Handbook of Plant and Crop Physiology

(Steven Felgate) #1

  1. JP Maroco, MSB Ku, GE Edwards. Utilization of O 2 in the metabolic optimization of C 4 photosynthesis. Plant
    Cell Environ 23:115–121, 2000.

  2. CB Osmond, JAM Holtum. Crassulacean acid metabolism. In: MD Hatch, NK Boardman, eds. The Biochem-
    istry of Plants. A Comprehensive Treatise. Vol 8. Photosynthesis. New York: Academic Press, 1981,
    pp 283–328.

  3. CB Osmond. Crassulacean acid metabolism: A curiosity in context. Annu Rev Plant Physiol 29:379–414,
    1978.

  4. PS Nobel. Environmental Biology of Agaves and Cacti. New York: Cambridge University Press, 1988.

  5. M Kluge. The flow of carbon in Crassulacean acid metabolism (CAM). In: M Gibbs, E Latzo, eds. Photosyn-
    thesis II. Photosynthetic Carbon Metabolism and Related Processes. Berlin: Springer-Verlag, 1979,
    pp 113–125.

  6. M Cui, PM Miller, PS Nobel. CO 2 exchange and growth of the Crassulacean acid metabolism plant Opuntia
    ficus-indicaunder elevated CO 2 in open-top chambers. Plant Physiol 103:519–524, 1993.

  7. BA Kimball, JR Mauney, FS Nakayama, SB Idso. Effects of elevated CO 2 and climate variables on plants.
    J Soil Water Conserv 48:9–14, 1993.

  8. H Poorter, C Roumet, BD Campbell. Interspecific variation in the growth response of plants to elevated CO 2 :
    A search for functional types. In: C Korner, FA Bazzaz, eds. Carbon Dioxide, Populations, and Communities.
    New York: Academic Press, 1996, pp 375–412.

  9. BG Drake, MA Gonzalez-Meler, SP Long. More efficient plants: A consequence of rising atmospheric CO 2?
    Annu Rev Plant Physiol Plant Mol Biol 48:609–639, 1997.

  10. T Nelson, JA Langdale. Developmental genetics of C 4 photosynthesis. Annu Rev Plant Physiol Plant Mol Biol
    43:25–47, 1992.

  11. LH Allen Jr, JT Baker, KJ Boote. The CO 2 fertilization effect: Higher carbohydrate production and retention
    as biomass and seed yield. In: F Bazzaz, W Sombroek, eds. Global Climate Change and Agricultural Produc-
    tion: Direct and Indirect Effects of Changing Hydrological, Pedological and Plant Physiological Processes.
    Rome: FAO, and Chichester: John Wiley & Sons, 1996, pp 65–100.

  12. BA Kimball. Carbon dioxide and agricultural yield: An assemblage and analysis of 430 prior observations.
    Agron J 75:779–788, 1983.

  13. H Poorter. Interspecific variation in the growth response of plants to an elevated ambient CO 2 concentration.
    Vegetatio 104/105:77–97, 1993.

  14. RJ Norby, SD Wullschleger, CA Gunderson, DW Johnson, R Ceulemans. Tree responses to rising CO 2 in field
    experiments: Implications for the future forest. Plant Cell Environ 22:683–714, 1999.

  15. LH Allen Jr. Plant responses to rising carbon dioxide and potential interactions with air pollutants. J Environ
    Qual 19:15–34, 1990.

  16. FA Bazzaz. The response of natural ecosystems to the rising global CO 2 levels. Annu Rev Ecol Syst
    21:167–196, 1990.

  17. JF Thomas, CN Harvey. Leaf anatomy of four species grown under continuous CO 2 enrichment. Bot Gaz
    144:303–309, 1983.

  18. JCV Vu, LH Allen Jr, G Bowes. Leaf ultrastructure, carbohydrates and protein of soybeans grown under CO 2
    enrichment. Environ Exp Bot 29:141–147, 1989.

  19. JW Radin, BA Kimball, DL Hendrix, JR Mauney. Photosynthesis of cotton plants exposed to elevated levels
    of carbon dioxide in the field. Photosynth Res 12:191–203, 1987.

  20. WJ Campbell, LH Allen Jr, G Bowes. Effects of CO 2 concentration on rubisco activity, amount, and photo-
    synthesis in soybean leaves. Plant Physiol 88:1310–1316, 1988.

  21. RF Sage, TD Sharkey, JR Seemann. Acclimation of photosynthesis to elevated CO 2 in five C 3 species. Plant
    Physiol 89:590–596, 1989.

  22. G Bowes. Photosynthetic responses to changing atmospheric carbon dioxide concentration. In: NR Baker, ed.
    Photosynthesis and the Environment. Dordrecht: Kluwer Academic Publishers, 1996, pp 387–407.

  23. MA Gonzalez-Meler, M Ribas-Carbo, JN Siedow, BG Drake. The direct inhibition of plant mitochondrial
    respiration by elevated CO 2. Plant Physiol 112:1349–1355, 1997.

  24. BG Drake, J Azcon-Bieto, J Berry, J Bunce, P Dijkstra, J Farrar, RM Gifford, MA Gonzalez-Meler, G Koch,
    H Lambers, J Siedow, S Wullschleger. Does elevated atmospheric CO 2 concentration inhibit mitochondrial
    respiration in green plants? Plant Cell Environ 22:649–657, 1999.

  25. EH Delucia, TW Sasek, BR Strain. Photosynthetic inhibition after long-term exposure to elevated levels of
    atmospheric carbon dioxide. Photosynth Res 7:175–184, 1985.

  26. RT Besford, LJ Ludwig, AC Withers. The greenhouse effect: Acclimation of tomato plants growing in high
    CO 2 , photosynthesis and ribulose-1,5-bisphosphate carboxylase protein. J Exp Bot 41:925–931, 1990.

  27. WJ Arp. Effects of source-sink relations on photosynthetic acclimation to elevated CO 2. Plant Cell Environ
    14:869–875, 1991.

  28. M Stitt. Rising CO 2 levels and their potential significance for carbon flow in photosynthetic cells. Plant Cell
    Environ 14:741–762, 1991.

  29. JF Farrar, ML Williams. The effects of increased atmospheric carbon dioxide and temperature on carbon
    partitioning, source-sink relations and respiration. Plant Cell Environ 14:819–830, 1991.


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