Biotransformation of benzonitrile herbicides via the nitrile hydratase–amidase pathway in rhodococci

Author:

Veselá Alicja B1,Pelantová Helena1,Šulc Miroslav12,Macková Martina3,Lovecká Petra3,Thimová Markéta3,Pasquarelli Fabrizia4,Pičmanová Martina1,Pátek Miroslav1,Bhalla Tek Chand5,Martínková Ludmila1

Affiliation:

1. grid.418800.5 0000000405554846 Institute of Microbiology of the Academy of Sciences of the Czech Republic v.v.i., Vídeňská 1083 142 20 Prague Czech Republic

2. grid.4491.8 000000041937116X Department of Biochemistry Charles University Hlavova 2030 128 43 Prague Czech Republic

3. grid.448072.d 0000000406356059 Faculty of Food and Biochemical Technology Institute of Chemical Technology Prague Technická 5 166 28 Prague Czech Republic

4. grid.158820.6 0000000417572611 Department of Chemistry, Chemical Engineering and Materials University of L’Aquila via Campo di Pile, Zona industriale di Pile 67 100 L’Aquila Italy

5. grid.412137.2 0000000107441069 Department of Biotechnology Himachal Pradesh University Summer Hill 171005 Shimla Himachal Pradesh India

Abstract

Abstract The aim of this work was to determine the ability of rhodococci to transform 3,5-dichloro-4-hydroxybenzonitrile (chloroxynil), 3,5-dibromo-4-hydroxybenzonitrile (bromoxynil), 3,5-diiodo-4-hydroxybenzonitrile (ioxynil) and 2,6-dichlorobenzonitrile (dichlobenil); to identify the products and determine their acute toxicities. Rhodococcus erythropolis A4 and Rhodococcus rhodochrous PA-34 converted benzonitrile herbicides into amides, but only the former strain was able to hydrolyze 2,6-dichlorobenzamide into 2,6-dichlorobenzoic acid, and produced also more of the carboxylic acids from the other herbicides compared to strain PA-34. Transformation of nitriles into amides decreased acute toxicities for chloroxynil and dichlobenil, but increased them for bromoxynil and ioxynil. The amides inhibited root growth in Lactuca sativa less than the nitriles but more than the acids. The conversion of the nitrile group may be the first step in the mineralization of benzonitrile herbicides but cannot be itself considered to be a detoxification.

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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