Phytoremediation potential of aromatic and medicinal plants: a way forward for green economy
Автор: Pirzadah Tanveer Bilal, Malik Bisma, Dar Fayaz Ahmad
Журнал: Журнал стресс-физиологии и биохимии @jspb
Статья в выпуске: 3 т.15, 2019 года.
Бесплатный доступ
Currently, interests in the cultivation of aromatic and medicinal plants gained a rapid momentum worldwide. These find great application in various industries such as; cosmetic, pharmaceutical, perfumery and other industrial sectors. Therefore, product safety issues are of paramount importance for the betterment of the consumer. Presently, heavy metal (HMs) pollution is one of the serious issues for the environment and agriculture as it has a direct impact on the production yield. This situation has worsened in the present era due to the population pressure, industrialization and various anthropogenic activities which in turn lead to oxidative stress in plants and thus disturbs the redox homeostasis and ultimate affects the quality and production yield. However, plants possess a different regulatory system that work in a synergetic manner to combat stress and thus adapts themselves in such contaminated soils. These act as sinks to neutralize the toxic effects of these heavy metals either by chelation, sequestration, intensification of enzyme system. Here we discuss the impact of heavy metals on aromatic and medicinal plants and how they play an essential role as a sustainable phytoremediation crops.
Aromatic plants, medicinal plants, phytoremediation, lethal effects, regulatory elements
Короткий адрес: https://sciup.org/143168566
IDR: 143168566
Список литературы Phytoremediation potential of aromatic and medicinal plants: a way forward for green economy
- Abdullah S. and Sarem S. M. (2010) The potential of Chrysanthemum and Pelargonium for phytoextraction of lead-contaminated soils. J Civ Eng. 4:409-416
- Ahmad R. and Misra N. (2014) Evaluation of phytoremediation potential of Catharanthus roseus with respect to chromium contamination. Am J Plant Sci 5:2378-2388
- Akoumianaki-Ioannidou A., Kalliopi P., Pantelis B. and Moustakas N. (2015) The effects of Cd and Zn interactions on the concentration of Cd and Zn in sweet bush basil (Ocimum basilicum L.) and peppermint (Mentha piperita L). Fresenius Environ Bull. 24(1):77-83
- Alamo-Nole L. and Su Y. F. (2017) Translocation of cadmium in Ocimum basilicum at low concentration of CdSSe nanoparticles. Appl Mater Today 9:314-318
- Angelova V. R., Grekov D. F., Kisyov V. K. and Ivanov K. I. (2015) Potential of lavender (Lavandula vera L.) for phytoremediation of soils contaminated with heavy metals. Int J Biol Biomol Agric Food Biotechnol Eng. 9:465-472
- Backor M. and Loppi S. (2009) Interactions of lichens with heavy metals. Biol Plant 53: 214-222
- Ban Q. Y., Liu G. F. and Wang Y. C. (2011) A DREB gene from Limonium bicolor mediates molecular and physiological responses to copper stress in transgenic tobacco. J Plant Physiol 168: 449-458
- Bernstein N., Chaimovitch D. and Dudai N. (2009) Effect of irrigation with secondary treated effluent on essential oil, antioxidant activity, and phenolic compounds in oregano and rosemary. Agron J 101: 1-10
- Berta M., Giovannelli A., Potenza E., Traversi M. L. and Racchi M. L. (2009) Type 3 metallothioneins respond to water deficit in leaf and in the cambial zone of white poplar (Populus alba). J Plant Physiol 166: 521-530
- Blaylock M. J. and Huang J. W. (2000) Phytoextraction of metals in Phytoremediation of Toxic Metals: Using Plants to clean up the environment. In: Raskin I, Ensley BD (ed) JohnWiley
- Cargnelutti D., Tabaldi L. A., Spanevello R. M., Jucoski G. O., Battisti V., Redin M., Linares C. E. B., Dressler V. L., Flores M. M., Nicoloso F. T., Morsch V. M. and Schetinger M. R. C. (2006) Mercury toxicity induces oxidative stress in growing cucumber seedlings. Chemosphere 65: 999-1006
- Chen K. F., Yeh T. Y. and Lin C. F. (2012) Phytoextraction of Cu, Zn, and Pb enhanced by chelators with vetiver (Vetiveria zizanioides): hydroponic and pot experiments. ISRN Ecol. 2012: Article ID 729693, 12 pages
- Cuypers A., Hendrix S., Amaral dos Reis R., De Smet S., Deckers J., Gielen H., Jozefczak M., Loix C., Vercampt H., Vangronsveld J. and Keunen E. (2016) Hydrogen Peroxide, Signaling in Disguise during Metal Phytotoxicity. Front Plant Sci 7:470. 1-25
- Dalcorso G., Farinati S. and Furini A. (2010) Regulatory networks of cadmium stress in plants. Plant Signal Behav 5(6): 663-667
- DalCorso G., Farinati S., Maistri S. and Furini A. (2008) How plants cope with cadmium: staking all on metabolism and gene expression. J Integrat Plant Biol 50(10): 1268-1280
- Demidchik V. (2017) ROS-Activated Ion Channels in Plants: Biophysical Characteristics, Physiological Functions and Molecular Nature. Int J Mol Sci 19: 1263. 1-18
- Fusco N., Micheletto L., Dal Corso G., Borgato L. and Furini A. (2005) Identification of cadmium-regulated genes by cDNA-AFLP in the heavy metal accumulator Brassica juncea L. J Exp Bot 421(56): 3017- 3027
- Gill M. (2014) Heavy metal stress in plants: a review. Int J Adv Res 2(6): 1043-1055
- Goldsbrough P. (2000) Metal tolerance in plants: the role of phytochelatins and metallothioneins. In: N. Terry and G. Banuelos (eds.). Phytoremediation of contaminated soil and water. CRC Press, LLC, 221-233
- Gruenhage L. and Jager I. I. J. (1985) Effect of heavy metals on growth and heavy metals content of Allium Porrum and Pisum sativum. Angew Bot 59: 11-28
- Gunwal I., Singh L. and Mago P. (2014) Comparison of phytoremediation of cadmium and nickel from contaminated soil by Vetiveria zizanioides L. Int J Sci Res Publ. 4(10):1-7
- Guo T. R., Zhang G. P., Zhou M. X., Wu F. B. and Chen J. X. (2004) Effects of aluminum and cadmium toxicity on growth and antioxidant enzyme activities of two barley genotypes with different Al resistance. Plant and Soil 258: 241-248
- Gupta A. K., Verma S. K., Khan K. and Verma R. K. (2013) Phytoremediation using aromatic plants: a sustainable approach for remediation of heavy metals polluted sites. Environ Sci Technol 47: 10115-10116
- Hamzah A., Hapsari R. I. and Wisnubroto E. I. (2016) Phytoremediation of cadmium-contaminated agricultural land using indigenous plants. Int J Environ Agric Res (IJOEAR) 2(1): 8-14
- Hassan E. (2016) Comparative study on the biosorption of Pb (II), Cd (II) and Zn (II) using Lemon grass (Cymbopogon citratus): kinetics, isotherms and thermodynamics. Chem Int. 2(2): 89-102
- Horbowicz M., Debski H., Wiczkowski W., Szawara-Nowak D., Koczkodaj D., Mitrus J. and Sytykiewicz H. (2013) The impact of short term exposure to Pb and Cd on flavonoid composition and seedling growth of common buckwheat cultivars. Pol J Environ Stud 22(6): 1723-1730
- Hossain M. A. and Fujita M. (2010) Evidence for a role of exogenous glycinebetaine and proline in antioxidant defense and methylglyoxal detoxification systems in mung bean seedlings under salt stress. Physiol Mol. Biol. Plants 16(1): 19-29
- Hossain M. A., Hasanuzzaman M. and Fujita M. (2011) Coordinate induction of antioxidant defense and glyoxalase system by exogenous proline and glycine betaine is correlated with salt tolerance in mung bean. Front Agric China. 5(1): 1-14
- Hossain M. A., Hossain A. K. M. Z., KiHara T., Koyama H. and Hara T. (2005) Aluminum-induced lipid peroxidation and lignin deposition are associated with an increase in H2O2 generation in wheat seedlings. Soil Sci Plant Nutr. 51: 223-230
- Hossain M. A., Piyatida J., Teixeira da Silva J. A. and Fujita M. (2012) Molecular mechanism of heavy metal toxicity and tolerance in plants: Central role of glutathione in detoxification of reactive oxygen species and methylglyoxal and in heavy metal chelation. Journal of Botany Article ID 872875: 37. 37 p
- Hu N., Ding D., and Li G. (2014) Natural Plant Selection for Radioactive Waste Remediation. In: Gupta D., Walther C. (eds) Radionuclide Contamination and Remediation Through Plants. Springer, Cham pp 33-53
- Israr M. and Sahi S. V. (2006) Antioxidative responses to mercury in the cell cultures of Sesbania drummondii. Plant Physiol Biochem 44(10): 590-595
- Jia D. U., Li Y. J. and Cheng-Hao L. I. (2012) Advances in metallotionein studies in forest trees. POJ 5(1): 46-51
- Jisha C. K., Bauddh K. and Shukla S. K. (2017) Phytoremediation and Bioenergy Production Efficiency of Medicinal and Aromatic Plants. In: Bauddh, K., Singh, B., Korstad, J. (Eds.) Phytoremediation Potential of Bioenergy Plants, pp 287-304
- Jones D. L., Blancaflor E. B., Kochian L. V. and Gilroy S. (2006) Spatial coordination of aluminium uptake, production of reactive oxygen species, callose production and wall rigidification in maize roots. Plant Cell Environ 29: 1309-1318
- Jones D. L., Gilroy S., Larsen P. B., Howell S. H. and Kochian L. V. (1998) Effect of aluminum on cytoplasmic Ca2 homeostasis in root hairs of Arabidopsis thaliana. Planta 206: 378-387
- Juwarkar A. S. and Shende G. B. (1986) Interaction of Cd-Pb effect on growth yield and content of Cd, Pb in barley. Ind J Environ Heal 28: 235-243
- Kagi J. H. R. (1991) Overview of metallothioneins. Methods Enzymol 205: 613-626
- Khajanchi L., Yadava R. K., Kaurb R., Bundelaa D. S., Khana M. I., Chaudharya M., Meenaa R. L., Dara S. R. and Singha G. (2013) Productivity, essential oil yield, and heavy metal accumulation in lemon grass (Cymbopogon flexuosus) under varied wastewater-groundwater irrigation regimes. Ind Crop Prod 45: 270-278
- Komal T., Mustafa M., Ali Z. and Kazi A. G. (2014) Heavy metal induced adaptation strategies and repair mechanisms in plants. Journal of Endocytobiosis and Cell Research. 25: 33-41
- Korenkov V., Park S. H., Cheng N. H., Sreevidya C., Lachmansingh J., Morris J., Hirschi K. and Wagner G. J. (2007) Enhanced Cd2 selective root-tonoplast-transport in tobaccos expressing Arabidopsis cation exchangers. Planta 225: 403-411
- Lee L. Y., Lee X. J., Chia P. C., Tan K. W. and Gan S. (2014) Utilisation of Cymbopogon citratus (lemon grass) as biosorbent for the sequestration of nickel ions from aqueous solution: equilibrium, kinetic, thermodynamics and mechanism studies. J Taiwan Institut Chem Eng. 45(4): 1764-1772
- Lee M., Lee K., Lee J., Noh E. W. and Lee Y. (2005) AtPDR12 contributes to lead resistance in Arabidopsis. Plant Physiol 138: 827-836
- Leszczyszyn O. I., Imam H. T. and Blindauer C. A. (2013) Diversity and distribution of plant metallothioneins: A review of structure, properties and functions. Metallomics 5(9): 1146-1169
- Liu Q., Yang J. L., He L. S., Li Y. Y. and Zheng S. J. (2008) Effect of aluminum on cell wall, plasma membrane, antioxidants and root elongation in triticale. Biologia Plantarum 52: 87-92
- Ma J. F., Zheng S. J., Hiradate S. and Matsumoto H. (1997) Detoxifying aluminum with buckwheat. Nature 390: 569-570
- Malinowska E. and Jankowski K. (2017) Copper and zinc concentrations of medicinal herbs and soil surrounding ponds on agricultural land. Landscape Ecol Eng. 13(1): 183-188
- Mangkoedihardjo S. and Triastuti Y. (2011) Vetiver in phytoremediation of mercury polluted soil with the addition of compost. J Appl Sci Res. 7(4): 465-469
- Manikandan R., Sahi S. V. and Venkatachalam P. (2015) Impact assessment of mercury accumulation and biochemical and molecular response of Mentha arvensis: a potential hyperaccumulator plant. The Scientific World Journal 2015: Article ID 715217, 10 pages
- Meharg A. A. (1993) The role of plasmalemma in metal tolerance in angiosperm. Physiologia Plantarum. 88 (1): 191-198
- Nevo Y. and Nelson N. (2006) The NRAMP family of metal-ion transporters. Biochimica et Biophysica Acta 1763: 609-620
- Ng C. C., Boyce A. N., Rahman M. and Abas R. (2017) Tolerance threshold and phyto-assessment of cadmium and lead in Vetiver grass, Vetiveria zizanioides (Linn.) Nash. Chiang Mai J Sci. 44(4): 1367-1368
- Panda S. K., Singha L. B. and Khan M. H. (2003) Does aluminium phytotoxicity induce oxidative stress in green gram (Vigna radiata)? Bulgarian Journal of Plant Physiology 29: 77-86
- Pandey V. C. and Singh N. (2015) Aromatic plants versus arsenic hazards in soils. J Geochem Explor 157: 77-80
- Patra H. K., Marndi D. S. and Mohanty M. (2015) Chromium toxicity, physiological responses and tolerance potential of lemon grass (Cymbopogon flexuosus Nees ex steud. wats.). Ann Plant Sci. 4(05): 1080-1084
- Pirzadah T. B., Malik B., Tahir I., Irfan Q. M. and Rehman R. U. (2018) Characterization of mercury-induced stress biomarkers in Fagopyrum tataricum plants. Int J Phytoremediation 20(3): 225-236
- Pirzadah T. B., Malik B., Tahir I., Kumar M., Varma A. and Rehman R. U. (2014) Phytoremediation: An Eco-Friendly Green Technology for Pollution Prevention, Control and Remediation. In: Hakeem KR, Sabir M, Ozturk M, Mermut AH (ed), Soil Remediation and plants: Prospects and Challenges, Elsevier publications, USA, pp, 107-122
- Poschenrieder. and Barcelo J. (2004) Water relations in heavy metal stressed plants. In: Prasad MNV (ed), Heavy Metal Stress in Plants 3rd eds Springer, Berlin, Germany, pp 249-270
- Pourrut B., Shahid M., Dumat C., Winterton P. and Pinelli E. (2011) Lead Uptake, Toxicity, and Detoxification in Plants. Rev Environ Contam Toxicol 213: 113-136
- Prasad A., Singh A. K., Chand S., Chanotiya C. S. and Patra D. D. (2010) Effect of chromium and lead on yield, chemical composition of essential oil, and accumulation of heavy metals of mint species. Commun Soil Sci Plant Anal. 41(18): 2170-2186
- Przybylowics W. J., Pineda C. A., Prozesky V. M. and Mesjasz-przybylowicz J. (1995) Investigation of Ni hyperaccumulation by true elemental imaging. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 104: 176-181
- Rai U. N., Vajpayee P., Singh S. N. and Mehrotra S. (2004) Effect of chromium accumulation on photosynthetic pigments, oxidative stress defense system, nitrate reduction, proline level and eugenol content of Ocimum tenuiflorum L. Plant Sci 167: 1159-1169
- Ramazanpour H. (2015) Study effect of soil and amendments on phytoremediation of cadmium (Cd) and lead (Pb) from contaminated soil by rosemary (Rosmarinus Officinalis L.) [doctoral dissertation]. Zabol: University of Zabol
- Rascio N. and Navari-Izzo F. (2011) Heavy metal hyperaccumulating plants: how and why do they do it? And what makes them so interesting? Plant Sci 180(2): 169-181
- Sa R. A., Alberton O., Gazim Z. C., Laverde Jr A., Caetano J., Amorin A. C. and Dragunski D. C. (2015) Phytoaccumulation and effect of lead on yield and chemical composition of Mentha crispa essential oil. Desalin Water Treat. 53(11): 3007-3017
- Salt D. E. and Rauser W. E. (1995) MgATP-dependent transport of phytochelatins across the tonoplast of oat roots. Plant Physiol 107: 1293-1301
- Salt D. E. and Wagner G. J. (1993) Cadmium transport across tonoplast of vesicles from oat roots. Evidence for a Cd2 /H antiport activity. J Biol Chem 268: 12297-12302
- Schmidt U. G., Endler A., Schelbert S., Brunner A., Schnell M., Neuhaus H. E., Marty-Mazars D., Marty F., Baginsky S. and Martinoia E. (2007) Novel Tonoplast Transporters Identified Using a Proteomic Approach with Vacuoles Isolated from Cauliflower Buds. Plant Physiol 145(1): 216-229
- Schneider M. and Marquard R. (1996) Investigation on the uptake of cadmium in Hypericum perforatum L. (St. John's wort). Acta Hortic 426: 435-442
- Schutzendubel A. and Polle A. (2002) Plant responses to abiotic stresses: heavy metal-induced oxidative stress and protection by mycorrhization. J Exp Bot 372 (53): 1351-1365
- Scora R. W. and Chang A. C. (1997) Essential oil quality and heavy metal concentrations of peppermint grown on a municipal sludge-amended soil. J Environ Qual 26: 975-979
- Seth C. S., Remans T., Keunen E., Jozefczak M., Gielen H., Opdenakker K., Weyens N., Vangronsveld J. and Cuypers A. (2012) Phytoextraction of toxic metals: a central role for glutathione, Plant Cell Environ 35(2): 334-346
- Sharma P. and Dubey R. S. (2005) Lead toxicity in plants. Braz J Plant Physiol 17(1): 35-52
- Sharma P. and Dubey R. S. (2007) Involvement of oxidative stress and role of antioxidative defense system in growing rice seedlings exposed to toxic concentrations of aluminum. Plant Cell Reports. 26 (11): 2027-2038
- Sharma S. and Adholeya A. (2011) Phytoremediation of Cr-contaminated soil using Aloe vera and Chrysopogon zizanioides along with AM fungi and filamentous saprobe fungi: a research study towards possible practical application. Mycorrhiza News 22(4): 16-20
- Shaul O., Hilgemann D. W., de-Almeida-Engler J. J., Van Montagu M., Inzé D. and Galili G. (1999) Cloning and characterization of a novel Mg2 /H exchanger. EMBO J 18: 3973-3980
- Siddiqui F., Krishna S. K., Tandon P. K. and Srivastava S. (2013) Arsenic accumulation in Ocimum spp. and its effect on growth and oil constituents. Acta Physiol Plant. 35(4): 1071-1079
- Sinha S., Mishra R. K., Sinam G., Mallick S. and Gupta A. K. (2013) Comparative evaluation of metal phytoremediation potential of trees, grasses, and flowering plants from tannery-wastewater-contaminated soil in relation with physicochemical properties. Soil Sediment Contamin. 22(8): 958-983
- Smirnov O. E., Kosyan A. M., Kosyk O. I. and Taran N. Y. (2014) Buckwheat stomatal traits under aluminium toxicity. Modern Phytomorphology 6: 15-18
- Sobh M., Moussawi M. A., Rammal W., Hijazi A., Rammal H., Reda M. and Hamieh T. (2014) Removal of lead (II) ions from waste water by using Lebanese Cymbopogon citratus (lemon grass) stem as adsorbent. Am J Phytomed Clin Ther. 2(9): 1070-1080
- Stancheva I., Geneva M., Boychinova M., Mitova I. and Markovska Y. (2014) Physiological response of foliar fertilized Matricaria recutita L. grown on industrially polluted soil. J Plant Nutr 37(12): 1952-1964
- Tamura H., Honda M., Sato T. and Kamachi H. (2005) Pb hyperaccumulation and tolerance in common buckwheat (Fagopyrum esculentum Moench). J Plant Res 118: 355-359
- Thomine S., Wang R., Ward J. M., Crawford N. M. and Schroeder J. I. (2000) Cadmium and iron transport by members of a plant metal transporter family in Arabidopsis with homology to Nramp genes. Proc Natl Acad Sci USA 97: 4991-4996
- Tirillini B, Ricci A, Pintore G, Chessa M, Sighinolfi S (2006) Induction of hypericins in Hypericum perforatum in response to chromium. Fitoterapia 77: 164-170
- Tripathi D. K., Singh V. P., Prasad S. M., Chauhan D. K., Dubey N. K. and Rai A. K. (2015) Silicon-mediated alleviation of Cr (VI) toxicity in wheat seedlings as evidenced by chlorophyll florescence, laser induced breakdown spectroscopy and anatomical changes. Ecotoxicol Environ Saf 113: 133-144
- Vamerali T., Marianna B. and Giuliano M. (2010) Field crops for phytoremediation of metal-contaminated land A review. Environ Chem Lett 8(1): 1-17
- van de Mortel J. E., Schat H. Moerland et al. (2008) Expression differences for genes involved in lignin, glutathione and sulphate metabolism in response to cadmium in Arabidopsis thaliana and the related Zn/Cd-hyperaccumulator Thlaspi caerulescens, Plant Cell Environ 31(3): 301-324
- van de Mortel J. E., Villanueva L. A., Schat H., Kwekkeboom J., Coughlan S., Moerland P. D., van Themaat E. V. L., Koornneef M. and Aarts M. G. M. (2006) Large expression differences in genes for iron and zinc homeostasis, stress response, and lignin biosynthesis distinguish roots of Arabidopsis thaliana and the related metal hyperaccumulator Thlaspi caerulescens. Plant Physiol 142(3): 1127-1147
- Verma S. K., Singh K., Gupta A. K., Pandey V. C., Trevedi P., Verma S. K. and Patra D. D. (2014) Aromatic grasses for phyto management of coal fly ash hazards. Ecol Eng 73: 425-428
- Vo V. M., Nguyen V. K., and Le V. K. (2011). Potential of using vetiver grass to remediate soil contaminated with heavy metals. VNU Journal of Science, Earth Sciences 27(3), 146-150
- Voyslavov T., Georgieva S., Arpadjan S. and Tsekova K. (2013) Phytoavailability assessment of cadmium and lead in polluted soils and accumulation by Matricaria chamomilla (Chamomile). Biotechnol Biotechnol Equip. 27(4): 3939-3943
- Wang S., Zhang Y., Song Q., Fang Z., Chen Z., Zhang Y., Zhang L., Zhang L., Niu N., Ma S., Wang J., Yao Y., Hu Z. and Zhang G. (2018) Mitochondrial Dysfunction Causes Oxidative Stress and Tapetal Apoptosis in Chemical Hybridization Reagent-Induced Male Sterility in Wheat. Front Plant Sci 8: 2217
- Wenzel W. W. and Jockwer F. (1998) Accumulation of heavy metals in plants grown on mineralised soils of the Austrian Alps. Environ Pollut 104: 145-155
- Yamamoto Y., Kobayashi Y. and Matsumoto H. (2001) Lipid peroxidation is an early symptom triggered by aluminum, but not the primary cause of elongation inhibition in Pea roots. Plant Physiol 125: 199-208
- Yazaki K. (2006) ABC transporters involved in the transport of plant secondary metabolites. FEBS Letters 580: 1183-1191
- Zahedifara M., Moosavib A. A., Shafigh M., Zareib Z. and Karimian F. (2016) Cadmium accumulation and partitioning in Ocimum basilicum as influenced by the application of various potassium fertilizers. Arch Agron Soil Sci 62(5): 663-673
- Zhang S. J., Ma J. F. and Matsumoto H. (1998) High aluminium resistance in buckwheat: I. Al induced specific secretion of oxalic acid from root tip tips. Plant Physiol 117: 745-751
- Zhang W. H. and Tyerman S. D. (1999) Inhibition of water channels by HgCl2 in intact wheat root cells. Plant Physiol. 120(3): 849-857
- Zheljazkov V. D. and Nielsen N. E. (1996) Effect of heavy metals on peppermint and cornmint. Plant Soil 178: 59-66
- Zheljazkov V. D., Craker L. E. and Baoshan X. (2006) Effects of Cd, Pb and Cu on growth and essential oil contents in dill pepper mint, and basil. Environ. Exp Bot 58: 9-16
- Zheng S. J. (2010) Crop production on acidic soils: overcoming aluminium toxicity and phosphorus deficiency. Anal Bot 106: 183-184