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<w:b></w:b>
<w:sz></w:sz>
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<w:lang></w:lang>
</w:rPr>
<w:t>Ecocycles </w:t>
</w:r>
<w:r>
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<w:b></w:b>
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</w:rPr>
<w:t>3</w:t>
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<w:r>
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<w:t>(</w:t>
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</w:rPr>
<w:t>2</w:t>
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<w:r>
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<w:sz></w:sz>
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<w:lang></w:lang>
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<w:t>) </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>13-16</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> (201</w:t>
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<w:r>
<w:rPr>
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</w:rPr>
<w:t>7</w:t>
</w:r>
<w:r>
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<w:t>) </w:t>
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<w:sz></w:sz>
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<w:t>ISSN 2416-2140</w:t>
</w:r>
</w:p>
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</w:rPr>
<w:t>DOI</w:t>
</w:r>
<w:r>
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<w:bCs></w:bCs>
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<w:t>: </w:t>
</w:r>
<w:r>
<w:rPr>
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<w:lang></w:lang>
</w:rPr>
<w:t>10.19040/ecocycles.v3i2.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:lang></w:lang>
</w:rPr>
<w:t>80</w:t>
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</w:rPr>
<w:t>ORIGINAL ARTICLE</w:t>
</w:r>
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<w:lang></w:lang>
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<w:r>
<w:rPr>
<w:bCs></w:bCs>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:t>Increased glutathione S-t</w:t>
</w:r>
<w:r>
<w:rPr>
<w:bCs></w:bCs>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>ransferase activity in 35S(CaMV)-</w:t>
</w:r>
<w:r>
<w:rPr>
<w:bCs></w:bCs>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zmgstf4</w:t>
</w:r>
<w:r>
<w:rPr>
<w:bCs></w:bCs>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> transgenic </w:t>
</w:r>
<w:r>
<w:rPr>
<w:bCs></w:bCs>
<w:i></w:i>
<w:szCs></w:szCs>
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</w:rPr>
<w:t>Arabidopsis thaliana</w:t>
</w:r>
<w:r>
<w:rPr>
<w:bCs></w:bCs>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:t> </w:t>
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<w:r>
<w:rPr>
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</w:p>
<w:p>
<w:pPr>
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<w:rPr>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>András Bittsánszky</w:t>
</w:r>
<w:r>
<w:rPr>
<w:szCs></w:szCs>
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<w:lang></w:lang>
</w:rPr>
<w:t>1</w:t>
</w:r>
<w:r>
<w:rPr>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>*, Gábor Gyulai</w:t>
</w:r>
<w:r>
<w:rPr>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
<w:lang></w:lang>
</w:rPr>
<w:t>2</w:t>
</w:r>
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<w:pStyle></w:pStyle>
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<w:p>
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<w:rPr>
<w:sz></w:sz>
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<w:lang></w:lang>
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</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
<w:lang></w:lang>
</w:rPr>
<w:t>1</w:t>
</w:r>
<w:r>
<w:rPr>
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<w:sz></w:sz>
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</w:rPr>
<w:t>Hungarian Academy of Sciences, Centre for Agricultural Research, Plant Protection Institute, </w:t>
</w:r>
<w:r>
<w:rPr>
<w:color></w:color>
<w:sz></w:sz>
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</w:rPr>
<w:t>1525 Budapest, Pf. 102, Hungary</w:t>
</w:r>
<w:r>
<w:rPr>
<w:color></w:color>
<w:sz></w:sz>
<w:szCs></w:szCs>
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</w:rPr>
<w:t> </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>(Present address: InDeRe Institute for Food System Research and Innovation Ltd. 1116 Budapest, Fehérvári út 132-144.)</w:t>
</w:r>
<w:r>
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<w:sz></w:sz>
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</w:rPr>
<w:t>;</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
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</w:rPr>
<w:t>2</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Institute of Genetics, Microbiology</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>and Biotechnology</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>, Szent István University, 2103 Gödöllő, Páter K. u. 1, Hungary. </w:t>
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<w:t>*</w:t>
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<w:sz></w:sz>
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<w:t>E-mail of the corresponding author: andras.bittsanszky@indere.hu </w:t>
</w:r>
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<w:r>
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<w:lang></w:lang>
</w:rPr>
<w:t>Abstract </w:t>
</w:r>
<w:r>
<w:rPr>
<w:bCs></w:bCs>
<w:i></w:i>
<w:bdr></w:bdr>
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</w:rPr>
<w:t>-</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Clone</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>s of 35S-Zmgstf4 transgenic</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> Arabidopsis thaliana expressing the glutathione S-transferase F4 gene of Zea mays, w</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>ere</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> tested for stress-inductive GST (glutathione S-transferase) activity following treatments with the heavy metals Zn (150 and 1500 μM), Cd (20 and 30 μM) and chloroac</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>e</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>tanilide herbicide metolachlor (2000 μM). The ove</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>re</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>xpression of Zmgstf4 gene in Arabidopsis resulted in an extreme resistance to all treatm</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>ents. The GST activity of the transgenic</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants was almost the doubl</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>e compared to the wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plant in the untreated samples. After Cd (20 and 30 μM), and Zn (150 and 1500 μM) exposure the stress response activ</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>ity of GSTs increased in both wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> and </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>transgenic</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants, however with significantly higher levels in </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>transgenic</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants with extreme level at 20 μM CdSO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
<w:lang></w:lang>
</w:rPr>
<w:t>4</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> treatment (0.24 in </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>transgenic</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> and 0.13 in</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:t> wild-type</w:t>
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<w:t>). To compare GST responsivity, Zn treatments was less inductive compared to Cd. Metolachlor (200 μM) was totally tolerated by transgenic plants, compared to </w:t>
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<w:t>wild type</w:t>
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<w:t> plants, which died in 11 days.</w:t>
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<w:t>Keywords</w:t>
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<w:t> </w:t>
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<w:t>-</w:t>
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<w:t>transgenic Arabidopsis, zinc, cadmium,</w:t>
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<w:t> metolachlor,</w:t>
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<w:t> glutathione S-transferase </w:t>
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<w:t>Received:</w:t>
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<w:t> September 20, 2017</w:t>
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<w:t> Accepte</w:t>
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<w:t>d: September 28, 2017</w:t>
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<w:t>Introduction </w:t>
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<w:t>Plant GSTs (glutathione S-transferases) (EC 2.5.1.18) are a large and diverse stress-protective enzyme family, which catalyze the conjugation of the tripeptide glutathione (gamma-L-glutamyl-L-cysteinylglycine, GSH) with a wide variety of harmful electrophilic xenobiotics. E.</w:t>
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<w:t>g. plant resistance to chloroac</w:t>
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<w:t>e</w:t>
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<w:t>t</w:t>
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<w:t>anilide herbicides is mainly caused by the functions of GSTs in maize and soybean, which, in case of atrazine, results in GSH-atrazine a complex </w:t>
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<w:t>(Cummins et al. 2011; Dixon, Skipsey, and Edwards 2010; </w:t>
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<w:sz></w:sz>
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<w:t>Labrou</w:t>
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<w:t> et al. 20</w:t>
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<w:t>1</w:t>
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<w:t>5)</w:t>
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<w:t>. Recent results revealed that GSTs are also involved in heavy metal stress defen</w:t>
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<w:t>c</w:t>
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<w:t>e mechanisms in plants </w:t>
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<w:t>(Ly</w:t>
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<w:t>ubenova and Schröder 2011;</w:t>
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<w:t> Schröder 2001)</w:t>
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<w:noProof></w:noProof>
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<w:t>. </w:t>
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<w:t>Genes encoding for GSTs are grouped in diverse gene families of A, B, D, K, M, O, F, T, U, Z, L, M, S. In </w:t>
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<w:t>Arabidopsis</w:t>
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<w:t>, 51 </w:t>
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<w:t>At</w:t>
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<w:t>GST isoenzyme genes were cloned belonging to F (Phi), T (Theta), U (Tau) and Z (Zeta) families (Fig. 1). In maize 42 </w:t>
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<w:t>Zm</w:t>
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<w:t>GSTs (12 F, 28 T, and 2 Z), and in soybean 25 </w:t>
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<w:t>Gm</w:t>
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<w:t>GSTs (20 T, 4 F, and 1 Z) are known. </w:t>
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<w:t>Here we report a study of GST enzyme activity of </w:t>
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<w:t>wild type</w:t>
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<w:t> and 35S(CaMV)-</w:t>
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<w:t>Zmgst</w:t>
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<w:t>F4 transgenic</w:t>
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<w:t> </w:t>
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<w:t>Arabidopsis</w:t>
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<w:t> following exposure to Zn, Cd and metolachlor.</w:t>
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<w:t>Materials and method</w:t>
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<w:t>s </w:t>
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<w:t>Plant material</w:t>
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<w:t>Arabidopsis thaliana</w:t>
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<w:t> (ecotype: Col-5) were transformed with cDNA clone overexpressing Zm</w:t>
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<w:t>gstf4</w:t>
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<w:t> gene (</w:t>
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<w:t>Zea mays</w:t>
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<w:t>, </w:t>
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<w:t>NCBI</w:t>
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<w:t>: U12679 / X79515; Uniprot: P46420) driven by cauliflower mosa</w:t>
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<w:t>ic virus 35S promoter. cDNA was</w:t>
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<w:t> introduced with floral dip transformation method </w:t>
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<w:lang></w:lang>
</w:rPr>
<w:t>(Clough and Bent 1998)</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> using the hygromycin phosphotransferase (</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>hpt</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>) gene as selectable marker. The pCAMBIA1301 binary vector was used for transformation. </w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Seeds of transgenic 35S(CaMV)-</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zmgst</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>F4 and wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Arabidopsis thaliana</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> (ecotype: Col-5) were germinated </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>in vitro</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> on aseptic hormone free agar media. First, seeds were stratified in dark for 72 hour at 4°C to break seed dormancy. Seeds were surface sterilized with 70 % ethano</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>l (2 min), followed by 0.5% NaO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Cl (3 min) and rinsing with ddH</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
<w:lang></w:lang>
</w:rPr>
<w:t>2</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>O, sown on ½ MS media, solidified with 7% agar, and supplemented with different chemicals. After germination, seedlings were illuminated with Osram Fluora fluorescent lamps for 16/8 photoperiod (16-27 μmol m</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
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<w:t>-2</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> s</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
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<w:t>-1</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>). Metolachlor was applied to plants as irrigation at rosette stage grown on Jiffy peat.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Figure 2.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> Phytotoxic symptoms of wild-type and 35S(CaMV)-</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zmgst</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>f4 transgenic </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Arabidopsis thaliana</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants following a 10-day exposure to metolachlor (2000 µM) in agarose media, (left) and</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> in pots (in Jiffy peat, right)</w:t>
</w:r>
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<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Figure 2.</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> Phytotoxic symptoms of wild-type and 35S(CaMV)-</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zmgst</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>f4 transgenic </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Arabidopsis thaliana</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants following a 10-day exposure to metolachlor (2000 µM) in agarose media, (left) and</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> in pots (in Jiffy peat, right)</w:t>
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<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Treatments </w:t>
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<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zinc (ZnSO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
<w:lang></w:lang>
</w:rPr>
<w:t>4</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>) (150 and 1500 μM), and cadmium (CdSO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
<w:lang></w:lang>
</w:rPr>
<w:t>4</w:t>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>) (20 to 200 μM) were applied to the agar media </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>in vitro</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> (Fig. 2). Metolachl</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>or (2000 μM) was applied (in agar</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> media, or with irrigation</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>) at concentrations lethal to wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>, which was determined in preliminary measurements.</w:t>
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<w:lang></w:lang>
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<w:lang></w:lang>
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<w:lang></w:lang>
</w:rPr>
<w:drawing>
<wp:inline>
<wp:extent></wp:extent>
<wp:effectExtent></wp:effectExtent>
<wp:docPr></wp:docPr>
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<a:picLocks></a:picLocks>
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<a:blip></a:blip>
<a:srcRect></a:srcRect>
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<a:fillRect></a:fillRect>
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<pic:spPr>
<a:xfrm>
<a:off></a:off>
<a:ext></a:ext>
</a:xfrm>
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<a:avLst></a:avLst>
</a:prstGeom>
<a:noFill></a:noFill>
<a:ln>
<a:solidFill>
<a:srgbClr></a:srgbClr>
</a:solidFill>
<a:miter></a:miter>
<a:headEnd></a:headEnd>
<a:tailEnd></a:tailEnd>
</a:ln>
<a:effectLst></a:effectLst>
</pic:spPr>
</pic:pic>
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</w:drawing>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:bCs></w:bCs>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:bdr></w:bdr>
<w:shd></w:shd>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Figure 1.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> Minimum Evolution (ME) cladogram of the amino acid (aa) sequences of </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>At</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>GST isoenzyme families (1 - 51) compared to </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zm</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>GSTf4 (223 aa, NCBI #NP_001105366). ME cladogram was edited by MEGA4, with x1000 bootstrap based on the sequences of NCBI data bank. GST gene families (F - Phi, T - Theta, U - Tau, Z - Zeta) are indicated with different colo</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>u</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>rs. Genetic distance (scale) indicates amino acid substitution rate per loci.</w:t>
</w:r>
</w:p>
</w:txbxContent>
</wps:txbx>
<wps:bodyPr>
<a:noAutofit></a:noAutofit>
</wps:bodyPr>
</wps:wsp>
</a:graphicData>
</a:graphic>
<wp14:sizeRelH>
<wp14:pctWidth>0</wp14:pctWidth>
</wp14:sizeRelH>
<wp14:sizeRelV>
<wp14:pctHeight>0</wp14:pctHeight>
</wp14:sizeRelV>
</wp:anchor>
</w:drawing>
</mc:Choice>
<mc:Fallback>
<w:pict>
<v:shape>
<v:textbox>
<w:txbxContent>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:noProof></w:noProof>
<w:lang></w:lang>
</w:rPr>
<w:drawing>
<wp:inline>
<wp:extent></wp:extent>
<wp:effectExtent></wp:effectExtent>
<wp:docPr></wp:docPr>
<wp:cNvGraphicFramePr>
<a:graphicFrameLocks></a:graphicFrameLocks>
</wp:cNvGraphicFramePr>
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<a:graphicData>
<pic:pic>
<pic:nvPicPr>
<pic:cNvPr></pic:cNvPr>
<pic:cNvPicPr>
<a:picLocks></a:picLocks>
</pic:cNvPicPr>
</pic:nvPicPr>
<pic:blipFill>
<a:blip></a:blip>
<a:srcRect></a:srcRect>
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<a:fillRect></a:fillRect>
</a:stretch>
</pic:blipFill>
<pic:spPr>
<a:xfrm>
<a:off></a:off>
<a:ext></a:ext>
</a:xfrm>
<a:prstGeom>
<a:avLst></a:avLst>
</a:prstGeom>
<a:noFill></a:noFill>
<a:ln>
<a:solidFill>
<a:srgbClr></a:srgbClr>
</a:solidFill>
<a:miter></a:miter>
<a:headEnd></a:headEnd>
<a:tailEnd></a:tailEnd>
</a:ln>
<a:effectLst></a:effectLst>
</pic:spPr>
</pic:pic>
</a:graphicData>
</a:graphic>
</wp:inline>
</w:drawing>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:bCs></w:bCs>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:bdr></w:bdr>
<w:shd></w:shd>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Figure 1.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> Minimum Evolution (ME) cladogram of the amino acid (aa) sequences of </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>At</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>GST isoenzyme families (1 - 51) compared to </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zm</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>GSTf4 (223 aa, NCBI #NP_001105366). ME cladogram was edited by MEGA4, with x1000 bootstrap based on the sequences of NCBI data bank. GST gene families (F - Phi, T - Theta, U - Tau, Z - Zeta) are indicated with different colo</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>u</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>rs. Genetic distance (scale) indicates amino acid substitution rate per loci.</w:t>
</w:r>
</w:p>
</w:txbxContent>
</v:textbox>
<w10:wrap></w10:wrap>
</v:shape>
</w:pict>
</mc:Fallback>
</mc:AlternateContent>
</w:r>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Biochemical analysis</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>The aerial parts of plants were harvested, frozen in liquid nitrogen, and stored at -80ºC prior to enzyme extractions </w:t>
</w:r>
<w:bookmarkStart></w:bookmarkStart>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>(</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Schröder et al. 2003)</w:t>
</w:r>
<w:bookmarkEnd></w:bookmarkEnd>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>. The GST enzyme activities were measured according to Lyubenova and Schröder </w:t>
</w:r>
<w:bookmarkStart></w:bookmarkStart>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>(2009)</w:t>
</w:r>
<w:bookmarkEnd></w:bookmarkEnd>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> with CDNB model substrate at 22°C by using a Shimadzu UV-1601 Spectrophotometer at 22°C.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Statistics</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>At least three independent parallel experiments were carried out in each case. The significant differences between mean values were evaluated by Student's </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:iCs></w:iCs>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>t</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>-test at </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:iCs></w:iCs>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>P</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>=0.05.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:pStyle></w:pStyle>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:bCs></w:bCs>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:bdr></w:bdr>
<w:shd></w:shd>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:bCs></w:bCs>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:bdr></w:bdr>
<w:shd></w:shd>
<w:lang></w:lang>
</w:rPr>
<w:t>Results</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Symptoms</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants treated with Zn and Cd showed typical </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>heavy metal toxicity symptoms: </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>loss of chlorophyll and leaf turgor. The symptoms of metolachlor (200 </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>μ</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>M) were also significant (Fig. 2); apparently, transgenic plants were unaffected by metolachlor compared with </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants, which died after 11 days (Fig</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>. 2). The root development of wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants was also se</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>riously inhibited in wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Enzyme activities</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>The GST activity of the </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>transgenic</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plants</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> is</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 75% higher than in the </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>wild type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plant (Fig. 3). After Cd (20 and 30 μM), but not Zn (150 and 1500 μM) exposure</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>,</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> increased GST ac</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>tivities were measured in both wild-type</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> and </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>transgenic </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>plants, but the induction in </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>transgenic </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>plants was significantly higher</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> (Fig. 3).</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:noProof></w:noProof>
<w:sz></w:sz>
<w:szCs></w:szCs>
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<w:rPr>
<w:noProof></w:noProof>
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<w:r>
<w:rPr>
<w:noProof></w:noProof>
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<a:noFill></a:noFill>
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<w:p>
<w:pPr>
<w:ind></w:ind>
<w:jc></w:jc>
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<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:ind></w:ind>
<w:jc></w:jc>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>Figure 3</w:t>
</w:r>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t> </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:shd></w:shd>
</w:rPr>
<w:t>Example </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>The activity of GST (glutathione S-transferase) enzymes in wild-type (</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>WT; </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>green columns) and 35S(CaMV)-</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>Zmgst</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>f4 transgenic (</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>TR; </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>pink column) </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>Arabidopsis thaliana</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t> under stresses of Cd (CdSO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
</w:rPr>
<w:t>4</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>) </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>(left)</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t> and Zn (ZnSO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
</w:rPr>
<w:t>4</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>) </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>(right)</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>. Mean values ± SEM are indicated in percent of untreated wild type plant.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
</w:pPr>
</w:p>
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<a:noAutofit></a:noAutofit>
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<w:rPr>
<w:noProof></w:noProof>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:noProof></w:noProof>
<w:lang></w:lang>
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<w:rPr>
<w:noProof></w:noProof>
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<a:miter></a:miter>
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<w:p>
<w:pPr>
<w:ind></w:ind>
<w:jc></w:jc>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:ind></w:ind>
<w:jc></w:jc>
</w:pPr>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>Figure 3</w:t>
</w:r>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t> </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:shd></w:shd>
</w:rPr>
<w:t>Example </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>The activity of GST (glutathione S-transferase) enzymes in wild-type (</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>WT; </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>green columns) and 35S(CaMV)-</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>Zmgst</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>f4 transgenic (</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>TR; </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>pink column) </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>Arabidopsis thaliana</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t> under stresses of Cd (CdSO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
</w:rPr>
<w:t>4</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>) </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>(left)</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t> and Zn (ZnSO</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:vertAlign></w:vertAlign>
</w:rPr>
<w:t>4</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>) </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>(right)</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
<w:t>. Mean values ± SEM are indicated in percent of untreated wild type plant.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
</w:rPr>
</w:pPr>
</w:p>
</w:txbxContent>
</v:textbox>
<w10:wrap></w10:wrap>
</v:shape>
</w:pict>
</mc:Fallback>
</mc:AlternateContent>
</w:r>
<w:r>
<w:rPr>
<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Discussion</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Genetic engineering is a powerful tool to study plant metabolic pathways. Overexpression of specific genes helps to clarify their physiological roles in the metabolism grown under different stress conditions</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> (Bittsánszky et al. 2015)</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>. Deeper understanding of the biochemical pathways contributing to the processes of uptake, translocation and accumulation of heavy metals, and tolerance of phytotoxic chemicals will greatly help the improvement of phytoremediation potential of plants. Glutathione S-transferases seem to be valuable targets for these purposes.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:jc></w:jc>
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</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Glutathione S-transferases are considered to play an important role in heavy metal stress </w:t>
</w:r>
<w:bookmarkStart></w:bookmarkStart>
<w:r>
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<w:sz></w:sz>
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</w:rPr>
<w:t>(Mendoza-Cozatl et al. 2011; </w:t>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Schröder et al. 2003; Saraswat and Rai 2011)</w:t>
</w:r>
<w:bookmarkEnd></w:bookmarkEnd>
<w:r>
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<w:sz></w:sz>
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<w:lang></w:lang>
</w:rPr>
<w:t>, especially through detoxification </w:t>
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<w:r>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>(</w:t>
</w:r>
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<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Lyubenova et al. 2009)</w:t>
</w:r>
<w:bookmarkEnd></w:bookmarkEnd>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>.</w:t>
</w:r>
</w:p>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
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</w:p>
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<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Our results has indicated that overexpression of GST enzymes can play important roles in the detoxification of heavy metals, and tolerance to herbicides. The overexpression of </w:t>
</w:r>
<w:r>
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<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Zmgst</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>f4 gene was also found to increase resistance against chloroacetanilide herbicides </w:t>
</w:r>
<w:bookmarkStart></w:bookmarkStart>
<w:r>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>(Milligan et al. 2001)</w:t>
</w:r>
<w:bookmarkEnd></w:bookmarkEnd>
<w:r>
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<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>. </w:t>
</w:r>
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<w:jc></w:jc>
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<w:sz></w:sz>
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<w:lang></w:lang>
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</w:pPr>
</w:p>
<w:p>
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<w:jc></w:jc>
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<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
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<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>In conclusion, </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:t>Zmgstf</w:t>
</w:r>
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<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>4 transgenic </w:t>
</w:r>
<w:r>
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<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Arabidopsis</w:t>
</w:r>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> plant investigated in this study provided new data on the understanding of plant GST functions with indications in their use in phytoremediation. R</w:t>
</w:r>
<w:r>
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<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:t>esults also show the applicability of the </w:t>
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<w:i></w:i>
<w:sz></w:sz>
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<w:t>Zmgst</w:t>
</w:r>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>f4 gene in molecular plant breeding for phytoremediation purposes.</w:t>
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<w:jc></w:jc>
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<w:b></w:b>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>References</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
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<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:bookmarkStart></w:bookmarkStart>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Bittsánszky, A, K Pilinszky, G Gyulai, and T Komives, 2015</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> “Overcoming Ammonium T</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>oxicity”. </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Plant Science</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 231: 184–190.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:hyperlink>
<w:r>
<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1016/j.plantsci.2014.12.005</w:t>
</w:r>
</w:hyperlink>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Clough, S J, and A F Bent. 1998. “Floral Dip: A Simplified Method for Agrobacterium-Mediated Transformation of Arabidopsis Thaliana.” </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Plant Journal</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 16: 735–43.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
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<w:sz></w:sz>
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</w:rPr>
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<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1046/j.1365-313x.1998.00343.x</w:t>
</w:r>
</w:hyperlink>
</w:p>
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<w:widowControl></w:widowControl>
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<w:lang></w:lang>
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<w:sz></w:sz>
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<w:lang></w:lang>
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</w:pPr>
<w:r>
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<w:sz></w:sz>
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<w:lang></w:lang>
</w:rPr>
<w:t>Cummins, I, D P Dixon, S Freitag-Pohl, M Skipsey, and R Edwards. 2011. “Multiple Roles for Plant Glutathione Trans</w:t>
</w:r>
<w:r>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:softHyphen></w:softHyphen>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>ferases in Xenobiotic Detoxification.” </w:t>
</w:r>
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<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Drug Metabolism Reviews</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 43: 266–80. </w:t>
</w:r>
</w:p>
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<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
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<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
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<w:sz></w:sz>
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<w:lang></w:lang>
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<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.3109/03602532.2011.552910</w:t>
</w:r>
</w:hyperlink>
</w:p>
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<w:widowControl></w:widowControl>
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<w:sz></w:sz>
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</w:rPr>
<w:t>Dixon, D P, M Skipsey, and R Edwards. 2010. “Roles for Glutathione Transferases in Plant Secondary Metabolism.” </w:t>
</w:r>
<w:r>
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</w:rPr>
<w:t>Phytochemistry</w:t>
</w:r>
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<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 71: 338</w:t>
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<w:t>–</w:t>
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<w:lang></w:lang>
</w:rPr>
<w:t>50.</w:t>
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<w:lang></w:lang>
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<w:t>doi:10.1016/j.phytochem.2009.12.012</w:t>
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<w:t>Labrou</w:t>
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<w:t>, A C Papageorgiou, O</w:t>
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<w:sz></w:sz>
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<w:t> Pavli and</w:t>
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<w:t> E Flemetakis</w:t>
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<w:t>. 2015.</w:t>
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<w:t>Plant GSTome: </w:t>
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<w:t>tructure and </w:t>
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<w:t>unctional </w:t>
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<w:t>enome </w:t>
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<w:t>Network and Plant Stress R</w:t>
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<w:t>esponse</w:t>
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<w:sz></w:sz>
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<w:lang></w:lang>
</w:rPr>
<w:t>.” </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Current Opinion in Biotechnology</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>, 32</w:t>
</w:r>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>: 186</w:t>
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<w:sz></w:sz>
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<w:t>–</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>194</w:t>
</w:r>
</w:p>
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<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1016/j.copbio.2014.12.024</w:t>
</w:r>
</w:hyperlink>
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<w:widowControl></w:widowControl>
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<w:jc></w:jc>
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<w:lang></w:lang>
</w:rPr>
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<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
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<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Lyubenova, L, and P Schröder. 2011. “Plants for Waste Water Treatment - Effects of Heavy Metals on the Detoxification System of Typha Latifolia.” </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Bioresource Technology</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 102: 996–1004.</w:t>
</w:r>
</w:p>
<w:p>
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<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
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<w:jc></w:jc>
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<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:hyperlink>
<w:r>
<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1016/j.biortech.2010.09.072</w:t>
</w:r>
</w:hyperlink>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
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<w:autoSpaceDN></w:autoSpaceDN>
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<w:jc></w:jc>
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<w:lang></w:lang>
</w:rPr>
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<w:widowControl></w:widowControl>
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<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Lyubenova, L</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>, E Nehnevajova, R Herzig, and P Schröder. 2009. “Response of Antioxidant Enzymes in </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Nicotiana t</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>aba</w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:softHyphen></w:softHyphen>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>cum</w:t>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:t> Clones during Phytoextraction of Heavy Metals.” </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Envi</w:t>
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<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:softHyphen></w:softHyphen>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>ron</w:t>
</w:r>
<w:r>
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<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:softHyphen></w:softHyphen>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>mental Science and Pollution Research</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 16 (5): 573–81. </w:t>
</w:r>
<w:hyperlink>
<w:r>
<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1007/s11356-009-0175-8</w:t>
</w:r>
</w:hyperlink>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Mendoza-Cozatl, D G, T O Jobe, F Hauser, and J I Schroeder. 2011. “Long-Distance Transport, Vacuolar Sequestration, Tolerance, and Transcriptional Responses Induced by Cadmium and Arsenic.” </w:t>
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<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Current Opinion in Plant Biology</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 14: 554–62. </w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:hyperlink>
<w:r>
<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1016/j.pbi.2011.07.004</w:t>
</w:r>
</w:hyperlink>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
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<w:jc></w:jc>
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<w:lang></w:lang>
</w:rPr>
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<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
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<w:pPr>
<w:widowControl></w:widowControl>
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<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
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<w:lang></w:lang>
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</w:pPr>
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<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:lastRenderedPageBreak></w:lastRenderedPageBreak>
<w:t>Milligan, A S, A Daly, M A J Parry, P A Lazzeri, and I Jepson. 2001. “The Expression of a Maize Glutathione S-Transferase Gene in Transgenic Wheat Confers Herbicide Tolerance, Both in Planta and in Vitro.” </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Molecular Breeding</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 7: 301–15.</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> </w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
</w:pPr>
<w:hyperlink>
<w:r>
<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1023/A:101165282</w:t>
</w:r>
</w:hyperlink>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Saraswat, S, and J P N Rai. 2011. “Complexation and Detoxifi</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:softHyphen></w:softHyphen>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>cation of Zn and Cd in Metal Accumulating Plants.” </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Reviews in Environmental Science and Bio-Technology</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 10:</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 327–39. </w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:hyperlink>
<w:r>
<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1007/s11157-011-9250-y</w:t>
</w:r>
</w:hyperlink>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
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<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
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<w:szCs></w:szCs>
<w:lang></w:lang>
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<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:lastRenderedPageBreak></w:lastRenderedPageBreak>
<w:t>Schröder, P, C Fischer, R Debus, and A Wenzel. 2003. “Re</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:softHyphen></w:softHyphen>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>action of Detoxification Mechanisms in Suspension Cultured Spruce Cells (Picea Abies L. Karst.) to Heavy Metals in Pure Mixture and in Soil Eluates.” </w:t>
</w:r>
<w:r>
<w:rPr>
<w:i></w:i>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Environmental Science and Pollution Research</w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t> 10: </w:t>
</w:r>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>225–34.</w:t>
</w:r>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:hyperlink>
<w:r>
<w:rPr>
<w:rStyle></w:rStyle>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>doi:10.1065/espr2002.10.138</w:t>
</w:r>
</w:hyperlink>
</w:p>
<w:p>
<w:pPr>
<w:widowControl></w:widowControl>
<w:autoSpaceDE></w:autoSpaceDE>
<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
</w:p>
<w:p>
<w:pPr>
<w:pStyle></w:pStyle>
<w:ind></w:ind>
<w:jc></w:jc>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
</w:pPr>
<w:r>
<w:rPr>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
</w:rPr>
<w:t>Schröder, P. 2001. “The Role of Glutathione and Glutathione S-Transferases in Plant Reaction and Adaptation to Xeno</w:t>
</w:r>
<w:r>
<w:rPr>
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<w:autoSpaceDN></w:autoSpaceDN>
<w:adjustRightInd></w:adjustRightInd>
<w:ind></w:ind>
<w:jc></w:jc>
<w:textAlignment></w:textAlignment>
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<w:rPr>
<w:rFonts></w:rFonts>
<w:sz></w:sz>
<w:szCs></w:szCs>
<w:lang></w:lang>
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</w:style>
<w:style>
<w:name></w:name>
<w:basedOn></w:basedOn>
<w:rsid></w:rsid>
<w:pPr>
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