Gaia and natural selection (original) (raw)

References

  1. Lovelock, J. E. The Ages of Gaia 2nd edn (Oxford Univ. Press, Oxford, (1995).
    Google Scholar
  2. Darwin, C. The Origin of Species (John Murray, London, (1959).
    Google Scholar
  3. Doolittle, W. F. Is Nature really motherly? _CoEvol. Quart._Spring, 58–63 (1981).
  4. Lovelock, J. E. Aphysical basis for life detection experiments. Nature 207, 568–570 (1965).
    ADS CAS PubMed Google Scholar
  5. Hitchcock, D. R. & Lovelock, J. E. Life detection by atmospheric analysis. Icarus 7, 149–159 (1967).
    ADS Google Scholar
  6. Lovelock, J. E. Thermodynamics and the recognition of alien biospheres. Proc. R. Soc. Lond. B 189, 167–181 (1975).
    ADS CAS Google Scholar
  7. Lovelock, J. E. Gaia as seen through the atmosphere. Atmos. Environ. 6, 579–580 (1972).
    ADS Google Scholar
  8. Watson, A. J., Lovelock, J. E. & Margulis, L. Methanogenesis, fires and the regulation of atmospheric oxygen. Biosystems 10, 293–298 (1978).
    CAS PubMed Google Scholar
  9. Newman, M. J. & Rood, R. T. Implications of solar evolution for the Earth's early atmosphere. Science 198, 1035–1037 (1977).
    ADS CAS PubMed Google Scholar
  10. Mojzsis, S. J. et al. Evidence for life on Earth before 3,800 million years ago. Nature 384, 55–59 (1996).
    ADS CAS PubMed Google Scholar
  11. Walker, J. C. G., Hays, P. B. & Kasting, J. F. Anegative feedback mechanism for the long-term stabilization of Earth's surface temperature. J. Geophys. Res. 86, 9776–9782 (1981).
    ADS CAS Google Scholar
  12. Lovelock, J. E. & Margulis, L. Atmospheric homeostasis by and for the biosphere: the gaia hypothesis. Tellus 26, 2–10 (1974).
    ADS CAS Google Scholar
  13. Margulis, L. & Lovelock, J. E. Biological modulation of the Earth's atmosphere. Icarus 21, 471–489 (1974).
    ADS CAS Google Scholar
  14. Lovelock, J. E. & Margulis, L. Homeostatic tendencies of the Earth's atmosphere. Origins Life 5, 93–103 (1974).
    ADS CAS Google Scholar
  15. Lovelock, J. E., Maggs, R. J. & Rasmussen, R. A. Atmospheric dimethyl sulphide and the natural sulphur cycle. Nature 237, 452–453 (1972).
    ADS CAS Google Scholar
  16. Lovelock, J. E., Maggs, R. J. & Wade, R. J. Halogenated hydrocarbons in and over the Atlantic. Nature 241, 194–196 (1973).
    ADS CAS Google Scholar
  17. Lovelock, J. E. Gaia — A New Look at Life on Earth (Oxford Univ. Press, (1979).
    Google Scholar
  18. Whitfield, M. The world ocean: mechanism or machination? Interdisc. Sci. Rev. 6, 12–35 (1981).
    CAS Google Scholar
  19. Dawkins, R. The Extended Phenotype (Oxford Univ. Press, (1983).
    Google Scholar
  20. Lovelock, J. E. in Biomineralisation and Biological Metal Accumulation (eds Westbroek, P. & de Jong, E. W.) 15–25 (Reidel, Dordrecht, (1983).
    Google Scholar
  21. Watson, A. J. & Lovelock, J. E. Biological homeostasis of the global environment: the parable of Daisyworld. Tellus 35B, 284–289 (1983).
    ADS Google Scholar
  22. Lovelock, J. E. Geophysiology: a new look at earth science. Bull. Am. Meteorol. Soc. 67, 392–397 (1986).
    Google Scholar
  23. Kerr, R. A. No longer willful, Gaia becomes respectable. Science 240, 393–395 (1988).
    ADS CAS PubMed Google Scholar
  24. Lovelock, J. E. Hands up for the Gaia hypothesis. Nature 344, 100–102 (1990).
    ADS Google Scholar
  25. Lovelock, J. E. Geophysiology, the science of Gaia. Rev. Geophys. 27, 215–222 (1989).
    ADS Google Scholar
  26. Kump, L. R. & Lovelock, J. E. in Future Climates of the World: A Modelling Perspective (ed. Henderson-Sellers, A.) 537–553 (Elsevier, Oxford, (1995).
    Google Scholar
  27. Alvarez, W. et al. Impact theory of mass extinctions and the invertebrate fossil record. Science 223, 1135–1141 (1984).
    ADS CAS PubMed Google Scholar
  28. Officer, C. B., Hallam, A., Drake, C. L. & Devine, J. D. Late Cretaceous and paroxysmal Cretaceous/Tertiary extinctions. Nature 326, 143–149 (1987).
    ADS Google Scholar
  29. Rampino, M. R. Impact cratering and flood basalt volcanism. Nature 327, 468 (1987).
    ADS Google Scholar
  30. Raup, D. M. & Sepkoski, J. J. Mass extinctions in the marine fossil record. Science 215, 1501–1503 (1982).
    ADS CAS PubMed Google Scholar
  31. Rampino, M. R. & Volk, T. Mass extinctions, atmospheric sulphur and climatic warming at the K/T boundary. Nature 332, 63–65 (1988).
    ADS CAS Google Scholar
  32. Watson, A. J. Gaia. New Sci. Inside Science 48, 1–4 (1991).
    Google Scholar
  33. Ehrlich, P. in Scientists on Gaia (eds Schneider, S. H. & Boston, P. J.) 19–22 (MIT, London, (1991).
    Google Scholar
  34. Schneider, S. H. & Londer, R. The Coevolution of Climate and Life (Sierra Club, San Francisco, (1984).
    Google Scholar
  35. Holland, H. D. The Chemcial Evolution of the Atmosphere and the Oceans (Princeton Univ. Press, NJ, (1984).
    Google Scholar
  36. Budyko, M. I. The effect of solar radiation variations on the climate of the Earth. Tellus 21, 611–619 (1969).
    ADS Google Scholar
  37. Caldeira, K. & Kasting, J. F. Susceptibility of the early Earth to irreversible glaciations caused by carbon dioxide clouds. Nature 359, 226–228 (1992).
    ADS CAS PubMed Google Scholar
  38. Rye, R., Kuo, P. H. & Holland, H. D. Atmospheric carbon dioxide concentraitons before 2.2 billion years ago. Nature 378, 603–605 (1995).
    ADS CAS PubMed Google Scholar
  39. Hayes, J. M. in Early Life on Earth, Nobel Symposium No. 84 (ed. Bengtson, S.) 220–236 (Columbia Univ. Press, New York, (1994).
    Google Scholar
  40. Evans, D. A., Beukes, N. J. & Kirschvink, J. L. Low-latitude glaciation in the Palaeoproterozoic era. Nature 386, 262–266 (1997).
    ADS CAS Google Scholar
  41. Schrodinger, E. What is Life? (Cambridge Univ. Press, (1944).
    Google Scholar
  42. DeDuve, C. Vital Dust (Basic, New York, (1995).
    Google Scholar
  43. Lovelock, J. E. Geophysiology. Trans. R. Soc. Edinb. Earth Sci. 80, 169–175 (1989).
    Google Scholar
  44. Lovelock, J. E. & Whitfield, M. Life span of the biosphere. Nature 296, 561–563 (1982).
    ADS CAS Google Scholar
  45. Lovelock, J. E. & Watson, A. J. The regulation of carbon dioxide and climate: Gaia or geochemistry. Planet. Space Sci. 30, 795–802 (1982).
    ADS CAS Google Scholar
  46. Schwartzman, D. W. & Volk, T. Biotic enhancement of weathering and the habitabiity of Earth. Nature 340, 457–460 (1989).
    ADS Google Scholar
  47. Schwartzman, D. W. & Volk, T. Biotic enhancement of weathering and surface temperatures on earth since the origin of life. Palaeogeogr. Palaeoclimatol. Palaeoecol. 90, 357–371 (1991).
    Google Scholar
  48. Lovelock, J. E. Anumerical model for biodiversity. Phil. Trans. R. Soc. Lond. B 338, 383–391 (1992).
    ADS Google Scholar
  49. Maddock, L. Effects of simple environmental feedback on some population models. Tellus 43B, 331–337 (1991).
    ADS Google Scholar
  50. Maynard Smith, J. & Szathmary, E. The Major Transitions in Evolution (Freeman, Oxford, (1995).
    Google Scholar
  51. Hamilton, W. D. Ecology in the large: Gaia and Genghis Khan. J. Appl. Ecol. 32, 451–453 (1995).
    Google Scholar
  52. Saunders, P. T. Evolution without natural selection: further implications of the Daisyworld parable. J. Theor. Biol. 166, 365–373 (1994).
    CAS PubMed Google Scholar
  53. Keeling, R. in Scientists on Gaia (eds Scheider, S. H. & Boston, P. J.) 118–120 (MIT, London, (1991).
    Google Scholar
  54. Kirchner, J. W. The Gaia hypothesis: can it be tested? Rev. Geophys. 27, 223–235 (1989).
    ADS Google Scholar
  55. Stöcker, S. Regarding mutations in Daisyworld models. J. Theor. Biol. 175, 495–501 (1995).
    Google Scholar
  56. Von Bloh, W., Block, A. & Schellnhuberr, H. J. Self-stabilization of the biosphere under global change: a tutorial geophysiological approach. Tellus 49B, 249–262 (1997).
    ADS Google Scholar
  57. Harding, S. P. & Lovelock, J. E. Exploiter-mediated coexistence and frequency-dependent selection in a numerical model of biodiversity. J. Theor. Biol. 182, 109–116 (1996).
    CAS PubMed Google Scholar
  58. Harding, S. P. The effects of food web complexity on community stability and climate regulation in a geophysiological model. Tellus(submitted).
  59. Oreskes, N., Shrader-Frechette, K. & Belitz, K. Verification, validation, and confirmation of numerical models in the Earth sciences. Science 263, 641–646 (1994).
    ADS CAS PubMed Google Scholar
  60. Lovelock, J. E. & Kump, L. R. Failure of climate regulation in a geophysiological model. Nature 369, 732–734 (1994).
    ADS CAS Google Scholar
  61. Laland, K. N., Odling-Smeet, F. J. & Feldman, M. W. The evolutionary consequences of niche construction: a theoretical investigation using two-locus theory. J. Evol. Biol. 9, 293–316 (1996).
    Google Scholar
  62. Patten, B. C. & Odum, E. P. The cybernetic nature of ecosystems. Am. Nat. 118, 886–895 (1981).
    Google Scholar
  63. Chapin, F. S. II et al. Biotic control over the functioning of ecosystems. Science 277, 500–504 (1997).
    CAS Google Scholar
  64. Salati, E. in The Geophysiology of Amazonia: Vegetation and Climate Interactions (ed. Dickinson, R. E.) 273–296 (Wiley, New York, (1987).
    Google Scholar
  65. Shukla, J., Nobre, C. & Sellers, P. Amazon deforestation and climate change. Science 247, 1322–1325 (1990).
    ADS CAS PubMed Google Scholar
  66. Bonan, G. B., Pollard, D. & Thompson, S. L. Effects of boreal forest vegetation on global climate. Nature 359, 716–718 (1992).
    ADS Google Scholar
  67. Hansen, J., Ruedy, R., Sato, M. & Reynolds, R. Global surface air temperature in 1995: return to pre-Pinatubo level. J. Geophys. Res. 23, 1665–1668 (1996).
    Google Scholar
  68. Betts, R. A., Cox, P. M., Lee, S. E. & Woodward, F. I. Contrasting physiological and structural vegetation feedbacks in climate change simulations. Nature 387, 796–799 (1997).
    ADS CAS Google Scholar
  69. Gallimore, R. G. & Kutzbach, J. E. Role of orbitally induced changes in tundra area in the onset of glaciation. Nature 381, 503–505 (1996).
    ADS CAS Google Scholar
  70. Foley, J. A., Kutzbach, J. E., Coe, M. T. & Levis, S. Feedbacks between climate and boreal forests during the Holocene epoch. Nature 371, 52–54 (1994).
    ADS Google Scholar
  71. Otto-Bliesner, B. L. & Upchurch, G. R. J Vegetation-induced warming of high-latitude regions during the Late Cretaceous period. Nature 385, 804–807 (1997).
    ADS Google Scholar
  72. Klinger, L. F. in Scientists on Gaia (eds Schneider, S. H. & Boston, P. J. ) 247–255 (MIT, London, (1991).
    Google Scholar
  73. Hamilton, W. D. Gaia's benefits. New Sci. 151, 62–63 (1996).
    Google Scholar
  74. Charlson, R. J., Lovelock, J. E., Andreae, M. O. & Warren, S. G. Oceanic phytoplankton, atmospheric sulphur, cloud albedo and climate. Nature 326, 655–661 (1987).
    ADS CAS Google Scholar
  75. Lovelock, J. E. Ageohysiologist's thoughts on the natural sulphur cycle. Phil. Trans. R. Soc. Lond. B 352, 143–147 (1997).
    ADS CAS Google Scholar
  76. Liss, P. S., Hatton, A. D., Malin, G., Nightingale, P. D. & Turner, S. M. Marine sulphur emissions. Phil. Trans. R. Soc. Lond. B 352, 159–169 (1997).
    ADS CAS Google Scholar
  77. Andreae, M. O. & Crutzen, P. J. Atmospheric aerosols: biogeochemcial sources and role in atmospheric chemistry. Science 276, 1052–1058 (1997).
    CAS Google Scholar
  78. Caldeira, K. Evolutionary pressures on planktonic production of atmospheric sulphur. Nature 337, 732–734 (1989).
    ADS CAS Google Scholar
  79. Wolfe, G. V., Steinke, M. & Kirst, G. O. Grazing-activated chemical defence in a unicellular marine alga. Nature 387, 894–897 (1997).
    ADS CAS Google Scholar
  80. Hamilton, W. D. & Lenton, T. M. Spora and Gaia: how microbes fly with their clouds. Ethol. Ecol. Evol. 10, 1–16 (1998).
    Google Scholar
  81. Ravishankara, A. R., Rudich, Y., Talukdar, R. & Barone, S. B. Oxidation of atmospheric reduced sulphur compounds: perspective from laboratory studies. Phil. Trans. R. Soc. Lond. B 352, 171–182 (1997).
    ADS CAS Google Scholar
  82. Legrand, M. et al. Ice-core record of oceanic emissions of dimethylsulphide during the last climate cycle. Nature 350, 144–146 (1991).
    ADS CAS Google Scholar
  83. Legrand, M. Ice-core records of atmospheric sulphur. Phil Trans. R. Soc. Lond. B 352, 241–250 (1997).
    ADS CAS Google Scholar
  84. Ayers, G. P. & Gras, J. L. Seasonal relationship between cloud condensation nuclei and aerosol methanesulphonate in marine air. Nature 353, 834–835 (1991).
    ADS CAS Google Scholar
  85. Falkowski, P. G. et al. Natural versus anthropogenic factors affecting low-level cloud albedo over the North Atlantic. Science 256, 1311–1313 (1992).
    ADS CAS PubMed Google Scholar
  86. Roemmich, D. & McGowan, J. Climatic warming and the decline of zooplankton in the California current. Science 267, 1324–1326 (1995).
    ADS CAS PubMed Google Scholar
  87. Andreae, M. O. in The Role of Air–Sea Exchange in Geochemical Cycling (ed. Buat-Menard, P.) 331–362 (Reidel, Dordrecht, (1986).
    Google Scholar
  88. Turner, S. M., Malin, G., Liss, P. S., Harbour, D. S. & Holligan, P. M. The seasonal variation of dimethyl sulphide and dimethylsulfonioproprionate concentrations in nearshore waters. Limnol. Oceanogr. 33, 364–375 (1988).
    ADS CAS Google Scholar
  89. Gage, D. A. et al. Anew route for synthesis of dimethylsulphoniopropionate in marine algae. Nature 387, 891–894 (1997).
    ADS CAS PubMed Google Scholar
  90. Liss, P. S. & Galloway, J. N. in Interactions of C, N, P and S Biogeochemical Cycles and Global Change (eds Wollast, R., Mackenzie, F. T. & Chou, L.) 259–281 (Springer, Berlin, (1993).
    Google Scholar
  91. Eisele, F. L. & McMurray, P. H. Recent progress in understanding particle nucleation and growth. Phil. Trans. R. Soc. Lond. B 352, 191–201 (1997).
    ADS CAS Google Scholar
  92. Watson, A. J. in Gaia in Action, Science of the Living Earth (ed. Bunyard, P.) 65–74 (Floris, Edinburgh, (1996).
    Google Scholar
  93. Wayne, R. P. Chemistry of Atmospheres 2nd edn (Oxford Univ. Press, (1991).
    Google Scholar
  94. Mackenzie, F. T., Ver, L. M., Sabine, C., Lane, M. & Lerman, A. in Interactions of C, N, P and S Biogeochemical Cycles and Global Change (eds Wollast, R., Mackenzie, F. T. & Chou, L.) 1–61 (Springer, Berlin, (1993).
    Google Scholar
  95. Brasseur, G. P. & Chatfield, R. B. in Trace Gas Emission from Plants (eds Sharkey, T. D., Holland, E. A. & Mooney, H. A.) 1–27 (Academic, San Diego, (1991).
    Google Scholar
  96. Holland, H. D. The Chemistry of the Atmosphere and Oceans (Wiley, New York, (1978).
    Google Scholar
  97. Jackson, T. A. & Keller, W. D. Acomparitive study of the role of lichens and “inorganic” processes in the chemical weathering of recent Hawaiian lava flows. Am. J. Sci. 269, 446–466 (1970).
    ADS CAS Google Scholar
  98. Kasting, J. F., Whitmore, D. P. & Reynolds, R. T. Habitable zones around main sequence stars. Icarus 101, 108–128 (1993).
    ADS CAS PubMed Google Scholar
  99. Lotka, A. Elements of Mathematical Biology (Dover, New York, (1956).
    MATH Google Scholar

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