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  1. Cancer Stem Cells: Philosophy and Therapies.Lucie Laplane - 2016 - Cambridge (Massachusetts): Harvard University Press.
    A new therapeutic strategy could break the stalemate in the war on cancer by targeting not all cancerous cells but the small fraction that lie at the root of cancers. Lucie Laplane offers a comprehensive analysis of cancer stem cell theory, based on an original interdisciplinary approach that combines biology, biomedical history, and philosophy.
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  • Reprogramming and Stemness.Lucie Laplane - 2015 - Perspectives in Biology and Medicine 58 (2):229-246.
    Reprogramming technologies show that cellular identity can be reprogrammed, challenging the classical conception of cell differentiation as an irreversible process. If non-stem cells can be reprogrammed into stem cells, then what is it to be a stem cell, and what kind of property is stemness? This article addresses this question both philosophically and biologically, states the different possibilities, and illustrates their potential consequences for science with the example of anti-cancer therapies.
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  • Conceptual Challenges in the Theoretical Foundations of Systems Biology.Marta Bertolaso & Emanuele Ratti - 2018 - In Mariano Bizzarri (ed.), Systems Biology. New York: Springer, Humana Press. pp. 1-13.
    In the last decade, Systems Biology has emerged as a conceptual and explanatory alternative to reductionist-based approaches in molecular biology. However, the foundations of this new discipline need to be fleshed out more carefully. In this paper, we claim that a relational ontology is a necessary tool to ground both the conceptual and explanatory aspects of Systems Biology. A relational ontology holds that relations are prior—both conceptually and explanatory—to entities, and that in the biological realm entities are defined primarily by (...)
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  • Understanding Multicellularity: The Functional Organization of the Intercellular Space.Leonardo Bich, Thomas Pradeu & Jean-Francois Moreau - 2019 - Frontiers in Physiology 10.
    The aim of this paper is to provide a theoretical framework to understand how multicellular systems realize functionally integrated physiological entities by organizing their intercellular space. From a perspective centered on physiology and integration, biological systems are often characterized as organized in such a way that they realize metabolic self-production and self-maintenance. The existence and activity of their components rely on the network they realize and on the continuous management of the exchange of matter and energy with their environment. One (...)
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  • Constraint.Jon Umerez & Matteo Mossio - 2013 - In W. Dubitzky O. Wolkenhauer & K. Cho H. Yokota (eds.), Encyclopedia of Systems Biology. Springer. pp. 490-493.
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