Organismo y organización en la biología teórica: ¿vuelta al organicismo?

Arantza Etxeberria, Jon Umerez

Resumen


Organism and organization in theoretical biology: A return to organicism?

This paper contemplates Organicism and its relation with molecular and evolutionary biology. We explore whether twentieth-first century biology is returning to positions held at the beginning of the twentieth century and then abandoned. The guiding line is a history of theoretical biology in which we distinguish three periods: 1. The 20s-30s, and the Theoretical Biology Club (Needham, Woodger, and Waddington, among others); 2. An intermediate period in the 60s-70s, in which, in spite of the eclosion of the molecular and evolutionary biologies, there is some recovery of organicist positions, and 3. The present post-genomic situation, which is demanding a systemic approach.

 

Key words: Organicism, systems biology, theoretical biology, molecular biology, evolutionary biology.

 


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Referencias


Abir-Am, P. (1987), “The biotheoretical gathering, trans-disciplinary authority and the incipient legitimation of molecular biology in the 1930s: New perspective on the historical sociology of science,” History of Science 25: 1-70.

Abir-Am, P. (1991), “The philosophical background of Joseph Needham’s work in chemical embryology,” in Scott F. Gilbert (ed.) A Conceptual History of Modern Embryology, New York: Plenum Press, pags. 159-180.

Ann Arbor Science for the People Editorial Collective (eds.) (1977), Biology as a Social Weapon. Minneapolis, MN: Burgess.

Ayala, F.J. y Dobzhansky, T. (1974) (eds.), Studies in the Philosophy of Biology. Reduction and Related Problems. London: Macmillan [(1983) Versión en castellano, Barcelona: Ariel, trad. Carlos Pijoan Rotge].

Bertalanffy, L. von (1933), Modern Theories of Development. An Introduction to Theoretical Biology, London: Oxford University Press (traductor: J. H. Woodger). [(1962) reimpresión, New York: Harper].

Bertalanffy, L. von (1952), Problems of Life. An Evaluation of Modern Biological Thought. London: Watts & Co y New York, NY: John Wiley & Sons [(1960) reimpresión, New York: Harper].

Bertalanffy, L. von (1968), General Systems Theory; Foundations, Development, Applications. New York, NY: George Braziller [(1976) Versión en castellano, México: FCE, trad. Juan Almela].

Bertalanffy, L. von (1969), “Chance or law,” in A. Koestler y J.R. Smythies (eds.) Beyond Reductionism, pags. 56-84 [reimpreso en L. von Bertalanffy (1975) Perspectives on General Systems Theory].

Bertalanffy, L. von (1975), Perspectives on General Systems Theory. Scientific-Philosophical Studies. New York, NY: Georges Braziller [(1979) Versión en castellano, Madrid: Alianza, trad. Antonio Santisteban].

Blitz, D. (1992), Emergent Evolution. Qualitative Novelty and the Levels of Reality. Dordrecht: Kluwer.

Bock, G. R. & Goode, J.A. (eds.) (1998), The Limits of Reductionism in Biology (Novartis Foundation Symposium 213). London: J.Wiley & Sons.

Bowler, P. (1983), The Eclipse of Darwinism. Baltimore: The Johns Hopkins University Press.

Cain, J. (2000), “Woodger, Positivism, and the Evolutionary Síntesis,” Biology and Philosophy 15: 535-551.

Chong, L. & Ray, B. (2002), “Whole-istic Biology,” Science 295: 1661.

Dobzhansly, T. (1937), Genetics and the Origin of Species. New York: Columbia University Press.

Dobzhansky, T. (1973), “Nothing in Biology makes sense except in the light of evolution,” The American Biology Teacher 35:125-129.

Etxeberria, A. (2000), “Complementarity and Closure,” in G. Van de Vijver y J. Chandler (eds.) Closure. Emergent Organizations and their Dynamics, Annals of the New York Academy of Sciences (Volume 901), pags. 198-206.

Etxeberria, A. (2004), “Autopoiesis and natural drift: Genetic information, reproduction, and evolution revisited,” Artificial Life 10 (3): 347-360.

Etxeberria, A. & Garcia-Azkonobieta, T. (2004), “Sobre la noción de información genética: semántica y excepcionalidad,” Theoria 50: 209-230.

Etxeberria, A. & Moreno, A. (2001), “From complexity to simplicity: nature and symbols,” Biosystems 60: 149-157.

Etxeberria, A., Moreno, A. Umerez, J. (eds.) (2000),. Special Issue on the Contribution of Artificial Life and the Sciences of Complexity to the Understanding of Autonomous Systems. CCAI: Communication and Cognition—Artificial Intelligence 17 (3-4).

Feibleman, J.K. (1954), “Theory of integrative levels,” The British Journal for the Philosophy of Science 5(17): 59-66.

Fisher, R.A. (1930), The Genetical Theory of Natural Selection. Oxford: Oxford University Press [(1958) New York: Dover].

Gánti, T. (2003), The Principles of Life (editado por James Griesemer y Eörs Szathmáry). Oxford: Oxford University Press.

Gilbert, S. F. & Sarkar, S. (2000), “Embracing complexity: Organicism for the 21st century,” Developmental Dynamics 219: 1-9.

Gould, S. J. (1983), “The hardening of the Modern Síntesis,” in M. Grene (ed.) Dimensions of Darwinism. Themes and Counterthemes in Twentieth-Century Evolutionary Theory, Cambridge: Cambridge University Press, pags. 71-93.

Grobstein, C. (1979), A Double Image of the Double Helix: The Recombinant-DNA Debate. New York: W H Freeman & Co

Guttman, M. & Neumann-Held, E. (2000), “The theory of organism and the culturalist foundation of biology,” Theory in Biosciences 119 (3-4): 276-317.

Hall, B. K. and Olson, W. M. (eds.) (2003), Keywords and Concepts in Evolutionary Developmental Biology. Cambridge Mass: Harvard University Press.

Haldane, J.B.S. (1932), The Causes of Evolution. London: Longmans (Re-ed. Princeton) NJ: Princeton Univ. Press.

Hamburger, V. (1980), “Embryology and the Modern Síntesis in Evolutionary Biology,” in Ernst Mayr and William B. Provine (eds.) The Evolutionary Synthesis. Perspectives on the Unification of Biology. Cambridge, Mass.: Harvard University Press, pags. 97-112.

Haraway, D. J. (1976), Crystals, Fabrics and Fields. Metaphors of Organicism in Twentieth-Century Developmental Biology, New Haven and London: Yale University Press.

Hofer, V. (2002), “Philosophy of Biology around the Vienna Circle: Ludwig von Bertalanffy, Joseph Henry Woodger and Philipp Frank,” in M. Heidelberger & F. Stadler (eds.), History of Philosophy and Science, Netherlands: Kluwer Academic Publishers, pags. 325-333.

Huxley, J. (1943), Evolution. The Modern Synthesis. London: Allen & Unwin [(1965) versión en castellano, Buenos Aires: Losada, trad. Felipe Jiménez de Asúa].

Kauffman, S. (1993), Origins of Order, Oxford: Oxford University Press.

Kauffman, S. (2000), Investigations, Oxford: Oxford University Press.

Kampis, G. (1991), Self-modifying Systems in Biology and Cognitive Science, Oxford: Pergamon Press.

Kay, L. E. (1996), “Life as technology: Representing, intervening and molecularizing,” in S. Sarkar Ed. The Philosophy and History of Molecular Biology: New Perspectives, Dordrecht: Kluwer, pags. 87-100.

Kay, L. E. (1997), “Cybernetics, information, life: The emergence of scriptural representations of heredity,” Configurations 5: 23-91.

Kay, L. E. (2000), Who Wrote the Book of Life: A History of the Genetic Code, Stanford: Stanford University Press.

Keller, E.F. (2000), The Century of the Gene, Cambridge, Mass.: Harvard University Press.

Kiberstis, P. & Roberts, L. (2002), “It’s not just the genes,” Science 296: 685.

Koestler, A. & Smythies, J. R. (1969), Beyond Reductionism. New Perspectives in the Life Sciences, Boston: Beacon Press.

Lenoir, T. (1985), The Strategy of Life. Teleology and Mechanics in Nineteenth-Century German Biology, Chicago: The University of Chicago Press.

Lloyd Morgan, C. (1923), Emergent Evolution. London: Williams & Norgate.

Lloyd Morgan, C. (1926), Life, Mind and Spirit, London: Williams & Norgate.

Locker, A. (ed.) (1973), Biogenesis, Evolution, Homeostasis, New York: Springer Verlag.

Maienschein, J. (1991), “The origins of Entwicklungsmechanik,” in Scott F. Gilbert (ed.) A Conceptual History of Modern Embryology, New York: Plenum Press, pags. 43-61.

Maienschein, J. (2003), Whose View of Life? Embryos, Cloning, and Stem Cells, Cambridge, Mass.: Harvard University Press.

Mainx, F. (1955), “Foundations of biology,” in O. Neurath, R. Carnap & Ch. Morris (eds.) International Encyclopedia of Unified Science 1 (9): 567-654.

Maturana, H. R, y Varela, F. J. (1973), De máquinas y seres vivos: una teoría sobre la organización biológica, Santiago de Chile: Editorial Universitaria (tercera edición en1994 con un nuevo prefacio de cada uno de los autores).

Maturana, H. R, and Varela, F. J. (1980), Autopoiesis and Cognition. the Realization of the Living, Boston: Reidel.

Mayr, E. (1942), Systematics and the Origin of Species. New York: Columbia University Press.

Mayr, E. (1980), “Prologue: Some thoughts on the history of the Evolutionary Síntesis,” in Mayr & Provine (eds.), pags. 1-48.

Mayr, E. & Provine, W.B. (eds.) (1980), The Evolutionary Synthesis. Perspectives on the Unification of Biology. Cambridge, MA: Harvard University Press.

Mendelsohn, E., Shapere, D. & Allen, G. E. (eds.) (1969), Special Issue on Expla nation in Biology, Journal of the History of Biology 2.

Morange, M. ([1994] 2003), Histoire de la biologie moléculaire. Paris: La Découverte.

Morange, M. (1997), “The transformation of molecular biology on contact with higher organisms 1960-1980,” History and Philosophy of the Life Sciences 19(3): 369-393.

Morange, Michel (1998), A History of Molecular Biology. Cambridge, MA: Harvard University Press.

Moorhead, P. S. & Kaplan, M. M. (1967), Mathematical Challenges to the Neo-Darwinian Interpretation of Evolution. Philadelphia PA: The Winstar Institute Press.

Nagel, E. (1961), The Structure of Science. New York, NY: Harcourt, Brace & World [(1978, 3a ed.) Versión en castellano, Buenos Aires: Paidós, trad. N. Míguez].

Needham, J. (1936), Order and Life. New Haven: Yale University Press [(1968) Cambridge, MA: The MIT Press].

Needham, J. (1937), Integrative Levels: A Revaluation of the Idea of Progress, Oxford: Clarendon Press.

Olby, R. (1990), “The molecular revolution in biology,” in R. C. Olby, G.N. Cantor, J.R.R. Christie & M. J.S. Hodge (eds.), Companion to the History of Modern Science, London: Routledge, pags. 503-520.

Pattee, H. H. (1969), “How does a molecule become a message?” Developmental Biology Supplement 3: 1-16.

Pattee, H. H. (1973), “The physical basis and origin of hierarchical control,” in: Hierarchy Theory. The Challenge of Complex Systems, H.H. Pattee (ed.) (New York: G. Braziller) pp. 73-108.

Pattee, H. H. (1977), “Dynamic and linguistic modes of complex systems,” Int. J. General Systems 3: 259-266.

Pattee, H. H. (1979), “The complementarity principle and the origin of macromolecular information,” Biosystems 11: 217-226.

Pattee, H. H. (1982), “Cell psychology: an evolutionary approach to the symbolmatter problem,” Cognition and Brain Theory 5 (4): 325-341.

Polanyi, M. (1968), “Life’s irreducible structure,” Science 160: 1308-1312.

Regenmortel, M. H. V. van & Hull, David L. (eds.) (2002), Promises and Limits of Reductionism in the Biomedical Sciences. London: John Wiley & Sons.

Rehmann-Sutter, Ch. (2000), “Biological organicism and the ethics of the humannature relationship,” Theory in Biosciences 119 (3-4): 334-354.

Roll-Hansen, N. (1984), “E.S. Russell and J.H. Woodger: The failure of two-twentieth century opponents of mechanistic biology,” Journal of the History of Biology 17(3): 399-428.

Roll-Hansen, N. (2000), “The application of complementarity to Biology: From Niels Bohr to Max Delbruck,” Historical Studies in the Physical and Biological Sciences 30 (2): 417-442.

Rosen, R. (1958), “A relational theory of biological systems,” Bull. Math. Biophysics, 20: 245-260.

Rosen, R. (1959), “Some realizations of (M,R)-systems and their interpretation,” Bull. Math. Biophysics, 21: 109-128.

Rosen, R. (1971), “A relational theory of biological systems”, Bull. Math. Biophysics, 33: 303-319.

Rosen, R. (1985), Anticipatory Systems, Oxford: Pergamon Press.

Rosen, R. (1991), Life Itself. New York: Columbia University Press.

Ruiz-Mirazo, K., Etxeberria, A., Moreno, A. & Ibáñez, J. (2000), “Organisms and their place in biology,” Theory in Biosciences 119 (3-4): 209-233.

Simpson, G.G. (1944), Tempo and Mode in Evolution, New York: Columbia University Press.

Smocovitis, V. B. (1996), Unifying Biology. The Evolutionary Synthesis and Evolutionary Biology. Princeton, NJ: Princenton University Press.

Smocovitis, V. B. (2000), “Serious matters: On Woodger, positivism and the Evolutionary Synthesis,” Biology and Philosophy 15: 553-558.

Sterelny, K., Griffiths, P. E. (1999), Sex and Death. An Introduction to Philosophy of Biology. The University of Chicago Press, Chicago.

Strohman, R.C. (1997), “The coming Kuhnian revolution in biology,” Nature Biotechnology 15: 194-200.

Strohman, R. C. (2002), “Maneuvering in the complex path from genotype to phenotype,” Science 296: 701-703.

Umerez, J. (1994), Jerarquías Autónomas. Un estudio sobre el origen y la naturaleza de los procesos de control y de formación de niveles en sistemas naturales complejos. Tesis doctoral, Universidad del País Vasco.

Umerez, J. (1998), “The evolution of the symbolic domain in living systems and artificial life,” in G. van de Vijver, S. Salthe & M. Delpos (eds.) Evolutionary Systems, Dordrecht: Kluwer, pags. 377-396.

Umerez, J. (2001), “Howard Pattee’s theoretical biology. A radical epistemological stance to approach life, evolution and complexity,” Biosystems 60 (1-3), 159-177.

Varela, F. (1979), Principles of Biological Autonomy. New York: Elsevier North Holland.

Varela, F. (1996), “The early days of autopoiesis: Heinz and Chile,” Systems Research 13 (3): 407-416.

Varela , F. (2000), El fenómeno de la vida, Santiago de Chile: Dolmen.

Varela, F., Matutara, H. and Uribe, R. (1974), “Autopoiesis: The organization of living systems, its characterization and a model,” Biosystems 5: 187-196.

VV.AA. (2002a), “Systems biology,” Science 295: 1661-1682.

VV.AA. (2002b), “The puzzle of complex diseases,” Science 296: 685-703.

Waddington, C. H. (1953); “Epigenetics and evolution,” in Symposia of the Society for Experimental Biology: Evolution, New York: Academic Press, pp. 186-199.

Waddington, C. H. (1957), The Strategy of the Genes. A Discussion of Some Aspects of Theoretical Biology, New York: Macmillan and Co.

Waddington, C. H. (1968-1972), Towards a Theoretical Biology. 4 vols. Edinburgh: Edinburgh University Press. [Chicago, Ill: Aldine] [(1976). Versión y selección de los tres primeros volúmenes en castellano, Madrid: Alianza, trad. Mariano Franco Rivas].

Weaver, W. (1970), “Molecular Biology: Origin of the term,” Science 170: 581-2.

Weber, A. and Varela F.J. (2002), “Life after Kant: Natural purposes and the autopoietic foundations of biological individuality,” Phenomenology and the Cognitive Sciences 1: 97-125.

Webster, G. & Goodwin, B. (1996), Form and Transformation. Generative and Relational Principles in Biology. Cambridge, Mass.: Cambridge University Press.

Whitehead, A. N. (1928), Process and Reality. New York: Free Press.

Whyte, L.L., Wilson, A. G., and Wilson, D. (eds.) (1969), Hierarchical Structures, New York, NY: American Elsevier. [(1973) Versión en castellano, Madrid: Alianza, trad. Víctor Sánchez de Zavala].

Woodger, J.H. (1929), Biological Principles. A Critical Study. London: Routledge and Kegan (vuelto a publicar en 1967 con una nueva introducción).

Woodger, J.H. (1930), “The ’concept of organism’ and the relation between Embryology and Genetics,” The Quaterly Review of Biology 5 (1): 1-22.

Wright, S. (1931), “Evolution in Mendelian populations,” Genetics 16: 97-159.


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