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Articles

Allelopathic potential of winter and summer cover crops on the germination and seedling growth of Solanum americanum

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Pages 232-240 | Received 01 Jun 2020, Accepted 07 Jan 2021, Published online: 19 Jan 2021

References

  • Adeux G, Vieren E, Carlesi S, Bàrberi P, Munier-Jolain N, Cordeau S. 2019. Mitigating crop yield losses through weed diversity. Nat Sust. 2(11):1018–1026.
  • Adhikari L, Mohseni-Moghadam M, Missaoui A. 2018. Allelopathic effects of cereal rye on weed suppression and forage yield in alfalfa. Am J Plant Sci. 09(04):685–700.
  • Agostinetto D, Fontana LC, Vargas L, Markus C, Oliveira E. 2013. Relative competitive ability of crabgrass in coexistence with flooded rice and soybean. Pesq Agropec Bras. 48(10):1315–1322.
  • Alonso-Ayuso M, Gabriel JL, García-González I, Del Monte JP, Quemada M. 2018. Weed density and diversity in a long-term cover crop experiment background. Crop Prot. 112:103–111.
  • Avav T, Shave PA, Hilakaan PH. 2008. Growth of Mucuna accessions under fallow and their influence on soil and weeds in a sub-humid savanna environment. J App Biosci. 10:442–448.
  • Barthès B, Barthès B, Azontonde A, Blanchart E, Girardin C, Villenave C, Lesaint S, Oliver R, Feller C. 2004. Effect of a legume cover crop (Mucuna pruriens var. utilis) on soil carbon in an Ultisol under maize cultivation in southern Benin. Soil Use Manage. 20(2):231–239.
  • Berry SD, Rhodes R, Foster J, Risede J-M, van Antwerpen R. 2011. The effect of cover crops on plant parasitic-nematodes of sugarcane. Int J Pest Manag. 57(4):363–375.
  • Bortolini MF, Fortes AMT. 2005. Allelopathic effects on the germination of soybean seeds (Glycine max L. Merrill). Sem Ci Agr. 26(1):5–10.
  • Brasil. 2009. Regras para análise de sementes. Brasília: Ministério da Agricultura, Pecuária e Abastecimento; p. 399. https://www.gov.br/agricultura/pt-br/assuntos/insumos-agropecuarios/arquivos-publicacoes-insumos/2946_regras_analise__sementes.pdf.
  • Burgos NR, Talbert RE. 2000. Differential activity of allelochemicals from Secale cereale in seedling bioassays. Weed Sci. 48(3):302–310.2.0.CO;2]
  • Calegari A, Tiecher T, Machado AC, Wutke EB, Canalli LBS, Bunch R, Rheinheimer DS. 2020. The role and management of soil mulch and cover crops. In: Kassam A, editor. Advances in conservation agriculture: systems and science. Vol. 1. Cambridge: Burleigh Dodds Science Publishing Ltd.
  • Cardoso IS, Jakelaitis A, Soares MP, Araújo VT, Cabral PHR. 2017. Weed community composition in different agro-systems. Com Sci. 8(1):139–148.
  • Carlsen SC, Kudsk P, Laursen B, Mathiassen SK, Mortensen AG, Fomsgaard IS. 2009. Allelochemicals in rye (Secale cereale L.): cultivar and tissue differences in the production of benzoxazinoids and phenolic acids. Nat Prod Commun. 4(2):199–208.
  • Carraro-Lemes CF, Scheffer-Basso SM, Deuner CC, Berghahn SCT. 2019. Analysis of genotypic variability in Avena spp. regarding allelopathic potentiality. Planta Daninha. 37:e019191107.
  • CemetRS - Centro Estadual de Meteorologia. 2012. Caracterização das condições climáticas, meteorológicas e de produção agrícola da região de Santa Rosa. Nota Técnica n. 06. Porto Alegre, Brazil: Fepagro; p. 12. http://www.cemet.rs.gov.br/upload/20120208104930nt_06_cemetrs.pdf.
  • Cimmino A, Fernández-Aparicio M, Avolio F, Yoneyama K, Rubiales D, Evidente A. 2015. Ryecyanatines A and B and ryecarbonitrilines A and B, substituted cyanatophenol, cyanatobenzo[1,3]dioxole, and benzo[1,3]dioxolecarbonitriles from rye (Secale cereale L.) root exudates: Novel metabolites with allelopathic activity on Orobanche seed germination and radicle growth. Phytochemistry. 109:57–65.
  • Dong H, Ma Y, Wu H, Jiang W, Ma X. 2020. Germination of Solanum nigrum L. (black nightshade) in response to different abiotic factors. Planta Daninha. 38:e020219463.
  • Eucharia ON, Edward AO. 2010. Allelopathy as expressed by Mucuna pruriens and the possibility for weed management. Int J Plant Physiol Biochem. 1:1–5.
  • Fay PK, Duke WB. 1977. An assessement of allelopathic potential in Avena germoplasm. Weed Sci. 25(3):224–228.
  • Forte CT, Nunes UR, Filho AC, Galon L, Chechi L, Roso R, Menegat AD, Rossetto EO, Franceschetti MB. 2019. Chemical and environmental factors driving germination of Solanum americanum seeds. Weed Biol Manag. 19(4):113–120.
  • Frandoloso FS, Galon L, Concenço G, Rossetto ERO, Bianchessi F, Santin CO, Forte CT. 2020. Interference and level of economic damage of alexandergrass on corn. Planta Daninha. 38:e020219966.
  • Germani G, Plenchette C. 2005. Potential of Crotalaria species as green manure crops for the management of pathogenic nematodes and beneficial mycorrhizal fungi. Plant Soil. 266(1–2):333–342.
  • Heap I. 2020. The international herbicide-resistant weed database. Wednesday, May 27, 2020. www.weedscience.org.
  • Herek JS, Vargas L, Trindade SAR, Rutkoski CF, Macagnan N, Hartmann PA, Hartmann MT. 2020. Can environmental concentrations of glyphosate affect survival and cause malformation in amphibians? Effects from a glyphosate-based herbicide on Physalaemus cuvieri and P. gracilis (Anura, Leptodactylidae). Environ Sci Pollut Res Int. 27(18):22619–22612.
  • Iannucci A, Fragasso M, Platani C, Narducci A, Miullo V, Papa R. 2012. Dynamics of release of allelochemical compounds from roots of wild oat (Avena fatua L.). Agrochimica. 56:185–192.
  • IAS - International, Allelopathy, and Society. 1996. Constitution. Drawn up during the first world congress on allelopathy: a science for the future, Cadiz, Spain. Canberra, Australia: IAS - International, Allelopathy, and Society.
  • Ibrahim AJ, Omar D, Magani EI. 2018. Evaluation on allelopathic potential of velvet bean (Mucuna cochinchinensis) on germination of goosegrass (Eleusine indica L.). Int J Innovat Approach Agric Res. 2(1):25–34.
  • Inderjit, Weston LA, Duke SO. 2005. Challenges, achievements and opportunities in allelopathy research. J Plant Interact. 1:69–81.
  • Jabran K. 2017. Rye allelopathy for weed control. In: Jabran K, editor. Manipulation of allelopathic crops for weed control. Cham, Switzerland: Springer; p. 49–56.
  • Jabran K, Mahajan G, Sardana V, Chauhan BS. 2015. Allelopathy for weed control in agricultural systems. Crop Prot. 72:57–65.
  • Kato-Noguchi H, Kosemura S, Yamamura S, Mizutani J, Hasegawa K. 1994. Allelopathy of oats. I. Assessment of allelopathic potential of extract of oat shoots and identification of an allelochemical. J Chem Ecol. 20(2):309–314.
  • Kong CH. 2010. Ecological pest management and control by using allelopathic weeds (Ageratum conyzoides, Ambrosia trifida, and Lantana camara) and their allelochemicals in China. Weed Biol Manag. 10(2):73–80.
  • Korres NE, Burgos NR, Travlos I, Vurro M, Gitsopoulos TK, Varanasi VK, Duke SO, Kudsk P, Brabham C, Rouse CE, et al. 2019. New directions for integrated weed management: Modern technologies, tools and knowledge discovery. Adv Agron. 155:243–219.
  • Lawley YE, Weil RR, Teasdale JR. 2011. Forage radish cover crop suppresses winter annual weeds in fall and before corn planting. Agron J. 103(1):137–144.
  • Lemessa F, Wakjira M. 2014. Mechanisms of ecological weed management by cover cropping: A review. J Biol Sci. 14(7):452–459.
  • Li ZR, Amist N, Bai LY. 2019. Allelopathy in sustainable weeds management. Allelopathy J. 48:109–138.
  • Liu X, Tian F, Tian Y, Wu Y, Dong F, Xu J, Zheng Y. 2016. Isolation and identification of potential allelochemicals from aerial parts of Avena fatua L. and their allelopathic effect on wheat. J Agric Food Chem. 64(18):3492–3500.
  • Macías FA, Chinchilla N, Varela RM, Oliveros-Bastidas A, Marin D, Molinillo JMG. 2005. Structure-activity relationship studies of benzoxazinones and related compounds. Phytotoxicity on Echinochloa crus-galli (L.) P. Beauv. J Agric Food Chem. 53(11):4373–4380. − 
  • Macías FA, Mejías FJR, Molinillo JMG. 2019. Recent advances in allelopathy for weed control: from knowledge to applications. Pest Manag Sci. 75(9):2413–2436.
  • Maguire JD. 1962. Speed of germination—aid in selection and evaluation for seedling emergence and vigor. Crop Sci. 2(2):176–177.
  • Mirsky SB, Ryan MR, Teasdale JR, Curran WS, Reberg-Horton CS, Spargo JT, Wells MS, Keene CL, Moyer JW. 2013. Overcoming weed management challenges in cover crop based organic rotational no-till soybean production in the Eastern United States. Weed Technol. 27(1):193–203.
  • Molisch H. 1938. Agents affecting plant growth and movement. Nature. 141:493–493.
  • Muzell Trezzi M, Vidal RA, Balbinot Junior AA, von Hertwig Bittencourt H, da Silva Souza Filho AP. 2016. Allelopathy: driving mechanisms governing its activity in agriculture. J Plant Interact. 11(1):53–60.
  • Oerke E-C. 2006. Crop losses to pests. J Agric Sci. 144(1):31–43.
  • Price AJ, Balkcom KS, Culpepper SA, Kelton JA, Nichols RL, Schomberg H. 2011. Glyphosate-resistant Palmer amaranth: a threat to conservation tillage. J Soil Water Conserv. 66(4):265–275.
  • Przepiorkowski T, Gorski SF. 1994. Influence of rye (Secale cereale) plant residues on germination and growth of three triazine-resistant and susceptible weeds. Weed Technol. 8(4):744–747.
  • Rice EL. 1985. Allelopathy — an overview. In: Cooper-Driver GA, Swain T, Conn EE, editors. Chemically mediated interactions between plants and other organisms. New York (NY): Springer; p. 81–105.
  • Richards JF. 1969. The quantitative analysis of growth. In: Stewart FC, editor. Analysis of growth: behavior of plants and their organs. Plant physiology: a treatise. New York (NY): Academic Press; p. 3–76.
  • ROLAS – Rede Oficial de Laboratórios de Análise de Solo e de Tecido Vegetal. 2016. Manual de calagem e adubação para os estados do Rio Grande do Sul e Santa Catarina. Viçosa - MG, Brazil: Sociedade Brasileira de Ciência do Solo, Núcleo Regional Sul: Comissão de Química e Fertilidade do Solo – RS/SC; p. 400. http://www.sbcs-nrs.org.br/docs/manual_de_adubacao_2004_versao_internet.pdf.
  • Sahid I, Tasrif A, Sastroutomo SS, Latiff A. 1993. Allelopathic potential of legume cover crops on selected weed species. Plant Prot Quart. 8:49–53.
  • Santana-Gomes SDM, Dias-Arieira CR, Ferreira JCA, Schwengber RP, Baldisera SS. 2019. Reproduction of Pratylenchus zeae and P. brachyurus in cover crops. Rev Caatinga. 32(2):295–301.
  • Scavo A, Mauromicale G. 2020. Integrated weed management in herbaceous field crops. Agronomy. 10(4):466.
  • Scavo A, Pandino G, Restuccia A, Mauromicale G. 2020. Leaf extracts of cultivated cardoon as potential bioherbicide. Sci Hortic. 261:109024.
  • Scavo A, Rial C, Varela RM, Molinillo JMG, Mauromicale G, Macías FA. 2019. Influence of genotype and harvest time on Cynara cardunculus L. sesquiterpene lactone profile. J Agric Food Chem. 67(23):6487–6496.
  • Shabbir A, Ali S, Khan IA, Belgeri A, Khan N, Adkins S. 2019. Suppressing parthenium weed with beneficial plants in Australian grasslands. Int J Pest Manag. https://doi.org/10.1080/09670874.2019.1697905
  • Shabbir A, Bajwa AA, Dhileepan K, Zalucki M, Khan N, Adkins S. 2018. Integrated use of biological approaches provides effective control of parthenium weed. Arch Agron Soil Sci. 64(13):1861–1878.
  • Shave PA, Ter-Rumum A, Enoch MI. 2012. Effects of time of intercropping of mucuna (Mucuna cochinchinensis) in maize (Zea mays) for weed and soil fertility management. Int J Agric Biol. 14:469–472.
  • Silva FB, Costa AC, Müller C, Nascimento KJT, Batista PF, Vital RG, Megguer CA, Jakelaitis A, Domingos M. 2020. Dipteryx alata, a tree native to the Brazilian Cerrado, is sensitive to the herbicide nicosulfuron. Ecotoxicology. 29(2):217–225.
  • Soares AR, Marchiosi R, Siqueira-Soares RC, Lima RB, Santos WD, Ferrarese-Filho O. 2014. The role of L-DOPA in plants. Plant Signal Behav. 9(4):e28275.
  • Souza Filho APS, Mourão M. Jr. 2010. Response pattern of Mimosa pudica e Senna obtusifolia to potentially allelopathic activity of Poaceae species. Planta Daninha. 28:927–938.
  • Souza M, Comin JJ, Kurtz C, Lovato PE, Lima AP, Kuhnen S. 2019. Phenolic compounds with allelopathic potential of Secale cereale L. and Raphanus sativus L. grown under an agroecological no-tillage system. Planta Daninha. 37:e019193842.
  • Teasdale JR, Coffman CB, Mangum RW. 2007. Potential long-term benefits of no-tillage and organic cropping systems for grain production and soil improvement. Agron J. 99(5):1297–1305.
  • Weiler DA, Giacomini SJ, Aita C, Schmatz R, Pilecco GE, Chaves B, Bastos LM. 2019. Summer cover crops shoot decomposition and nitrogen release in a no-tilled sandy soil. Rev Brasil Ciênc Solo. 43:e0190027.

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