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低氮和优化环境下玉米自交系中铁、锌的杂种优势、配合力及其生物有效性

Heterosis and combining ability of iron, zinc and their bioavailability in maize inbred lines under low nitrogen and optimal environments.

作者信息

Akhtar Sajjad, Mekonnen Tesfaye Walle, Mashingaidze Kingstone, Osthoff Gernot, Labuschagne Maryke

机构信息

Department of Plant Sciences, University of the Free State, Bloemfontein, 9300, South Africa.

College of Agriculture and Natural Resource, Wolkite University, Wolkite, Ethiopia.

出版信息

Heliyon. 2023 Mar 1;9(3):e14177. doi: 10.1016/j.heliyon.2023.e14177. eCollection 2023 Mar.

Abstract

Iron (Fe) and zinc (Zn) nutrient enrichment of staple crops through biofortification can contribute to alleviating micronutrient deficiency in sub-Saharan Africa. A line × tester mating design was used to determine the general combining ability (GCA), specific combining ability (SCA) and heterosis for grain yield, iron, Zn and phytic concentration of six lines crossed with three testers. Lines and testers were selected for high, intermediate and low mineral content. The F1 hybrids and parental lines were evaluated under low nitrogen (N) and optimum conditions across four environments over two seasons. Under low N conditions, Fe and Zn concentration in grain, and grain yield of genotypes were reduced by 9%, 9%, and 59%, respectively. However, phytic acid concentration in grain was increased by 10% under low N conditions. Both additive and non-additive gene effects were important in controlling Fe, Zn and phytic acid concentration in grain and grain yield of maize under both N conditions. The preponderance of GCA effects indicates the importance of additive gene effects in the inheritance of grain yield. Line GCA effects were more sensitive to N conditions across the environments than the tester GCA. High and significant positive SCA effects for grain yield, Fe and Zn content under low N conditions, would be a good indicator of possible heterosis in these traits. Hybrid CBY101 LM-1600 × CBY358 LM-1857 had high and significant positive SCA for grain yield under low N conditions and is a promising candidate for production in low N environments. CBY358 LM-1857 (tester) and CBY102 LM-1601 (line) are a good general combiners for Fe, Zn and GY can be used as parents in future maize hybrid breeding programs to develop high-yielding maize genotypes with high Fe and Zn content.

摘要

通过生物强化使主粮作物实现铁(Fe)和锌(Zn)营养富集,有助于缓解撒哈拉以南非洲地区的微量营养素缺乏问题。采用双列杂交设计,测定了6个品系与3个测验种杂交组合的籽粒产量、铁、锌和植酸含量的一般配合力(GCA)、特殊配合力(SCA)及杂种优势。根据矿物质含量的高低选择品系和测验种。在两个季节的四个环境中,对F1杂种和亲本系在低氮(N)和最佳条件下进行了评价。在低氮条件下,基因型籽粒中的铁和锌浓度以及籽粒产量分别降低了9%、9%和59%。然而,低氮条件下籽粒中的植酸浓度增加了10%。在两种氮条件下,加性和非加性基因效应在控制玉米籽粒中铁、锌和植酸浓度以及籽粒产量方面都很重要。GCA效应占优势表明加性基因效应在籽粒产量遗传中的重要性。在不同环境下,品系的GCA效应比测验种的GCA效应对氮条件更敏感。低氮条件下籽粒产量、铁和锌含量的高且显著的正向SCA效应,将是这些性状可能存在杂种优势的良好指标。杂交组合CBY101 LM - 1600×CBY358 LM - 1857在低氮条件下对籽粒产量具有高且显著的正向SCA,是低氮环境下有生产潜力的候选组合。CBY358 LM - 1857(测验种)和CBY102 LM - 1601(品系)是铁、锌和籽粒产量的良好一般配合者,可在未来的玉米杂交育种计划中用作亲本,以培育高产且铁、锌含量高的玉米基因型。

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