Assessment of European and hybrid aspen clones efficiency based on height growth and removal percentage of petroleum hydrocarbons-a field trial.


Journal

Environmental science and pollution research international
ISSN: 1614-7499
Titre abrégé: Environ Sci Pollut Res Int
Pays: Germany
ID NLM: 9441769

Informations de publication

Date de publication:
Dec 2020
Historique:
received: 28 08 2019
accepted: 10 08 2020
pubmed: 18 8 2020
medline: 27 11 2020
entrez: 18 8 2020
Statut: ppublish

Résumé

Soils polluted by organic or inorganic pollutants are an emerging global environmental issue due to their toxic effects. A phytoremediation experiment was conducted to evaluate the extraction potential of three European aspen clones (R2, R3, and R4) and seven hybrid aspen clones (14, 27, 34, 134, 172, 191, and 291) grown in soils polluted with hydrocarbons (includes polycyclic aromatic hydrocarbons (PAH) and total petroleum hydrocarbons (TPH)). Height growth, plant survival rates, and .hydrocarbon removal efficiencies were investigated over a 4-year period at a site in Somerharju, Luumaki Finland, to assess the remediation potential of the clones. Hydrocarbon content in the soil was determined by gas chromatography and mass spectrometry. The results revealed that hybrid aspen clones 14 and 34 and European aspen clone R3 achieved greater height growth (171, 171, and 114 cm, respectively) than the other clones in the study. Further, the greatest removals of PAH (90% at depth 10-50 cm) and (86% at depth 5-10 cm) were observed in plot G15 planted with clone R2. Furthermore, the greatest TPH removal rate at 5-10 cm depth (C

Identifiants

pubmed: 32803602
doi: 10.1007/s11356-020-10453-4
pii: 10.1007/s11356-020-10453-4
pmc: PMC7686197
doi:

Substances chimiques

Hydrocarbons 0
Petroleum 0
Soil 0
Soil Pollutants 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

45555-45567

Subventions

Organisme : Finnish Society of Forest Sciences
ID : 201810030

Références

Akinola MO, Njoku KL (2007) Mutagenic effect of crude oil on the accessions of Glycine max L. (Merrill). Pak J Sci Ind Res 50(5):330–334
Anyasi RO, Atagana HI (2018) Profiling of plants at petroleum contaminated site for phytoremediation. Int J Phytoremed 20(4):352–361. https://doi.org/10.1080/15226514.2017.1393386
doi: 10.1080/15226514.2017.1393386
Carmichael LM, Pfaender FK (1997) The effect of inorganic and organic supplements on the microbial degradation of phenanthrene and pyrene in soils. Biodegradation 8(1):1–13. https://doi.org/10.1023/A:1008258720649
doi: 10.1023/A:1008258720649
Chaîneau CH, Rougeux G, Yéprémian C, Oudot J (2005) Effects of nutrient concentration on the biodegradation of crude oil and associated microbial populations in the soil. Soil Biol Biochem 37(8):1490–1497. https://doi.org/10.1016/j.soilbio.2005.01.012
doi: 10.1016/j.soilbio.2005.01.012
Chen J, Xu QX, Su Y, Shi ZQ, Han FX (2013) Phytoremediation of organic polluted soil. J Bioremed Biodegr 4:132–134
Clavel, M. (2013) Use of Aspens trees for cleaning a polluted soil at Luumäki. Natural Resources Institute. Unpublished Manuscript.
Cocârţă D, Stoian M, Karademir A (2017) Crude oil contaminated sites: evaluation by risk assessment approach. Sustainability 9(8):1365. https://doi.org/10.3390/su9081365
doi: 10.3390/su9081365
Das N, Chandran P (2011) Microbial degradation of petroleum hydrocarbon contaminants: an overview. Biotechnol Res Int:1–13. https://doi.org/10.4061/2011/941810
García–Delgado C, Fresno T, Rodríguez–Santamaría JJ, Diaz E, Mohedano AF, Moreno–Jimenez E (2019) Co-application of activated carbon and compost to contaminated soils: toxic elements mobility and PAH degradation and availability. Int J Environ Sci Technol 16(2):1057–1068. https://doi.org/10.1007/s13762-018-1751-6
doi: 10.1007/s13762-018-1751-6
Guarino C, Spada V, Sciarrillo R (2017) Assessment of three approaches of bioremediation (natural attenuation, landfarming and bioaugmentation-assisted landfarming) for a petroleum hydrocarbons contaminated soil. Chemosphere 170:10–16. https://doi.org/10.1016/j.chemosphere.2016.11.165
doi: 10.1016/j.chemosphere.2016.11.165
Guerra F, Gainza F, Pérez R, Zamudio F (2011) Phytoremediation of heavy metals using poplars (Populus spp.): a glimpse of the plant responses to copper, cadmium and zinc stress. In: Golubev IA (ed) Handbook of phytoremediation. Nova Science, New York, pp 387–413
Guidi Nissim W, Lafleur B, Labrecque M (2018) The performance of five willow cultivars under different pedoclimatic conditions and rotation cycles. Forests 9(6):349. https://doi.org/10.3390/f9060349
doi: 10.3390/f9060349
Guo H, Yao J, Cai M, Qian Y, Guo Y, Richnow HH, Blake RE, Doni S, Ceccanti B (2012) Effects of petroleum contamination on soil microbial numbers, metabolic activity and urease activity. Chemosphere 87(11):1273–1280. https://doi.org/10.1016/j.chemosphere.2012.01.034
doi: 10.1016/j.chemosphere.2012.01.034
Häikiö E, Makkonen M, Julkunen-Tiitto R, Sitte J, Freiwald V, Silfver T, Pandey V, Beuker E, Holopainen T, Oksanen E (2009) Performance and secondary chemistry of two hybrid aspen (Populus tremula L. x Populus tremuloides Michx.) clones in long-term elevated ozone exposure. J Chem Ecol 35(6):664–678
Istrate IA, Cocârță DM, Wu Z, Stoian MA (2018) Minimizing the health risks from hydrocarbon contaminated soils by using electric field-based treatment for soil remediation. Sustainability 10(1):253. https://doi.org/10.3390/su10010253
doi: 10.3390/su10010253
Kalita M, Devi A (2012) Study on the effects of soil pH and addition of N–P–K fertilizer on degradation of petroleum hydrocarbon present in oil contaminated soil. Int J Chem Petrochem Technol 2(3):9–22
Kathi S, Khan AB (2011) Phytoremediation approaches to PAH contaminated soil. Indian J Sci Technol 4(1):56–63
doi: 10.17485/ijst/2011/v4i1.15
Khan S, Afzal M, Iqbal S, Khan QM (2013) Plant–bacteria partnerships for the remediation of hydrocarbon contaminated soils. Chemosphere 90(4):1317–1332. https://doi.org/10.1016/j.chemosphere.2012.09.045
doi: 10.1016/j.chemosphere.2012.09.045
Khan AHA, Anees M, Arshad M, Muhammad YS, Iqbal M, Yousaf S (2016) Effects of illuminance and nutrients on bacterial photo-physiology of hydrocarbon degradation. Sci Total Environ 557:705–711. https://doi.org/10.1016/j.scitotenv.2016.03.068
doi: 10.1016/j.scitotenv.2016.03.068
Kołtowski M, Hilber I, Bucheli TD, Oleszczuk P (2016) Effect of steam activated biochar application to industrially contaminated soils on bioavailability of polycyclic aromatic hydrocarbons and ecotoxicity of soils. Sci Total Environ 556–567:1023–1031. https://doi.org/10.1016/j.scitotenv.2016.05.114
doi: 10.1016/j.scitotenv.2016.05.114
Kulik N, Goi A, Trapido M, Tuhkanen T (2006) Degradation of polycyclic aromatic hydrocarbons by combined chemical pre-oxidation and bioremediation in creosote contaminated soil. J Environ Manag 78(4):382–391. https://doi.org/10.1016/j.jenvman.2005.05.005
doi: 10.1016/j.jenvman.2005.05.005
Kuusiniemi K, Eklund J (2008) Soil pollution Finnish response to the questionnaire. Paper presented at: EU Forum of Judges for the Environment; Paris, France
Leme DM, Grummt T, De Oliveira DP, Sehr A, Renz S, Reinel SA, Ferraz ER, de Marchi MRR, Machado MC, Zocolo GJ, Marin Morales MA (2012) Genotoxicity assessment of water-soluble fractions of biodiesel and its diesel blends using the Salmonella assay and the in vitro MicroFlow® kit (Litron) assay. Chemosphere 86(5):512–520. https://doi.org/10.1016/j.chemosphere.2011.10.017
doi: 10.1016/j.chemosphere.2011.10.017
Lukic B, Huguenot D, Panico A (2016) Importance of organic amendment characteristics on bioremediation of PAH-contaminated soil. Environ Sci Pollut Res 23(15):15041–15052. https://doi.org/10.1007/s11356-016-6635-z
doi: 10.1007/s11356-016-6635-z
Macaulay BM (2015) Microbial remediation of spilled petroleum. Appl Ecol Environ Res 13(1):247–262
Malá J, Machova P, Cvrckova H, Vanek T (2007) Heavy metals uptake by the hybrid aspen and rowan–tree clones. J For Sci 53(11):491–497
doi: 10.17221/2022-JFS
Mohsin M (2016) Potentiality of four willow varieties for phytoremediation in a pot experiment. University of Eastern Finland, Faculty of Science and Forestry, School of Forest Sciences, pp. 38 Master’s thesis in Forest Science specialization in Wood Material’s Science
Mohsin M, Kuittinen S, Salam MMA, Peräniemi S, Laine S, Pulkkinen P, Kaipiainen E, Vepsäläinen J, Pappinen A (2019) Chelate-assisted phytoextraction: growth and ecophysiological responses by Salix schwerinii EL wolf grown in artificially polluted soils. J Geochem Explor 205:106335. https://doi.org/10.1016/j.gexplo.2019.106335
doi: 10.1016/j.gexplo.2019.106335
Mueller JG, Chapman PJ, Pritchard PH (1989) Creosote-contaminated sites. Their potential for bioremediation. Environ Sci Technol 23(10):1197–1201. https://doi.org/10.1021/es00068a003
doi: 10.1021/es00068a003
Mukherjee S (2014) Successional and spatial patterns of bacterial communities in hydrocarbon-contaminated soils and Populus rhizosphere. [Doctoral dissertation]. Helsinki (Finland): University of Helsinki
Mukherjee S, Juottonen H, Siivonen P, Lloret Quesada C, Tuomi P, Pulkkinen P, Yrjälä K (2014) Spatial patterns of microbial diversity and activity in an aged creosote-contaminated site. ISME J 98:2131–2142. https://doi.org/10.1038/ismej.2014.151
doi: 10.1038/ismej.2014.151
Nam JJ, Thomas GO, Jaward FM, Steinnes E, Gustafsson O, Jones KC (2008) PAHs in background soils from Western Europe: influence of atmospheric deposition and soil organic matter. Chemosphere 70(9):1596–1602. https://doi.org/10.1016/j.chemosphere.2007.08.010
doi: 10.1016/j.chemosphere.2007.08.010
Nguemté PM, Wafo GD, Djocgoue PF, Noumsi IK, Ngnien AW (2018) Potentialities of six plant species on phytoremediation attempts of fuel oil-contaminated soils. Water Air Soil Pollut 229:88. https://doi.org/10.1007/s11270-018-3738-9
doi: 10.1007/s11270-018-3738-9
Nichols EG, Cook RL, Landmeyer JE, Atkinson B, Malone DR, Shaw G, Woods L (2014) Phytoremediation of a petroleum-hydrocarbon contaminated shallow aquifer in Elizabeth City, North Carolina, USA. Remediat J 24(2):29–46. https://doi.org/10.1002/rem.21382
doi: 10.1002/rem.21382
Nie M, Wang Y, Yu J, Xiao M, Jiang L, Yang J, Fang C, Chen J, Li B (2011) Understanding plant–microbe interactions for phytoremediation of petroleum-contaminated soil. PLoS ONE 6(3):e17961. https://doi.org/10.1371/journal.pone.0017961
doi: 10.1371/journal.pone.0017961
Noori A, Maivan HZ, Alaie E, Newman LA (2018) Leucanthemum vulgare Lam. crude oil phytoremediation. Int J Phytoremed 20(13):1292–1299. https://doi.org/10.1080/15226514.2015.1045122
doi: 10.1080/15226514.2015.1045122
Obida CB, Blackburn GA, Whyatt JD, Semple KT (2018) Quantifying the exposure of humans and the environment to oil pollution in the Niger Delta using advanced geostatistical techniques. Environ Int 111:32–42. https://doi.org/10.1016/j.envint.2017.11.009
doi: 10.1016/j.envint.2017.11.009
Olawepo G, Ogunkunle C, Adebis O, Fatoba P (2018) Enhanced bioremediation of brass crude–oil (hydrocarbon), using cow dung and implication on microbial population. Pollution 4(2):273–280. https://doi.org/10.22059/poll.2017.240833.313
doi: 10.22059/poll.2017.240833.313
Paccassoni F, Kalnina D, Piga L (2017) Comparative studies of oil product regulation in contaminated soil for several industrialized countries. Mater Sci Eng 251(1):012066
Panagos P, Van Liedekerke M, Yigini Y, Montanarella L (2013) Contaminated sites in Europe: review of the current situation based on data collected through a European network. Int J Environ Public Health:1–11. https://doi.org/10.1155/2013/158764
Peng S, Zhou Q, Cai Z, Zhang Z (2009) Phytoremediation of petroleum contaminated soils by Mirabilis Jalapa L. in a greenhouse plot experiment. J Hazard Mater 168(2–3):1490–1496. https://doi.org/10.1016/j.jhazmat.2009.03.036
doi: 10.1016/j.jhazmat.2009.03.036
Pinedo J, Ibáñeza R, Lijzen JPA, Irabien A (2013) Assessment of soil pollution based on total petroleum hydrocarbons and individual oil substances. J Environ Manag 130:72–79. https://doi.org/10.1016/j.jenvman.2013.08.048
doi: 10.1016/j.jenvman.2013.08.048
Ravindra K, Sokhi R, Van Grieken R (2008) Atmospheric polycyclic aromatic hydrocarbons: source attribution, emission factors and regulation. Atmos Environ 42(13):2895–2921. https://doi.org/10.1016/j.atmosenv.2007.12.010
doi: 10.1016/j.atmosenv.2007.12.010
Reid BJ, Jones KC, Semple KT (2000) Bioavailability of persistent organic pollutants in soils and sediments-a perspective on mechanisms, consequences and assessment. Environ Pollut 108(1):103–112. https://doi.org/10.1016/S0269-7491(99)00206-7
doi: 10.1016/S0269-7491(99)00206-7
Salam MMA, Kaipiainen E, Mohsin M, Villa A, Kuittinen S, Pulkkinen P, Pelkonen P, Mehtätalo L, Pappinen A (2016) Effects of contaminated soil on the growth performance of young Salix (Salix schwerinii E. L. Wolf) and the potential for phytoremediation of heavy metals. J Environ Manag 183:467–477. https://doi.org/10.1016/j.jenvman.2016.08.082
doi: 10.1016/j.jenvman.2016.08.082
Salam MMA, Mohsin M, Pulkkinen P, Pelkonen P, Pappinen A (2019) Effects of soil amendments on the growth response and phytoextraction capability of a willow variety (S. viminalis× S. schwerinii× S. dasyclados) grown in contaminated soils. Ecotoxicol Environ Saf 171:753–770. https://doi.org/10.1016/j.ecoenv.2019.01.045
doi: 10.1016/j.ecoenv.2019.01.045
Semenov MY, Marinaite II, Golobokova LP, Khuriganova OI, Khodzher TV, Semenov YM (2017) Source apportionment of polycyclic aromatic hydrocarbons in Lake Baikal water and adjacent air layer. Chem Ecol 33(10):977–990. https://doi.org/10.1080/02757540.2017.1393533
doi: 10.1080/02757540.2017.1393533
Shirdam R, Zand A, Bidhendi G, Mehrdadi N (2008) Phytoremediation of hydrocarbon-contaminated soils with emphasis on the effect of petroleum hydrocarbons on the growth of plant species. Phytoprotection 89(1):21–29. https://doi.org/10.7202/000379ar
doi: 10.7202/000379ar
Silby MW, Winstanley C, Godfrey SAC, Levy SB, Jackson RW (2011) Pseudomonas genomes: diverse and adaptable. FEMS Microbiol Rev 35(4):652–680. https://doi.org/10.1111/j.1574-6976.2011.00269.x
doi: 10.1111/j.1574-6976.2011.00269.x
Sivaram AK, Logeshwaran P, Subashchandrabose SR, Lockington R, Naidu R, Megharaj M (2018) Comparison of plants with C3 and C4 carbon fixation pathways for remediation of polycyclic aromatic hydrocarbon contaminated soils. Sci Rep 8(1):2100. https://doi.org/10.1038/s41598-018-20317-0
doi: 10.1038/s41598-018-20317-0
Souza EC, Vessoni-Penna TC, de Souza Oliveira RP (2014) Biosurfactant-enhanced hydrocarbon bioremediation: an overview. Int Biodeterior Biodegradation 89:88–94. https://doi.org/10.1016/j.ibiod.2014.01.007
doi: 10.1016/j.ibiod.2014.01.007
Streche C, Cocârţă DM, Istrate IA, Badea AA (2018) Decontamination of petroleum-contaminated soils using the electrochemical technique: remediation degree and energy consumption. Sci Rep 8(1):3272. https://doi.org/10.1038/s41598-018-21606-4
doi: 10.1038/s41598-018-21606-4
Tischer S, Hübner T (2002) Model trials for phytoremediation of hydrocarbon-contaminated sites by the use of different plant species. Int J Phytoremed 4(3):187–203. https://doi.org/10.1080/15226510208500082
doi: 10.1080/15226510208500082
Tullus A, Rytter L, Tullus T, Weih M, Tullus H (2012) Short-rotation forestry with hybrid aspen (Populus tremula L. × P. tremuloides Michx.) in Northern Europe. Sci J Forest Res 27(1):10–29. https://doi.org/10.1080/02827581.2011.628949
doi: 10.1080/02827581.2011.628949
Udeh NU, Nwaogazie IL, Momoh Y (2013) Bio-remediation of a crude–oil contaminated soil using water hyacinth (Eichhornia crassipes). Adv Appl Sci Res 4(2):362–369
Vervaeke P, Luyssaert S, Mertens J, Meers E, Tack FMG, Lust N (2003) Phytoremediation prospects of willow stands on contaminated sediment: a field trial. Environ Pollut 126(2):275–282. https://doi.org/10.1016/S0269-7491(03)00189-1
doi: 10.1016/S0269-7491(03)00189-1
Wcisło E (1998) Soil contamination with polycyclic aromatic hydrocarbons (PAHs) in Poland–a review. Pol J Environ Stud 7(5):267–272
Wei S, Pan S (2010) Phytoremediation for soils contaminated by phenanthrene and pyrene with multiple plant species. J Soils Sediments 10(5):886–894. https://doi.org/10.1007/s11368-010-0216-4
doi: 10.1007/s11368-010-0216-4
Xu M (2013) Phytoremediation with aspen trees in Luumäki. Natural Resources Institute. Unpublished Manuscript.
Zacchini M, Iori V, Mugnozza GS, Pietrini F, Massacci A (2011) Cadmium accumulation and tolerance in Populus nigra and Salix Alba. Biol Plant 55(2):383–386. https://doi.org/10.1007/s10535-011-0060-4
doi: 10.1007/s10535-011-0060-4
Zalesny Jr RS, Bauer EO, Hall RB, Zalesny JA, Kunzman J, Rog CJ, Riemenschneider DE (2005) Clonal variation in survival and growth of hybrid poplar and willow in an in situ trial on soils heavily contaminated with petroleum hydrocarbons. Int J Phytoremed 7(3):177–197

Auteurs

Mir Md Abdus Salam (MMA)

School of Forest Sciences, University of Eastern Finland, Yliopistokatu 7, P.O. Box 111, 80100, Joensuu, Finland.

Muhammad Mohsin (M)

School of Forest Sciences, University of Eastern Finland, Yliopistokatu 7, P.O. Box 111, 80100, Joensuu, Finland. muham@uef.fi.

Fahad Rasheed (F)

Department of Forestry & Range Management, University of Agriculture, Faisalabad, 38000, Pakistan.

Muhammad Ramzan (M)

College of Forestry, Nanjing Forestry University, Nanjing, 210037, China.
Department of Soil and Water Conservation and Desertification, Beijing Forestry University, Beijing, 100083, China.

Zikria Zafar (Z)

Department of Forestry & Range Management, University of Agriculture, Faisalabad, 38000, Pakistan.

Pertti Pulkkinen (P)

Natural Resources Institute Finland (Luke), Haapastensyrjä Research Unit, Haapastensyrjäntie 34, 12600, Layliainen, Finland.

Articles similaires

Populus Soil Microbiology Soil Microbiota Fungi
Nigeria Environmental Monitoring Solid Waste Waste Disposal Facilities Refuse Disposal
Cameroon Humans Uranium Trace Elements Environmental Monitoring
1.00
Oryza Agricultural Irrigation Potassium Sodium Soil

Classifications MeSH