Einhellig FA, Leather GR (1988) Potentials for exploiting allelopathy to enhance crop production. J
ChemEcol 14:1829–1844. https://doi.org/10.1007/BF01013480
Farooq M, Hussain T, Wakeel A, Cheema ZA (2014) Differential response of maize and mungbean
to tobacco allelopathy. Exp Agric 50:611–624. https://doi.org/10.1017/S0014479714000106
Favaretto A, Scheffer-Basso SM, Perez NB (2018) Allelopathy in Poaceae species present in Brazil.
A review. Agron Sustain Dev. https://doi.org/10.1007/s13593-018-0495-5
Gaudet CL, Keddy PA (1988) A comparative approach to predicting competitive ability from plant
traits. Nature 334:242–243
Gealy D, Ottis B, Talbert R, Moldenhauer K, Yang W (2005) Evaluation and improvement of
allelopathic rice germplasm at Stuttgart, Arkansas, USA. In: JDI H, An M, Wu H, Kent JH (eds)
Proceedings fourth world congress on allelopathy, Charles Sturt University, WaggaWagga,
NSW, Australia, 21–26 August 2005. International Allelopathy Society, pp 157–163
Golisz A, Sugano M, Fujii Y (2008) Microarray expression profiling of Arabidopsis thaliana L. in
response to allelochemicals identified in buckwheat. J Exp Bot 59:3099–3109. https://doi.org/
10.1093/jxb/ern168
Grummer G (1955) Die gegenseitigeBeeinflussunghohererPflanzen-Allelopathie. Fischer, Jena
Haddadchi GR, Gerivani Z (2009) Effects of phenolic extracts of canola (Brassica napus L.) on
444 germination and physiological responses of soybean (Glycine max L.) seedlings. Int J Plant
445 Prod 3:63–74
Haider G, Cheema ZA, Farooq M, Wahid A (2015) Performance and nitrogen use of wheat cultivars
in response to the application of allelopathic crop residuesand3,4-dimethyl pyrazole phosphate.
Int J Agric Biol 17:261–270
Hameed A, Hussain SA, Ansar H, Suleria R (2019) Co-evolution of secondary metabolites.
December. https://doi.org/10.1007/978-3-319-76887-8
Harborne JB (ed) (1989) Plant phenolics, Methods in plant biochemistry no. 1, vol 1. Academic,
London
Hebert RB (1981) The biosynthesis of secondary metabolites. Chapman and Hall Ltd, New York,
pp 1–179
Hejl AM, Koster KL (2004) Juglone disrupts root plasma membrane H+-ATP ase activity and
impairs water uptake, root respiration, and growth in soybean (Glycine max) and corn (Zea
mays). J Chem Ecol 30:453–471. https://doi.org/10.1023/B:JOEC.0000017988.20530.d5
Hill EC, Ngouajiio, Nair MG (2006) Differential response of weeds and vegetable crops to aqueous
extracts of hairy vetch and cowpea. Hortic Sci 41(3):695–700. https://www.sciencedirect.com/
bookseries/advances-in-botanical-research/vol/82
Iannucci A, Fragasso M, Platani C, Papa R (2013) Plant growth and phenolic compounds in the
rhizosphere soil of wild oat (Avena fatua L.). Front Plant Sci 4:509. https://doi.org/10.3389/fpls.
2013.00509
Inderjit (1996) Plant phenolics in allelopathy. Bot Rev 62(2):186–202. https://doi.org/10.1007/
BF02857921
Iqbal J, Cheema ZA, An M (2007) Intercropping of field crops in cotton for the management of
purple nutsedge (Cyperus rotundus L.). Plant Soil 300:163–171. https://doi.org/10.1007/
s11104-007-9400-8
Jabran K (2017) Manipulation of allelopathic crops for weed control, 1st edn. Springer. https://doi.
org/10.1007/978-3-319-53186-1
Jabran K, Mahajan G, Sardana V, Chauhan BS (2015) Allelopathy for weed control in agricultural
systems. Crop Prot 72:57–65
Jensen LB, Courtois B, Shen L, Li Z, Olofsdotter M, Mauleon RP (2001) Locating genes
controlling allelopathic effects against Echinochloa crus-galli (L.) in upland rice. Agric J
93:21Ð26
Jung WS, Kim KH, Ahn JK, Hahn SJ, Chung IM (2004) Allelopathic potential of rice (Oryza sativa
L.) residues against Echinochloa crus-galli. Crop Prot 23:211–218. https://doi.org/10.1016/j.
cropro.2003.08.019
5 Allelochemicals as Natural Herbicides for Sustainable Agriculture to Promote. . .
113
ChemEcol 14:1829–1844. https://doi.org/10.1007/BF01013480
Farooq M, Hussain T, Wakeel A, Cheema ZA (2014) Differential response of maize and mungbean
to tobacco allelopathy. Exp Agric 50:611–624. https://doi.org/10.1017/S0014479714000106
Favaretto A, Scheffer-Basso SM, Perez NB (2018) Allelopathy in Poaceae species present in Brazil.
A review. Agron Sustain Dev. https://doi.org/10.1007/s13593-018-0495-5
Gaudet CL, Keddy PA (1988) A comparative approach to predicting competitive ability from plant
traits. Nature 334:242–243
Gealy D, Ottis B, Talbert R, Moldenhauer K, Yang W (2005) Evaluation and improvement of
allelopathic rice germplasm at Stuttgart, Arkansas, USA. In: JDI H, An M, Wu H, Kent JH (eds)
Proceedings fourth world congress on allelopathy, Charles Sturt University, WaggaWagga,
NSW, Australia, 21–26 August 2005. International Allelopathy Society, pp 157–163
Golisz A, Sugano M, Fujii Y (2008) Microarray expression profiling of Arabidopsis thaliana L. in
response to allelochemicals identified in buckwheat. J Exp Bot 59:3099–3109. https://doi.org/
10.1093/jxb/ern168
Grummer G (1955) Die gegenseitigeBeeinflussunghohererPflanzen-Allelopathie. Fischer, Jena
Haddadchi GR, Gerivani Z (2009) Effects of phenolic extracts of canola (Brassica napus L.) on
444 germination and physiological responses of soybean (Glycine max L.) seedlings. Int J Plant
445 Prod 3:63–74
Haider G, Cheema ZA, Farooq M, Wahid A (2015) Performance and nitrogen use of wheat cultivars
in response to the application of allelopathic crop residuesand3,4-dimethyl pyrazole phosphate.
Int J Agric Biol 17:261–270
Hameed A, Hussain SA, Ansar H, Suleria R (2019) Co-evolution of secondary metabolites.
December. https://doi.org/10.1007/978-3-319-76887-8
Harborne JB (ed) (1989) Plant phenolics, Methods in plant biochemistry no. 1, vol 1. Academic,
London
Hebert RB (1981) The biosynthesis of secondary metabolites. Chapman and Hall Ltd, New York,
pp 1–179
Hejl AM, Koster KL (2004) Juglone disrupts root plasma membrane H+-ATP ase activity and
impairs water uptake, root respiration, and growth in soybean (Glycine max) and corn (Zea
mays). J Chem Ecol 30:453–471. https://doi.org/10.1023/B:JOEC.0000017988.20530.d5
Hill EC, Ngouajiio, Nair MG (2006) Differential response of weeds and vegetable crops to aqueous
extracts of hairy vetch and cowpea. Hortic Sci 41(3):695–700. https://www.sciencedirect.com/
bookseries/advances-in-botanical-research/vol/82
Iannucci A, Fragasso M, Platani C, Papa R (2013) Plant growth and phenolic compounds in the
rhizosphere soil of wild oat (Avena fatua L.). Front Plant Sci 4:509. https://doi.org/10.3389/fpls.
2013.00509
Inderjit (1996) Plant phenolics in allelopathy. Bot Rev 62(2):186–202. https://doi.org/10.1007/
BF02857921
Iqbal J, Cheema ZA, An M (2007) Intercropping of field crops in cotton for the management of
purple nutsedge (Cyperus rotundus L.). Plant Soil 300:163–171. https://doi.org/10.1007/
s11104-007-9400-8
Jabran K (2017) Manipulation of allelopathic crops for weed control, 1st edn. Springer. https://doi.
org/10.1007/978-3-319-53186-1
Jabran K, Mahajan G, Sardana V, Chauhan BS (2015) Allelopathy for weed control in agricultural
systems. Crop Prot 72:57–65
Jensen LB, Courtois B, Shen L, Li Z, Olofsdotter M, Mauleon RP (2001) Locating genes
controlling allelopathic effects against Echinochloa crus-galli (L.) in upland rice. Agric J
93:21Ð26
Jung WS, Kim KH, Ahn JK, Hahn SJ, Chung IM (2004) Allelopathic potential of rice (Oryza sativa
L.) residues against Echinochloa crus-galli. Crop Prot 23:211–218. https://doi.org/10.1016/j.
cropro.2003.08.019
5 Allelochemicals as Natural Herbicides for Sustainable Agriculture to Promote. . .
113
