Hostname: page-component-76fb5796d-5g6vh Total loading time: 0 Render date: 2024-04-26T23:46:32.162Z Has data issue: false hasContentIssue false

Genetic variation in photosynthesis

Published online by Cambridge University Press:  27 March 2009

R. B. Austin
Affiliation:
AFRC Institute of Plant Science Research, Cambridge CB2 2JB

Abstract

Image of the first page of this content. For PDF version, please use the ‘Save PDF’ preceeding this image.'
Type
Review
Copyright
Copyright © Cambridge University Press 1989

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Anderson, J. M. (1986). Photoregulation of the composition, function and structure of thylakoid membranes. Annual Review of Plant Physiology 37, 93136.CrossRefGoogle Scholar
Anderson, J. M., Chow, W. S. & Goodchild, D. J. (1988). Thylakoid membrane organisation in sun/shade acclimation. Australian Journal of Plant Physiology 15, 1126.Google Scholar
Andrews, T. J.& Lorimer, G. H.(1978). Photorespiration – still avoidable? Febs Letters 90, 19.CrossRefGoogle Scholar
Apel, P. & Ohle, H. (1979). CO2 kompensationspunkt und blattanatomie bei arten der gattung Moricandia DC (Cruciferae). Biochemie Physiologie der Pflanzen 172, 547552.CrossRefGoogle Scholar
Austin, R. B. (1988). A different ideotype for each environment? In Cereal Breeding Related to Integrated Cereal Production (ed. Jorna, M. L. and Slootmaker, L. A. J.), pp. 4760. Wageningen: Pudoc.Google Scholar
Austin, R. B., Ford, M. A. & Morgan, C. L. (1989). Genetic improvement in the yield of winter wheat: a further evaluation. Journal of Agricultural Science, Cambridge 112, 295301.CrossRefGoogle Scholar
Austin, R. B., Ford, M. A., Miller, T. E., Morgan, C. L. & Parry, M. A. J. (1987). Variation in photosynthetic characteristics among Triticum species and attempts to exploit it in breeding. In Progress in Photosynthesis Research, Vol. IV (ed. Biggins, J.), pp. 361368. The Hague: Martinus Nijhoff/Junk.CrossRefGoogle Scholar
Bunce, J. A., Patterson, D. T., Peet, M. M. & Alberte, R. S. (1977). Light acclimation during and after leaf expansion in soybean. Plant Physiology 60, 255258.CrossRefGoogle ScholarPubMed
Cook, M. G. & Evans, L. T. (1983). Some physiological aspects of the domestication and improvement of rice (Oryza spp.). Field Crops Research 6, 219237.CrossRefGoogle Scholar
Crosbie, T. M. & Pearce, R. B. (1982). Effects of recurrent phenotypic selection for high and low photosynthesis on agronomic traits in two maize populations. Crop Science 22, 809813.CrossRefGoogle Scholar
Crosbie, T. M., Pearce, R. B., & Mock, J. J. (1981). Recurrent phenotypic selection for high and low photosynthesis in two maize populations. Crop Science 21, 736740.CrossRefGoogle Scholar
Cséke, C. & Buchanan, B. B. (1986). Regulation of the formation and utilisation of photosynthate in leaves. Biochemica et Biophysica Acta 853, 4363.CrossRefGoogle Scholar
Day, W. & Chalabi, Z. S. (1988). Use of models to investigate the link between the modification of photosynthetic characteristics and improved crop yields. Plant Physiology and Biochemistry 26, 511518.Google Scholar
de Wit, C. T. (1965). Photosynthesis of leaf canopies. Agricultural Research Reports, Wageningen 663, 157.Google Scholar
Dietz, K.-J. & Heber, U. (1984). Rate-limiting factors in leaf photosynthesis. I. Carbon fluxes in the Calvin cycle. Biochemica et Biophysica Acta 767, 432443.CrossRefGoogle Scholar
Dietz, K.-J., Neimanis, S. & Heber, U. (1984). Rate-limiting factors in leaf photosynthesis. II. Electron transport. Biochemica et Biophysica Acta 767, 444450.CrossRefGoogle Scholar
Dornhoff, G. M. & Shibles, R. M. (1970). Varietal differences in net photosynthesis of soybean leaves. Crop Science 10, 4245.CrossRefGoogle Scholar
Evans, G. C. (1972). The Quantitative Analysis of Plant Growth. Oxford: Blackwell Scientific Publications.Google Scholar
Evans, L. T. & Dunstone, R. L. (1970). Some physiological aspects of evolution in wheat. Australian Journal of Biological Science 23, 725741.CrossRefGoogle Scholar
Farquhar, G. D., von Caemmerer, S. & Berry, J. A. (1980). A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species. Planta 149, 7890.CrossRefGoogle Scholar
Farquhar, G. D., O'Leary, M. H. & Berry, J. A. (1982). On the relationship between carbon isotope discrimination and the intercellular carbon dioxide concentration in leaves. Australian Journal of Plant Physiology 9, 121137.Google Scholar
Ford, D. M., Shibles, R. & Green, D. E. (1983). Growth and yield of soybean lines selected for divergent leaf photosynthetic ability. Crop Science 23, 517520.CrossRefGoogle Scholar
Gerhardt, R., Stitt, M. & Helot, H. W. (1987). Subcellular metabolite levels in spinach leaves: regulation of sucrose synthesis during diurnal alterations in photosynthetic partitioning. Plant Physiology 83, 399407.CrossRefGoogle ScholarPubMed
Greer, D. H., Berry, J. A. & Bjorkman, O. (1986). Photoinhibition of photosynthesis in intact bean leaves: role of light and temperature and requirement for chloroplast-protein synthesis during recovery. Planta 168, 253260.CrossRefGoogle ScholarPubMed
Gutschick, V. P. (1987). A Functional Biology of Plants. London: Croom Helm.CrossRefGoogle Scholar
Gutteridge, S., Parry, M. A. J., Burton, S., Keys, A. J., Mudd, A., Feeny, J., Servaites, J. C. & Pierce, J. (1986). A nocturnal inhibitor of carboxylation in leaves. Nature 324, 274276.CrossRefGoogle Scholar
Grubb, P. J. (1984). Some growth points in investigative plant ecology. In Trends in Ecological Research for the 1980s (ed. Cooley, J. H. & Golley, F. B.), pp. 5174. New York: Plenum.CrossRefGoogle Scholar
Halliwell, B. (1984). Chloroplast Metabolism: the structure and function of chloroplasts in green leaf cells. Oxford: Clarendon Press.Google Scholar
Hatch, M. D., Osmond, C. B., Troughton, J. H. & Bjorkman, O. (1972). Physiological and biochemical characteristics of C3 and C4Atriplex species and hybrids in relation to the evolution of the C4 pathway. In Carnegie Institution Year Book 11, 131141.Google Scholar
Heber, U. & Heldt, H. W. (1981). The chloroplast envelope: structure, function and role in leaf metabolism. Annual Review of Plant Physiology 32, 139168.CrossRefGoogle Scholar
Hobbs, S. L. A. (1986). Relationships between carbon dioxide exchange rate, photosynthetic area and biomass in pea. Canadian Journal of Plant Science 66, 465472.CrossRefGoogle Scholar
Isebrands, J. G., Ceulemans, R. & Wiard, B. (1988). Genetic variation in photosynthetic traits among Populus clones in relation to yield. Plant Physiology and Biochemistry 26, 427437.Google Scholar
Keys, A. J. (1986). Rubisco: its role in photorespiration. Philosophical Transactions of the Royal Society of London, B, 313, 325336.Google Scholar
Kluge, M. (1979). The flow of carbon in crassulacean acid metabolism (CAM). In Encyclopedia of Plant Physiology, new series, Vol. 6. Photosynthesis II. Photosynthetic carbon metabolism and related processes (ed. Gibbs, M. and Latzko, E.), pp. 113124. Berlin: Springer-Verlag.Google Scholar
Kyle, D. J., Ohad, I. & Arntzen, C. I. (1984). Membrane protein damage and repair: selective loss of a quninone–protein function in chloroplast membranes. Proceedings of the National Academy of Sciences, USA 81, 40704074.CrossRefGoogle ScholarPubMed
Leegood, R. C. (in press). Biochemical studies of photosynthesis: from CO2 to sucrose. In C. S. French Symposium (ed. Briggs, W. R.). New York: Alan R. Liss.Google Scholar
Long, S. P., Nugawela, A., Bongi, G. & Farage, P. K. (1987). Chilling dependent photoinhibition of photosynthetic CO2 uptake. In Progress in Photosynthesis Research, Vol. IV (ed. Biggins, J.), pp. 131138. The Hague: Martinus Nijhoff/Junk.CrossRefGoogle Scholar
Marshall, B. & Biscoe, P. V. (1980). A model for C3 leaves describing the dependence of net photosynthesis on irradiance. I. Derivation. Journal of Experimental Biology 31, 2939.Google Scholar
Monteith, J. L. (1965). Light distribution and photosynthesis in field crops. Annals of Botany 29, 1737.CrossRefGoogle Scholar
Monteith, J. L. (1977). Climate and the efficiency of crop production in Britain. Philosophical Transactions of the Royal Society of London, B, 281, 277297.Google Scholar
Mooney, H. A. & Gulmon, S. L. (1982). Constraints on leaf structure and function in reference to herbivory. BioScience 32, 198206.CrossRefGoogle Scholar
Nayak, S. K., Janardhan, K. V. & Murty, K. S. (1978). Photosynthetic efficiency of rice as influenced by light intensity and quality. Indian Journal of Plant Physiology 21, 4852.Google Scholar
Neales, T. F. & Incoll, L. D. (1968). The control of leaf photosynthesis rate by the level of assimilate concentration in the leaf: a review of the hypothesis. Botanical Review 34, 107125.CrossRefGoogle Scholar
Nelson, C. J. (1988). Genetic associations between photosynthetic characteristics and yield: review of the evidence. Plant Physiology and Biochemistry 26, 543554.Google Scholar
Orians, G. H. & Solbrig, O. T. (1977). A cost-income model of leaves and roots with special reference to arid and semi-arid areas. American Naturalist 111, 677690.CrossRefGoogle Scholar
Ort, D. R. & Baker, N. R. (1988). Consideration of photosynthetic efficiency at low light as a major determinant of crop photosynthetic performance. Plant Physiology and Biochemistry 26, 555565.Google Scholar
Paterson, A. H., Lander, E. S., Hewitt, J. D., Peterson, S., Lincoln, S. E. & Tanksley, S. D. (1988). Resolution of quantitative traits into Mendelian factors using a complete linkage map of restriction fragment length polymorphisms. Nature 335, 721726.CrossRefGoogle ScholarPubMed
Pearce, R. B., Carlson, G. E., Barnes, D. K., Hart, R. H. & Hanson, C. H. (1969). Specific leaf weight and photosynthesis in alfalfa. Crop Science 9, 423426.CrossRefGoogle Scholar
Portis, A. R., Salvucci, M. E. & Ogren, W. L. (1986). Activation of ribulose bisphosphate carboxylase/oxygenase at physiological CO2 and ribulose bisphosphate concentration by rubisco activase. Plant Physiology 82, 967971.CrossRefGoogle Scholar
Powles, S. B. (1984). Photoinhibition of photosynthesis induced by visible light. Annual Review of Plant Physiology 35, 1544.CrossRefGoogle Scholar
Prioul, J.-L., Brangeon, J. & Reyss, A. (1980). Interaction between external and internal conditions in the development of photosynthetic features in a grass leaf. I. Regional responses along a leaf during and after low-light or high-light acclimation. Plant Physiology 66, 762769.CrossRefGoogle ScholarPubMed
Prioul, J.-L. & Chartier, P. (1977). Partitioning of transfer and carboxylation components of intracellular resistance to photosynthetic CO2 fixation: a critical analysis of the methods used. Annals of Botany 41, 789800.CrossRefGoogle Scholar
Rawsthorne, S., Hylton, C. M., Smith, A. M. & Woolhouse, H. W. (1988). Photorespiratory metabolism and immunogold localization of photorespiratory enzymes in leaves of C3 and C3-C4 intermediate species of Moricandia. Planta 173, 298308.CrossRefGoogle ScholarPubMed
Ray, T. B. & Black, C. C. (1979). The C4 pathway and its regulation. In Encyclopedia of Plant Physiology, new series, Vol. 6. Photosynthesis II. Photosynthetic carbon metabolism and related processes (ed. Gibbs, M. and Latzko, E.), pp. 7798. Berlin: Springer-Verlag.Google Scholar
Secor, J., McCarty, D. R., Shibles, R. & Green, D. E. (1982). Variability and selection for leaf photosynthesis in advanced generations of soybeans. Crop Science 22, 255259.CrossRefGoogle Scholar
Seeman, J. R. & Kobza, J. (1988). Genetic variation in the regulation of ribulose-1,5-bisphosphate carboxylase activity. Plant Physiology and Biochemistry 26, 461471.Google Scholar
Smillie, R. M., Hetherington, S. E., He, J. & Norr, R. (1988). Photoinhibition at chilling temperatures. Australian Journal of Plant Physiology 15, 207222.Google Scholar
Tu, Z. P., Lin, X. Z., Huang, Q. M., Cai, W. J., Feng, H. Y. & Ye, L. Y. (1988). Photosynthetic characterisation of rice varieties in relation to growth irradiance. Australian Journal of Plant Physiology 15, 277286.Google Scholar
Walker, D. A. (1976). Plastids and intracellular transport. In Encyclopedia of Plant Physiology, Vol. 3 (ed. Stocking, C. R. and Heber, U.), pp. 85136. Berlin: Springer-Verlag.Google Scholar
Walker, D. A. & Robinson, S. P. (1978). Chloroplast and cell. A contemporary view of photosynthetic carbon assimilation. Berichte der Deutschen Botanischen Gesellschaft, Berlin 91, 513526.CrossRefGoogle Scholar
Watson, D. J. (1952). The physiological basis of variation in yield. Advances in Agronomy 4, 101144.CrossRefGoogle Scholar
Woledge, J. (1978). The effect of shading during vegetative and reproductive growth on the photosynthetic capacity of leaves in a grass sward. Annals of Botany 42, 10851089.CrossRefGoogle Scholar
Woodrow, I. E. (1986). Control of the rate of photosynthetic carbon dioxide fixation. Biochemica et Biophysica Acta 851, 181192.CrossRefGoogle Scholar