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  1. Making the right connections: biological networks in the light of evolution.Christopher G. Knight & John W. Pinney - 2009 - Bioessays 31 (10):1080-1090.
    Our understanding of how evolution acts on biological networks remains patchy, as is our knowledge of how that action is best identified, modelled and understood. Starting with network structure and the evolution of protein–protein interaction networks, we briefly survey the ways in which network evolution is being addressed in the fields of systems biology, development and ecology. The approaches highlighted demonstrate a movement away from a focus on network topology towards a more integrated view, placing biological properties centre‐stage. We argue (...)
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  • Units and levels of selection.Elisabeth Lloyd - 2008 - Stanford Encyclopedia of Philosophy.
    The theory of evolution by natural selection is, perhaps, the crowning intellectual achievement of the biological sciences. There is, however, considerable debate about which entity or entities are selected and what it is that fits them for that role. This article aims to clarify what is at issue in these debates by identifying four distinct, though often confused, concerns and then identifying how the debates on what constitute the units of selection depend to a significant degree on which of these (...)
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  • Facing up to Complexity: Implications for Our Social Experiments.Ronnie Hawkins - 2016 - Science and Engineering Ethics 22 (3):775-814.
    Biological systems are highly complex, and for this reason there is a considerable degree of uncertainty as to the consequences of making significant interventions into their workings. Since a number of new technologies are already impinging on living systems, including our bodies, many of us have become participants in large-scale “social experiments”. I will discuss biological complexity and its relevance to the technologies that brought us BSE/vCJD and the controversy over GM foods. Then I will consider some of the complexities (...)
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  • Evolutionary genetics: Progress and challenges.Jianzhi Zhang - 2010 - In M. A. Bell, D. J. Futuyma, W. F. Eanes & J. S. Levinton (eds.), Evolution Since Darwin: The First 150 Years. Sinauer. pp. 87--118.
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  • Evolutionary systems biology: What it is and why it matters.Orkun S. Soyer & Maureen A. O'Malley - 2013 - Bioessays 35 (8):696-705.
    Evolutionary systems biology (ESB) is a rapidly growing integrative approach that has the core aim of generating mechanistic and evolutionary understanding of genotype‐phenotype relationships at multiple levels. ESB's more specific objectives include extending knowledge gained from model organisms to non‐model organisms, predicting the effects of mutations, and defining the core network structures and dynamics that have evolved to cause particular intracellular and intercellular responses. By combining mathematical, molecular, and cellular approaches to evolution, ESB adds new insights and methods to the (...)
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  • Molecular network analysis enhances understanding of the biology of mental disorders.Kay S. Grennan, Chao Chen, Elliot S. Gershon & Chunyu Liu - 2014 - Bioessays 36 (6):606-616.
    We provide an introduction to network theory, evidence to support a connection between molecular network structure and neuropsychiatric disease, and examples of how network approaches can expand our knowledge of the molecular bases of these diseases. Without systematic methods to derive their biological meanings and inter‐relatedness, the many molecular changes associated with neuropsychiatric disease, including genetic variants, gene expression changes, and protein differences, present an impenetrably complex set of findings. Network approaches can potentially help integrate and reconcile these findings, as (...)
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  • How and Why to Build a Unified Tree of Life.Emily Jane McTavish, Bryan T. Drew, Ben Redelings & Karen A. Cranston - 2017 - Bioessays 39 (11):1700114.
    Phylogenetic trees are a crucial backbone for a wide breadth of biological research spanning systematics, organismal biology, ecology, and medicine. In 2015, the Open Tree of Life project published a first draft of a comprehensive tree of life, summarizing digitally available taxonomic and phylogenetic knowledge. This paper reviews, investigates, and addresses the following questions as a follow-up to that paper, from the perspective of researchers involved in building this summary of the tree of life: Is there a tree of life (...)
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