2011 Journal Article Yield-trait performance landscapes: from theory to application in breeding maize for drought toleranceMessina, Carlos D., Podlich, Dean, Dong, Zhanshan, Samples, Mitch and Cooper, Mark (2011). Yield-trait performance landscapes: from theory to application in breeding maize for drought tolerance. Journal of Experimental Botany, 62 (3), 855-868. doi: 10.1093/jxb/erq329 |
2010 Journal Article Genotypic variation for grain and stover yield of dryland (rabi) sorghum in India: 1. Magnitude of genotype x environment interactionsDeLacy, I. H., Kaul, S., Rana, B. S. and Cooper, M. (2010). Genotypic variation for grain and stover yield of dryland (rabi) sorghum in India: 1. Magnitude of genotype x environment interactions. Field Crops Research, 118 (3), 228-235. doi: 10.1016/j.fcr.2010.05.013 |
2010 Journal Article Genotypic variation for grain and stover yield of dryland (rabi) sorghum in India 2. A characterisation of genotype x environment interactionsDeLacy, I. H., Kaul, S., Rana, B. S. and Cooper, M. (2010). Genotypic variation for grain and stover yield of dryland (rabi) sorghum in India 2. A characterisation of genotype x environment interactions. Field Crops Research, 118 (3), 236-242. doi: 10.1016/j.fcr.2010.05.014 |
2010 Journal Article Morphological and architectural development of root systems in sorghum and maizeSingh, V, van Oosterom, EJ, Jordan, DR, Messina, CD, Cooper, M and Hammer, GL (2010). Morphological and architectural development of root systems in sorghum and maize. Plant and Soil, 333 (1-2), 287-299. doi: 10.1007/s11104-010-0343-0 |
2010 Journal Article Mixed model approaches for the identification of QTLs within a maize hybrid breeding programvan Eeuwijk, Fred A., Boer, Martin, Totir, L. Radu, Bink, Marco, Wright, Deanne, Winkler, Christopher R., Podlich, Dean, Boldman, Keith, Baumgarten, Andy, Smalley, Matt, Arbelbide, Martin, ter Braak, Cajo J. F. and Cooper, Mark (2010). Mixed model approaches for the identification of QTLs within a maize hybrid breeding program. Theoretical and Applied Genetics, 120 (2), 429-440. doi: 10.1007/s00122-009-1205-0 |
2009 Journal Article Modeling QTL for complex traits: detection and context for plant breedingCooper, Mark, van Eeuwijk, Fred A., Hammer, Graeme L., Podlich, Dean W. and Messina, Carlos (2009). Modeling QTL for complex traits: detection and context for plant breeding. Current Opinion In Plant Biology, 12 (2), 231-240. doi: 10.1016/j.pbi.2009.01.006 |
2009 Journal Article Can changes in canopy and/or root system architecture explain historical maize yield trends in the US corn belt?Hammer, G.L., Dong, Z.S., McLean, G., Doherty, A., Messina, C., Schusler, J., Zinselmeier, C., Paszkiewicz, S. and Cooper, M. (2009). Can changes in canopy and/or root system architecture explain historical maize yield trends in the US corn belt?. Crop Science, 49 (1), 299-312. doi: 10.2135/cropsci2008.03.0152 |
2008 Journal Article Genotypic variation for drought stress response traits in soybean. III. Broad-sense heritability of epidermal conductance, osmotic potential, and relative water contentJames, A. T., Lawn, R. J. and Cooper, M. (2008). Genotypic variation for drought stress response traits in soybean. III. Broad-sense heritability of epidermal conductance, osmotic potential, and relative water content. Australian Journal of Agricultural Research, 59 (7), 679-689. doi: 10.1071/AR07161 |
2008 Journal Article Genotypic variation for drought stress response traits in soybean. I. Variation in soybean and wild Glycine spp. for epidermal conductance, osmotic potential, and relative water contentJames, A. T., Lawn, R. J. and Cooper, M. (2008). Genotypic variation for drought stress response traits in soybean. I. Variation in soybean and wild Glycine spp. for epidermal conductance, osmotic potential, and relative water content. Australian Journal of Agricultural Research, 59 (7), 656-669. doi: 10.1071/AR07159 |
2008 Journal Article Genotypic variation for drought stress response traits in soybean. II. Inter-relations between epidermal conductance, osmotic potential, relative water content, and plant survivalJames, A. T., Lawn, R. J. and Cooper, M. (2008). Genotypic variation for drought stress response traits in soybean. II. Inter-relations between epidermal conductance, osmotic potential, relative water content, and plant survival. Australian Journal of Agricultural Research, 59 (7), 670-678. doi: 10.1071/AR07160 |
2007 Journal Article A mixed-model quantitative trait loci (QTL) analysis for multiple-environment trial data using environmental covariables for QTL-by-environment interactions, with an example in maizeBoer, Martin P., Wright, Deanne, Feng, Lizhi, Podlich, Dean W., Luo, Lang, Cooper, Mark and van Eeuwijk, Fred A. (2007). A mixed-model quantitative trait loci (QTL) analysis for multiple-environment trial data using environmental covariables for QTL-by-environment interactions, with an example in maize. Genetics, 177 (3), 1801-1813. doi: 10.1534/genetics.107.071068 |
2007 Journal Article Genotype-by-environment interactions for grain yield associated with water availability at flowering in rainfed lowland riceOuk, M., Basnayake, J., Tsubo, M., Fukai, S., Fischer, K. S., Kang, S., Men, S., Thun, V. and Cooper, M. (2007). Genotype-by-environment interactions for grain yield associated with water availability at flowering in rainfed lowland rice. Field Crops Research, 101 (2), 145-154. doi: 10.1016/j.fcr.2006.10.003 |
2007 Journal Article Global adaptation patterns of Australian and CIMMYT spring bread wheatMathews, K. L., Chapman, S. C., Trethowan, R., Pfeiffer, W., van Ginkel, M., Crossa, J., Payne, T., DeLacy, I., Fox, P. N. and Cooper, M. (2007). Global adaptation patterns of Australian and CIMMYT spring bread wheat. Theoretical And Applied Genetics, 115 (6), 819-835. doi: 10.1007/s00122-007-0611-4 |
2006 Journal Article Models for navigating biological complexity in breeding improved crop plantsHammer, G. L., Cooper, M., Tardieu, F., Welch, S., Walsh, B., van Eeuwijk, A., Chapman, S. C. and Podlich, D. (2006). Models for navigating biological complexity in breeding improved crop plants. Trends in Plant Science, 11 (12), 587-593. doi: 10.1016/j.tplants.2006.10.006 |
2006 Journal Article Use of drought response index for identification of drought tolerant genotypes in rainfed lowland riceOuk, Makara, Basnayake, J., Tsubo, M., Fukai, S., Fischer, K.S., Cooper, M. and Nesbitt, H. (2006). Use of drought response index for identification of drought tolerant genotypes in rainfed lowland rice. Field Crops Research, 99 (1), 48-58. doi: 10.1016/j.fcr.2006.03.003 |
2006 Journal Article Genetic diversity among maize hybrids widely grown in contrasting regional environments in the United States during the 1990sSmith, S., Loffler, C. and Cooper, M. (2006). Genetic diversity among maize hybrids widely grown in contrasting regional environments in the United States during the 1990s. Maydica, 51 (2), 233-242. |
2006 Journal Article Temporal trends in SSR allele frequencies associated with long-term selection for yield of maizeFeng, L., Sebastian, S., Smith, S. and Cooper, M. (2006). Temporal trends in SSR allele frequencies associated with long-term selection for yield of maize. Maydica, 51 (2), 293-300. |
2006 Journal Article Use of drought response index for identification of drought tolerant genotypes in rainfed lowland riceOuk, M, Basnayake, J, Tsubo, M, Fukai, S, Fischer, KS, Cooper, M and Nesbitt, H (2006). Use of drought response index for identification of drought tolerant genotypes in rainfed lowland rice. Field Crops Research, 99 (1), 48-58. doi: 10.1016/j.fcr.2006.03.003 |
2006 Journal Article Changes in drought tolerance in maize associated with fifty years of breeding for yield in the US corn beltCampos, H., Cooper, M., Edmeades, G. O., Loffler, C., Schussler, J. R. and Ibanez, M. (2006). Changes in drought tolerance in maize associated with fifty years of breeding for yield in the US corn belt. Maydica, 51 (2), 369-381. |
2005 Journal Article Gene-to-phenotype models and complex trait geneticsCooper, Mark, Podlich, Dean W. and Smith, Oscar S. (2005). Gene-to-phenotype models and complex trait genetics. Australian Journal of Agricultural Research, 56 (9), 895-918. doi: 10.1071/AR05154 |