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Autopoiesis: a review and a reappraisal

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Abstract

The aim of the paper is to review critically the notion of autopoiesis as presented by Maturana and Varela. In particular, recognizing that there are difficulties in obtaining a complete and clear picture from the primary literature, an effort is made to present a coherent view—also based on many years of personal contact with Francisco Varela. The paper begins with a few historical notes to highlight the cultural background from which the notion of autopoiesis arose. The basic principles of autopoiesis as a theory of cellular life are then described, emphasizing also what autopoiesis is not: not an abstract theory, not a concept of artificial life, not a theory about the origin of life—but rather a pragmatic blueprint of life based on cellular life. It shown how this view leads to a conceptually clear definition of minimal life and to a logical link with related notions, such as self-organization, emergence, biological autonomy, auto-referentiality, and interactions with the environment. The perturbations brought about by the environment are seen as changes selected and triggered by the inner organization of the living. These selective coupling interactions impart meaning to the minimal life and are thus defined by Maturana and Varela with the arguable term of "cognition". This particular view on the mutual interactions between living organism and environment leads these authors to the notion of "enaction", and to the surprising view that autopoiesis and cognition are two complementary, and in a way equivalent, aspects of life. It is then shown how cognition, so defined, permits us to build a bridge between biology and cognitive science. Autopoiesis also allows one to conceive chemical models of minimal cellular life that can be implemented experimentally. The corresponding work on "chemical autopoiesis" is then reviewed. The surprising impact of autopoiesis in the social sciences ("social autopoiesis") is also briefly discussed. This review also comments on why the theory of autopoiesis had, and still has, a difficult time being accepted into the mainstream of life-science research. Finally, it is pointed out that the new interest in system biology and complexity theories may lead to a reappraisal of autopoiesis and related notions, as outlined also by other authors, such as Tibor Ganti and Stuart Kauffmann.

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References

  • Bachmann PA, Walde P, Luisi PL, Lang J (1990) Self-replicating reverse micelles and chemical autopoiesis. J Am Chem Soc 112:8200–8201

    CAS  Google Scholar 

  • Bachmann, PA, Luisi PL, Lang J (1992) Autocatalytic self-replicating micelles as models for prebiotic structures. Nature 357:57–59

    CAS  Google Scholar 

  • Benseler F, Hejl P, Kock W (1980) Autopoiesis, communication and society: the theory of autopoietic systems in the social sciences. Campus, Frankfurt

    Google Scholar 

  • Boden M (2000) Autopoiesis and life. Cognitive Sci Q 1:115–143

    Google Scholar 

  • Böhler C, Bannwarth W, Luisi PL (1993) Self-replication of oligonucleotides in reverse micelles. Helv Chim Acta 76:2313–2320

    Google Scholar 

  • Capra F (2002) The hidden connections: a science for sustainable living. HarperCollins, London

    Google Scholar 

  • Chakrabarti AC, Breaker RR, Joyce GF, Deamer DW (1994) Production of RNA by a polymerase protein encapsulated within phospholipid vesicles. J Mol Evol 39:555–559

    CAS  PubMed  Google Scholar 

  • Deamer DW, Dworkin J, Sandford SA, Bernstein MP, Allamandola LJ (2003) The first cell membranes. Science

  • Fleischaker G (1988) Autopoiesis: the status of its system logic. BioSystems 22:37–49

    CAS  PubMed  Google Scholar 

  • Ganti T (1975) Organization of chemical reactions into dividing and metabolizing units: the chemotons. BioSystems 7:15–21

    CAS  PubMed  Google Scholar 

  • Husserl E (1960) Cartesian meditations: an introduction to phenomenology. Cairns D (trans). Kluwer, Dordrecht

    Google Scholar 

  • Jacob F (1994) The possible and the actual. University of Washington Press, Seattle

  • Joyce GF (1994) Foreword. In: Deamer DW, Fleishaker GR (eds) Origins of life: the central concepts. John and Bartlett, Boston, pp xi–xii

    Google Scholar 

  • Kauffman S (1995) At home in the Universe. Oxford University Press, New York

  • Kauffman S (2000) Investigations. Oxford University Press, New York

  • Kimura M (1985) The neutral theory of molecular evolution. New Sci 107:1464

    Google Scholar 

  • Luhmann K (1984) Soziale Systeme. Suhrkamp, Frankfurt

  • Luisi PL (1993) Defining the transition to life: self-replicating bounded structures and chemical autopoiesis. In: Stein W, Varela F (eds) Thinking about biology. Addison-Wesley, New York

  • Luisi PL (1996) Self-reproduction of micelles and vesicles: models for the mechanisms of life from the perspective of compartmented chemistry. Adv Chem Phys 92:425–438

    CAS  Google Scholar 

  • Luisi PL (1997) Self-reproduction of chemical structures and the question of the transition to life. In: Cosmovici CB, Bowyer S, Westhimer D (eds) Astronomical and biochemical origins and the search for life in the universe. Editrice Compositori, Bologna, pp 461–468

  • Luisi PL (1998) About various definitions of life. Origins Life Evol Biosphere 28:613–622

    Article  CAS  Google Scholar 

  • Luisi PL (2002) Emergence in chemistry: chemistry as the embodiment of emergence. Found Chem 4(3):183–200

    CAS  Google Scholar 

  • Luisi PL, Varela F (1989) Self-replicating micelles: a chemical version of minimal autopoietic systems. Origins Life Evol Biosphere 19:633–643

    CAS  Google Scholar 

  • Luisi PL, Lazcano A, Varela F (1996) What is life? Defining life and the transition to life. In: Rizzotti M (ed) Defining life: the central problem in theoretical biology. Edizione Università di Padova, Padua, pp146–167

    Google Scholar 

  • Luisi PL, Oberholzer T, Lazcano A (2002) The notion of a DNA minimal cell: a general discourse and some guidelines for an experimental approach. Helv Chim Acta 85:1759–1777

    Article  CAS  Google Scholar 

  • Margulis L, Sagan D (1995) What is life. Simon and Schuster, New York

  • Maturana H (1970) Neurophysiology of cognition. In: Garvin P (ed) Cognition: a multiple view. Spartan, New York, pp 3–23

    Google Scholar 

  • Maturana H (1987) The biological foundations of consciousness. Conference Workbook: texts in cybernetics. American Society for Cybernetics Conference, Felton, Calif.

    Google Scholar 

  • Maturana H, Varela F (1980) Autopoiesis and cognition: the realization of the living. Reidel, Boston

    Google Scholar 

  • Maturana H, Lettvin J, McCulloch W, Pitts W (1960) Life and cognition. Gen Physiol 43:129–175

    Google Scholar 

  • McMullin B, Varela F (1997) Rediscovering computational autopoiesis. In: Husbands P, Harvey J (eds) Proceedings of the fourth European conference on artificial life. MIT Press, Cambridge, Mass.

  • Merleau-Ponty M (1967) The structure of behaviour. Beacon, Boston

  • Mingers J (1992) The problems of social autopoiesis. Int J Gen Syst 21:229–236

    Google Scholar 

  • Mingers J (1995) Self-producing systems: implications and applications of autopoiesis. Plenum, New York

    Google Scholar 

  • Mingers J (1997) A critical evaluation of Maturana's constructivist family therapy. Syst Practice 10(2):137–151

    Google Scholar 

  • Morigaki K, Dellavalle S, Walde P, Colonna S, Luisi PL (1997) Autopoietic self-reproduction of chiral fatty acid vesicles. J Am Chem Soc 119:292–301

    CAS  Google Scholar 

  • Morowitz H (1992) The beginning of cellular life. Yale University Press, New Haven, Conn.

  • Morowitz H, Peterson E, Chang S (1996) The synthesis of glutamic-acid in the absence of enzymes: implications for biogenesis. Origins Life Evol Biosphere 4:395–399

    Google Scholar 

  • Oberholzer T, Wick R, Luisi PL, Biebricher CK (1995) Enzymatic RNA replication in self-reproducing vesicles: an approach to a minimal cell. Biochem Biophys Res Commun 207(1):250–257

    Article  CAS  PubMed  Google Scholar 

  • Paulson W (1988) The noise as culture. Cornell University Press, Ithaca

  • Piaget J (1969) Essai sur les relations entre les régulations organiques et les processus cognitifs. In: Biologie et Connaissance. Gallimard, Paris

  • Pohorille A, Deamer DW (2002) Artificial cells: prospects for biotechnology. Trends Biotechnol 20:123–128

    Article  CAS  PubMed  Google Scholar 

  • Szostak, JW, Bartell D, Luisi PL (2001) Synthesizing life. Nature 409:387–390

    Article  CAS  Google Scholar 

  • Teubner G (1993) Laws as an autopoietic system. Blackwell, Oxford

  • Thompson E, Varela F (2001) Radical embodiment: neural dynamics and consciousness. Trends Cognitive Sci 5:418–425

    Article  Google Scholar 

  • Varela F (1979) Principles of biological autonomy. North Holland/Elsevier, New York

  • Varela F (1989) Reflections on the circulation of concepts between a biology of cognition and systemic family therapy. Family Process 28:15–24

    CAS  PubMed  Google Scholar 

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

  • Varela F, Maturana H (1998) The tree of knowledge (rev edn). Shambala, Boston

  • Varela, F, Maturana H, Uribe R (1974) Autopoiesis: the organization of living systems, its characterization and a model. BioSystems 5:187–195

    CAS  Google Scholar 

  • Varela F, Thompson E, Rosch E (1991) The embodied mind: cognitive science and human experience. MIT Press, Cambridge, Mass.

    Google Scholar 

  • Von Kiedrowski G (1986) A self-replicating hexadeoxynucleotide. Angew Chem 98:932–934

    Google Scholar 

  • Von Kiedrowski G (1989) Angew Chem 101:1259

    Google Scholar 

  • Walde P, Wick R, Fresta M, Mangone A, Luisi PL (1994a) Autopoietic self-reproduction of fatty acid vesicles. J Am Chem Soc 116:11649–11654

    CAS  Google Scholar 

  • Walde P, Goto A, Monnard PA, Wessicken M, Luisi PL (1994b) Oparin's reactions revisited: enzymatic synthesis of poly(adenylic acid) in micelles and self-reproducing vesicles. J Am Chem Soc 116:7541–7544

    CAS  Google Scholar 

  • Wick R, Walde P, Luisi PL (1995) Autocatalytic self-reproduction of giant vesicles. J Am Chem Soc117:1435–1436

    Google Scholar 

  • Zeleny M (1977) Self-organization of living systems formal model of autopoiesis. Int J Gen Syst 4:13–28

    Google Scholar 

  • Zeleny M (ed) (1997) Autopoiesis: a theory of the living organization, North Holland, New York

  • Zepik HH, Bloechliger E, Luisi PL (2001) A chemical model of homeostasis. Angew Chem 40:199–202

    Article  CAS  Google Scholar 

Download references

Acknowledgements

The author expresses his thanks to Amy Cohen-Varela, who has edited the manuscript and contributed important critical suggestions.

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Correspondence to Pier Luigi Luisi.

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Luisi, P.L. Autopoiesis: a review and a reappraisal. Naturwissenschaften 90, 49–59 (2003). https://doi.org/10.1007/s00114-002-0389-9

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