Skip to menu Skip to content Skip to footer

1995

Journal Article

Somaclonal variation in rice: Drought tolerance and other agronomic characters

Adkins, S. W., Kunanuvatchaidach, R. and Godwin, I. D. (1995). Somaclonal variation in rice: Drought tolerance and other agronomic characters. Australian Journal of Botany, 43 (2), 201-209. doi: 10.1071/BT9950201

Somaclonal variation in rice: Drought tolerance and other agronomic characters

1995

Journal Article

High efficiency plant regeneration from callus induced on mature indica rice caryopses

Kunanuvatchaidach, R., Godwin, I. D. and Adkins, S. W. (1995). High efficiency plant regeneration from callus induced on mature indica rice caryopses. Australian Journal of Botany, 43 (3), 337-348. doi: 10.1071/BT9950337

High efficiency plant regeneration from callus induced on mature indica rice caryopses

1994

Journal Article

Interpretation of randomly amplified polymorphic DNA marker data for fingerprinting sweet potato (Ipomoea batatas L.) genotypes

Connolly, A. G., Godwin, I. D., Cooper, M. and DeLacy, I. H. (1994). Interpretation of randomly amplified polymorphic DNA marker data for fingerprinting sweet potato (Ipomoea batatas L.) genotypes. Theoretical and Applied Genetics, 88 (3-4), 332-336. doi: 10.1007/BF00223641

Interpretation of randomly amplified polymorphic DNA marker data for fingerprinting sweet potato (Ipomoea batatas L.) genotypes

1994

Conference Publication

Transgenic grain sorghum (Sorghum bicolor) plants via Agrobacterium

Godwin, I. D. and Chickwamba, R. (1994). Transgenic grain sorghum (Sorghum bicolor) plants via Agrobacterium. Royal Australian Chemical Institute, Cereal Chemistry Division Symposium on Improvement of Cereal Quality by Genetic Engineering, Sydney, NSW, Australia, 12-16 September 1993. New York, NY, United States: Plenum.

Transgenic grain sorghum (Sorghum bicolor) plants via Agrobacterium

1992

Journal Article

In vitro approaches to extending the host-range of Agrobacterium for plant transformation

Godwin, I. D., Ford-Lloyd, B. V. and Newbury, H. J. (1992). In vitro approaches to extending the host-range of Agrobacterium for plant transformation. Australian Journal of Botany, 40 (6), 751-763. doi: 10.1071/BT9920751

In vitro approaches to extending the host-range of Agrobacterium for plant transformation

1991

Journal Article

The effects of acetosyringone and pH on Agrobacterium-mediated transformation vary according to plant species

Godwin, Ian, Todd, Gordon, Ford-Lloyd, Brian and Newbury, H. John (1991). The effects of acetosyringone and pH on Agrobacterium-mediated transformation vary according to plant species. PLANT CELL REPORTS, 9 (12), 671-675. doi: 10.1007/BF00235354

The effects of acetosyringone and pH on Agrobacterium-mediated transformation vary according to plant species

1990

Journal Article

Variation among somaclonal progenies from three species of Stylosanthes

Godwin, I. D., Cameron, D. F. and Gordon, G. H. (1990). Variation among somaclonal progenies from three species of Stylosanthes. Australian Journal of Agricultural Research, 41 (4), 645-656. doi: 10.1071/AR9900645

Variation among somaclonal progenies from three species of Stylosanthes

1987

Other Outputs

Somaclonal variation in the plant improvement of tropical pasture legumes of Stylosanthes

Godwin, Ian Douglas (1987). Somaclonal variation in the plant improvement of tropical pasture legumes of Stylosanthes. PhD Thesis, School of Land, Crop and Food Sciences, The University of Queensland. doi: 10.14264/uql.2017.680

Somaclonal variation in the plant improvement of tropical pasture legumes of Stylosanthes

1987

Journal Article

Callus culture-derived somaclonal variation in the tropical pasture legume Stylosanthes guianensis (Aubl.) Sw.

Godwin, I. D., Gordon, G. H. and Cameron, D. F. (1987). Callus culture-derived somaclonal variation in the tropical pasture legume Stylosanthes guianensis (Aubl.) Sw.. Plant Breeding, 98 (3), 220-227. doi: 10.1111/j.1439-0523.1987.tb01120.x

Callus culture-derived somaclonal variation in the tropical pasture legume Stylosanthes guianensis (Aubl.) Sw.

1987

Journal Article

Plant regeneration from leaf-derived callus cultures of the tropical pasture legume Stylosanthes scabra Vog.

Godwin, Ian D., Gordon, Geoffrey H. and Cameron, Donald F. (1987). Plant regeneration from leaf-derived callus cultures of the tropical pasture legume Stylosanthes scabra Vog.. Plant Cell, Tissue and Organ Culture, 9 (1), 3-8. doi: 10.1007/BF00046073

Plant regeneration from leaf-derived callus cultures of the tropical pasture legume Stylosanthes scabra Vog.

1951

Journal Article

ASSAY OF PLASMA ANTIHEMOPHILIC ACTIVITY IN NORMAL, HETEROZYGOUS (HEMOPHILIA) AND PROTHROMBINOPENIC DOGS

GRAHAM, JB, COLLINS, DL, GODWIN, ID and BRINKHOUS, KM (1951). ASSAY OF PLASMA ANTIHEMOPHILIC ACTIVITY IN NORMAL, HETEROZYGOUS (HEMOPHILIA) AND PROTHROMBINOPENIC DOGS. Proceedings of the Society for Experimental Biology and Medicine, 77 (2), 294-296.

ASSAY OF PLASMA ANTIHEMOPHILIC ACTIVITY IN NORMAL, HETEROZYGOUS (HEMOPHILIA) AND PROTHROMBINOPENIC DOGS

1951

Journal Article

PLASMA ANTIHEMOPHILIC ACTIVITY FOLLOWING TOTAL BODY IRRADIATION

PENICK, GD, CRONKITE, EP, GODWIN, ID and BRINKHOUS, KM (1951). PLASMA ANTIHEMOPHILIC ACTIVITY FOLLOWING TOTAL BODY IRRADIATION. Proceedings of the Society for Experimental Biology and Medicine, 78 (3), 732-734.

PLASMA ANTIHEMOPHILIC ACTIVITY FOLLOWING TOTAL BODY IRRADIATION

Journal Article

Development of sorghum transformation: Organogenic regeneration and gene transfer methods

Gray, SJ, Zhang, S, Rathus, C, Lemaux, PG and Godwin, ID Development of sorghum transformation: Organogenic regeneration and gene transfer methods. SORGHUM TISSUE CULTURE AND TRANSFORMATION, 35-43.

Development of sorghum transformation: Organogenic regeneration and gene transfer methods

Journal Article

Optimizing sorghum transformation technology via somatic embryogenesis

Rathus, C, Nguyen, T, Able, JA, Gray, SJ and Godwin, ID Optimizing sorghum transformation technology via somatic embryogenesis. SORGHUM TISSUE CULTURE AND TRANSFORMATION, 25-34.

Optimizing sorghum transformation technology via somatic embryogenesis