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1.
Animal ; 7 Suppl 2: 322-32, 2013 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-23739474

RESUMO

Agriculture and livestock production systems are two major emitters of greenhouse gases. Methane with a GWP (global warming potential) of 21, and nitrous oxide (N2O) with a GWP of 300, are largely emitted from animal production agriculture, where livestock production is based on pasture and feed grains. The principal biological processes involved in N2O emissions are nitrification and denitrification. Biological nitrification inhibition (BNI) is the natural ability of certain plant species to release nitrification inhibitors from their roots that suppress nitrifier activity, thus reducing soil nitrification and N2O emission. Recent methodological developments (e.g. bioluminescence assay to detect BNIs in plant root systems) have led to significant advances in our ability to quantify and characterize the BNI function. Synthesis and release of BNIs from plants is a highly regulated process triggered by the presence of NH4 + in the rhizosphere, which results in the inhibitor being released precisely where the majority of the soil-nitrifier population resides. Among the tropical pasture grasses, the BNI function is strongest (i.e. BNI capacity) in Brachiaria sp. Some feed-grain crops such as sorghum also have significant BNI capacity present in their root systems. The chemical identity of some of these BNIs has now been established, and their mode of inhibitory action on Nitrosomonas has been characterized. The ability of the BNI function in Brachiaria pastures to suppress N2O emissions and soil nitrification potential has been demonstrated; however, its potential role in controlling N2O emissions in agro-pastoral systems is under investigation. Here we present the current status of our understanding on how the BNI functions in Brachiaria pastures and feed-grain crops such as sorghum can be exploited both genetically and, from a production system's perspective, to develop low-nitrifying and low N2O-emitting production systems that would be economically profitable and ecologically sustainable.


Assuntos
Agricultura/métodos , Brachiaria/genética , Produtos Agrícolas/genética , Nitrificação , Óxido Nitroso/metabolismo , Criação de Animais Domésticos , Animais , Brachiaria/metabolismo , Produtos Agrícolas/metabolismo , Desnitrificação , Ecossistema , Gado/fisiologia , Solo/química , Microbiologia do Solo , Sorghum/genética , Sorghum/metabolismo
2.
Ann Bot ; 112(2): 297-316, 2013 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-23118123

RESUMO

BACKGROUND: Agriculture is the single largest geo-engineering initiative that humans have initiated on planet Earth, largely through the introduction of unprecedented amounts of reactive nitrogen (N) into ecosystems. A major portion of this reactive N applied as fertilizer leaks into the environment in massive amounts, with cascading negative effects on ecosystem health and function. Natural ecosystems utilize many of the multiple pathways in the N cycle to regulate N flow. In contrast, the massive amounts of N currently applied to agricultural systems cycle primarily through the nitrification pathway, a single inefficient route that channels much of this reactive N into the environment. This is largely due to the rapid nitrifying soil environment of present-day agricultural systems. SCOPE: In this Viewpoint paper, the importance of regulating nitrification as a strategy to minimize N leakage and to improve N-use efficiency (NUE) in agricultural systems is highlighted. The ability to suppress soil nitrification by the release of nitrification inhibitors from plant roots is termed 'biological nitrification inhibition' (BNI), an active plant-mediated natural function that can limit the amount of N cycling via the nitrification pathway. The development of a bioassay using luminescent Nitrosomonas to quantify nitrification inhibitory activity from roots has facilitated the characterization of BNI function. Release of BNIs from roots is a tightly regulated physiological process, with extensive genetic variability found in selected crops and pasture grasses. Here, the current status of understanding of the BNI function is reviewed using Brachiaria forage grasses, wheat and sorghum to illustrate how BNI function can be utilized for achieving low-nitrifying agricultural systems. A fundamental shift towards ammonium (NH4(+))-dominated agricultural systems could be achieved by using crops and pastures with high BNI capacities. When viewed from an agricultural and environmental perspective, the BNI function in plants could potentially have a large influence on biogeochemical cycling and closure of the N loop in crop-livestock systems.


Assuntos
Lactonas/farmacologia , Nitrificação/efeitos dos fármacos , Nitrogênio/metabolismo , Nitrosomonas/metabolismo , Raízes de Plantas/metabolismo , Agricultura , Brachiaria/química , Brachiaria/metabolismo , Produtos Agrícolas , Ecossistema , Fertilizantes , Lactonas/química , Raízes de Plantas/química , Compostos de Amônio Quaternário/metabolismo , Solo , Sorghum/química , Sorghum/metabolismo , Triticum/química , Triticum/metabolismo
3.
Bull Environ Contam Toxicol ; 89(1): 187-92, 2012 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-22544378

RESUMO

Pesticide residue monitoring was taken up at Kothapally and Enkepally villages of Ranga Reddy district, Andhra Pradesh in food crops (rice, maize, pigeonpea), vegetables (tomato and brinjal), cotton besides soil and water during 2008-2009 seasons. Of the 80 food crop and cotton samples, only two rice grain samples (3 %) showed beta endosulfan residues and two (3 %) out of 80 soil samples of food crops and cotton showed alpha and beta endosulfan residues. Out of 75 tomato samples, 26 (35 %) were contaminated and 4 % had residues above maximum residue limit (MRLs). Out of the 50 soil samples from tomato fields, 13 (26 %) contained residues. Among the 80 brinjal samples, 46 (56 %) contained residues and 4 % of samples had residues above MRLs. Only 13 % of the soil samples from brinjal fields were contaminated. Water samples found free from residues. In general the incidence of residues was below MRL in food crops.


Assuntos
Produtos Agrícolas/química , Monitoramento Ambiental , Inseticidas/análise , Resíduos de Praguicidas/análise , Poluentes do Solo/análise , Poluição Ambiental/estatística & dados numéricos , Contaminação de Alimentos/análise , Contaminação de Alimentos/estatística & dados numéricos , Verduras/química
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