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1.1.3 Reported or Potential Metabolites and/or Transformation Products
ОглавлениеPesticides in the environment may experience different chemical reactions, leading to the appearance of TPs and metabolites. These compounds have potentially harmful impacts on organisms, even more than their precursors [18], making their monitoring essential. However, because of the great variety of TPs, it is difficult to carry out a comprehensive analysis of their presence, and in consequence, a risk assessment evaluation.
The metabolic/transformation pathways of pesticides can be affected by biological or/and physico-chemical factors in the environment [19]. Hydrolysis is an important degradation mode of pesticides; however, multiple TPs may be produced from different processes, even after hydrolysis [20, 21].
It was noted that the number of substances that must be considered for environmental risk significantly multiplied by a factor of 7.5, just when the precursor compounds were subjected to a photolysis process [22]. This has been observed for terbutryn, mecoprop, penconazole, boscalid diuron and octhilinone pesticides in Figure 1.1, where the number of compounds that should be monitored in environmental samples considerably increase because of the presence of TPs. After evaluating genotoxicity of the proposed TPs, it was suggested that the number of substances that pose a risk onto the aquatic environment increased by a factor of >4. This fact, together with the high incidence of TPs and metabolites in natural waters, constitutes a major concern that needs to be addressed from an analytical and legislative point of view.
Figure 1.1 Forty-five TPs originating from six pesticidal parent compounds. Illustration of the multiplication of known substances that should be further investigates by an environmental risk assessment. Source [22]. Reproduced with permission of Elsevier B.V.
Several studies have revealed the presence of TPs and metabolites in waters at higher concentrations than the parent compounds [23, 24]. The physico-chemical properties (higher mobility and polarity) of the TPs and metabolites might facilitate the migration between surface water and groundwater. Since groundwater is the greatest source of freshwater in the world, the occurrence of some relevant metabolites and/or TPs led to the restriction in the use of certain pesticides, as was recently the case for chlorothalonil and previously simazine and atrazine, among others. Most of the TPs/metabolites found in natural waters are related to acetanilide and triazine herbicides [25]. Such is the case for ethanesulfonic acid (ESA) and oxanilic acid (OA), degradation products of alachlor, metolachlor, as well as acetochlor, and atrazine-desethyl (DEA), atrazine-desisopropyl (DIA), terbumeton-desethyl (TED), terbuthylazine-desethyl (TD) and terbuthylazine-2-hydroxy (T2H). Different analysis has also revealed the occurrence of 2,6-dichlorobenzamide (BAM) from dichlobenil, aminomethyl phosphonic acid (AMPA) from glyphosate, desphenyl chloridazon and methyldesphenyl chloridazon from the herbicide chloridazon and N,N-dimethylsulfamide (DMS) formed from the fungicide tolylfluanid [23, 25–27].
Metabolites were also detected in soils, especially when dissipation studies have been carried out. For instance, nine metabolites of famoxadone were detected in soil samples [28], with IN-JS940 the metabolite detected at the highest percentage in relation to the parent compound, as can be observed in Figure 1.2. Therefore, risk assessment is needed to evaluate potential hazards to the fauna and flora. Tiwari et al. [29] evaluated the presence of endosulfan and chlorpyrifos metabolites in soils because of the higher toxicity of some of these compounds as chlorpyrifos oxon. They determined that metabolite concentrations increased throughout the study when the concentration of the parent molecule decreased. Moreover, it was observed that concentration of metabolites was higher in soil matrices than in water. In the same way, when 2,4-dichlorophenoxyacetic acid (2,4-D) is applied on crops or on soil, it will undergo chemical, biological and physical degradation processes depending on the environmental factors, which will determine the metabolites formed. For example, 2,4-D DMA (2,4-D dimethylamine salts) is dissociated to 2,4-D acid after its application on the soil [30], so in addition to the parent compound, different TPs should be monitored.
Figure 1.2 Metabolite behavior according to the concentration of famoxadone during monitoring period (100 day) for soil experiments at: (a) normal dose (2.4 mg g−1 soil) and (b) double dose (4.8 mg g−1 soil). Source [28]. Reproduced with permission of Elsevier B.V.