期刊文献+

Maize response to elevated plant density combined with lowered N-fertilizer rate is genotype-dependent 被引量:7

Maize response to elevated plant density combined with lowered N-fertilizer rate is genotype-dependent
下载PDF
导出
摘要 Increasing plant density and improving N fertilizer rate along with the use of high density-tolerant genotypes would lead to maximizing maize(Zea mays L.) grain productivity per unit land area. The objective of this investigation was to match the functions of optimum plant density and adequate nitrogen fertilizer application to produce the highest possible yields per unit area with the greatest maize genotype efficiency. Six maize inbred lines differing in tolerance to low N and high density(D) [three tolerant(T); L-17, L-18, L-53,and three sensitive(S); L-29, L-54, L-55] were chosen for diallel crosses. Parents and crosses were evaluated in the 2012 and 2013 seasons under three plant densities: low(47,600),medium(71,400), and high(95,200) plants ha-1and three N fertilization rates: low(no N addition), medium(285 kg N ha-1) and high(570 kg N ha-1). The T × T crosses were superior to the S × S and T × S crosses under the low N–high D environment in most studied traits across seasons. The relationships between the nine environments and grain yield per hectare(GYPH) showed near-linear regression functions for inbreds L54, L29, and L55 and hybrids L18 × L53 and L18 × L55 with the highest GYPH at a density of47,600 plants ha-1and N rate of 570 kg N ha-1and a curvilinear relationship for inbreds L17, L18, and L53 and the rest of the hybrids with the highest GYPH at a density of95,200 plants ha-1combined with an N rate of 570 kg N ha-1. Cross L17 × L54 gave the highest grain yield in this study under both high N–high-D(19.9 t ha-1) and medium N–high-D environments(17.6 t ha-1). Increasing plant density and improving N fertilizer rate along with the use of high density-tolerant genotypes would lead to maximizing maize(Zea mays L.) grain productivity per unit land area. The objective of this investigation was to match the functions of optimum plant density and adequate nitrogen fertilizer application to produce the highest possible yields per unit area with the greatest maize genotype efficiency. Six maize inbred lines differing in tolerance to low N and high density(D) [three tolerant(T); L-17, L-18, L-53,and three sensitive(S); L-29, L-54, L-55] were chosen for diallel crosses. Parents and crosses were evaluated in the 2012 and 2013 seasons under three plant densities: low(47,600),medium(71,400), and high(95,200) plants ha-1and three N fertilization rates: low(no N addition), medium(285 kg N ha-1) and high(570 kg N ha-1). The T × T crosses were superior to the S × S and T × S crosses under the low N–high D environment in most studied traits across seasons. The relationships between the nine environments and grain yield per hectare(GYPH) showed near-linear regression functions for inbreds L54, L29, and L55 and hybrids L18 × L53 and L18 × L55 with the highest GYPH at a density of47,600 plants ha-1and N rate of 570 kg N ha-1and a curvilinear relationship for inbreds L17, L18, and L53 and the rest of the hybrids with the highest GYPH at a density of95,200 plants ha-1combined with an N rate of 570 kg N ha-1. Cross L17 × L54 gave the highest grain yield in this study under both high N–high-D(19.9 t ha-1) and medium N–high-D environments(17.6 t ha-1).
机构地区 Agronomy Department
出处 《The Crop Journal》 SCIE CAS CSCD 2015年第2期96-109,共14页 作物学报(英文版)
关键词 Quadratic regression APPROPRIATE N rate HIGH-DENSITY TOLERANT MAIZE Unit area productivity Quadratic regression Appropriate N rate High-density tolerant maize Unit area productivity
  • 相关文献

参考文献13

  • 1Mansfield, Brian D,Mumm, Rita H.Survey of Plant Density Tolerance in U.S. Maize Germplasm[J]. Crop Science . 2014 (1) 被引量:1
  • 2Boomsma, Christopher R,Santini, Judith B,Tollenaar, Matthijs,Vyn, Tony J.Maize Morphophysiological Responses to Intense Crowding and Low Nitrogen Availability: An Analysis and Review[J]. Agronomy Journal . 2009 (6) 被引量:2
  • 3F.J. Betrán,D. Beck,M. B?nziger,G.O. Edmeades.Secondary traits in parental inbreds and hybrids under stress and non-stress environments in tropical maize[J]. Field Crops Research . 2003 (1) 被引量:1
  • 4E. S. Bunting.Plant density and yield of grain maize in England. The American Journal of Anatomy . 1973 被引量:1
  • 5Banziger M,Edmeades G O,Lafitte H R.Selection for drought tolerance increase maize yields across a range of nitrogen levels. Crop Science . 1999 被引量:1
  • 6P M O Neill,J F Shanahan,J S Schepers,B Caldwell.Agronomic Responses of Corn Hybrids from Different Eras to Deficit and Adequate Levels of Water and Nitrogen. Agronomy Journal . 2004 被引量:1
  • 7Moll RH,Kamprath EJ,Jackson WA.Analysis and interpretation of factors which contribute to efficiency of nitrogen utilization. Agronomy Journa1 . 1982 被引量:2
  • 8Alpha Y. Kamara,Abebe Menkir,Ibrahim Kureh,Lucky O. Omoigui,Friday Ekeleme.Performance of old and new maize hybrids grown at high plant densities in the tropical Guinea savanna. Communications in Biometry and Crop Science . 2006 被引量:1
  • 9Tollenaar M,Wu J.Yield improvement in temperate maize is attributable to greater stress tolerance. Crop Science . 1999 被引量:1
  • 10Edmeades G O,Bolanos J,Hernandez M,et al.Causes for silk delay in a lowland tropical maize population. Crop Science . 1993 被引量:1

共引文献2

同被引文献54

引证文献7

二级引证文献55

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部