340
T.G.A. Green and O.L. Lange
Proctor MCF (1990) The physiological basis of bryophyte production. Bot J Linn Soc 104:
61-77
Rastorfer JR (1970) Effects of light intensity and temperature on photosynthesis and
respiration of two East Antarctic mosses Bryum argenteum and Bryum antarcticum.
Bryologist 73: 544-556
Raven JA (1977) The evolution of vascular land plants in relation to supracellular
transport processes. Adv Bot Res 5: 153-219
Raven JA, Johnston AM, Handley LL, McInroy SG (1990) Transport and assimmilation
of inorganic carbon by Lichina pygmaea under emersed and submersed conditions.
New Phytol 114: 407-417
Raven PH, Evert RF, Eichhorn SE (1986) Biology of plants. Worth, New York
Remy WR (1982) Die Vorfahren der Landpflanzen. Forschung, Mitt DFG 82: 12-13
Richardson DHS (1974) Photosynthesis and carbohydrate movement. In: Ahmadjian V,
Hale ME (eds) The lichens. Academic Press, New York, pp 250-288
Rundel PW (1988) Water relations. In: Galun M (ed) CRC Handbook of lichenology, vol
II. CRC Press, Boca Raton, pp 17-36
Rundel PW, Lange OL (1980) Water relations and photosynthetic response of a desert
moss. Flora 169: 329-335
Rundel PW, Stichler W, Zander RH, Ziegler H (1979) Carbon and hydrogen isotopes of
bryophytes from arid and humid regions. Oecologia 44: 91-94
Sancho LG, Kappen L (1989) Photosynthesis and water relations and the role of anatomy
in Umbilicariaceae (lichens) from central Spain. Oecologia 81: 473-480
Schonherr J, Ziegler H (1975) Hydrophobic cuticular wedges prevent water entering the
air pores of liverwort thalli. Plant a 124: 51-60
Schroeter B, Green TGA, Seppelt RD, Kappen L (1992) Monitoring photosynthetic
activity of crustose lichens using a PAM-2000 fluorescence system. Oecologia 92:
457-462
Schulze ED, Lange OL, Kappen L, Evenari M, Buschbom V (1975) Physiological basis of
primary production of perennial higher plants in the Negev Desert. In: Cooper JP (ed)
Photosynthesis and productivity in different environments. Cambridge University Press,
Cambridge, pp 107-120
Silvola J (1985) CO2 dependence of photosynthesis in certain forest and peat mosses and
simulated photosynthesis at various actual and hypothetical CO2 concentrations. Lindbergia 11: 86-93
Simon T (1987) The leaf-area index of three moss species (Tortula ruralis, Ceratodon
purpureus and Hypnum cupressiforme) In: Pocs T, Simon T, Tuba Z, Podani J (eds)
Proceedings of the lAB Conference of Bryoecology Budapest - Vacratot, Hungary,
5-10 August 1985, part B. Akademiai Kiado, Budapest, pp 699-706
Snelgar WP (1981) The ecophysiology of New Zealand forest lichens with special reference
to carbon dioxide exchange. PhD Thesis,Waikato University, Hamilton
Snelgar WP, Green TGA (1980) Carbon dioxide exchange in lichens: low carbon dioxide
compensation levels and lack of apparent photorespiratory activity in some lichens.
Bryologist 83: 505-507
Snelgar WP, Brown DH, Green TGA (1980) A provisional survey of the interaction
between net photosynthetic rate, respiratory rate, and thallus water content in some
New Zealand cryptogams. NZ J Bot 18: 247-256
Snelgar WP, Green TGA, Beltz CK (1981) Carbon dioxide exchange in lichens: estimation of internal thallus CO2 transport resistance. Physiol Plant 52: 417-422
Sveinbjornsson B, Oechel WC (1992) Controls on growth and productivity of bryophytes:
environmental limitations under current and anticipated conditions. In: Bates JW,
Farmer AM (eds) Bryophytes and lichens in a changing environment. Oxford Scientific
Publications, Oxford, pp 77-102
Tarnawski M, Melik D, Roser D, Adamson E, Adamson H, Seppelt R (1992) In situ
CO 2 levels in cushion and turf forms of Grimmia antarctici at Casey Station, East
Antarctica. J Bryol17: 241-249
T.G.A. Green and O.L. Lange
Proctor MCF (1990) The physiological basis of bryophyte production. Bot J Linn Soc 104:
61-77
Rastorfer JR (1970) Effects of light intensity and temperature on photosynthesis and
respiration of two East Antarctic mosses Bryum argenteum and Bryum antarcticum.
Bryologist 73: 544-556
Raven JA (1977) The evolution of vascular land plants in relation to supracellular
transport processes. Adv Bot Res 5: 153-219
Raven JA, Johnston AM, Handley LL, McInroy SG (1990) Transport and assimmilation
of inorganic carbon by Lichina pygmaea under emersed and submersed conditions.
New Phytol 114: 407-417
Raven PH, Evert RF, Eichhorn SE (1986) Biology of plants. Worth, New York
Remy WR (1982) Die Vorfahren der Landpflanzen. Forschung, Mitt DFG 82: 12-13
Richardson DHS (1974) Photosynthesis and carbohydrate movement. In: Ahmadjian V,
Hale ME (eds) The lichens. Academic Press, New York, pp 250-288
Rundel PW (1988) Water relations. In: Galun M (ed) CRC Handbook of lichenology, vol
II. CRC Press, Boca Raton, pp 17-36
Rundel PW, Lange OL (1980) Water relations and photosynthetic response of a desert
moss. Flora 169: 329-335
Rundel PW, Stichler W, Zander RH, Ziegler H (1979) Carbon and hydrogen isotopes of
bryophytes from arid and humid regions. Oecologia 44: 91-94
Sancho LG, Kappen L (1989) Photosynthesis and water relations and the role of anatomy
in Umbilicariaceae (lichens) from central Spain. Oecologia 81: 473-480
Schonherr J, Ziegler H (1975) Hydrophobic cuticular wedges prevent water entering the
air pores of liverwort thalli. Plant a 124: 51-60
Schroeter B, Green TGA, Seppelt RD, Kappen L (1992) Monitoring photosynthetic
activity of crustose lichens using a PAM-2000 fluorescence system. Oecologia 92:
457-462
Schulze ED, Lange OL, Kappen L, Evenari M, Buschbom V (1975) Physiological basis of
primary production of perennial higher plants in the Negev Desert. In: Cooper JP (ed)
Photosynthesis and productivity in different environments. Cambridge University Press,
Cambridge, pp 107-120
Silvola J (1985) CO2 dependence of photosynthesis in certain forest and peat mosses and
simulated photosynthesis at various actual and hypothetical CO2 concentrations. Lindbergia 11: 86-93
Simon T (1987) The leaf-area index of three moss species (Tortula ruralis, Ceratodon
purpureus and Hypnum cupressiforme) In: Pocs T, Simon T, Tuba Z, Podani J (eds)
Proceedings of the lAB Conference of Bryoecology Budapest - Vacratot, Hungary,
5-10 August 1985, part B. Akademiai Kiado, Budapest, pp 699-706
Snelgar WP (1981) The ecophysiology of New Zealand forest lichens with special reference
to carbon dioxide exchange. PhD Thesis,Waikato University, Hamilton
Snelgar WP, Green TGA (1980) Carbon dioxide exchange in lichens: low carbon dioxide
compensation levels and lack of apparent photorespiratory activity in some lichens.
Bryologist 83: 505-507
Snelgar WP, Brown DH, Green TGA (1980) A provisional survey of the interaction
between net photosynthetic rate, respiratory rate, and thallus water content in some
New Zealand cryptogams. NZ J Bot 18: 247-256
Snelgar WP, Green TGA, Beltz CK (1981) Carbon dioxide exchange in lichens: estimation of internal thallus CO2 transport resistance. Physiol Plant 52: 417-422
Sveinbjornsson B, Oechel WC (1992) Controls on growth and productivity of bryophytes:
environmental limitations under current and anticipated conditions. In: Bates JW,
Farmer AM (eds) Bryophytes and lichens in a changing environment. Oxford Scientific
Publications, Oxford, pp 77-102
Tarnawski M, Melik D, Roser D, Adamson E, Adamson H, Seppelt R (1992) In situ
CO 2 levels in cushion and turf forms of Grimmia antarctici at Casey Station, East
Antarctica. J Bryol17: 241-249
