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Golob A, Gadžo D, Stibilj V, Djikić M, Gavrić T, Kreft I, Germ M. Sulphur interferes with selenium accumulation in Tartary buckwheat plants. PLANT PHYSIOLOGY AND BIOCHEMISTRY : PPB 2016; 108:32-36. [PMID: 27404132 DOI: 10.1016/j.plaphy.2016.07.001] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/22/2016] [Revised: 06/27/2016] [Accepted: 07/01/2016] [Indexed: 06/06/2023]
Abstract
Tartary buckwheat (Fagopyrum tataricum Gaertn.) and common buckwheat (Fagopyrum esculentum Moench.) plants grown in the field were treated foliarly with 126 μM solutions of selenate and/or sulphate in order to study the effect of sulphur (S) on selenium (Se) concentration in plants. In both species, the concentration of Se in all plant parts was similar in control and S treated plants. In Tartary buckwheat the concentration of Se was higher in S and Se treated plants than in plants treated with Se alone. S was shown to enhance Se accumulation in Tartary buckwheat. It was also shown that it is possible to produce grain and herb of Tartary and common buckwheat containing appropriate amounts of Se for food without affecting the yield of the plants.
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Affiliation(s)
- Aleksandra Golob
- University of Ljubljana, Biotechnical Faculty, Jamnikarjeva 101, SI-1000, Ljubljana, Slovenia.
| | - Drena Gadžo
- Faculty of Agriculture and Food Science, University of Sarajevo, Zmaja od Bosne 8, BiH 7000, Sarajevo, Bosnia and Herzegovina.
| | | | - Mirha Djikić
- Faculty of Agriculture and Food Science, University of Sarajevo, Zmaja od Bosne 8, BiH 7000, Sarajevo, Bosnia and Herzegovina.
| | - Teofil Gavrić
- Faculty of Agriculture and Food Science, University of Sarajevo, Zmaja od Bosne 8, BiH 7000, Sarajevo, Bosnia and Herzegovina.
| | - Ivan Kreft
- Slovenian Forestry Institute, Večna pot 2, SI-1000, Ljubljana, Slovenia.
| | - Mateja Germ
- University of Ljubljana, Biotechnical Faculty, Jamnikarjeva 101, SI-1000, Ljubljana, Slovenia.
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Schiavon M, Berto C, Malagoli M, Trentin A, Sambo P, Dall'Acqua S, Pilon-Smits EAH. Selenium Biofortification in Radish Enhances Nutritional Quality via Accumulation of Methyl-Selenocysteine and Promotion of Transcripts and Metabolites Related to Glucosinolates, Phenolics, and Amino Acids. FRONTIERS IN PLANT SCIENCE 2016; 7:1371. [PMID: 27683583 PMCID: PMC5021693 DOI: 10.3389/fpls.2016.01371] [Citation(s) in RCA: 61] [Impact Index Per Article: 6.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/11/2016] [Accepted: 08/29/2016] [Indexed: 05/21/2023]
Abstract
Two selenium (Se) fertilization methods were tested for their effects on levels of anticarcinogenic selenocompounds in radish (Raphanus sativus), as well as other nutraceuticals. First, radish was grown on soil and foliar selenate applied 7 days before harvest at 0, 5, 10, and 20 mg Se per plant. Selenium levels were up to 1200 mg Se/kg DW in leaves and 120 mg Se/kg DW in roots. The thiols cysteine and glutathione were present at 2-3-fold higher levels in roots of Se treated plants, and total glucosinolate levels were 35% higher, due to increases in glucoraphanin. The only seleno-aminoacid detected in Se treated plants was Se-methyl-SeCys (100 mg/kg FW in leaves, 33 mg/kg FW in roots). The levels of phenolic aminoacids increased with selenate treatment, as did root total nitrogen and protein content, while the level of several polyphenols decreased. Second, radish was grown in hydroponics and supplied with 0, 5, 10, 20, or 40 μM selenate for 1 week. Selenate treatment led to a 20-30% increase in biomass. Selenium concentration was 242 mg Se/kg DW in leaves and 85 mg Se/kg DW in roots. Cysteine levels decreased with Se in leaves but increased in roots; glutatione levels decreased in both. Total glucosinolate levels in leaves decreased with Se treatment due to repression of genes involved in glucosinolates metabolism. Se-methyl-SeCys concentration ranged from 7-15 mg/kg FW. Aminoacid concentration increased with Se treatment in leaves but decreased in roots. Roots of Se treated plants contained elevated transcript levels of sulfate transporters (Sultr) and ATP sulfurylase, a key enzyme of S/Se assimilation. No effects on polyphenols were observed. In conclusion, Se biofortification of radish roots may be achieved via foliar spray or hydroponic supply. One to ten radishes could fulfill the daily human requirement (70 μg) after a single foliar spray of 5 mg selenate per plant or 1 week of 5-10 μM selenate supply in hydroponics. The radishes metabolized selenate to the anticarcinogenic compound Se-methyl-selenocysteine. Selenate treatment enhanced levels of other nutraceuticals in radish roots, including glucoraphanin. Therefore, Se biofortification can produce plants with superior health benefits.
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Affiliation(s)
- Michela Schiavon
- Department of Agronomy, Food, Natural Resources, Animals and the Environment, University of PadovaLegnaro, Italy
- Biology Department, Colorado State UniversityFort Collins, MS, USA
| | - Chiara Berto
- Department of Pharmaceutical and Pharmacological Sciences, University of PadovaPadova, Italy
| | - Mario Malagoli
- Department of Agronomy, Food, Natural Resources, Animals and the Environment, University of PadovaLegnaro, Italy
| | - Annarita Trentin
- Department of Agronomy, Food, Natural Resources, Animals and the Environment, University of PadovaLegnaro, Italy
| | - Paolo Sambo
- Department of Agronomy, Food, Natural Resources, Animals and the Environment, University of PadovaLegnaro, Italy
| | - Stefano Dall'Acqua
- Department of Pharmaceutical and Pharmacological Sciences, University of PadovaPadova, Italy
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53
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White PJ. Selenium accumulation by plants. ANNALS OF BOTANY 2016; 117:217-35. [PMID: 26718221 PMCID: PMC4724052 DOI: 10.1093/aob/mcv180] [Citation(s) in RCA: 107] [Impact Index Per Article: 11.9] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/22/2015] [Revised: 09/09/2015] [Accepted: 10/19/2015] [Indexed: 05/19/2023]
Abstract
BACKGROUND Selenium (Se) is an essential mineral element for animals and humans, which they acquire largely from plants. The Se concentration in edible plants is determined by the Se phytoavailability in soils. Selenium is not an essential element for plants, but excessive Se can be toxic. Thus, soil Se phytoavailability determines the ecology of plants. Most plants cannot grow on seleniferous soils. Most plants that grow on seleniferous soils accumulate <100 mg Se kg(-1) dry matter and cannot tolerate greater tissue Se concentrations. However, some plant species have evolved tolerance to Se, and commonly accumulate tissue Se concentrations >100 mg Se kg(-1) dry matter. These plants are considered to be Se accumulators. Some species can even accumulate Se concentrations of 1000-15 000 mg Se kg(-1 )dry matter and are called Se hyperaccumulators. SCOPE This article provides an overview of Se uptake, translocation and metabolism in plants and highlights the possible genetic basis of differences in these between and within plant species. The review focuses initially on adaptations allowing plants to tolerate large Se concentrations in their tissues and the evolutionary origin of species that hyperaccumulate Se. It then describes the variation in tissue Se concentrations between and within angiosperm species and identifies genes encoding enzymes limiting the rates of incorporation of Se into organic compounds and chromosomal loci that might enable the development of crops with greater Se concentrations in their edible portions. Finally, it discusses transgenic approaches enabling plants to tolerate greater Se concentrations in the rhizosphere and in their tissues. CONCLUSIONS The trait of Se hyperaccumulation has evolved several times in separate angiosperm clades. The ability to tolerate large tissue Se concentrations is primarily related to the ability to divert Se away from the accumulation of selenocysteine and selenomethionine, which might be incorporated into non-functional proteins, through the synthesis of less toxic Se metabilites. There is potential to breed or select crops with greater Se concentrations in their edible tissues, which might be used to increase dietary Se intakes of animals and humans.
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Affiliation(s)
- Philip J White
- Ecological Sciences Group, The James Hutton Institute, Invergowrie, Dundee DD2 5DA, UK and Distinguished Scientist Fellowship Program, King Saud University, Riyadh 11451, Kingdom of Saudi Arabia
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Dimkovikj A, Fisher B, Hutchison K, Van Hoewyk D. Stuck between a ROS and a hard place: Analysis of the ubiquitin proteasome pathway in selenocysteine treated Brassica napus reveals different toxicities during selenium assimilation. JOURNAL OF PLANT PHYSIOLOGY 2015; 181:50-4. [PMID: 25974369 DOI: 10.1016/j.jplph.2015.04.003] [Citation(s) in RCA: 13] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/17/2015] [Revised: 04/13/2015] [Accepted: 04/13/2015] [Indexed: 05/26/2023]
Abstract
During the selenium assimilation pathway, inorganic selenate and selenite are reduced to form selenocysteine (Sec). Tolerance to selenium in plants has long been attributable to minimizing the replacement of cysteine with selenocysteine, which can result in nonspecific selenoproteins that are potentially misfolded. Despite this widely accepted assumption, there is no evidence in higher plants demonstrating that selenocysteine induces toxicity by resulting in malformed proteins. In this study, we use Brassica napus to analyze the ubiquitin-proteasome pathway, which is capable of removing misfolded proteins. Sec rapidly increased proteasome activity and levels of ubiquitinated proteins, strongly indicating that selenocysteine induces protein misfolding. Proteasome inhibition increased the amount of selenium in protein in Sec-treated plants. Collectively, these data provide a mechanism that accounts for Sec toxicity. Additionally, Sec did not cause oxidative stress as judged by examining levels of superoxide using fluorescent microscopy. Therefore, the cellular response to Sec is different compared to selenite, which was recently shown to increase antioxidant metabolism in response to elevated mitochondrial superoxide that ultimately impaired proteasome activity. Therefore, plants must contend with two divergent modes of cytotoxicity during selenium assimilation. Selenite can result in oxidative stress, but increased flux of selenite reduction can yield Sec that in turn can cause protein misfolding.
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Affiliation(s)
| | - Brian Fisher
- Biology Department, Coastal Carolina University, Conway, SC 29526, USA
| | - Kim Hutchison
- Department of Soil Science, North Carolina State University, Raleigh, NC 27695, USA
| | - Doug Van Hoewyk
- Biology Department, Coastal Carolina University, Conway, SC 29526, USA.
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Malagoli M, Schiavon M, dall’Acqua S, Pilon-Smits EAH. Effects of selenium biofortification on crop nutritional quality. FRONTIERS IN PLANT SCIENCE 2015; 6:280. [PMID: 25954299 PMCID: PMC4404738 DOI: 10.3389/fpls.2015.00280] [Citation(s) in RCA: 86] [Impact Index Per Article: 8.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 10/31/2014] [Accepted: 04/08/2015] [Indexed: 05/02/2023]
Abstract
Selenium (Se) at very low doses has crucial functions in humans and animals. Since plants represent the main dietary source of this element, Se-containing crops may be used as a means to deliver Se to consumers (biofortification). Several strategies have been exploited to increase plant Se content. Selenium assimilation in plants affects both sulfur (S) and nitrogen (N) metabolic pathways, which is why recent research has also focused on the effect of Se fertilization on the production of S- and N- secondary metabolites with putative health benefits. In this review we discuss the function of Se in plant and human nutrition and the progress in the genetic engineering of Se metabolism to increase the levels and bioavailability of this element in food crops. Particular attention is paid to Se biofortification and the synthesis of compounds with beneficial effects on health.
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Affiliation(s)
- Mario Malagoli
- Department of Agronomy, Food, Natural Resources, Animals and the Environment, University of Padova, Padova, Italy
- *Correspondence: Mario Malagoli, Department of Agronomy, Food, Natural Resources, Animals and the Environment, University of Padova, Agripolis, 35020 Legnaro Padova, Italy
| | - Michela Schiavon
- Department of Agronomy, Food, Natural Resources, Animals and the Environment, University of Padova, Padova, Italy
| | - Stefano dall’Acqua
- Department of Pharmaceutical and Pharmacological Sciences, University of Padova, Padova, Italy
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Dos Reis A, Furlani Junior E, Moraes M, De Melo S. BIOFORTIFICAÇÃO AGRONÔMICA COM SELÊNIO NO BRASIL COMO ESTRATÉGIA PARA AUMENTAR A QUALIDADE DOS PRODUTOS AGRÍCOLAS. REVISTA BRASILEIRA DE ENGENHARIA DE BIOSSISTEMAS 2014. [DOI: 10.18011/bioeng2014v8n2p128-138] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.1] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/01/2022] Open
Abstract
Há fortes evidências de deficiência de selênio (Se) em solos, forragens e produtos agrícolas do Brasil. A faixa de deficiência de Se em solos varia de 100 a 600 µg kg-1, no entanto, os valores máximos encontrados, na maioria dos casos, em solos agricultáveis foram aproximadamente 210 µg kg-1. A variação genotípica das culturas para acumular Se nas partes comestíveis depende do seu teor no solo e a escolha da variedade ou cultivar com maior capacidade de absorção e acúmulo de Se pode contribuir para melhorar a qualidade dos alimentos. O Brasil possui fortes evidências de deficiência de Se na população, no entanto, nenhuma pesquisa abrangente ao nível do país sobre o assunto está disponível. Além disso, a biofortificação com Se em produtos agrícolas não faz parte do Programa HarvestPlus do Brasil. É necessário mais pesquisas relacionadas ao teor de Se no solo em diferentes estados brasileiros. Em áreas onde a biodisponibilidade de Se é baixa, uma alternativa eficiente é a suplementação de Se por meio de fertilizantes para aplicação via solo ou foliar, o que corrige os baixos níveis de Se nas pastagens, animais e humanos, como o ocorreu com sucesso na Finlândia, Nova Zelândia e Austrália.
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Affiliation(s)
- A.R. Dos Reis
- UNESP – Univ Estadual Paulista, Campus de Tupã, SP, Brasil
| | | | - M.F. Moraes
- UFMT – Univ Federal do Mato Grosso, Barra do Garças, MT, Brasil
| | - S.P. De Melo
- UFMT – Univ Federal do Mato Grosso, Barra do Garças, MT, Brasil
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