Static magnetic field in plants: physiological effects and antioxidant defense mechanisms-an overview
محورهای موضوعی : Plant PhysiologyHalimeh Hassanpour 1 , Mahbobeh Ghanbarzadeh 2
1 - Aerospace Research Institute, Ministry of Science Research and Technology, Tehran 14665-834, Iran
2 - Department of Plant Biology, School of Biology, College of Science, University of Tehran, Tehran, Iran
کلید واژه: Secondary metabolite, Static magnetic field, Anatomical responses, Antioxidant enzyme activity, Plant growth,
چکیده مقاله :
Climate alteration and population growth have been responsible for the yield decline in crop. Until now, several researchers have been used various physical and chemical factors to stimulate plant growth and development. Static magnetic field (SMF) application has been identified to be a physical technique and useful to control plant diseases and stimulation of biomass yield. Little studies have been made to detection the role of SMF on plant physiological response, defense mechanisms, and plant tolerance against various stress conditions. On the other hand, application of man-made devices producing magnetic field (MF) is also increasing, and more studies are needed on living organisms. This review investigates the impact of MF on induction of seed germination and plant growth. Also, the supportive impact of SMF was investigated on membrane permeability, ion currents, secondary metabolite and antioxidant enzyme activities to suppress oxidative damage. The potential impact of SMF on enzymatic and non-enzymatic antioxidants can cause to increase plant tolerance during adverse conditions of other stresses such as salinity, metal contamination, drought ant etc. This review presents the basic and recent studies about the effect of SMF on plant adaptation to stress environment and emphasizes more research is involved to illuminate how SMF is precepted by cells, and the molecular mechanisms of SMF for plant protection under other stress conditions.
Abdollahi, F., H. Amiri, V. Niknam, F. Ghanati and K. Mahdigholi. 2019. 'Study of some physiological characteristics of two almond species (Amygdalus. scoparia and Amygdalus. eburnea) in response to static magnetic field '. Journal of Plant Process and Function, 7(28): 46.
Abdollahi, F., V. Niknam, F. Ghanati, F. Masroor and S.N. Noorbakhsh. 2012. 'Biological effects of weak electromagnetic field on healthy and infected lime (Citrus aurantifolia) trees with phytoplasma'. The Scientific World Journal.
Afzal, I., M. Noor, M. Bakhtavar, A. Ahmad and Z. Haq. 2015. 'Improvement of spring maize performance through physical and physiological seed enhancements'. Seed Science and Technology, 43(2): 238-249.
Ahmadi, N., Hassanpour, H., Hekmati, M., and Ghanbarzadeh, M. 2015. 'Effect of SiO2 nanoparticles on phytochemical and anatomical alterations in Anthemis gilanica'. Iranian Journal of Plant Physiology, 10(3): 3223-3231.
Anand, A., A. Kumari, M. Thakur and A. Koul. 2019. 'Hydrogen peroxide signaling integrates with phytohormones during the germination of magnetoprimed tomato seeds'. Scientific reports, 9(1): 1-11.
Anand, A., S. Nagarajan, A. Verma, D. Joshi, P. Pathak and J. Bhardwaj. 2012. 'Pre-treatment of seeds with static magnetic field ameliorates soil water stress in seedlings of maize (Zea mays L.) '.
Apel, K. and H. Hirt. 2004. 'Reactive oxygen species: metabolism, oxidative stress, and signal transduction'. Annual Review of Plant Biology, 55: 373-399.
Asghar, T., Y. Jamil, M. Iqbal and M. Abbas. 2016. 'Laser light and magnetic field stimulation effect on biochemical, enzymes activities and chlorophyll contents in soybean seeds and seedlings during early growth stages'. Journal of Photochemistry and Photobiology B: Biology, 165: 283-290.
Ashouri Sheikhi, A., H. Hassanpour, P. Jonoubi, M. Ghorbani Nohooji and M. S. Nadimifar. 'The Effect of Gamma Irradiation on In vitro Total Phenolic Content and Antioxidant Activity of Ferula gummosa Bioss'. Journal of Medicinal Plants, 15(59): 122-131.
Atak, Ç., Ö. Emiroǧlu, S. Alikamanoǧlu and A. Rzakoulieva. 2003. Stimulation of regeneration by magnetic field in soybean (Glycine max L. Merrill) tissue cultures'. Journal of Cell & Molecular Biology, 2(2).
Azimian, F. and P. Roshandel. 2015. 'Magnetic field effects on total phenolic content and antioxidant activity in Artemisia sieberi under salinity'. Indian Journal of Plant Physiology, 20(3): 264-270.
Bertini, I., K. S. McGreevy and G. Parigi (Eds.). 2012. 'NMR of biomolecules: towards mechanistic systems biology'. Towards mechanistic systems biology. John Wiley & Sons.
Bhardwaj, J., A. Anand and S. Nagarajan. 2012. 'Biochemical and biophysical changes associated with magnetopriming in germinating cucumber seeds'. Plant Physiology and Biochemistry, 57: 67-73.
Bilalis, D.J., N. Katsenios, A. Efthimiadou, A. Karkanis, E.M. Khah and T. Mitsis. 2013. 'Magnetic field pre-sowing treatment as an organic friendly technique to promote plant growth and chemical elements accumulation in early stages of cotton'. Australian Journal of Crop Science, 7(1): 46-50
Bose, J., A. Rodrigo-Moreno and S. Shabala. 2014. 'ROS homeostasis in halophytes in the context of salinity stress tolerance'. Journal of experimental botany, 65(5): 1241-1257.
Cakmak, T., R. Dumlupinar and S. Erdal. 2010. 'Acceleration of germination and early growth of wheat and bean seedlings grown under various magnetic field and osmotic conditions'. Bioelectromagnetics: Journal of the Bioelectromagnetics Society, The Society for Physical Regulation in Biology and Medicine, The European Bioelectromagnetics Association, 31(2): 120-129.
Chen, Y.p., R. Li and J.M. He. 2011. 'Magnetic field can alleviate toxicological effect induced by cadmium in mungbean seedlings'. Ecotoxicology, 20(4): 760-769.
De Souza, A., D. Garcí, L. Sueiro, F. Gilart, E. Porras L. Licea. 2006. 'Pre‐sowing magnetic treatments of tomato seeds increase the growth and yield of plants'. Bioelectromagnetics: Journal of the Bioelectromagnetics Society, The Society for Physical Regulation in Biology and Medicine, The European Bioelectromagnetics Association, 27(4): 247-257.
Ferrão-Filho, A.D.S. 2013. 'Cyanobacteria: ecology, toxicology and management'. Nova Publishers
Flores-Tavizón, E., N.S. Mokgalaka-Matlala, J.T. Elizalde Galindo, H. Castillo-Michelle, J.R. Peralta-Videa and J.L. Gardea-Torresdey. 2012. 'Magnetic field effect on growth, arsenic uptake, and total amylolytic activity on mesquite (Prosopis juliflora x P. velutina) seeds'. Journal of Applied Physics, 111(7): 07B321.
Florez, M., M.V. Carbonell and E. Martínez. 2007. 'Exposure of maize seeds to stationary magnetic fields: Effects on germination and early growth. Environmental and experimental botany, 59 (1): 68-75.
Galland, P. and A. Pazur. 2005. 'Magnetoreception in plants'. Journal of plant research, 118 (6): 371-389.
Ghalkhani, E., Hassanpour, H., & Niknam, V. 2020 .'Sinusoidal vibration alleviates salt stress by induction of antioxidative enzymes and anatomical changes in Mentha pulegium (L.)'. Acta physiologiae plantarum, 42(3), 1-13.
Gossauer, A. and N. Engel. 1996. 'Chlorophyll catabolism—structures, mechanisms, conversions'. Journal of Photochemistry and Photobiology B: Biology, 32(3): 141-151.
Haghighat, N., P. Abdolmaleki, F. Ghanati, M. Behmanesh and A. Payez. 2014. 'Modification of catalase and MAPK in Vicia faba cultivated in soil with high natural radioactivity and treated with a static magnetic field'. Journal of Plant Physiology, 171(5): 99-103.
Hajnorouzi, A., M. Vaezzadeh, F. Ghanati and B. Nahidian. 2011. 'Growth promotion and a decrease of oxidative stress in maize seedlings by a combination of geomagnetic and weak electromagnetic fields'. Journal of Plant Physiology, 168(10): 1123-1128.
Hassanpour, H., A. Eydi and M. Hekmati. 2021. 'Electromagnetic field improved nanoparticle impact on antioxidant activity and secondary metabolite production in Anthemis gilanica seedlings'. International Journal of Agronomy, Article ID 8730234.
Hassanpour, H. and S. Hassanpour. 2021. 'Promoting Impact of Electromagnetic Field on Antioxidant System and Performance of Vascular Tissues in Physalis alkekengi'. Russian Journal of Plant Physiology, 68(3), 545-551.
Hassanpour, H. and M. Ghanbarzadeh. 2021. 'Induction of cell division and antioxidative enzyme activity of Matricaria chamomilla L. cell line under clino-rotation'. Plant Cell Tissue Organ Culture (PCTOC), 1-10.
Hassanpour, H. and V. Niknam. 2020. 'Establishment and assessment of cell suspension cultures of Matricaria chamomilla as a possible source of apigenin under static magnetic field'. Plant Cell, Tissue and Organ Culture (PCTOC), 142(3), 583-593.
Hassanpour, H., Gharaati, T., Hekmati, M., & Mousavi, F. 2020. 'Effects of magnetic fields on some physiological factors and antioxidant capacity of Silibum marianum L. seedlings under salt stress '. Journal of Plant Process and Function, 9(38): 283-296.
Hassanpour, H., V. Niknam and B.S. Haddadi. 2016. 'High-frequency vibration improve callus growth via antioxidant enzymes induction in Hyoscyamus kurdicus'. Plant Cell Tissue Organ Culture (PCTOC), 128(1): 231–241.
Hassanpour, H. and V. Niknam. 2014. 'Effect of water deficit stress on growth and antioxidant enzyme activity of Mentha pulegium L. at flowering stage'. Journal of Plant Process and Function, 3 (8): 25-34.
Jan, L., D. Fefer, K. Košmelj, A. Gaberščik and I. Jerman. 2015. 'Geomagnetic and strong static magnetic field effects on growth and chlorophyll a fluorescence in Lemna minor'. Bioelectromagnetics, 36(3): 190-203.
Javed, N., M. Ashraf, N.A. Akram and F. Al‐Qurainy. 2011. 'Alleviation of adverse effects of drought stress on growth and some potential physiological attributes in maize (Zea mays L.) by seed electromagnetic treatment'. Photochemistry and Photobiology, 87(6): 1354-1362
Jithesh, M., S. Prashanth, K. Sivaprakash and A.K. Parida. 2006. 'Antioxidative response mechanisms in halophytes: their role in stress defence'. Journal of Genetics, 85(3), 237.
Jogawat, A. 2019. 'Molecular plant abiotic stress: biology and biotechnology'
Kataria, S., L. Baghel and K. Guruprasad. 2017. 'Pre-treatment of seeds with static magnetic field improves germination and early growth characteristics under salt stress in maize and soybean'. Biocatalysis and agricultural biotechnology, 10: 83-90.
Latef, A.A.H.A., M.F. Dawood, H. Hassanpour, M. Rezayian and N.A.Younes. 2020. 'Impact of the static magnetic field on growth, pigments, osmolytes, nitric oxide, hydrogen sulfide, phenylalanine ammonia-lyase activity, antioxidant defense system, and yield in Lettuce. Biology, 9(7): 172.
Lefevre, I., E. Gratia and S. Lutts. 2001. 'Discrimination between the ionic and osmotic components of salt stress in relation to free polyamine level in rice (Oryza sativa)'. Plant science, 161(5): 943-952.
Liang, T., W. Yue and Q. Li. 2010. 'Comparison of the phenolic content and antioxidant activities of Apocynum venetum L.(Luo-Bu-Ma) and two of its alternative species'. International journal of molecular sciences, 11(11): 4452-4464.
Maffei, M.E. 2014. 'Magnetic field effects on plant growth, development, and evolution'. Frontiers in plant science, 5: 445
Mahajan T.S. and O.P. Pandey. 2012. 'Magnetic-time model for seed germination'. African Journal of Biotechnology, 11(88): 15415-15421.
Markov, S. 2015. 'Electromagnetic Fields in Biology and Medicine'. CRC Press.
Mansourkhaki, M., H. Hassanpour and M. Hekmati. 2019 'Effect of static magnetic field on the growth factors, antioxidant activity and anatomical responses of Silybum marianum seedlings'. Journal of Plant Process and Function, 7(28): 9-15.
Martinez, E., M.V. Carbonell and J.M. Amaya. 2000. 'A static magnetic field of 125 mT stimulates the initial growth stages of barley (Hordeum vulgare L.) '. Electro-and magnetobiology, 19(3): 271-277.
Matamoros, M.A., D.A. Dalton, J. Ramos, M.R. Clemente, M.C. Rubio and M. Becana. 2003. 'Biochemistry and molecular biology of antioxidants in the rhizobia-legume symbiosis'. Plant physiology, 133(2): 499-509.
Merati, M.J,. V. Niknam., H. Hassanpour and M. Mirmasoumi. 2015. 'Comparative effects of salt stress on growth and antioxidative responses in different organs of pennyroyal (Mentha pulegium L.) '. Journal of Plant Research (Iranian Journal of Biology), 28(5): 1097-1107.
Munns, R., S. Husain, A.R. Rivelli, R.A. James, A.T. Condon, M.P. Lindsay, E.S. Lagudah, D.P. Schachtman and R.A. Hare. 2002. 'Avenues for increasing salt tolerance of crops, and the role of physiologically based selection traits'. In, Progress in Plant Nutrition: Plenary Lectures of the XIV International Plant Nutrition Colloquium (pp. 93-105): Springer
Novitsky, Y.I., G. Novitskaya, T. Kocheshkova, G. Nechiporenko and M. Dobrovol'Skii. 2001. 'Growth of green onions in a weak permanent magnetic field'. Russian Journal of Plant Physiology, 48(6): 709-716.
Poinapen, D., D.C. Brown and G.K. Beeharry. 2013. 'Seed orientation and magnetic field strength have more influence on tomato seed performance than relative humidity and duration of exposure to non-uniform static magnetic fields'. Journal of Plant Physiology, 170(4): 1251-1258.
Pourcel, L., J.M. Routaboul, L. Kerhoas, M. Caboche, L. Lepiniec and I. Debeaujon. 2005. 'TRANSPARENT TESTA10 encodes a laccase-like enzyme involved in oxidative polymerization of flavonoids in Arabidopsis seed coat'. The Plant Cell, 17(11): 2966-2980.
Prasad, M. 1995. 'Cadmium toxicity and tolerance in vascular plants'. Environmental and experimental botany, 35(4): 525-545.
Radhakrishnan, R. and B.D.R. Kumari. 2012. 'Pulsed magnetic field: A contemporary approach offers to enhance plant growth and yield of soybean'. Plant Physiology and Biochemistry, 51: 139-144.
Rathod, G.R. and A. Anand. 2016. 'Effect of seed magneto-priming on growth, yield and Na/K ratio in wheat (Triticum aestivum L.) under salt stress'. Indian Journal of Plant Physiology, 21(1): 15-22.
Reina, F.G. and L.A. Pascual. 2001. 'Influence of a stationary magnetic field on water relations in lettuce seeds. Part I: Theoretical considerations'. Bioelectromagnetics: Journal of the Bioelectromagnetics Society, The Society for Physical Regulation in Biology and Medicine, The European Bioelectromagnetics Association, 22(8): 589-595.
Rezaei, A., F. Ghanati and M. Behmanesh. 2010. 'Static magnetic field improved salicylic acid effect on taxol production in suspension cultured hazel (Corylus avellana) cells'. In, 6th International workshop on biological effects of electromagnetic fields, (pp. 70-71).
Safafar, H., J. Van Wagenen, P. Møller and C. Jacobsen. 2015. 'Carotenoids, phenolic compounds and tocopherols contribute to the antioxidative properties of some microalgae species grown on industrial wastewater'. Marine drugs, 13(12): 7339-7356.
Sarraf, M., S. Kataria, H. Taimourya, L.O. Santos, R.D. Menegatti, M. Jain, M. Ihtisham and S. Liu. 2020. 'Magnetic field (MF) applications in plants: An overview. Plants, 9(9): 1139.
Selim, A.-F.H. and M.F. El-Nady. 2011. Physio-anatomical responses of drought stressed tomato plants to magnetic field'. Acta Astronautica, 69(7-8), 387-396.
Sen, A. and S. Alikamanoglu. 2014. 'Effects of static magnetic field pretreatment with and without PEG 6000 or NaCl exposure on wheat biochemical parameters'. Russian Journal of Plant Physiology, 61(5): 646-655.
Shabrangi, A., Hassanpour, H., Majd, A., & Sheidai, M. 2015. 'Induction of genetic variation by electromagnetic fields in Zea mays L. and Brassica napus L'. Caryologia, 68(4): 272-279.
Shaddad, M. 1990. 'The effect of proline application on the physiology of Raphanus sativus plants grown under salinity stress'. Biologia plantarum, 32(2): 104-112.
Shine, M., K. Guruprasad and A. Anand. 2011. 'Enhancement of germination, growth, and photosynthesis in soybean by pre‐treatment of seeds with magnetic field'. Bioelectromagnetics, 32(6): 474-484.
Shine, M., K. Guruprasad and A. Anand. 2012. 'Effect of stationary magnetic field strengths of 150 and 200 mT on reactive oxygen species production in soybean'. Bioelectromagnetics, 33(5): 428-437.
Singh, D.P., R. Prabha, S. Verma, K.K. Meena and M. Yandigeri. 2017. 'Antioxidant properties and polyphenolic content in terrestrial cyanobacteria'. 3 Biotech, 7(2): 1-14.
Song, W.Y., Z.B. Zhang, H.B. Shao, X.L. Guo, H.X. Cao, H.B. Zhao, Z.Y. Fu and X.J. Hu. 2008. 'Relationship between calcium decoding elements and plant abiotic-stress resistance'. International Journal of Biological Sciences, 4(2), 116.
Taghizadeh, M., F. Nasibi, K.M. Kalantari and F. Ghanati. 2019. 'Evaluation of secondary metabolites and antioxidant activity in Dracocephalum polychaetum Bornm. cell suspension culture under magnetite nanoparticles and static magnetic field elicitation'. Plant Cell, Tissue and Organ Culture (PCTOC), 136(3): 489-498.
Tai, C.Y., C.K. Wu and M.C. Chang. 2008. 'Effects of magnetic field on the crystallization of CaCO3 using permanent magnets'. Chemical Engineering Science, 63(23): 5606-5612.
Trebbi, G., F. Borghini, L. Lazzarato, P. Torrigiani, G.L. Calzoni and L. Betti. 2007. 'Extremely low frequency weak magnetic fields enhance resistance of NN tobacco plants to tobacco mosaic virus and elicit stress‐related biochemical activities'. Bioelectromagnetics: Journal of the Bioelectromagnetics Society, The Society for Physical Regulation in Biology and Medicine, The European Bioelectromagnetics Association, 28(3): 214-223.
Vaezzadeh, M., E. Noruzifar, G. Faezeh, M. Salehkotahi and R. Mehdian. 2006. 'Excitation of plant growth in dormant temperature by steady magnetic field'. Journal of magnetism and magnetic materials, 302(1):105-108.
Vashisth, A. and D.K. Joshi. 2017. 'Growth characteristics of maize seeds exposed to magnetic field'. Bioelectromagnetics, 38(2): 151-157.
Vashisth, A. and S. Nagarajan. 2008. 'Exposure of seeds to static magnetic field enhances germination and early growth characteristics in chickpea (Cicer arietinum L.) '. Bioelectromagnetics: Journal of the Bioelectromagnetics Society, The Society for Physical Regulation in Biology and Medicine, The European Bioelectromagnetics Association, 29(7): 571-578.
Vashisth, A. and S. Nagarajan. 2010. 'Effect on germination and early growth characteristics in sunflower (Helianthus annuus) seeds exposed to static magnetic field'. Journal of Plant Physiology, 167(2): 149-156.
Yano, A., Y. Ohashi, T. Hirasaki and K. Fujiwara. 2004. 'Effects of a 60 Hz magnetic field on photosynthetic CO2 uptake and early growth of radish seedlings'. Bioelectromagnetics: Journal of the Bioelectromagnetics Society, The Society for Physical Regulation in Biology and Medicine, The European Bioelectromagnetics Association, 25(8): 572-581.
Zhang, X., K. Yarema and A. Xu. 2017. 'Biological effects of static magnetic fields'. Springer.
Złotek, U., M. Świeca and A. Jakubczyk. 2014. 'Effect of abiotic elicitation on main health-promoting compounds, antioxidant activity and commercial quality of butter lettuce (Lactuca sativa L.) '. Food chemistry, 148: 253-260.