Weed-competitive cultivars are desired in the wake of growing popularity of organic farming, environmental pollution and evolution of herbicide resistance in weeds. This research work evaluated the weed competitive ability of three forage maize cultivars (ADA-523, AGA and SASA-5) against the noxious weed barnyardgrass (Echinochloa crus-galli (L.) P.Beauv.). The study was conducted in spring 2018 and repeated in summer 2018. Results of this study showed that maize-barnyardgrass competition significantly decreased the growth of forage maize plants. For instance, barnyardgrass decreased the maize plant height by 11.9-16.9%, leaf length by 13.3-20.2%, leaf width by 20.2-27.4%, and number of leaves by 14.3-25.0%. Fresh and dry weights of maize plants were also significantly decreased as a result of weed-crop competition. Barnyardgrass decreased the shoot fresh weight (30.7-60.6%), shoot dry weight (33.3-52.2%), leaf fresh weight (33.4-56.5%) and leaf dry weight (31.9-50.0%) of the maize plants. An interactive effect of weed × maize cultivars was found non-significant. Forage maize cultivars also varied occasionally for their traits. Nevertheless, ADA-523 had a higher plant height, leaf length, leaf width, leaf fresh weight and leaf dry weight than the cultivars AGA and SASA-5. On the other hand, the cultivar SASA-5 had a higher shoot fresh weight, shoot dry weight and root fresh weight than the other cultivars in the study. This research work concluded that the forage maize cultivars in the study did not vary for the weed-competitive ability. Further, barnyardgrass-maize competition could decrease the growth and development of the maize cultivars.
___
Aminpanah H. 2012. Response of more and less competitive rice cultivars to different densities of barnyardgrass. Electro. J. Crop Prod., 4: 67-84.
Bajwa AA, Jabran K, Shahid M, Ali HH, Chauhan BS. 2015. Eco-biology and management of Echinochloa crus-galli. Crop Prot., 75: 151-162.
Bosnic AC, Swanton CJ. 1997. Influence of barnyardgrass (Echinochloa crus-galli) time of emergence and density on corn (Zea mays). Weed Sci. 45: 276-282.
Crowder DW, Northfield TD, Strand MR, Snyder, WE. 2010. Organic agriculture promotes evenness and natural pest control. Nature, 466: 109-112.
Doğan MN, Ünay A, Boz Ö, Albay F. 2004. Determination of optimum weed control timing in maize (Zea mays L.). Turk. J. Agric. For., 28: 349-354.
FAO. 2016. FAOSTAT. Food and Agriculture Organization of the United Nations. Available online: http://www.fao.org/faostat/en/#data/QC/visualize. Accessed 12.08.2018.
Farooq M, Jabran K, Cheema ZA, Wahid A, Siddique KHM. 2011. The role of allelopathy in agricultural pest management. Pest Manag. Sci., 67: 493-506.
Heap I. 2014. Global perspective of herbicide‐resistant weeds. Pest Manag. Sci., 70: 1306-1315.
Jabran K, Ata Z., Farooq M. 2007. Maize: cereal with a variety of uses. DAWN–Business. Available online: https://www.dawn.com/news/236949. Accessed: 12.08.2018.
Jabran K, Chauhan BS. 2018a. Non-Chemical Weed Control. 1st ed.; Sciencedirect, Academic Press, USA.
Jabran K, Chauhan BS. 2018b. Overview and significance of non-chemical weed control. In Non-Chemical Weed Control, 1st ed.; Jabran K, Chauhan BS. Eds.; Sciencedirect, Academic Press, USA, 2018, pp. 1-8.
Jabran K, Hussain M, Chauhan BS. 2017. Integrated weed management in maize cultivation: an overview. In: Watson D. (ed.). Achieving Sustainable Cultivation of Maize. Burleigh Dodds Science Publishing Limited. Cambridge UK. http://dx.doi.org/10.19103/AS.2016.0002.21.
Jabran K, Mahajan G, Sardana V, Chauhan BS. 2015. Allelopathy for weed control in agricultural systems. Crop Prot., 72: 57 65.
Jabran K. 2017a. Manipulation of Allelopathic Crops for Weed Control. 1st ed.; Springer Nature International Publishing, Switzerland AG.
Jabran K. 2017b. Wheat allelopathy for weed control. In: K. Jabran, Manipulation of Allelopathic Crops for Weed Control. SpringerBriefs in Plant Science, Springer International Publishing AG, Switzerland. pp. 13-20
Massinga RA, Currie RS, Horak MJ, Boyer J. 2001. Interference of Palmer amaranth in corn. Weed Sci., 49: 202-208.
Oerke EC. 2006. Crop losses to pests. J. Agric. Sci., 144: 31-43.
Reganold JP, Wachter JM. 2016. Organic agriculture in the twenty-first century. Nature Plants, 2: 15221.
Sardana V, Mahajan G, Jabran K, Chauhan BS. 2017. Role of competition in managing weeds: An introduction to the special issue. Crop Prot., 95: 1-7.
Shiferaw B, Prasanna BM, Hellin J, Bänziger M. 2011. Crops that feed the world 6. Past successes and future challenges to the role played by maize in global food security. Food Secur., 3: 307-327.
Travlos IS, Economou G, Kanatas PJ. 2011. Corn and barnyardgrass competition as influenced by relative time of weed emergence and corn hybrid. Agron. J., 103: 1-6.
Wang XL, Zhang ZY, Xu XM, Li G. 2019. The density of barnyard grass affects photosynthesis and physiological characteristics of rice. Photosynthetica, 57: 705-711.