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Robust crop resistance to broadleaf and grass herbicides provided by aryloxyalkanoate dioxygenase transgenes
by
Wright, Terry R.
, Shan, Guomin
, Zhang, Zhanyuan
, Zhuang, Meibao
, Song, Ping
, Lin, Gaofeng
, Cui, Cory
, Zhou, Ning
, Yau, Kerrm
, Russell, Sean M.
, Simpson, David M.
, Peterson, Mark A.
, Cicchillo, Robert M.
, Ponsamuel, Jayakumar
, Walsh, Terence A.
, Lira, Justin M.
, Arnold, Nicole L.
, Hammock, Bruce D.
in
2,4-D
/ 2,4-Dichlorophenoxyacetic acid
/ 2,4-Dichlorophenoxyacetic Acid - metabolism
/ 2,4-Dichlorophenoxyacetic Acid - toxicity
/ Agriculture
/ Arabidopsis
/ Arabidopsis - genetics
/ Auxins
/ Biological Sciences
/ Blotting, Southern
/ Blotting, Western
/ Control systems
/ Corn
/ Crop science
/ Crops
/ Cupriavidus necator - enzymology
/ Cupriavidus necator - genetics
/ Delftia acidovorans - enzymology
/ developmental stages
/ Dioxygenase
/ Dioxygenases - genetics
/ Dioxygenases - metabolism
/ DNA
/ ecosystem services
/ Enzyme-Linked Immunosorbent Assay
/ Enzymes
/ Escherichia coli
/ fluroxypyr
/ Genetic Engineering
/ Glycine - analogs & derivatives
/ Glycine - toxicity
/ Glyphosate
/ Grasses
/ Growth stage
/ Herbicide resistance
/ Herbicide Resistance - genetics
/ Herbicides
/ Herbicides - toxicity
/ Kinetics
/ Liliopsida
/ Molecular Structure
/ Plants
/ Resistance to control
/ Soybeans
/ Sphingomonadaceae - enzymology
/ Substrate preferences
/ Substrate Specificity
/ Sustainable agriculture
/ Transformation, Genetic - genetics
/ Transgenes
/ Transgenes - genetics
/ Transgenic plants
/ triclopyr
/ Weed control
/ Weeds
/ Zea mays
/ Zea mays - genetics
2010
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Robust crop resistance to broadleaf and grass herbicides provided by aryloxyalkanoate dioxygenase transgenes
by
Wright, Terry R.
, Shan, Guomin
, Zhang, Zhanyuan
, Zhuang, Meibao
, Song, Ping
, Lin, Gaofeng
, Cui, Cory
, Zhou, Ning
, Yau, Kerrm
, Russell, Sean M.
, Simpson, David M.
, Peterson, Mark A.
, Cicchillo, Robert M.
, Ponsamuel, Jayakumar
, Walsh, Terence A.
, Lira, Justin M.
, Arnold, Nicole L.
, Hammock, Bruce D.
in
2,4-D
/ 2,4-Dichlorophenoxyacetic acid
/ 2,4-Dichlorophenoxyacetic Acid - metabolism
/ 2,4-Dichlorophenoxyacetic Acid - toxicity
/ Agriculture
/ Arabidopsis
/ Arabidopsis - genetics
/ Auxins
/ Biological Sciences
/ Blotting, Southern
/ Blotting, Western
/ Control systems
/ Corn
/ Crop science
/ Crops
/ Cupriavidus necator - enzymology
/ Cupriavidus necator - genetics
/ Delftia acidovorans - enzymology
/ developmental stages
/ Dioxygenase
/ Dioxygenases - genetics
/ Dioxygenases - metabolism
/ DNA
/ ecosystem services
/ Enzyme-Linked Immunosorbent Assay
/ Enzymes
/ Escherichia coli
/ fluroxypyr
/ Genetic Engineering
/ Glycine - analogs & derivatives
/ Glycine - toxicity
/ Glyphosate
/ Grasses
/ Growth stage
/ Herbicide resistance
/ Herbicide Resistance - genetics
/ Herbicides
/ Herbicides - toxicity
/ Kinetics
/ Liliopsida
/ Molecular Structure
/ Plants
/ Resistance to control
/ Soybeans
/ Sphingomonadaceae - enzymology
/ Substrate preferences
/ Substrate Specificity
/ Sustainable agriculture
/ Transformation, Genetic - genetics
/ Transgenes
/ Transgenes - genetics
/ Transgenic plants
/ triclopyr
/ Weed control
/ Weeds
/ Zea mays
/ Zea mays - genetics
2010
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Robust crop resistance to broadleaf and grass herbicides provided by aryloxyalkanoate dioxygenase transgenes
by
Wright, Terry R.
, Shan, Guomin
, Zhang, Zhanyuan
, Zhuang, Meibao
, Song, Ping
, Lin, Gaofeng
, Cui, Cory
, Zhou, Ning
, Yau, Kerrm
, Russell, Sean M.
, Simpson, David M.
, Peterson, Mark A.
, Cicchillo, Robert M.
, Ponsamuel, Jayakumar
, Walsh, Terence A.
, Lira, Justin M.
, Arnold, Nicole L.
, Hammock, Bruce D.
in
2,4-D
/ 2,4-Dichlorophenoxyacetic acid
/ 2,4-Dichlorophenoxyacetic Acid - metabolism
/ 2,4-Dichlorophenoxyacetic Acid - toxicity
/ Agriculture
/ Arabidopsis
/ Arabidopsis - genetics
/ Auxins
/ Biological Sciences
/ Blotting, Southern
/ Blotting, Western
/ Control systems
/ Corn
/ Crop science
/ Crops
/ Cupriavidus necator - enzymology
/ Cupriavidus necator - genetics
/ Delftia acidovorans - enzymology
/ developmental stages
/ Dioxygenase
/ Dioxygenases - genetics
/ Dioxygenases - metabolism
/ DNA
/ ecosystem services
/ Enzyme-Linked Immunosorbent Assay
/ Enzymes
/ Escherichia coli
/ fluroxypyr
/ Genetic Engineering
/ Glycine - analogs & derivatives
/ Glycine - toxicity
/ Glyphosate
/ Grasses
/ Growth stage
/ Herbicide resistance
/ Herbicide Resistance - genetics
/ Herbicides
/ Herbicides - toxicity
/ Kinetics
/ Liliopsida
/ Molecular Structure
/ Plants
/ Resistance to control
/ Soybeans
/ Sphingomonadaceae - enzymology
/ Substrate preferences
/ Substrate Specificity
/ Sustainable agriculture
/ Transformation, Genetic - genetics
/ Transgenes
/ Transgenes - genetics
/ Transgenic plants
/ triclopyr
/ Weed control
/ Weeds
/ Zea mays
/ Zea mays - genetics
2010
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Robust crop resistance to broadleaf and grass herbicides provided by aryloxyalkanoate dioxygenase transgenes
Journal Article
Robust crop resistance to broadleaf and grass herbicides provided by aryloxyalkanoate dioxygenase transgenes
2010
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Overview
Engineered glyphosate resistance is the most widely adopted genetically modified trait in agriculture, gaining widespread acceptance by providing a simple robust weed control system. However, extensive and sustained use of glyphosate as a sole weed control mechanism has led to field selection for glyphosate-resistant weeds and has induced significant population shifts to weeds with inherent tolerance to glyphosate. Additional weed control mechanisms that can complement glyphosate-resistant crops are, therefore, urgently needed. 2,4-dichlorophenoxyacetic acid (2,4-D) is an effective lowcost, broad-spectrum herbicide that controls many of the weeds developing resistance to glyphosate. We investigated the substrate preferences of bacterial aryloxyalkanoate dioxygenase enzymes (AADs) that can effectively degrade 2,4-D and have found that some members of this class can act on other widely used herbicides in addition to their activity on 2,4-D. AAD-1 cleaves the aryloxyphenoxypropionate family of grass-active herbicides, and AAD-12 acts on pyridyloxyacetate auxin herbicides such as triclopyr and fluroxypyr. Maize plants transformed with an AAD-1 gene showed robust crop resistance to aryloxyphenoxypropionate herbicides over four generations and were also not injured by 2,4-D applications at any growth stage. Arabidopsis plants expressing AAD-12 were resistant to 2,4-D as well as triclopyr and fluroxypyr, and transgenic soybean plants expressing AAD-12 maintained field resistance to 2,4-D over five generations. These results show that single AAD transgenes can provide simultaneous resistance to a broad repertoire of agronomically important classes of herbicides, including 2,4-D, with utility in both monocot and dicot crops. These transgenes can help preserve the productivity and environmental benefits of herbicide-resistant crops.
Publisher
National Academy of Sciences,National Acad Sciences
Subject
/ 2,4-Dichlorophenoxyacetic acid
/ 2,4-Dichlorophenoxyacetic Acid - metabolism
/ 2,4-Dichlorophenoxyacetic Acid - toxicity
/ Auxins
/ Corn
/ Crops
/ Cupriavidus necator - enzymology
/ Cupriavidus necator - genetics
/ Delftia acidovorans - enzymology
/ DNA
/ Enzyme-Linked Immunosorbent Assay
/ Enzymes
/ Glycine - analogs & derivatives
/ Grasses
/ Herbicide Resistance - genetics
/ Kinetics
/ Plants
/ Soybeans
/ Sphingomonadaceae - enzymology
/ Transformation, Genetic - genetics
/ Weeds
/ Zea mays
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