Bui Huyen, Greenhalgh Robert, Gill Gunbharpur S, Ji Meiyuan, Kurlovs Andre H, Ronnow Christian, Lee Sarah, Ramirez Ricardo A, Clark Richard M
School of Biological Sciences, University of Utah, Salt Lake City, UT, United States.
Department of Biology, Utah State University, Logan, UT, United States.
Front Plant Sci. 2021 Jun 21;12:693088. doi: 10.3389/fpls.2021.693088. eCollection 2021.
Maize ( subsp. ) yield loss from arthropod herbivory is substantial. While the basis of resistance to major insect herbivores has been comparatively well-studied in maize, less is known about resistance to spider mite herbivores, which are distantly related to insects and feed by a different mechanism. Two spider mites, the generalist , and the grass-specialist , are notable pests of maize, especially during drought conditions. We assessed resistance (antibiosis) to both mites of 38 highly diverse maize lines, including several previously reported to be resistant to one or the other mite species. We found that line B96, as well as its derivatives B49 and B75, were highly resistant to . In contrast, neither these three lines, nor any others included in our study, were notably resistant to the specialist . Quantitative trait locus (QTL) mapping with replicate populations from crosses of B49, B75, and B96 to susceptible B73 identified a QTL in the same genomic interval on chromosome 6 for resistance in each of the three resistant lines, and an additional resistance QTL on chromosome 1 was unique to B96. Single-locus genotyping with a marker coincident with the chromosome 6 QTL in crosses of both B49 and B75 to B73 revealed that the respective QTL was large-effect; it explained ∼70% of the variance in resistance, and resistance alleles from B49 and B75 acted recessively as compared to B73. Finally, a genome-wide haplotype analysis using genome sequence data generated for B49, B75, and B96 identified an identical haplotype, likely of initial origin from B96, as the source of resistance on chromosome 6 in each of the B49, B75, and B96 lines. Our findings uncover the relationship between intraspecific variation in maize defenses and resistance to its major generalist and specialist spider mite herbivores, and we identified loci for use in breeding programs and for genetic studies of resistance to , the most widespread spider mite pest of maize.
节肢动物取食造成的玉米(亚种)产量损失巨大。虽然玉米对主要昆虫食草动物的抗性基础已得到较为充分的研究,但对与昆虫亲缘关系较远且取食机制不同的叶螨食草动物的抗性了解较少。两种叶螨,多食性的 和禾本科专食性的 ,是玉米的重要害虫,在干旱条件下尤为突出。我们评估了38个高度多样化玉米品系对这两种叶螨的抗性(抗生性),其中包括几个先前报道对一种或另一种叶螨具有抗性的品系。我们发现品系B96及其衍生物B49和B75对 具有高度抗性。相比之下,这三个品系以及我们研究中包含的任何其他品系,对专食性的 均无显著抗性。对B49、B75和B96与感病品系B73杂交的重复群体进行数量性状位点(QTL)定位,在三个抗性品系的第6号染色体相同基因组区间内均鉴定到一个对 抗性的QTL,而B96在第1号染色体上还有一个独特的抗性QTL。在B49和B75与B73的杂交中,使用与第6号染色体QTL重合的标记进行单基因座基因分型,结果表明各自的QTL具有较大效应;它解释了约70%的抗性变异,与B73相比,来自B49和B75的抗性等位基因呈隐性作用。最后,利用为B49、B75和B96生成的基因组序列数据进行全基因组单倍型分析,确定了一个相同的单倍型,其最初可能起源于B96,是B49、B75和B96品系第6号染色体上 抗性的来源。我们的研究结果揭示了玉米防御的种内变异与其主要多食性和专食性叶螨食草动物抗性之间的关系,并且我们鉴定出了可用于育种计划以及对玉米最广泛的叶螨害虫 抗性进行遗传研究的基因座。