Effect of Microwave Radiation on Bacteria, Fungi and Some Growth Characteristics of Cowpea Vigna unguiculata L.

Gesunde Pflanzen - Tập 73 Số 2 - Trang 161-167 - 2021
Wael Mohammed Mahdi1, Khaled Saeed Lateef Al-Badri2, Mustafa Rasheed Majeed Alqaisi3
1Department of Biology, College of Education, University of Samarra, Salah-AL-Din, Iraq
2Department of Physics, College of Education, University of Samarra, Salah-AL-Din, Iraq
3Department of Horticulture, College of Agriculture Tikrit University, Salah-AL-Din, Iraq

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Abayomi YA, Ajibade TV, Sammuel OF, Saadudeen BF (2008) Growth and yield responses of cowpea (Vigna unguiculata (L.) Walp) genotypes to nitrogen fertilizer (NPK) application in the Southern Guinea Savanna zone of Nigeria. Asian J Plant Sci 7(2):170–176

Adam T (1990) Diseases affecting cowpea (Vigna unguiculata (L.) Walpers) in Niger. AMBIO 1:358–360

AL-Samarrai FH, AL-Bahadli AH, AL-Rawi FA (1988) Compression between effect of soil disinfestation methods on some pathogens of cucumber. Arab J PIant Prot 6(2):106

Almeida MT, Mouga T, Barracosa P (1994) The weathering ability of higher plants. The case of Ailanthus altissima (Miller) Swingle. Int Biodeterior Biodegrad 33(4):333–343

Astuti D, Suhartanto B, Umami N, Irawan A (2020) Effect of density between intercropped sorghum and stylosanthes on biomass production and quality under varying NPK fertilizer application rates. J Crop Sci Biotechnol 23:197–205

Blacksmith N, Willford JC, Behrend TS (2016) Technology in the employment interview: a meta-analysis and future research agenda. Pers Assess Decis 2(1):2

Brodie G, Grixti M, Hollins E, Cooper A, Li T, Cole M (2015) Assessing the impact of microwave treatment on soil microbial populations. Glob J Agric Innov Res Dev 2(1):25–32

Brodie G, Hamilton S, Woodworth J (2007) An assessment of microwave soil pasteurization for killing seeds and weeds. Plant Prot Q 22(4):143

Cawse PA, Crawford DV (1967) Accumulation of nitrite in fresh soils after gamma irradiation. Nature 216(5120):1142–1143

Chen YP (2006) Microwave treatment of eight seconds protects cells of lsafis indigofica from enhanced UV‑8 radiation lesions. Photochem Photobiol 82(2):503–507

Cooper A, Brodie G (2009) The effect of microwave radiation and soil depth on soil pH, N, P, K, SO {4} and bacterial colonies. Plant Prot Q 24(2):67

Diprose MF (2001) Some considerations when using a microwave oven as a laboratory research tool. Plant Soil 229(2):271–280

Erabi A, Ali SA (2014) Effect of sterilization methods and replication in the microbial community and the growth of the soybean plant Glycine max L. in the gypsum soil. Anbar J Agric Sci 12(2):43–49

Ferriss RS (1984) Effects of microwave oven treatment on microorganisms in soil. Phytopathology 74(1):121–126

Gibson F, Fox FM, Deacon JW (1988) Effects of microwave treatment of soil on growth of birch (Betula pendula) seedlings and infection of them by ectomycorrhizal fungi. New Phytol 108(2):189–204

Halmagyi A, Surducan E, Surducan V (2017) The effect of low-and high-power microwave irradiation on in vitro grown Sequoia plants and their recovery after cryostorage. J Biol Phys 43(3):367–379

Haruna IM, Aliyu L (2011) Yield and economic returns of sesame (Sesamum indicum .L.) as influenced by poultry manure, nitrogen and phosphorus at Samaru, Nigeria. Elixir Agric 39:4884–4887

Hendricks CW, Pascoe N (1988) Soil mcirobial biomass estimates using 2450 MHz microwave irradiation. Plant Soil 110(1):39–47

MCM Hess M, De Wilde M, Yavercovski N, Willm L, Mesléard F, Buisson E (2018) Microwave soil heating reduces seedling emergence of a wide range of species including invasives. Restor Ecol 26:S160–S169

Iqbal U, Mukhtar T (2020) Evaluation of Biocontrol Potenzial of seven indigenous Trichoderma species against charcoal rot causing fungus, Macrophomina phaseolina. Gesunde Pflanzen 1(72):195–202

Ishaq F, Khan A (2011) Isolation, identification and comparative study of fungal and bacterial strains found in organic and inorganic soils of different agricultural fields. Recent Res Sci Technol 3(11):30–36

Khan MJ, Brodie G, Gupta D (2016) Effect of microwave (2.45 GHz) treatment of soil on yield components of wheat (Triticum aestivum L.). J Microw Power Electromagn Energy 50(3):191–200

Komarova AS, Likhacheva AA, Zvyagintsev DG (2008) Influence of microwave radiation on soil bacteria. Mosc Univ Soil Sci Bull 63(4):190–195

Krasilnikoff G, Gahoonia T, Erik-Nelson N (2003) Variation in phosphorus uptake by genotypes of cowpea (Vigna unguiculata (L.) Walp) due to differences in root and root hair length and induced rhizosphere processes. Plant Soil 251:83–91

Kwon SJ, Kim HR, Roy SK, Kim HJ, Boo HO, Woo SH, Kim HH (2019) Effects of nitrogen, phosphorus and potassium fertilizers on growth characteristics of two species of bellflower (Platycodon grandiflorum). J Crop Sci Biotechnol 22(5):481–487

Motaleb NA, Abd Elhady SA, Ghoname AA (2020) AMF, bacillus megaterium neutralize the harmful effects of salt stress on bean plants. Gesunde Pflanz 72(1):29–39

Ndakidemi PA, Dakora FD (2007) Yield components of nodulated cowpea (Vigna unguiculata (L.) Walp) and maize (Zea mays) plants grown with exogenous phosphorus in different cropping systems. Aust J Exp Agric 47:587–590

Nelson SO (1996) A review and assessment of microwave energy for soil treatment to control pests. Trans ASAE 39(1):281–289

Nkaa F, Nwokeocha OW, Ihuoma O (2014) Effect of phosphorus fertilizer on growth and yield of cowpea (Vigna unguiculata). J Pharm Biol Sci 9(5):74–82

Nutter GM (1957) Soil sterilization practices in turf. USGA J Turf Manag, p 25–27

Nyoki D, Patrick A, Ndakidemi R (2013) Economic benefits of Bradyrhizobium japonicum inoculation and phosphorus supplementation in cowpea (Vigna unguiculata (L.) Walp) grown in northern Tanzania. Am J Res Comm 1(11):173–189

O’neill PE, Jackson TJ (1990) Observed effects of soil organic matter content on the microwave emissivity of soils. Remote Sens Environ 31(3):175–182

Oza SR, Panigrahy S, Parihar JS (2008) Concurrent use of active and passive microwave remote sensing data for monitoring of rice crop. Int J Appl Earth Obs Geoinform 10(3):296–304

Pokluda R, Shehata SM, Kopta T (2018) Vegetative, chemical status and productivity of zucchini squash (Cucurbita pepo L.) plants in responses to foliar application of Pentakeep and Strigolactones under NPK rates. Gesunde Pflanz 70(1):21–29

Rahi GS, Rich JR (2008) Potenzial of microwaves to control plant-parasitic nematodes in soil. J Microw Power Electromagn Energy 42(1):5–42112

Sahin H (2014) Effects of microwaves on the germination of weed Seeds. J Biosyst Eng 39(4):304–309

Song ZX, Wang ZY, Wu LY, Fan YT, Hou HW (2012) Effect of microwave irradiation pretreatment of cow dung compost on bio-hydrogen process from corn stalk by dark fermentation. Int J Hydrogen Energy 37(8):6554–6561

Soriano-Martín ML, Porras-Piedra A, Porras-Soriano A (2006) Use of microwaves in the prevention of Fusarium oxysporum f. sp. melonis infection during the commercial production of melon plantlets. Crop Prot 25(1):52–57

Tisserat B, Jones D, Galletta PD (1992) Microwave sterilization of plant tissue culture media. HortScience 27(4):358–361

Velázquez-Martí B, Gracia-López C, De La Puerta R (2008) Work conditions for microwave applicators designed to eliminate undesired vegetation in a field. Biosyst Eng 100(1):31–37

Wainwright M, Killham K, Diprose MF (1980) Effects of 2450 MHz microwave radiation on nitrification, respiration and S‑oxidation in soil. Soil Biol Biochem 12(5):489–493

De Wilde M, Buisson E, Yavercovski N, Willm L, Bieder L, Mesléard F (2017) Using microwave soil heating to inhibit invasive species seed germination. Invasive Plant Sci Manag 10(3):262–270

Zhang Y, Shen J (2006) Effect of temperature and iron concentration on the growth and hydrogen production of mixed bacteria. Int J Hydrogen Energy 31(4):441–446

Zieliński M, Zielińska M (2010) Impact of microwave radiation on nitrogen removal and quantity of nitrifiers in biofilm. Can J Civ Eng 37(4):661–666