Works by Knight, Rob (exact spelling)

13 found
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  1. Measuring Causal Specificity.Paul E. Griffiths, Arnaud Pocheville, Brett Calcott, Karola Stotz, Hyunju Kim & Rob Knight - 2015 - Philosophy of Science 82 (4):529-555.
    Several authors have argued that causes differ in the degree to which they are ‘specific’ to their effects. Woodward has used this idea to enrich his influential interventionist theory of causal explanation. Here we propose a way to measure causal specificity using tools from information theory. We show that the specificity of a causal variable is not well-defined without a probability distribution over the states of that variable. We demonstrate the tractability and interest of our proposed measure by measuring the (...)
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  2. How biologists conceptualize genes: an empirical study.Karola Stotz, Paul E. Griffiths & Rob Knight - 2004 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 35 (4):647-673.
    Philosophers and historians of biology have argued that genes are conceptualized differently in different fields of biology and that these differences influence both the conduct of research and the interpretation of research by audiences outside the field in which the research was conducted. In this paper we report the results of a questionnaire study of how genes are conceptualized by biological scientists at the University of Sydney, Australia. The results provide tentative support for some hypotheses about conceptual differences between different (...)
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    How biologists conceptualize genes: an empirical study.Karola Stotz, Paul E. Griffiths & Rob Knight - 2003 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 35 (4):647-673.
    Philosophers and historians of biology have argued that genes are conceptualized differently in different fields of biology and that these differences influence both the conduct of research and the interpretation of research by audiences outside the field in which the research was conducted. In this paper we report the results of a questionnaire study of how genes are conceptualized by biological scientists at the University of Sydney, Australia. The results provide tentative support for some hypotheses about conceptual differences between different (...)
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  4. Multilevel Research Strategies and Biological Systems.Maureen A. O’Malley, Ingo Brigandt, Alan C. Love, John W. Crawford, Jack A. Gilbert, Rob Knight, Sandra D. Mitchell & Forest Rohwer - 2014 - Philosophy of Science 81 (5):811-828.
    Multilevel research strategies characterize contemporary molecular inquiry into biological systems. We outline conceptual, methodological, and explanatory dimensions of these multilevel strategies in microbial ecology, systems biology, protein research, and developmental biology. This review of emerging lines of inquiry in these fields suggests that multilevel research in molecular life sciences has significant implications for philosophical understandings of explanation, modeling, and representation.
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    Reuniting philosophy and science to advance cancer research.Thomas Pradeu, Bertrand Daignan-Fornier, Andrew Ewald, Pierre-Luc Germain, Samir Okasha, Anya Plutynski, Sébastien Benzekry, Marta Bertolaso, Mina Bissell, Joel S. Brown, Benjamin Chin-Yee, Ian Chin-Yee, Hans Clevers, Laurent Cognet, Marie Darrason, Emmanuel Farge, Jean Feunteun, Jérôme Galon, Elodie Giroux, Sara Green, Fridolin Gross, Fanny Jaulin, Rob Knight, Ezio Laconi, Nicolas Larmonier, Carlo Maley, Alberto Mantovani, Violaine Moreau, Pierre Nassoy, Elena Rondeau, David Santamaria, Catherine M. Sawai, Andrei Seluanov, Gregory D. Sepich-Poore, Vanja Sisirak, Eric Solary, Sarah Yvonnet & Lucie Laplane - 2023 - Biological Reviews 98 (5):1668-1686.
    Cancers rely on multiple, heterogeneous processes at different scales, pertaining to many biomedical fields. Therefore, understanding cancer is necessarily an interdisciplinary task that requires placing specialised experimental and clinical research into a broader conceptual, theoretical, and methodological framework. Without such a framework, oncology will collect piecemeal results, with scant dialogue between the different scientific communities studying cancer. We argue that one important way forward in service of a more successful dialogue is through greater integration of applied sciences (experimental and clinical) (...)
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  6.  15
    Redrawing therapeutic boundaries: microbiota and cancer.Jonathan Sholl, Gregory Sepich-Poore, Rob Knight & Thomas Pradeu - 2022 - Trends in Cancer 8 (2):87-97.
    The unexpected roles of the microbiota in cancer challenge explanations of carcinogenesis that focus on tumor-intrinsic properties. Most tumors contain bacteria and viruses, and the host’s proximal and distal microbiota influence both cancer incidence and therapeutic responsiveness. Continuing the history of cancer–microbe research, these findings raise a key question: to what extent is the microbiota relevant for clinical oncology? We approach this by critically evaluating three issues: how the microbiota provides a predictive biomarker of cancer growth and therapeutic responsiveness, the (...)
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  7.  91
    From molecules to dynamic biological communities.Daniel McDonald, Yoshiki Vázquez-Baeza, William A. Walters, J. Gregory Caporaso & Rob Knight - 2013 - Biology and Philosophy 28 (2):241-259.
    Microbial ecology is flourishing, and in the process, is making contributions to how the ecology and biology of large organisms is understood. Ongoing advances in sequencing technology and computational methods have enabled the collection and analysis of vast amounts of molecular data from diverse biological communities. While early studies focused on cataloguing microbial biodiversity in environments ranging from simple marine ecosystems to complex soil ecologies, more recent research is concerned with community functions and their dynamics over time. Models and concepts (...)
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    Reports of the death of the Gene are greatly exaggerated.Rob Knight - 2007 - Biology and Philosophy 22 (2):293-306.
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    The RNA Ontology (RNAO): an ontology for integrating RNA sequence and structure data.Robert Hoehndorf, Colin Batchelor, Thomas Bittner, Michel Dumontier, Karen Eilbeck, Rob Knight, Chris J. Mungall, Jane S. Richardson, Jesse Stombaugh & Eric Westhof - 2011 - Applied ontology 6 (1):53-89.
  10. The role of the self process in embodied machine consciousness.Owen Holland, Rob Knight & Richard Newcombe - 2007 - In Antonio Chella & Riccardo Manzotti (eds.), Artificial Consciousness. Imprint Academic. pp. 156-173.
  11.  32
    Replenishing our defensive microbes.Luke K. Ursell, William Van Treuren, Jessica L. Metcalf, Meg Pirrung, Andrew Gewirtz & Rob Knight - 2013 - Bioessays 35 (9):810-817.
    Large‐scale characterization of the human microbiota has largely focused on Western adults, yet these populations may be uncharacteristic because of their diets and lifestyles. In particular, the rise of “Western diseases” may in part stem from reduced exposure to, or even loss of, microbes with which humans have coevolved. Here, we review beneficial microbes associated with pathogen resistance, highlighting the emerging role of complex microbial communities in protecting against disease. We discuss ways in which modern lifestyles and practices may deplete (...)
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  12.  19
    Life Through A Microbial Lens.Susan Spath, Maureen O’Malley, Jesse Zaneveld, Rob Knight & Carl Zimmer - 2009 - Metascience 18 (2):179-205.
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    Cancer's second genome: Microbial cancer diagnostics and redefining clonal evolution as a multispecies process.Gregory D. Sepich-Poore, Caitlin Guccione, Lucie Laplane, Thomas Pradeu, Kit Curtius & Rob Knight - 2022 - Bioessays 44 (5):2100252.
    The presence and role of microbes in human cancers has come full circle in the last century. Tumors are no longer considered aseptic, but implications for cancer biology and oncology remain underappreciated. Opportunities to identify and build translational diagnostics, prognostics, and therapeutics that exploit cancer's second genome—the metagenome—are manifold, but require careful consideration of microbial experimental idiosyncrasies that are distinct from host‐centric methods. Furthermore, the discoveries of intracellular and intra‐metastatic cancer bacteria necessitate fundamental changes in describing clonal evolution and selection, (...)
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