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CYP 81A P450s are involved in concomitant cross‐resistance to acetolactate synthase and acetyl‐CoA carboxylase herbicides in Echinochloa phyllopogon
Author(s) -
Iwakami Satoshi,
Kamidate Yoshitaka,
Yamaguchi Takuya,
Ishizaka Masumi,
Endo Masaki,
Suda Hiroe,
Nagai Kiichi,
Sunohara Yukari,
Toki Seiichi,
Uchino Akira,
Tominaga Tohru,
Matsumoto Hiroshi
Publication year - 2019
Publication title -
new phytologist
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.742
H-Index - 244
eISSN - 1469-8137
pISSN - 0028-646X
DOI - 10.1111/nph.15552
Subject(s) - acetolactate synthase , acetyl coa carboxylase , pyruvate carboxylase , cytochrome p450 , biology , cross resistance , echinochloa , biochemistry , metabolism , enzyme , echinochloa crus galli , genetics , botany , weed
Summary Californian populations of Echinochloa phyllopogon have evolved multiple‐herbicide resistance ( MHR ), posing a threat to rice production in California. Previously, we identified two CYP 81A cytochrome P450 genes whose overexpression is associated with resistance to acetolactate synthase ( ALS ) inhibitors from two chemical groups. Resistance mechanisms to other herbicides remain unknown. We analyzed the sensitivity of an MHR line to acetyl‐CoA carboxylase ( ACC ase) inhibitors from three chemical groups, followed by an analysis of herbicide metabolism and segregation of resistance of the progenies in sensitive (S) and MHR lines. ACC ase herbicide metabolizing function was investigated in the two previously identified P450s. MHR plants exhibited resistance to all the ACC ase inhibitors by enhanced herbicide metabolism. Resistance to the ACC ase inhibitors segregated in a 3 : 1 ratio in the F 2 generation and completely co‐segregated with ALS inhibitor resistance in F 6 lines. Expression of the respective P450 genes conferred resistance to the three herbicides in rice, which is in line with the detection of hydroxylated herbicide metabolites in vivo in transformed yeast. CYP 81As are super P450s that metabolize multiple herbicides from five chemical classes, and concurrent overexpression of the P450s induces metabolism‐based resistance to the three ACC ase inhibitors in MHR E. phyllopogon , as it does to ALS inhibitors.