Gene flow from imidazolinone-resistant domesticated sunflower to wild relatives
- 1 December 2003
- journal article
- Published by Cambridge University Press (CUP) in Weed Science
- Vol. 51 (6) , 854-862
- https://doi.org/10.1614/ws-03-032r
Abstract
Gene flow from imidazolinone (IMI)-resistant domestic sunflower to IMI-susceptible common sunflower and prairie sunflower was studied. Under greenhouse conditions, pollen from IMI-resistant domesticated sunflower was applied to flower heads of IMI-susceptible common and prairie sunflower. In addition, field studies were conducted in 2000 and 2001 near Manhattan, KS, to evaluate IMI-resistant gene flow from IMI-resistant domesticated sunflower to common and prairie sunflower under natural conditions. Common and prairie sunflower were planted in concentric circles at distances of 2.5, 5, 15, and 30 m around a densely planted IMI-resistant domesticated sunflower species. For both greenhouse and field studies, IMI-resistant gene flow was determined by treating the progeny of both wild species with 40 g ai ha−1of imazamox. Greenhouse crosses made by hand showed that 94% of common sunflower and 79% of prairie sunflower were resistant or moderately resistant. The resistant plants were allowed to grow in the greenhouse and were backcrossed with the corresponding susceptible wild parents. Progeny of the backcross showed a 1:1 ratio of resistant to susceptible plants. In the field, gene flow was detected up to 30 m from the pollen source for both species, and it decreased as distance from the pollen source increased. In 2000, 11 to 22% of the progeny were resistant at 2.5 m from the pollen source and 0.3 to 5% were resistant at 30 m. In 2001, the number of resistant progeny did not exceed 7 and 2% at 2.5 and 30 m from the pollen source, respectively. The results of this study showed that IMI-resistant domesticated sunflower outcrosses with common and prairie sunflower over distances typically encountered near production fields. Also, backcrosses of resistant hybrids with wild parents are successful, further increasing the potential for the spread of IMI-resistant feral sunflowers.Keywords
This publication has 37 references indexed in Scilit:
- Gene flow, growth, and competitiveness of imazethapyr-resistant common sunflowerWeed Science, 2001
- Mentor effects in wild species of Helianthus (Asteraceae)American Journal of Botany, 1998
- Production of herbicide-resistant jointed goatgrass (Aegilops cylindrica) × wheat (Triticum aestivum) hybrids in the field by natural hybridizationWeed Science, 1998
- Imazethapyr resistance in common sunflower (Helianthus annuus)Weed Science, 1998
- Log-Logistic Analysis of Herbicide Dose-Response RelationshipsWeed Technology, 1995
- Rapid Germination of Sulfonylurea-ResistantKochia scopariaL. Accessions is Associated with Elevated Seed Levels of Branched Chain Amino AcidsWeed Science, 1993
- Differential Competitiveness of Sulfonylurea Resistant and Susceptible Prickly Lettuce (Lactuca serriola)Weed Technology, 1992
- THE INCIDENCE AND EFFECTS OF HYBRIDIZATION BETWEEN CULTIVATED RICE AND ITS RELATED WEED RED RICE (ORYZA SATIVAL.)Evolution, 1990
- Chromosomal Differentiation among the Annual Helianthus SpeciesSystematic Botany, 1986
- Ecological Fitness of Senecio vulgaris and Amaranthus retroflexus Biotypes Susceptible or Resistant to AtrazineJournal of Applied Ecology, 1979