshift and insertion mutations. For certain mutations, however, the number of late revertants exceeds the predicted number. These excess revertants suggest that adaptive mutability is applicable to chromosomal genes as well (...)
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  49.  31
    Functional genomics studied by proteomics.Bent Honoré, Morten Østergaard & Henrik Vorum - 2004 - Bioessays 26 (8):901-915.
    The human genome contains about 30,000 genes, each creating several transcripts per gene. Transcript structures and expression are studied by high‐throughput transcriptomic techniques using microarrays. Generally, transcripts are not directly operating molecules, but are translated into functional proteins, post‐translationally modified by proteolysis, glycosylation, phosphorylation, etc., sometimes with great functional impact. Proteins need to be analyzed by proteomic techniques, less suited for high‐throughput. Two‐dimensional polyacrylamide gel electrophoresis (2D‐PAGE), separating thousands of proteins has developed slowly over the past quarter of a century. (...)
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  50.  19
    Mutant Bacteriophages, Frank Macfarlane Burnet, and the Changing Nature of “Genespeak” in the 1930s.Neeraja Sankaran - 2010 - Journal of the History of Biology 43 (3):571-599.
    In 1936, Frank Macfarlane Burnet published a paper entitled “Induced lysogenicity and the mutation of bacteriophage within lysogenic bacteria,” in which he demonstrated that the introduction of a specific bacteriophage into a bacterial strain consistently and repeatedly imparted a specific property – namely the resistance to a different phage – to the bacterial strain that was originally susceptible to lysis by that second phage. Burnet’s explanation for this change was that the first phage was causing a mutation (...)
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