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Articles

Allelopathic effects of the aqueous extract of Rhazya stricta on growth and metabolism of Salsola villosa

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Pages 1263-1273 | Received 14 Jul 2017, Accepted 06 Feb 2018, Published online: 01 Mar 2018

References

  • Abd_Allah EF, Hashem A, Alqarawi AA, Alwathnani HA. 2015. Alleviation of adverse impact of cadmium stress in sunflower (Helianthus annuus L.) by arbuscular mycorrhizal fungi. Pak J Bot. 47(2):785–795. https://www.pakbs.org/pjbot/PDFs/47(2)/51.pdf.
  • Ali BH, Bahir AK, Tanira MO, Medvedev AE, Jarrett N, Sandler M, Glover V. 1998. Effect of extract of Rhazya stricta, a traditional medicinal plant, on rat brain tribulin. Pharmacol Biochem Behav. 59(3):671–675 https://www.ncbi.nlm.nih.gov/pubmed/9512070.10.1016/S0091-3057(97)00464-4
  • Alqarawi AA, Hashem A, Abd_Allah EF, Alshahrani TS, Huqail AA. 2014. Effect of salinity on moisture content, pigment system, and lipid composition in Ephedra alata Decne. Acta Biologica Hungarica 65(1):61–71. DOI:10.1556/ABiol.65.2014.1.6.
  • Arnon DI. 1949. Copper enzymes in isolated chloroplasts. polyphenoloxidase in Beta vulgaris. Plant Physiol. 24:1–15. DOI:10.1104/pp.24.1.1.
  • Ashrafi ZY, Sadeghi S, Mashhadi HR, Hassan MA. 2008. Allelopathic effects of sunflower (Helianthus annuus) on germination and growth of wild barley (Hordeum spontaneum). J Agric Technol. 4(1):219–229. http://ijat-aatsea.com/pdf/JUNE_v4_n1_08/IJAT2008_18_Ashrafi.pdf.
  • Bais HP, Vepechedu R, Gilroy S, Callaway RM, Vivanco JM. 2003. Allelopathy and exotic plant invasion: from molecules and genes to species interactions. Science 301:1377–1380. DOI:10.1126/science.1083245.
  • Barkosky RR, Butler JL, Einhellig FA. 2000. Caffeic acid-induced changes in plant water relationships and photosynthesis in leafy spurge. J Chem Ecol. 26(9):2095–2109. DOI:10.1023/A:1005564315131.
  • Bartwal A, Mall R, Lohani P, Guru SK, Arora S. 2013. Role of secondary metabolites and brassinosteroids in plant defense against environmental stresses. J Plant Growth Regul. 32:216–232. DOI:10.1007/s00344-012-9272-x.
  • Berner M, Krug D, Bihlmaier C, Vente A, Müller R, Bechthold A. 2006. Genes and enzymes involved in caffeic acid biosynthesis in the actinomycete Saccharothrix espanaensis. J Bacteriol. 188:2666–2673. DOI:10.1128/JB.188.7.2666-2673.2006.
  • Bradford MM. 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem. 72:248–254. DOI:10.1016/0003-2697(76)90527-3.
  • Cachorro P, Ortiz A, Cerda A. 1993. Effect of saline stress and calcium on lipid composition in bean roots. Phytochemistry 32:1131–1136.
  • Carlberg I, Mannervik B. 1985. Glutathione reductase. Methods Enzymol. 113, Meister A, (Editor), New York, NY, Academic:484–490. https://www.ncbi.nlm.nih.gov/pubmed/3003504.
  • Chance B, Maehly C. 1955. Assay of catalase and peroxidases. Methods Enzymol. 2:764–775. DOI:10.1016/S0076-6879(55)02300-8.
  • Chi WC, Chen YA, Hsiung YC, Fu SF, Chou CH, Trinh NN, Chen YC, Huang HJ. 2013. Autotoxicity mechanism of Oryza sativa: transcriptome response in rice roots exposed to ferulic acid. BMC Genomics 14:351. DOI:10.1186/1471-2164-14-351.
  • Chia MA, Lombardi AT, Melao MDGG, Parrish CC. 2013. Effects of cadmium and nitrogen on lipid composition of Chlorella vulgaris (Trebouxiophyceae, Chlorophyta). Eur J Phycol 48(1):1–11.10.1080/09670262.2012.750687
  • Chou CH. 1999. Roles of allelopathy in plant biodiversity and sustainable agriculture. Crit Rev Plant Sci. 18:609–636. http://www.tandfonline.com/doi/abs/10.1080/07352689991309414.10.1016/S0735-2689(99)00393-7
  • Dar BA, Al-Rowaily SL, Assaeed AM, El-Bana MI, Hegazy AK, Malik JA. 2017. Allelopathic Potential of Argemone ochroleuca from different habitats on seed germination of native species and cultivated crops. Pak J Bot. 49: 1841–1848. https://www.pakbs.org/pjbot/papers/1507287135.pdf.
  • Dikilitas M, Karakas S, Hashem A, Abd Allah EF, Ahmad P. 2016. Oxidative stress and plant responses to pathogens under drought conditions. In: Ahmad P, editor. Water stress and crop plants: a sustainable approach, Vol. 1. First Edition. Chichester, West Sussex, UK: © 2016 John Wiley & Sons, Ltd. Published 2016 by , John Wiley & Sons. DOI:10.1002/9781119054450.ch8
  • Dittmer JC, Lester RL. 1964. A simple, specific spray for the detection of phospholipids on thin layer chromatograms. J Lipid Res. 5:126–127. http://www.jlr.org/content/5/1/126.full.pdf+html.
  • Dittmer JC, Wells MA. 1969. Quantitative and qualitative analysis of lipid and lipid components. Methods Enzymol. 14:482–530.10.1016/S0076-6879(69)14055-0
  • Djebali W, Zarrouk M, Brouquisse R, El Kahoui S, Limam F, Ghorbel MH, Chaibi W. 2005. Ultrastructure and lipid alterations induced by cadmium in tomato (Lycopersicon esculentum) chloroplast membranes. Plant Biol. 7:358–368. DOI:10.1055/s-2005-837696.
  • Douce R. 1964. Identification et dosage de quelquesglycerophosphatidesdans des souchesnormales et tumoralesdescosoneres cultives in vitro. CR Academic Sci. 259:3066–3068. http://www.collectionscanada.gc.ca/obj/s4/f2/dsk2/ftp03/MQ38073.pdf.
  • El-Enany A, Al-Anazi A, Dief N, Al-Taisan W. 2013. Role of antioxidant enzymes in amelioration of water deficit and waterlogging stresses on Vigna sinensis plants. J Biol Earth Sci. 3:144–153.
  • Elloumi N, Zouari M, Chaari L, Jomni C, Marzouk B, Elloumi FBA. 2014. Effects of cadmium on lipids of almond seedlings (Prunus dulcis). Bot Stud. 55:580. Article no. 61. DOI:10.1186/s40529-014-0061.
  • Fölch J, Lees M, Sloane-Stanley GH. 1957. A simple method for the isolation and purification of total lipids from animal tissues. J Biol Chem. 226:497–509. http://www.jbc.org/content/226/1/497.long.
  • Ghafar A, Saleem B, Ul-Haq A, Qureshi MJ. 2001. Isolation and identification of allelochemicals of sunflower (Helianthus annuus L.). Int J Agric Biol. 3:20–22. http://www.fspublishers.org/published_papers/78438_.pdf.
  • Gilani SA, Kikuchi A, Shinwari ZK, Khattak ZI, Watanabe KN. 2007. Phytochemical, pharmacological and ethnobotanical studies of Rhazya stricta Decne. Phytotherapy Res. 21(4):301–307. DOI:10.1002/ptr.2064.
  • Guo H, Cui H, Jin H, Yan Z, Ding L, Qin B. 2015. Potential allelochemicals in root zone soils of Stellera chamaejasme L. and variations at different geographical growing sites. Plant Growth Regul. 77:335–342. DOI:10.1007/s10725-015-0068-4.
  • Hashem A, Abd_Allah EF, Alqarawi AA, Egamberdieva D. 2016. Bioremediation of adverse impact of cadmium toxicity on Cassia italica Mill by arbuscular mycorrhizal fungi. Saudi J Biol Sci. 23:39–47. DOI:10.1016/j.sjbs.2015.11.007.
  • Hashem A, Abd_Allah EF, Alqarawi AA, Radhakrishnan R, Kumar A. 2017. Plant defense approach of Bacillus subtilis (BERA 71) against Macrophomina phaseolina (Tassi) Goid in mung bean. J Plant Interact. 12(1):390–401. DOI:10.1080/17429145.2017.1373871.
  • Hille M, den Ouden J. 2005. Charcoal and activated carbon as adsorbate of phytotoxic compounds-a comparative study. Oikos 108:202–207. DOI:10.1111/j.0030-1299.2005.13482.x.
  • Hodge A, Fitter AH. 2013. Microbial mediation of plant competition and community structure. Funct Ecol. 27:865–875. DOI:10.1111/1365-2435.12002.
  • Hong Y, Zhang W, Wang X. 2010. Phospholipase D and phosphatidic acid signalling in plant response to drought and salinity. Plant Cell Environ. 33:627–635.
  • Inderjit. 1996. Plant phenolics in allelopathy. Bot Rev. 62:186–202. DOI:10.1007/BF02857921.
  • Inderjit, Asakawa C. 2001. Nature of interference potential of hairy vetch (Vicia villosa Roth) to radish (Raphanus sativus L.): does allelopathy play any role? Crop Prot. 20:261–265. DOI:10.1016/S0261-2194(00)00136-8.
  • Jemo M, Sulieman S, Bekkaoui F, Olomide OAK, Hashem A, Abd_Allah EF, Alqarawi AA, Tran LS. 2017. Comparative analysis of the combined effects of different water and phosphate levels on growth and biological nitrogen fixation of nine cowpea varieties. Front Plant Sci. 8:2111. DOI:10.3389/fpls.2017.02111.
  • Johnson A, Stocks R. 1971. Gas-liquid chromatography of lipids. In: Johnson A, Davenport J, editors. Biochemistry and methodology of lipids. New York (NY): Wiley Interscience. https://www.cabdirect.org/cabdirect/abstract/19721407642
  • Kardol P, Bezemer TM, van der Putten WH. 2006. Temporal variation in plant-soil feedback controls succession. Ecol Lett. 9:1080–1088. DOI:10.1111/j.1461-0248.2006.00953.x.
  • Klironomos JN. 2002. Feedback with soil biota contributes to plant rarity and invasiveness in communities. Nature 417:67–70. DOI:10.1038/417067a.
  • Kulmatisky A, Beard KH, Stevens JR, Cobbold SM. 2008. Plant–soil feedbacks: a meta analytical review. Ecol Lett. 11:980–992. DOI:10.1111/j.1461-0248.2008.01209.x.
  • Kumar A, Dames JF, Gupta A, Sharma S, Gilbert JA, Ahmad P. 2015a. Current developments in arbuscular mycorrhizal fungi research and its role in salinity stress alleviation: a biotechnological perspective. Crit Rev Biotechnol. 35(4):461–474.10.3109/07388551.2014.899964
  • Kumar A, Sharma S, Mishra S, Dames JF. 2015b. Arbuscular mycorrhizal inoculation improves growth and antioxidative response of Jatropha curcas (L.) under Na2SO4 salt stress. Plant Biosyst. 149:260–269.10.1080/11263504.2013.845268
  • Kumar KB, Khan PA. 1982. Peroxidase and polyphenol oxidase in excised ragi (Eleusine coracanacv. PR 202) leaves during senescence. Indian J Exp Bot. 20:412–416 http://agris.fao.org/agris-search/search.do?recordID=IN19820831613.
  • Lara-Nunez A, Romero-Romero T, Ventura JL, Blancas V, Anaya AL, Cruz-Ortega R. 2006. Allelochemical stress causes inhibition of growth and oxidative damage in Lycopersicon esculentum Mill. Plant, Cell Environ. 29:2009–2016. DOI:10.1111/j.1365-3040.2006.01575.x.
  • Latakowska E, Lechowski Z, Bialczyk J, Pilarski L. 2006. Photosynthesis and water relations in tomato plants cultivated long-term in media containing (+)-usnic acid. J Chem Ecol. 32:2053–2066.10.1007/s10886-006-9128-6
  • Lepage M. 1967. Identification and composition of turnip root lipids. Lipids 2:244–250. DOI:10.1007/BF02532563.
  • Luck H. 1974. Catalases. In: Bregmeyer HU, editor. Methods of enzymatic analysis. New York (NY): Academic Press. http://www.oalib.com/references/13475453.
  • Macias FA, Verela RM, Torres A, Galindo JLG, Molinillo JMG. 2002. Allelochemicals from sunflower: chemistry, bioactivity and application. In: Inderjit, Mallik U, editors. Chemical ecology of plants: allelopathy in aquatic and terrestrial ecosystems. Basel: BirkhauserVerlag; p. 73–87.10.1007/978-3-0348-8109-8
  • Maron JL, Smith AL, Ortega YK, Pearson DE, Callaway RM. 2016. Negative plant-soil feedbacks increase with plant abundance, and are unchanged by competition. Ecology 97(8):2055–2063. DOI:10.1002/ecy.1431.
  • Mazzoleni S, Bonanomi G, Incerti G, Chiusano ML, Termolino P, Mingo A, Senatore M, Giannino F, Cartenì F, Rietkerk M, et al. 2015. Inhibitory and toxic effects of extracellular self-DNA in litter: a mechanism for negative plant-soil feedbacks? New Phytol. 205(3):1195–1210. DOI:10.1111/nph.13121.
  • Metcalfe D, Schmitz A, Pelka RJ. 1966. Rapid preparation of fatty acid esters from lipids for gas chromatographic analysis. Ann Chem 38:524–535.
  • Mishra S, Srivastava S, Tripathi RD, Govindrajan R, Kuriakose SV, Prasad MNV. 2006. Phytochelatin synthesis and response of antioxidants during cadmium stress in Bacopa monnieri L. Plant Physiol Biochem. 44:25–37.10.1016/j.plaphy.2006.01.007
  • Morgan PW, Hall WC. 1963. Indoleacetic acid oxidizing enzyme & inhibitors from light-grown cotton. Plant Physiol. 38:365–370.10.1104/pp.38.4.365
  • Nguyen HM, Cuine S, Beyly-Adriano A, Legeret B, Billon E, Auroy P, Beisson F, Peltier G, Li-Beisson Y. 2013. The green microalga chlamydomonas reinhardtii has a single  -3 fatty acid desaturase that localizes to the chloroplast and impacts both plastidic and extraplastidic membrane lipids. Plant Physiol. 163:914–928.10.1104/pp.113.223941
  • Oracz K, Bailly C, Gniazdowska A, Come D, Corbineau F, Bogatek R. 2007. Induction of oxidative stress by sunflower phytotoxins in germinating mustard seeds. J Chem Ecol. 33:251–264.10.1007/s10886-006-9222-9
  • Oueslati MH, Al-Ghamdi FA, Noubigh A. 2015. Two new bioactive salsolanol and biphenylsalsinol from the aerial parts of Salsola villosa Delile.ex Schul. (Chenopodiaceae) growing in Saudi Arabia. Asian Pac J Trop Biomed. 5(8):624–628. DOI:10.1016/j.apjtb.2015.05.012.
  • Patel JR, Dabgar YB. 2014. Allelopathic effects of Chenopodium album L. on Brassica Juncea (L.) Czern. International. J Sci Res. 3(3):346–347. DOI:10.15373/22778179.
  • Petkov G, Garcia G. 2007. Which are fatty acids of the green alga Chlorella? Biochem Syst Ecol. 35:281–285.10.1016/j.bse.2006.10.017
  • Politycka B, Gmerek J. 2008. Effect of ferulic and p-coumaric acids on the activity of hydrolytic enzymes and growth of radicals in germinating seeds of cucumber and pea. Allelopathy J. 21(2):227–238.
  • Radhakrishnan R, Hashem A, Abd_Allah EF. 2017. Bacillus: a biological tool for crop improvement through bio-molecular changes in adverse environments. Front Physiol. 8:407. DOI:10.3389/fphys.2017.00667.
  • Reddy NR, Pierson MD. 1994. Reduction in antinutritional and toxic components in plant foods by fermentation. Food Res Int. 27:281–290.10.1016/0963-9969(94)90096-5
  • Reinhart KO. 2012. The organization of plant communities: negative plant-soil feedbacks and semiarid grasslands. Ecology 93:2377–2385. DOI:10.1890/12-0486.1.
  • Romagni JG, Meazza G, Nanayakkara NPD, Dayan FE. 2000. The phytotoxic lichen metabolite, usnic acid, is a potent inhibitor of plant p -hydroxyphenylpyruvate dioxygenase. FEBS Lett. 480:301–305.10.1016/S0014-5793(00)01907-4
  • Romagni JG, Rosell RC, Nanayakkara NPD, Dayan FE. 2004. Ecophysiology and potential modes of action of selected lichen metabolites. In: Macias FA, Galindo JCG, Molinillo JMG, Cutler HG, editors. Allelopathy: chemistry and mode of action of allelochemicals. Boca (FL): CRC Press; p. 13–30.
  • Romero-Romero T, Sanchez-Nieto S, Sanjuan-Badillo A, Anaya AL, Cruz-Ortega R. 2005. Comparative effects of allelochemical and water stress in roots of Lycopersicon esculentum Mill. (Solanaceae). Plant Sci. 168:1059–1066.10.1016/j.plantsci.2004.12.002
  • Rouser G, Fleischer S, Yamamoto A. 1970. Two dimensional thin layer chromatographic separation of polar lipids and determination of phospholipids by phosphorus analysis of spots. Lipids 5:494–496. DOI:10.1007/BF02531316.
  • Sampietro DA, Vattuone MA. 2006. Sugarcane straw and its phytochemicals as growth regulators of weed and crop plants. Plant Growth Regul. 48:21–27.10.1007/s10725-005-5135-9
  • Santiago R, de Armas R, Legaz ME, Vicente C. 2009. Changes in phenolic acids content, phenylalanine ammonia-lyase and peroxidase activities in sugarcane leaves induced by elicitors isolated from Xanthomonas albilineans. Aust J Plant Physiol. 38(4):357–365. DOI:10.1071/AP09009.
  • Shaukat SS, Munir N, Siddiqui IA. 2003. Allelopathic responses of Conyza canadensis (L.) cronquist: a cosmopolitan weed. Asian J Plant Sci. 2:1034–1039 http://www.docsdrive.com/pdfs/ansinet/ajps/2003/1034-1039.pdf.
  • Singh A, Singh D, Singh NB. 2009. Allelochemical stress produced by aqueous leachate of Nicotiana plumbaginifolia Viv. Plant Growth Regul. 58:163–171.10.1007/s10725-009-9364-1
  • Singh HP, Batish DR, Kohli RK. 1999. Autotoxicity: concept, organisms, and ecological significance. Crit Rev Plant Sci. 18:757–772. DOI:10.1080/07352689991309478.
  • Slinkard K, Singleton VL. 1977. Total phenol analyses: automation and comparison with manual methods. Am J Enol Viticulture 28:49–55 http://www.ajevonline.org/content/28/1/49.
  • Sofo A, Scopa A, Hashem A, Abd_Allah EF. 2016. Lipid metabolism and oxidation in plants subjected to abiotic stresses. In: MM Azooz, P Ahmad, editors. Plant-environment interaction: responses and approaches to mitigate stress. First Edition. © 2016 John Wiley & Sons, Ltd. Published 2016 by John Wiley & Sons, Ltd; p. 205–213. DOI:10.1002/9781119081005.ch11
  • Sundaramoorhty S, Sen DN. 1990. Allelopathic effects of Tephrosiapurpurea. J Indian Bot Soc. 69:251–255.
  • Sunita RNB, Singh S. 2015. Allelopathic effects of Hyptis suaveolens L. on growth and metabolism of pea seedlings. Sci Agric. 12(3):171–176. http://pscipub.com/Journals/Data/JList/Scientia%20Agriculturae/2015/Volume%2012/Issue%203/8.pdf.
  • Swain T, Hillis WE. 1959. The phenolic constituents ofPrunus domestica. I.—the quantitative analysis of phenolic constituents. J Sci Food Agric. 10:63–68. DOI:10.1002/jsfa.2740100110.
  • Tomar NS, Agarwal RM. 2013. Influence of treatment of Jatropha curcas L. leachates and potassium on growth and phytochemical constituents of wheat (Triticum aestivum L.). Am J Plant Sci. 04:1134–1150. DOI:10.4236/ajps.2013.45140.
  • Tomar NS, Sharma M, Agarwal RM. 2015. Phytochemical analysis of Jatropha curcas L. during different seasons and developmental stages and seedling growth of wheat (Triticum aestivum L) as affected by extracts/leachates of Jatropha curcas L. Physiol Mol Biol Plants 21(1):83–92. DOI:10.1007/s12298-014-0272-0.
  • Trémolières A, Lepage M. 1971. Changes in lipid composition during greening of etiolated pea seedlings. Plant Physiol. 47:329–334.10.1104/pp.47.2.329
  • Tyagi SR, Agarwal RM. 2011. Analysis of Zizyphus mauritiana Lam. from allelopathic view point. J Funct Exp Bot. 1(2):133–138.
  • Upchurch RC. 2008. Fatty acid unsaturation, mobilization, and regulation in the response of plants to stress. Biotechnol Lett. 30:967–977.10.1007/s10529-008-9639-z
  • Van Rossum MWPC, Alberda M, Van der Plas LHW. 1997. Role of oxidative damage in tulip bulb scale micropropagation. Plant Sci. 130:207–216. http://library.wur.nl/WebQuery/wurpubs/37749.10.1016/S0168-9452(97)00215-X
  • Venkateshwarlu G, Ravindra V, Prabha C. 2001. Mangiferin: an allelopathin from mango (Mangifera indica L.) leaves. Allelopathy J. 8:221–224.
  • Vesterdal L, Ritter E, Gundersen P. 2002. Change in soil organic carbon following afforestation of former arable land. For Ecol Manage. 169:137–147. http://vbn.aau.dk/en/publications/change-in-soil-organic-carbon-following-afforestation-of-former-arable-land(3433fbf0-93a2-11dd-a004-000ea68e967b).html.10.1016/S0378-1127(02)00304-3
  • Weir TL, Park SW, Vivanco JM. 2004. Biochemical and physiological mechanisms mediated by allelochemicals. Curr Opin Plant Biol. 7:472–479. DOI:10.1016/j.pbi.2004.05.007.
  • Yang CM, Chang IF, Lin SJ, Chou CH. 2004. Effects of three allelopathic phenolics on chlorophyll accumulation of rice (Oryza sativa) seedlings: II. Stimulation of consumption-orientation. Bot Bull Acad Sci. 45:119–125 https://ejournal.sinica.edu.tw/bbas/content/2002/4/bot434-07.html.
  • Yasmeen A, Basra SMA, Farooq M, Rehman H, Hussain N, Athar HR. 2013. Exogenous application of moringa leaf extract modulates the antioxidant enzyme system to improve wheat performance under saline conditions. Plant Growth Reg. 69:225–233. DOI:10.1007/s10725-012-9764-5.
  • Zhu SY, Hong DL. 2008. Comparison between two hybrid cultivars of indica rice (Oryza sativa L.) in seed vigor and biochemical traits after aging. Chin J Eco-Agric. 16(2):396–400. DOI:10.3724/SP.J.1011.2008.00396

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