A Novel Rice Cytochrome P450 Gene, CYP72A31, Confers Tolerance to Acetolactate Synthase-Inhibiting Herbicides in Rice and Arabidopsis1[C][W][OPEN]
A novel cytochrome P450 monooxygenase is involved in multiple-herbicide detoxification and could be useful in herbicide development and molecular breeding in crops . Target-site and non-target-site herbicide tolerance are caused by the prevention of herbicide binding to the target enzyme and the red...
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Published in | Plant physiology (Bethesda) Vol. 166; no. 3; pp. 1232 - 1240 |
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Main Authors | , , , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
American Society of Plant Biologists
09.01.2014
|
Series | Focus on Weed Control |
Subjects | |
Online Access | Get full text |
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Summary: | A novel cytochrome P450 monooxygenase is involved in multiple-herbicide detoxification and could be useful in herbicide development and molecular breeding in crops
.
Target-site and non-target-site herbicide tolerance are caused by the prevention of herbicide binding to the target enzyme and the reduction to a nonlethal dose of herbicide reaching the target enzyme, respectively. There is little information on the molecular mechanisms involved in non-target-site herbicide tolerance, although it poses the greater threat in the evolution of herbicide-resistant weeds and could potentially be useful for the production of herbicide-tolerant crops because it is often involved in tolerance to multiherbicides. Bispyribac sodium (
BS
) is an herbicide that inhibits the activity of acetolactate synthase. Rice (
Oryza sativa
) of the
indica
variety show
BS
tolerance, while
japonica
rice varieties are
BS
sensitive. Map-based cloning and complementation tests revealed that a novel cytochrome P450 monooxygenase, CYP72A31, is involved in
BS
tolerance. Interestingly,
BS
tolerance was correlated with
CYP72A31
messenger RNA levels in transgenic plants of rice and Arabidopsis (
Arabidopsis thaliana
). Moreover, Arabidopsis overexpressing
CYP72A31
showed tolerance to bensulfuron-methyl (
BSM
), which belongs to a different class of acetolactate synthase-inhibiting herbicides, suggesting that CYP72A31 can metabolize
BS
and
BSM
to a compound with reduced phytotoxicity. On the other hand, we showed that the cytochrome P450 monooxygenase CYP81A6, which has been reported to confer
BSM
tolerance, is barely involved, if at all, in
BS
tolerance, suggesting that the CYP72A31 enzyme has different herbicide specificities compared with CYP81A6. Thus, the
CYP72A31
gene is a potentially useful genetic resource in the fields of weed control, herbicide development, and molecular breeding in a broad range of crop species. |
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Bibliography: | The author responsible for distribution of materials integral to the findings presented in this article in accordance with the policy described in the Instructions for Authors (www.plantphysiol.org) is: Seiichi Toki (stoki@affrc.go.jp). www.plantphysiol.org/cgi/doi/10.1104/pp.113.231266 These authors contributed equally to the article. |
ISSN: | 0032-0889 1532-2548 |
DOI: | 10.1104/pp.113.231266 |