Nishida N, Tamotsu S, Nagata N, Saito C, Sakai A (2005) Allelopathic effects of volatile
monoterpenoids produced by Salvia leucophylla: inhibition of cell proliferation and DNA
synthesis in the root apical meristem of Brassica campestris seedlings. J Chem Ecol
31:1187–1203. https://doi.org/10.1007/s10886-0054256-y
Olkowski AA, Amarowicz R, Peiquiang Y, Mckinnon JJ, Maenz DD (2003) A rapid HPLC
558 method for determination of major phenolic acids in plant material. Polish J Food Nutri
Sci 559(12):53–57
Olofsdotter M, Navarez D, Moody K (1995) Allelopathic potential in rice (Oryza sativa L.)
germplasm. Ann Appl Biol 127:543–560. https://doi.org/10.1111/j.1744-7348.1995.tb07611.x
Olofsdotter M, Navarez D, Rebulanan M, Streibig JC (1999) Weed suppressing rice cultivars–does
allelopathy play a role? Weed Res 39:441–454. https://doi.org/10.1046/j.1365-3180.1999.
00159.x
Olofsdotter M, Rebulanan M, Madrid A, Dali W, Navarez D, Olk DC. (2002). Why phenolic acids
are unlikely primary allelochemicals in rice. J Chem Ecol 28(1):229–242. https://doi.org/
10.1023/a:1013531306670.
Paré PW, Tumlinson JH (1999) Plant volatiles as a defense against insect herbivores. Plant Physiol
121(2):325–332. https://doi.org/10.1104/pp.121.2.325
Pereira IP, Dias AS, Dias LS (2016) Defensive role of allelopathic secondary compounds in plants
I: testing two independent general hypotheses. J Negative Results Ecol Evol Biol 11:10–24
Putnam AR, Duke WB (1974) Biological suppression of weeds: evidence for allelopathy in
accessions of cucumber. Science 185:370–371
Putnam AR, Tang CS (1986) Allelopathy: state of the science. In: Putnam AR, Tang CS (eds) The
science of allelopathy. Wiley, New York, pp 1–19
Rice EL (1984) Allelopathy, 2nd edn, Rice EL (ed). Academic, Orlando, p 422
Rimando AM, Dayan FE, Czarnota MA, Weston LA, Duke SO (1998) A new photosystem II
electron transfer inhibitor from Sorghum bicolor. J Nat Prod 61:927–930. https://doi.org/10.
1021/np980325h
Rivoal A, Fernandez C, Greff S, Montes N, Vila B (2011) Does competition stress decrease
allelopathic potential? Biochem Syst Ecol 39:401–407. https://doi.org/10.1016/j.bse.2011.05.
017ff.ffhal-01764833f
Scavo A, Abbate C, Mauromicale G (2019) Plant allelochemicals: agronomic, nutritional, and
ecological relevance in the soil system. Plant Soil 442:23–48. https://doi.org/10.1007/s11104019-04190-y
Shehzad T, Okuno K (2020) Genetic analysis of QTLs controlling allelopathic characteristics in
sorghum. PLoS One 15(7):e0235896. https://doi.org/10.1371/journal.pone.0235896
Song Q, Qin F, He H et al (2019) Allelopathic potential of rain leachates from Eucalyptus urophylla
on four tree species. Agroforest Syst 93:1307–1318. https://doi.org/10.1007/s10457-018-02408
Stanislaus MA, Cheng CL (2002) Genetically engineered self-destruction: an alternative to herbicides for cover crop systems. Weed Sci 50:794–801.
Takahashi L, Sert MA, Kelmer-Bracht AM, Bracht A, Ishii-Iwamoto EL (1998) Effects of rutin and
quercetin on mitochondrial metabolism and ATP levels in germinating tissues of Glycine max.
Plant Physiol Biochem 36:495–501
Tawaha AM, Turk MA (2003) Allelopathic effects of black mustard (Brassica nigra) on 597 germinations and growth of wild barley (Hordeum spontaneum). J Agron Crop Sci 5:298–306.
https://doi.org/10.1046/j.1439-037X.2003.00047.x
Toyomasu T, Kagahara T, Okada K, Koga J, Hasegawa M, Mitsuhashi W, Sassa T, Yamane H
(2008) Diterpene phytoalexins are biosynthesized in and exuded from the roots of rice seedlings.
Biosci Biotech Bioch 72:562–567
Tursun N, Işık D, Demir Z, Jabran K (2018) Use of living, mowed, and soil-incorporated cover
crops for weed control in apricot orchards. Agronomy 8(8):150
Vyvyan WR (2002) Allelochemicals as leads to herbicides and agrochemicals. Tetrahedron
58:1631–1646
5 Allelochemicals as Natural Herbicides for Sustainable Agriculture to Promote. . .
115
monoterpenoids produced by Salvia leucophylla: inhibition of cell proliferation and DNA
synthesis in the root apical meristem of Brassica campestris seedlings. J Chem Ecol
31:1187–1203. https://doi.org/10.1007/s10886-0054256-y
Olkowski AA, Amarowicz R, Peiquiang Y, Mckinnon JJ, Maenz DD (2003) A rapid HPLC
558 method for determination of major phenolic acids in plant material. Polish J Food Nutri
Sci 559(12):53–57
Olofsdotter M, Navarez D, Moody K (1995) Allelopathic potential in rice (Oryza sativa L.)
germplasm. Ann Appl Biol 127:543–560. https://doi.org/10.1111/j.1744-7348.1995.tb07611.x
Olofsdotter M, Navarez D, Rebulanan M, Streibig JC (1999) Weed suppressing rice cultivars–does
allelopathy play a role? Weed Res 39:441–454. https://doi.org/10.1046/j.1365-3180.1999.
00159.x
Olofsdotter M, Rebulanan M, Madrid A, Dali W, Navarez D, Olk DC. (2002). Why phenolic acids
are unlikely primary allelochemicals in rice. J Chem Ecol 28(1):229–242. https://doi.org/
10.1023/a:1013531306670.
Paré PW, Tumlinson JH (1999) Plant volatiles as a defense against insect herbivores. Plant Physiol
121(2):325–332. https://doi.org/10.1104/pp.121.2.325
Pereira IP, Dias AS, Dias LS (2016) Defensive role of allelopathic secondary compounds in plants
I: testing two independent general hypotheses. J Negative Results Ecol Evol Biol 11:10–24
Putnam AR, Duke WB (1974) Biological suppression of weeds: evidence for allelopathy in
accessions of cucumber. Science 185:370–371
Putnam AR, Tang CS (1986) Allelopathy: state of the science. In: Putnam AR, Tang CS (eds) The
science of allelopathy. Wiley, New York, pp 1–19
Rice EL (1984) Allelopathy, 2nd edn, Rice EL (ed). Academic, Orlando, p 422
Rimando AM, Dayan FE, Czarnota MA, Weston LA, Duke SO (1998) A new photosystem II
electron transfer inhibitor from Sorghum bicolor. J Nat Prod 61:927–930. https://doi.org/10.
1021/np980325h
Rivoal A, Fernandez C, Greff S, Montes N, Vila B (2011) Does competition stress decrease
allelopathic potential? Biochem Syst Ecol 39:401–407. https://doi.org/10.1016/j.bse.2011.05.
017ff.ffhal-01764833f
Scavo A, Abbate C, Mauromicale G (2019) Plant allelochemicals: agronomic, nutritional, and
ecological relevance in the soil system. Plant Soil 442:23–48. https://doi.org/10.1007/s11104019-04190-y
Shehzad T, Okuno K (2020) Genetic analysis of QTLs controlling allelopathic characteristics in
sorghum. PLoS One 15(7):e0235896. https://doi.org/10.1371/journal.pone.0235896
Song Q, Qin F, He H et al (2019) Allelopathic potential of rain leachates from Eucalyptus urophylla
on four tree species. Agroforest Syst 93:1307–1318. https://doi.org/10.1007/s10457-018-02408
Stanislaus MA, Cheng CL (2002) Genetically engineered self-destruction: an alternative to herbicides for cover crop systems. Weed Sci 50:794–801.
Takahashi L, Sert MA, Kelmer-Bracht AM, Bracht A, Ishii-Iwamoto EL (1998) Effects of rutin and
quercetin on mitochondrial metabolism and ATP levels in germinating tissues of Glycine max.
Plant Physiol Biochem 36:495–501
Tawaha AM, Turk MA (2003) Allelopathic effects of black mustard (Brassica nigra) on 597 germinations and growth of wild barley (Hordeum spontaneum). J Agron Crop Sci 5:298–306.
https://doi.org/10.1046/j.1439-037X.2003.00047.x
Toyomasu T, Kagahara T, Okada K, Koga J, Hasegawa M, Mitsuhashi W, Sassa T, Yamane H
(2008) Diterpene phytoalexins are biosynthesized in and exuded from the roots of rice seedlings.
Biosci Biotech Bioch 72:562–567
Tursun N, Işık D, Demir Z, Jabran K (2018) Use of living, mowed, and soil-incorporated cover
crops for weed control in apricot orchards. Agronomy 8(8):150
Vyvyan WR (2002) Allelochemicals as leads to herbicides and agrochemicals. Tetrahedron
58:1631–1646
5 Allelochemicals as Natural Herbicides for Sustainable Agriculture to Promote. . .
115
