An isoleucine/leucine residue in the carboxyltransferase domain of acetyl-CoA carboxylase is critical for interaction with aryloxyphenoxypropionate and cyclohexanedione inhibitors

被引:117
|
作者
Zagnitko, O [1 ]
Jelenska, J [1 ]
Tevzadze, G [1 ]
Haselkorn, R [1 ]
Gornicki, P [1 ]
机构
[1] Univ Chicago, Dept Mol Genet & Cell Biol, Chicago, IL 60637 USA
关键词
wheat; maize; Lolium; Toxoplasma gondii; herbicide resistance;
D O I
10.1073/pnas.121172798
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
cDNA fragments encoding the carboxyltransferase domain of the multidomain plastid acetyl-CoA carboxylase (ACCase) from herbicide-resistant maize and from herbicide-sensitive and herbicide-resistant Lolium rigidum were cloned and sequenced. A Leu residue was found in ACCases from herbicide-resistant plants at a position occupied by Ile in all ACCases from sensitive grasses studied so far. Leu is present at the equivalent position in herbicide-resistant ACCases from other eukaryotes, Chimeric ACCases containing a 1000-aa fragment of two ACCase isozymes found in a herbicide-resistant maize were expressed in a yeast ACC1 null mutant to test herbicide sensitivity of the enzyme in vivo and in vitro. One of the enzymes was resistant/tolerant. and one was sensitive to haloxyfop and sethoxydim, rendering the gene-replacement yeast strains resistant and sensitive to these compounds, respectively. The sensitive enzyme has an lie residue, and the resistant one has a Leu residue at the putative herbicide-binding site. Additionally, a single Ile to Leu replacement at an equivalent position changes the wheat plastid ACCase from sensitive to resistant. The effect of the opposite substitution, Leu to lie, makes Toxoplasma gondii apicoplast ACCase resistant to haloxyfop and clodinafop, In this case, inhibition of the carboxyltransferase activity of ACCase (second half-reaction) of a large fragment of the Toxoplasma enzyme expressed in Escherichia coli was tested. The critical amino acid residue is located close to a highly conserved motif of the carboxyltransferase domain, which is probably a part of the enzyme active site, providing the basis for the activity of fop and dim herbicides.
引用
收藏
页码:6617 / 6622
页数:6
相关论文
共 50 条
  • [41] Discovery of Novel Selective Acetyl-CoA Carboxylase (ACC) 1 Inhibitors
    Mizojiri, Ryo
    Asano, Moriteru
    Tomita, Daisuke
    Banno, Hiroshi
    Nii, Noriyuki
    Sasaki, Masako
    Sumi, Hiroyuki
    Satoh, Yoshihiko
    Yamamoto, Yukiko
    Moriya, Takeo
    Satomi, Yoshinori
    Maezaki, Hironobu
    JOURNAL OF MEDICINAL CHEMISTRY, 2018, 61 (03) : 1098 - 1117
  • [42] Symmetrical approach of spiro-pyrazolidinediones as acetyl-CoA carboxylase inhibitors
    Kamata, Makoto
    Yamashita, Tohru
    Kina, Asato
    Tawada, Michiko
    Endo, Satoshi
    Mizukami, Atsushi
    Sasaki, Masako
    Tani, Akiyoshi
    Nakano, Yoshihide
    Watanabe, Yuuki
    Furuyama, Naoki
    Funami, Miyuki
    Amano, Nobuyuki
    Fukatsu, Kohji
    BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 2012, 22 (14) : 4769 - 4772
  • [43] Acetyl-CoA carboxylase inhibitors in non-alcoholic steatohepatitis: Is there a benefit?
    Neokosmidis, Georgios
    Cholongitas, Evangelos
    Tziomalos, Konstantinos
    WORLD JOURNAL OF GASTROENTEROLOGY, 2021, 27 (39) : 6522 - 6526
  • [44] Recent development in acetyl-CoA carboxylase inhibitors and their potential as novel drugs
    Wu, Xin
    Huang, Tonghui
    FUTURE MEDICINAL CHEMISTRY, 2020, 12 (06) : 533 - 561
  • [45] Acetyl-CoA carboxylase 1 is a critical regulator of beta cell mass
    Cantley, J.
    Whitworth, P. T.
    Davenport, A.
    Hoehn, K. L.
    James, D. E.
    Biden, T. J.
    DIABETOLOGIA, 2013, 56 : S74 - S74
  • [46] The structure of the carboxyltransferase component of acetyl-CoA carboxylase reveals a zinc-binding motif unique to the bacterial enzyme
    Bilder, P
    Lightle, S
    Bainbridge, G
    Ohren, J
    Finzel, B
    Sun, F
    Holley, S
    Al-Kassim, L
    Spessard, C
    Melnick, M
    Newcomer, M
    Waldrop, GL
    BIOCHEMISTRY, 2006, 45 (06) : 1712 - 1722
  • [47] Acetyl-CoA carboxylase inhibitors from avocado (Persea americana Mill) fruits
    Hashimura, H
    Ueda, C
    Kawabata, J
    Kasai, T
    BIOSCIENCE BIOTECHNOLOGY AND BIOCHEMISTRY, 2001, 65 (07) : 1656 - 1658
  • [48] STRUCTURAL DEVELOPMENT STUDIES OF PYRAZOLOKETONE-DERIVED ACETYL-CoA CARBOXYLASE INHIBITORS
    Okazaki, Shogo
    Sakai, Taki
    Ishikawa, Minoru
    Hashimoto, Yuichi
    Yamaguchi, Takao
    HETEROCYCLES, 2017, 95 (01) : 595 - 607
  • [49] (4-Piperidinyl)-piperazine: A new platform for acetyl-CoA carboxylase inhibitors
    Chonan, Tomomichi
    Oi, Takahiro
    Yamamoto, Daisuke
    Yashiro, Miyoko
    Wakasugi, Daisuke
    Tanaka, Hiroaki
    Ohoka-Sugita, Ayumi
    Io, Fusayo
    Koretsune, Hiroko
    Hiratate, Akira
    BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 2009, 19 (23) : 6645 - 6648
  • [50] Convergent Syntheses of Isomeric Imidazolospiroketones as Templates for Acetyl-CoA Carboxylase (ACC) Inhibitors
    Limberakis, Chris
    Smith, Aaron C.
    Bagley, Scott W.
    Yayla, Hatice G.
    Kung, Daniel W.
    Griffith, David A.
    JOURNAL OF ORGANIC CHEMISTRY, 2023, 88 (19): : 13727 - 13740