Ali, K.W., Shinwari, M.I., and Khan, S. 2019. Screening of 196 medicinal plant species leaf litter for allelopathic potential. Pakistan Journal Botany, 51(6):2169–2177. https://doi.org/doi:10.30848/ PJB2019-6(43)
Babaei, S., Ahmadi, S., Tahmasebi, I., and Sarseyfi, M. 2022. Evaluation the efficacy of chemical and non-chemical weed control approaches in strawberry (Fragaria ananassa) fields in Kurdistan. Iranian Journal of Weed Science, 18:11-22. https://doi.org/10.22092/IJWS.2021.355871
Babaie, S., Adeli, T., Tahmasebi, I., and Mozaffarian, V. 2020. Introducing Waxy leaved mustard (Boreava orientalis Jaub. and Spach.) as a problematic weed in wheat fields of Kurdistan province. Cereal Research, 9: 261–269. https://doi.org/10.22124/cr.2020.14680.1526
Brijacak, L., Koscak, L., Sastarcic, V., Kljak, K., and Scepanovic, M. 2020. Sensivity of yellow foxtail (Setaria glauca L.) and barnyard grasss (Echinochloa crus- galli L.) to the aqueous extracts or dry biomass of cover crops. Journal of the science of food and agriculture, 100: 5510-5517. https://doi.org/10.1002/jsfa.10603
CABI, 2022. Boreava orientalis.
https://www.cabidigitallibrary.org/doi/full/10.1079/cabicompendium.112751
Capuani, S. 2012. Allelopathic effects of aqueous extract of Brassica napus on germination of seeds of Phaseolus vulgaris. Revista Brasileira de Ciências Agrárias, 7:451-455. https://doi.org/10.5039/agraria.v7i3a1732
Das, C.R., Mondal, N.K., Aditya, P., Datta, J.K,. Banerjee, A., and Das, K. 2012. Allelopathic potentialities of leachates of leaf litter of some selected tree species on gram seeds under laboratory conditions. Asian Journal Exp Biology Science, 3:59–65.
Glaze-Corcorana, S., Hashemi, M., Sadeghpour, A., Jahanzad, E., Keshavarz Afshar, R., Liu, X., and Herbert, S. J. 2020. Understanding intercropping to improve agricultural resiliency and environmental sustainability. Advances in Agronomy, 8:77-90. https://doi.org/10.1016/bs.agron.2020.02.004
Haddadchi, G. R, and Gerivani, Z. 2009. Effects of Phenolic Extracts of Canola ( Brassica napuse L .) on Germination and Physiological Responses of Soybean ( Glycin max L .) Seedlings. International journal of plant production, 3: 63-74. https://doi.org/10.22069/ijpp.2012.632
Haddadchi, G. R., and Khorasani, F. M. 2006. Allelopathic Effects of Aqueous Extracts of Sinapis arvensis on Growth and Related Physiological and Biochemical Responses of Brassica napus. International journal of plant production, 32: 23–28.
Hussain, M.I., and Reigosa, M.J. 2017. Evaluation of photosynthetic performance and carbon isotope discrimination in perennial ryegrass (Lolium perenne L.) under allelochemicals stress. Ecotoxicology, 26(5):613–624. https://doi.org/10.1007/s10646-017-1794-3
Hussain, M.I., El-Sheikh, M.A., and Reigosa, M.J. 2020. Allelopathic Potential of Aqueous Extract from Acacia melanoxylon R. Br. on Lactuca sativa. Plants, 9(9):1228. https://doi.org/10.3390/ plants9091228
Latif, S., Chiapusio, G., and Weston, L.A. 2017.Allelopathy and the role of allelochemicals in plant defence. Adv Bot Res. 82:19–54. https://doi.org/10.1016/bs.abr.2016.12.001
Lorenzo, P., Pazos-Malvido, E., Reigosa, M.J., and González, L. 2010. Differential responses to allelopathic compounds released by the invasive Acacia dealbata L. (Mimosaceae) indicate stimulation of its own seed. Austrian Journal Botany, 58 (7):546–553. https://doi.org/doi:10.1071/BT10094
Lu, P., Bai, Y., Xiao, T., and Li, T. 2011. Effects of environmental factors on germination and emergence of Siam weed (Chromolaena odorata). Procedia Environmental Sciences, 10: 1741-1746. https://doi.org/10.1016/j.proenv.2011.09.273
Marriott, P. J., Shellie, R., and Cornwell, C. 2001. Gas chromatographic technologies for the analysis of essential oils. Journal of Chromatography, 936:1–22. https://doi.org/10.1016/S0021-9673(01)01314-0
Moazzeni, H., Zarre, S., Al-Shehbaz, I. A., and Mummenhoff, K. 2010. Phylogeny of Isatis (Brassicaceae) and allied genera based on ITS sequences of nuclear ribosomal DNA and morphological characters. Flora: Morphology, Distribution. Functional Ecology of Plants, 205:337–343. https://doi.org/10.1016/j.flora.2009.12.028
Mushtaq, W., Siddiqui, M.B., and Hakeem, K.R. 2020. Mechanism of action of allelochemicals. In Allelopathy. Cham: Springer, Pp 61–66. https://doi.org/10.1021/bk-1995-0582.ch007
Narwal, S. S., Sampietro, D. A., Catalán, C. A. N., Vattuone, M. A., & Politycka, B. (2009). Plant bioassays. Studium Press.
Oliwa, J., Mo, K., Rut, G., and Rzepka, A. 2017. The influence of alcoholic extract from leaves of Helianthus annuus L . on germination and growth of Sinapis alba L .Phytomorphology, 11:91–97. https://doi.org/10.5281/zenodo.1034526
Qasem, J. R. 2016. Allelopathic plants: 11. Cardaria draba (L.) Desv. Allelopathy Journal, 13:165-172.
Sadeghpour, A., Jahanzad, E., Lithourgidisb, A. S., Hashemi, M., Esmaeili, A., and Hosseini, M. B. 2013. Forage yield and quality of barley-annual medic intercrops in semi-arid environments. Field Crops Research, 148:43-48. https://doi.org/10.22069/ijpp.2014.1373
Sakushima, A., Kun, M. C. O., and Maoka, T. 1995. HydroxybenzoicHydroxybenzoic Acids from Boreava orientalis. Phytochemistry, 40: 257–261. https://doi.org/10.1016/0031-9422(95)00059-G
Sen, S., Jiabo, C., Naveed, A., Wenyan, Z., Mengfei, T., Zhanyu, Y., Chunying, L., and Chunjian, Z. 2022. Effects of potential allelochemicals in a water extract of Abutilon theophrasti Medik. on germination and growth of Glycine max L., Triticum aestivum L., and Zea mays L. Journal of the science of food and agriculture, 103: 2155-2165. https://doi.org/10.1002/jsfa.12315
Singh, H. P., Batish, D., and Kohli, R. 2008. Allelopathy in Agroecosystems : An Overview. Journal of Crop Production, 4:1-41. https://doi.org/10.1300/J144v04n02
Sodaeizadeh., H., Rafieiolhossaini, M., Havlík, J., and Van Damme, P. 2009. Allelopathic activity of different plant parts of Peganum harmala L. and identification of their growth inhibitors substances. Plant Growth Regular, 59 (3):227–236. https://doi.org/doi:10.1007/s10725-009-9408-6
Suzuki, M., Khan, M.S.I., Iwasaki, A., Suenaga, K., and Kato Noguchi, H. 2017. Allelopathic potential and an allelopathic substance in mango leaves. Acta Agriculturae Scandinavica. Soil, Plant Science, 67(1):37–42. https://doi.org/10.1080/09064710.2016.1215517
Smallegange, R. C., Van, J., Blatt, J.A., Agerbirk, N., and Dick, M. 2007. Flower vs. leaf feeding by Pieris brassicae: Glucosinolate -Rich flower tissues are preferred and sustain higer growth rate. Journal Chem Ecolology, 33: 1831-1844. https://doi.org/10.1007/s10886-007-9350-x
Suzanne, I., Hugh, J., Beckie, A., Gordon, T., and Tracy, M. D. 2000. The biology of Canadian weeds. 8. Sinapis arvensis L. Canadian Journal Plant Science, 55:171-183. https://doi.org/10.4141/cjps75-026
Tank, A., Sakushima, M., and Coskun, M. T. Facultyer M. 1994. Sinapic Acid Ester from Boreava orientalis. Phytochemistry, 35:1481–1484. https://doi.org/10.1016/S0031-9422(00)86880-6
Turk, M. A., and Tawaha, A. M. 2002. Inhibitory Effects of Aqueous Extracts from Black Mustard (Brassica nigra L.) on Germination and Growth of Wheat. Pakistan Journal of Biological Sciences, 5: 278–280. https://doi.org/10.3923/pjbs.2002.278.280
Zhang, Z., Liu, Y., Yuan, L., Weber, E., and Van Kleunen, M. 2021. Effect of allelopathy on plant performance : a meta-analysis 24. Ecology Letters, 242: 348-362. https://doi.org/10.1111/ele.13627
Waseem, R., and Hin, L. K. 2015. Advanced analytical techniques for the extraction and characterization of plant-derived essential oils by gas chromatography with mass spectrometry. Journal Sep. Science, 38: 483-501. https://doi.org/10.1002/jssc.201400724
Windauer, L., Altuna, A., and Benech-Arnold, R. 2007. Hydrotime analysis of Lesquerella fendleri seed germination responses to priming treatments. Industrial Crops and Products, 25: 70–74. https://doi.org/10.1016/j.indcrop.2006.07.004
Yuan, L., Li, J.M., Yu, F.H., Oduor, A.M.O., and Kleunen, M.V. 2021. Allelopathic and competitive interactions between native and alien plants. Biological Invasions, 23: 3077–3090. https://doi.org/10.1007/s10530-021-02565-w
Zhang, W., and Gusta, L. V. 2010. Germination response of black and yellow seed coated canola (Brassica napus) lines to chemical treatments under cold temperature conditions. Plant Growth Regulation, 60: 105–114. https://doi.org/10.1007/s10725-009-9425-5
Zukalová, H., and Va, J. 2002. The role and effects of glucosinolates of Brassicaceae species, a review. Rostlinna Vyroba, 48:175-180. https://doi.org/10.17221/4217-PSE