Native Phytoremediation Potential of Urtica dioica for Removal of PCBs and Heavy Metals Can Be Improved by Genetic Manipulations Using Constitutive CaMV 35S Promoter
Language English Country United States Media electronic-ecollection
Document type Journal Article
PubMed
27930707
PubMed Central
PMC5145202
DOI
10.1371/journal.pone.0167927
PII: PONE-D-16-34564
Knihovny.cz E-resources
- MeSH
- Biodegradation, Environmental * MeSH
- Genetic Engineering methods MeSH
- Plants, Genetically Modified genetics metabolism MeSH
- Cadmium metabolism MeSH
- Soil Pollutants metabolism MeSH
- Lead metabolism MeSH
- Polychlorinated Biphenyls analysis metabolism MeSH
- Promoter Regions, Genetic * genetics MeSH
- Soil chemistry MeSH
- Gene Expression Regulation, Plant genetics MeSH
- Metals, Heavy analysis metabolism MeSH
- Urtica dioica genetics metabolism MeSH
- Zinc metabolism MeSH
- Publication type
- Journal Article MeSH
- Names of Substances
- Cadmium MeSH
- Soil Pollutants MeSH
- Lead MeSH
- Polychlorinated Biphenyls MeSH
- Soil MeSH
- Metals, Heavy MeSH
- Zinc MeSH
Although stinging nettle (Urtica dioica) has been shown to reduce HM (heavy metal) content in soil, its wider phytoremediation potential has been neglected. Urtica dioica was cultivated in soils contaminated with HMs or polychlorinated biphenyls (PCBs). After four months, up to 33% of the less chlorinated biphenyls and 8% of HMs (Zn, Pb, Cd) had been removed. Bacteria were isolated from the plant tissue, with the endophytic bacteria Bacillus shackletonii and Streptomyces badius shown to have the most significant effect. These bacteria demonstrated not only benefits for plant growth, but also extreme tolerance to As, Zn and Pb. Despite these results, the native phytoremediation potential of nettles could be improved by biotechnologies. Transient expression was used to investigate the functionality of the most common constitutive promoter, CaMV 35S in Urtica dioica. This showed the expression of the CUP and bphC transgenes. Collectively, our findings suggest that remediation by stinging nettle could have a much wider range of applications than previously thought.
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Robinson T, McMullan G, Marchant R, Nigam P. Remediation of dyes in textile effluent: a critical review on current treatment technologies with a proposed alternative. Bioresource Technology. 2001;77(3):247–55. PubMed
Macek T, Kotrba P, Svatos A, Novakova M, Demnerova K, Mackova M. Novel roles for genetically modified plants in environmental protection. Trends in Biotechnology. 2008;26(3):146–52. 10.1016/j.tibtech.2007.11.009 PubMed DOI
Sheoran V, Sheoran AS, Poonia P. Phytomining: A review. Minerals Engineering. 2009;22(12):1007–19.
Uhlik O, Wald J, Strejcek M, Musilova L, Ridl J, Hroudova M, et al. Identification of Bacteria Utilizing Biphenyl, Benzoate, and Naphthalene in Long-Term Contaminated Soil. Plos One. 2012;7(7). PubMed PMC
Aken BV, Correa PA, Schnoor JL. Phytoremediation of polychlorinated biphenyls: new trends and promises. Environmental science & technology. 2010;44(8):2767–76. PubMed PMC
Viktorova J, Novakova M, Trbolova L, Vrchotova B, Lovecka P, Mackova M, et al. Characterization of transgenic tobacco plants containing bacterial bphc gene and study of their phytoremediation ability. International Journal of Phytoremediation. 2014;16(9):937–46. PubMed
Panz K, Miksch K. Phytoremediation of explosives (TNT, RDX, HMX) by wild-type and transgenic plants. Journal of Environmental Management. 2012;113:85–92. 10.1016/j.jenvman.2012.08.016 PubMed DOI
Hussain S, Siddique T, Arshad M, Saleem M. Bioremediation and Phytoremediation of Pesticides: Recent Advances. Critical Reviews in Environmental Science and Technology. 2009;39(10):843–907.
Chaney RL, Malik M, Li YM, Brown SL, Brewer EP, Angle JS, et al. Phytoremediation of soil metals. Current Opinion in Biotechnology. 1997;8(3):279–84. PubMed
Macek T, Macková M, Pavlíková D, Száková J, Truksa M, Singh Cundy A, et al. Accumulation of Cadmium by Transgenic Tobacco. Acta Biotechnologica. 2002;22(1–2):101–6.
Pavlikova D, Macek T, Mackova M, Sura M, Szakova J, Tlustos P. The evaluation of cadmium, zinc and nickel accumulation ability of transgenic tobacco bearing different transgenes. Plant Soil and Environment. 2004;50(12):513–7.
Chebotar VK, Malfanova NV, Shcherbakov AV, Ahtemova GA, Borisov AY, Lugtenberg B, et al. Endophytic Bacteria in Microbial Preparations that Improve Plant Development (Review). Applied Biochemistry and Microbiology. 2015;51(3):271–7. PubMed
Verbruggen N, Hermans C, Schat H. Molecular mechanisms of metal hyperaccumulation in plants. New Phytologist. 2009;181(4):759–76. 10.1111/j.1469-8137.2008.02748.x PubMed DOI
Hartley L. Characterization of a Heavy Metal Contaminated Soil in Ohio for a Phytoremediation Project: University of Toledo; 2004.
Pavlikova D, Macek T, Mackova M, Pavlik M. Technical note monitoring native vegetation on a dumpsite of PCB-contaminated soil. Int J Phytoremediation. 2007;9(1):71–8. Epub 2008/02/06. 10.1080/15226510601139433 PubMed DOI
Uhlik O, Jecna K, Mackova M, Vlcek C, Hroudova M, Demnerova K, et al. Biphenyl-Metabolizing Bacteria in the Rhizosphere of Horseradish and Bulk Soil Contaminated by Polychlorinated Biphenyls as Revealed by Stable Isotope Probing. Applied and Environmental Microbiology. 2009;75(20):6471–7. 10.1128/AEM.00466-09 PubMed DOI PMC
Shin SH, Lim Y, Lee SE, Yang NW, Rhee JH. CAS agar diffusion assay for the measurement of siderophores in biological fluids. Journal of microbiological methods. 2001;44(1):89–95. Epub 2001/02/13. PubMed
Dworkin M, Foster JW. Experiments with some microorganisms which utilize ethane and hydrogen. Journal of Bacteriology. 1958;75(5):592–603. PubMed PMC
Inga Miliūtė OB. IAA production and other plant growth promoting traits of endophytic bacteria from apple tree. Biologija. 2011;57(2):98–102.
Jasim B, John Jimtha C, Jyothis M, Radhakrishnan EK. Plant growth promoting potential of endophytic bacteria isolated from Piper nigrum. Plant Growth Regulation. 2013;71(1):1–11.
Dadarwal BSK K. R., Tauro P.. In vitro andin vivo nitrogenase activity ofRhizobium mutants and their symbiotic effectivity. Journal of Biosciences. 1981;3(2):117–23.
Hložková K, Šuman J, Strnad H, Ruml T, Paces V, Kotrba P. Characterization of pbt genes conferring increased Pb2+ and Cd2+ tolerance upon Achromobacter xylosoxidans A8. Research in Microbiology. 2013;164(10):1009–18. 10.1016/j.resmic.2013.10.002 PubMed DOI
Kapila J, DeRycke R, VanMontagu M, Angenon G. An Agrobacterium-mediated transient gene expression system for intact leaves (vol 122, pg 101, 1997). Plant Science. 1997;124(2):227–.
Novakova M, Mackova M, Chrastilova Z, Viktorova J, Szekeres M, Demnerova K, et al. Cloning the Bacterial bphC Gene Into Nicotiana tabacum to Improve the Efficiency of PCB-Phytoremediation. Biotechnology and Bioengineering. 2009;102(1):29–37. 10.1002/bit.22038 PubMed DOI
Fiser J, Vrbova M, Novakova M, Mackova M, Macek T. Construction of the plant vectors with hiscup gene and their cloning into flax for higher heavy metal accumulation. 5th International Symposium on Biosorption and Bioremediation. 2012:14–7.
Shams KM, Tichy G, Fischer A, Sager M, Peer T, Bashar A, et al. Aspects of phytoremediation for chromium contaminated sites using common plants Urtica dioica, Brassica napus and Zea mays. Plant and Soil. 2010;328(1–2):175–89.
Holm FW. Effluents from Alternative Demilitarization Technologies: Springer; Netherlands; 2012.
Wilken A, Bock C, Bokern M, Harms H. Metabolism of different PCB congeners in plant cell cultures. Environmental Toxicology and Chemistry. 1995;14(12):2017–22.
Safe S. Toxicology, structure-function relationship, and human and environmental health impacts of polychlorinated biphenyls: progress and problems. Environmental Health Perspectives. 1993;100:259–68. PubMed PMC
Ibanez S, Talano M, Ontanon O, Suman J, Medina MI, Macek T, et al. Transgenic plants and hairy roots: exploiting the potential of plant species to remediate contaminants. New biotechnology. 2016;33(5 Pt B):625–35. Epub 2015/12/26. PubMed
Musilova L, Ridl J, Polivkova M, Macek T, Uhlik O. Effects of Secondary Plant Metabolites on Microbial Populations: Changes in Community Structure and Metabolic Activity in Contaminated Environments. International Journal of Molecular Sciences. 2016;17(8):1205. PubMed PMC
Gullcin I, Kufrevioglu OI, Oktay M. Purification and characterization of polyphenol oxidase from nettle (Urtica dioica L.) and inhibitory effects of some chemicals on enzyme activity. Journal of enzyme inhibition and medicinal chemistry. 2005;20(3):297–302. Epub 2005/08/27. 10.1080/1475636032000141890 PubMed DOI
Tarhan L, Kavakcioglu B. Glutathione metabolism in Urtica dioica in response to cadmium based oxidative stress. Biologia Plantarum. 2016;60(1):163–72.
Radulescu C, Stihi C, Popescu IV, Dulama ID, Chelarescu ED, Chilian A. Heavy metal accumulation and translocation in different parts of Brassica oleracea l. Romanian Journal of Physics. 2013;58(9–10):1337–54.
Obasi NA AE, Kalu KM, Ugbogu OC. Speciation of Heavy Metals and Phyto-accumulation Potentials of Selected Plants on Major Dumpsites in Umuahia, Abia State, Nigeria. International Journal of Current Biochemistry Research. 2013;1(4):16–28.
Sinclair SA, Krämer U. The zinc homeostasis network of land plants. Biochimica et Biophysica Acta (BBA)—Molecular Cell Research. 2012;1823(9):1553–67. PubMed
Pachura P, Ociepa-Kubicka A, Skowron-Grabowska B. Assessment of the availability of heavy metals to plants based on the translocation index and the bioaccumulation factor. Desalination and Water Treatment. 2016;57(3):1469–77.
Gounden D, Kisten K, Moodley R, Shaik S, Jonnalagadda SB. Impact of spiked concentrations of Cd, Pb, As and Zn in growth medium on elemental uptake of Nasturtium officinale (Watercress). Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes. 2016;51(1):1–7. PubMed
Boshoff M, De Jonge M, Scheifler R, Bervoets L. Predicting As, Cd, Cu, Pb and Zn levels in grasses (Agrostis sp and Poa sp.) and stinging nettle (Urtica dioica) applying soil-plant transfer models. Science of the Total Environment. 2014;493:862–71. 10.1016/j.scitotenv.2014.06.076 PubMed DOI
Grubor M. Lead uptake, tolerance, and accumulation exhibited by the plants Urtica dioica and Sedum spectabile in contaminated soil without additives. Archives of Biological Sciences. 2008;60(2):239–44.
Edwards HG, Hunt DE, Sibley MG. FT-Raman spectroscopic study of keratotic materials: horn, hoof and tortoiseshell. Spectrochimica acta Part A, Molecular and biomolecular spectroscopy. 1998;54a(5):745–57. Epub 1998/07/29. PubMed
Ernst WHO, Leloup S. Perennial herbs as monitor for moderate levels of metal fallout. Chemosphere. 1987;16(1):233–8.
Koblar A, Tavcar G, Ponikvar-Svet M. Stress syndrome response of nettle (Urtica dioica L.) grown in fluoride contaminated substrate to fluoride and fluorine accumulation pattern. Journal of Fluorine Chemistry. 2015;172:7–12.
Rajkumar M, Ae N, Freitas H. Endophytic bacteria and their potential to enhance heavy metal phytoextraction. Chemosphere. 2009;77(2):153–60. 10.1016/j.chemosphere.2009.06.047 PubMed DOI
Barzanti R, Ozino F, Bazzicalupo M, Gabbrielli R, Galardi F, Gonnelli C, et al. Isolation and characterization of endophytic bacteria from the nickel hyperaccumulator plant Alyssum bertolonii. Microbial Ecology. 2007;53(2):306–16. 10.1007/s00248-006-9164-3 PubMed DOI
McInroy JA, Kloepper JW. Survey of indigenous bacterial endophytes from cotton and sweet corn. Plant and Soil. 1995;173(2):337–42.
Tanvir R, Sajid I, Hasnain S. Larvicidal potential of Asteraceae family endophytic actinomycetes against Culex quinquefasciatus mosquito larvae. Natural Product Research. 2014;28(22):2048–52. 10.1080/14786419.2014.919579 PubMed DOI
Amaresan N, Jayakumar V, Kumar K, Thajuddin N. Isolation and characterization of plant growth promoting endophytic bacteria and their effect on tomato (Lycopersicon esculentum) and chilli (Capsicum annuum) seedling growth. Annals of Microbiology. 2012;62(2):805–10.
Khan AL, Waqas M, Kang SM, Al-Harrasi A, Hussain J, Al-Rawahi A, et al. Bacterial Endophyte Sphingomonas sp LK11 Produces Gibberellins and IAA and Promotes Tomato Plant Growth. Journal of Microbiology. 2014;52(8):689–95. PubMed
Logan NA, Lebbe L, Verhelst A, Goris J, Forsyth G, Rodriguez-Diaz M, et al. Bacillus shackletonii sp nov., from volcanic soil on Candlemas Island, South Sandwich archipelago. International Journal of Systematic and Evolutionary Microbiology. 2004;54:373–6. 10.1099/ijs.0.02661-0 PubMed DOI
Scherer J, Nies DH. CzcP is a novel efflux system contributing to transition metal resistance in Cupriavidus metallidurans CH34. Molecular Microbiology. 2009;73(4):601–21. 10.1111/j.1365-2958.2009.06792.x PubMed DOI
Silver S, Phung LT. Genes and Enzymes Involved in Bacterial Oxidation and Reduction of Inorganic Arsenic. Applied and Environmental Microbiology. 2005;71(2):599–608. 10.1128/AEM.71.2.599-608.2005 PubMed DOI PMC
Silver S, Phung LT. A bacterial view of the periodic table: genes and proteins for toxic inorganic ions. Journal of Industrial Microbiology & Biotechnology. 2005;32(11–12):587–605. PubMed
Ho M-W, Ryan A, Cummins J. Cauliflower Mosaic Viral Promoter—A Recipe for Disaster? Microbial Ecology in Health and Disease. 2011;11(4). Epub 2011-07-21.
Ohkama N, Hayashi H, Fujiwara T. A rapid and easy method of detecting levels of gene expression in intact tobacco plants using an Agrobacterium-mediated transient assay: Toward development of nutritional diagnosis based on gene expression. Soil Science and Plant Nutrition. 1999;45(3):767–74.
Cumming G, Fidler F, Vaux DL. Error bars in experimental biology. The Journal of Cell Biology. 2007;177(1):7–11. 10.1083/jcb.200611141 PubMed DOI PMC