Effects of Hypoxic Duration at Different Growth Stages on Yield Potential of Waxy Corn (Zea mays L.)
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Effects of Hypoxic Duration at Different Growth Stages on Yield Potential of Waxy Corn (Zea mays L.)

Authors: S. Boonlertnirun, R. Suvannasara, K. Boonlertnirun

Abstract:

Hypoxia has negative effects on growth and crop yield, its severity is so varied depending on crop growth stages, duration of hypoxia and crop species. The objective was to evaluate the sensitive growth stage and the duration of hypoxia negatively affecting growth and yield of waxy corn. Pot experiment was conducted using a split plot in randomized complete block with 3 growth stages: V3 (3-4 true leaves), V7 (7-8 true leaves) and R1 (silking stage), and 3 hypoxic durations: 6, 9 and 12 days, in an open –ended outdoor greenhouse during January to March 2013. The results revealed that different growth stages had significantly (p < 0.5) different responses to hypoxia, seeing that the sensitive growth stage affecting plant height, yield and yield components was mostly detected in V7 growth stage whereas leaf greenness and days to silking were sensitive to hypoxia at R1 growth stage. Different hypoxic durations significantly affected yield and yield components, hypoxic duration of 12 days showed the most negative effect greater than the others. In this present study, it can be concluded that waxy corn plants were waterlogged at V7 growth stage for 12 days had the most negative effect on yield and yield components.

Keywords: Hypoxia duration, waxy corn, growth stage.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1089339

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References:


[1] T. Changdee, A. Polthanee, C. Akkasaeng and S. Morita, " Effect of different waterlogging regimes on growth ,some yield and roots development parameters in three fiber crops (Hibiscus cannabinus L., Hibiscus sabdarifa L. and Corchorusolitorius L.).” Asian J. Plant Sci., vol. 8, pp.515-525, 2009.
[2] T. L. Setter, and I. Waters, "Review of prospects for germplasm improvement for waterlogging tolerance in wheat, barley and oats,” Plant Soil., vol. 253, pp. 1-34, 2003.
[3] A. Rasaei, M. E. Ghobadi, S. Jalali-Honarmand, M. Ghobadi and M. Saeidi, "Impacts of waterlogging on shoot apex development and recovery effects of nitrogen on grain yield of wheat,” Euro. J. Exp. Bio., vol. 2, pp. 1000-1007, 2012.
[4] J. A. Gonzalez, M. Gallardo, M. Hilal, M. Rosa, and F. E. Prado, "Physiological responses of quinoa (Chenopodium quinoa Willd.) to drought and waterlogging stresses: dry matter partitioning,” Botanical Studies., vol. 50, pp. 35-42, 2009.
[5] Q. Wu, J. Zhu, K. Liu and L. Chen, "Effects of Fertilization on Growth and Yield of Cotton after Surface Waterlogging Elimination,” Adv. J. Food Sci.and Technol., vol. 4, pp. 398-403, 2012.
[6] E. Dickin, and D. Wright, "The effects of winter waterlogging and summer drought on the growth and yield of winter wheat (Triticum aestivum L.). Europ. J. Agron., vol. 28, pp. 234–244, 2008.
[7] R.K. Belford, "Response of winter wheat to prolonged waterlogging under outdoor conditions,” J. Agric. Sci., vol. 97, pp. 557–568, 1981.
[8] J.A. Palta, A. Ganjeali, N. C. Turner and K. H. M. Siddique, "Effects of transient subsurface waterlogging on root growth, plant biomass and yield of chickpea,” Agr. Water Manage., vol. 97, pp. 1469–1476, 2010.
[9] W. Zhou, and X. Lin, "Effects of waterlogging at different growth stages on physiological characteristics and seed yield of winter rape (Brassica napus L.),” Field Crops Res., vol. 44, pp. 103-1 l0, 1995.
[10] M. Saqib, J. Akhtar and R. H. Qureshi, "Pot study on wheat growth in saline and waterlogged compacted soil. I. Grain yield and yield components,” Soil Till. Res., vol.77, pp. 169–177, 2004.