Canel C (1999) From genes to phytochemicals: the genomics approach to the characterization and
utilization of plant secondary metabolism. ActaHortic 500:51–57
Cantrell CL, Dayan FE, Duke SO (2012) Natural products as sources for new pesticides. J Nat Prod
75:1231–1242. https://doi.org/10.1021/np300024u
Chai TT, Ooh KF, Chue PS, Wong FC (2013) Leucaena leucocephala leachate compromised
membrane integrity, respiration and ant oxidative defense of water hyacinth leaf tissues. Bot
Stud 54(1):1–7. https://doi.org/10.1186/1999-3110-54-8
Cheema Z, Jaffer I, Khaliq A (2003) Reducing isoproturon dose in combination with sorgaab for
weed control in wheat. Pak J Weed Sci Res 9:60
Chung IM, Ali M, Ahmad A, Lim JD, Yu CY, Kim JS (2006) Chemical constituents of rice (Oryza
sativa) hulls and their herbicidal activity against duckweed (Lemna paucicostata ). Phytochem
Anal 17:36–45. https://doi.org/10.1002/pca.879
Croteau R, Kutchan TM, Lewis NG (2000) Natural products (secondary metabolites). In:
Buchanan B, Gruissem W, Jones R (eds) Biochemistry and molecular biology of plants.
American Society of Plant Biologists, Rockville, pp 1250–1268
Cruz-Ortega R, Ayala-Cordero GA, AL. (2002) Allelochemical stress produced by the aqueous
leachate of Callicarpa acuminata: effects on roots of bean, maize, and tomato. Physiol
Plantarum 116:20–27. https://doi.org/10.1034/j.1399-3054.2002.1160103.x
Dayan FE, Duke SO (2014) Natural compounds as next-generation herbicides. Plant Physiol
166:1090–1105. https://doi.org/10.1104/pp.114.239061
Dayan FE, Cantrell CL, Duke SO (2009) Natural products in crop protection. Bioorg Med Chem 17
(12):4022–4034. https://doi.org/10.1016/j.bmc.2009.01.046
Dilday RH, Nastasi P, Lin J, Smith RJ (1991) Allelopathic activity in rice (Oryza sativa L.) against
duck salad (Heteranthera limosa (Sw.) will.). In: Hansen JD, Shaffer MJ, Ball DA, Cole CV
(eds) Symposium proceedings ‘Sustainable agriculture for the Great Plain’. USDA, Agricultural
Research Services, ARS-89, pp 193–201
Dilday RH, Yan WG, Moldenhauer KAK, Gravois KA (1998) Allelopathic activity in rice for
controlling major aquatic weeds. In: Olofsdotter M (ed) Allelopathy in rice. Rice Research
Institute, Manila, pp 7–26
Ding J, Sun Y, Xiao CL, Shi K, Zhou YH, Yu JQ (2007) Physiological basis of different
allelopathic reactions of cucumber and figleaf gourd plants to cinnamic acid. J Exp Bot
58:3765–3773. https://doi.org/10.1093/jxb/erm227
Dudareva N, Klempien A, Muhlemann JK, Kaplan I (2013) Biosynthesis, function, and metabolic
engineering of plant volatile organic compounds. New Phytol 198:16–32. https://doi.org/10.
1111/nph.12145
Duke SO (2003) Weeding with transgenes. Trends Biotechnol 21:192–195. https://doi.org/10.1016/
s0167-7799(03)00056-8
Duke SO (2010) Allelopathy: current status of research and future of the discipline. A commentary.
Allelo J 25:17–30
Duke S, Scheffler B, Dayan F, Weston L, Ota E (2001) Strategies for using transgenes to produce
Allelopathic crops. Weed Technol 15(4):826–834. https://doi.org/10.1614/0890-037X(2001)
015[0826:SFUTTP]2.0.CO;2
Duke SO, Dayan FE, Rimando AM, Schrader KK, Aliotta G, Oliva A, Romagni JG (2002)
Chemicals from nature for weed management. Weed Sci 50(2):138–151. https://doi.org/10.
1614/0890-037X(2001)015[0826:SFUTTP]2.0.CO;2
Duke SO, Dayan EE, Baerson SE, Romagni JG, Agarwal A, Oliva A (2003) Natural phytotoxins
with potential for development in weed management strategies. In: Ramos G, Voss G (eds)
Chemistry of crop protection. Wiley-VCH Verlag, Weinheim, pp 143–154
Einhellig FA (1996) Interactions involving allelopathy in the cropping system. Agron J
88:886–893. https://doi.org/10.2134/agronj1996.00021962003600060007x
Einhellig FA (1999) An integrated view of allelochemicals amid multiple stresses. In: Inderjit,
Dakshini KMM, Foy CL (eds) Principles and practices in plant ecology. CRC Press, Boca
Raton, pp 479–494
112
H. Palanivel et al.
utilization of plant secondary metabolism. ActaHortic 500:51–57
Cantrell CL, Dayan FE, Duke SO (2012) Natural products as sources for new pesticides. J Nat Prod
75:1231–1242. https://doi.org/10.1021/np300024u
Chai TT, Ooh KF, Chue PS, Wong FC (2013) Leucaena leucocephala leachate compromised
membrane integrity, respiration and ant oxidative defense of water hyacinth leaf tissues. Bot
Stud 54(1):1–7. https://doi.org/10.1186/1999-3110-54-8
Cheema Z, Jaffer I, Khaliq A (2003) Reducing isoproturon dose in combination with sorgaab for
weed control in wheat. Pak J Weed Sci Res 9:60
Chung IM, Ali M, Ahmad A, Lim JD, Yu CY, Kim JS (2006) Chemical constituents of rice (Oryza
sativa) hulls and their herbicidal activity against duckweed (Lemna paucicostata ). Phytochem
Anal 17:36–45. https://doi.org/10.1002/pca.879
Croteau R, Kutchan TM, Lewis NG (2000) Natural products (secondary metabolites). In:
Buchanan B, Gruissem W, Jones R (eds) Biochemistry and molecular biology of plants.
American Society of Plant Biologists, Rockville, pp 1250–1268
Cruz-Ortega R, Ayala-Cordero GA, AL. (2002) Allelochemical stress produced by the aqueous
leachate of Callicarpa acuminata: effects on roots of bean, maize, and tomato. Physiol
Plantarum 116:20–27. https://doi.org/10.1034/j.1399-3054.2002.1160103.x
Dayan FE, Duke SO (2014) Natural compounds as next-generation herbicides. Plant Physiol
166:1090–1105. https://doi.org/10.1104/pp.114.239061
Dayan FE, Cantrell CL, Duke SO (2009) Natural products in crop protection. Bioorg Med Chem 17
(12):4022–4034. https://doi.org/10.1016/j.bmc.2009.01.046
Dilday RH, Nastasi P, Lin J, Smith RJ (1991) Allelopathic activity in rice (Oryza sativa L.) against
duck salad (Heteranthera limosa (Sw.) will.). In: Hansen JD, Shaffer MJ, Ball DA, Cole CV
(eds) Symposium proceedings ‘Sustainable agriculture for the Great Plain’. USDA, Agricultural
Research Services, ARS-89, pp 193–201
Dilday RH, Yan WG, Moldenhauer KAK, Gravois KA (1998) Allelopathic activity in rice for
controlling major aquatic weeds. In: Olofsdotter M (ed) Allelopathy in rice. Rice Research
Institute, Manila, pp 7–26
Ding J, Sun Y, Xiao CL, Shi K, Zhou YH, Yu JQ (2007) Physiological basis of different
allelopathic reactions of cucumber and figleaf gourd plants to cinnamic acid. J Exp Bot
58:3765–3773. https://doi.org/10.1093/jxb/erm227
Dudareva N, Klempien A, Muhlemann JK, Kaplan I (2013) Biosynthesis, function, and metabolic
engineering of plant volatile organic compounds. New Phytol 198:16–32. https://doi.org/10.
1111/nph.12145
Duke SO (2003) Weeding with transgenes. Trends Biotechnol 21:192–195. https://doi.org/10.1016/
s0167-7799(03)00056-8
Duke SO (2010) Allelopathy: current status of research and future of the discipline. A commentary.
Allelo J 25:17–30
Duke S, Scheffler B, Dayan F, Weston L, Ota E (2001) Strategies for using transgenes to produce
Allelopathic crops. Weed Technol 15(4):826–834. https://doi.org/10.1614/0890-037X(2001)
015[0826:SFUTTP]2.0.CO;2
Duke SO, Dayan FE, Rimando AM, Schrader KK, Aliotta G, Oliva A, Romagni JG (2002)
Chemicals from nature for weed management. Weed Sci 50(2):138–151. https://doi.org/10.
1614/0890-037X(2001)015[0826:SFUTTP]2.0.CO;2
Duke SO, Dayan EE, Baerson SE, Romagni JG, Agarwal A, Oliva A (2003) Natural phytotoxins
with potential for development in weed management strategies. In: Ramos G, Voss G (eds)
Chemistry of crop protection. Wiley-VCH Verlag, Weinheim, pp 143–154
Einhellig FA (1996) Interactions involving allelopathy in the cropping system. Agron J
88:886–893. https://doi.org/10.2134/agronj1996.00021962003600060007x
Einhellig FA (1999) An integrated view of allelochemicals amid multiple stresses. In: Inderjit,
Dakshini KMM, Foy CL (eds) Principles and practices in plant ecology. CRC Press, Boca
Raton, pp 479–494
112
H. Palanivel et al.
