Genetic and phenotypic responses of temperature-independent Hessian fly-resistant durum wheat to larval attack during heat stress.

IF 5.6 2区 生物学 Q1 PLANT SCIENCES BMC Plant Biology Pub Date : 2025-02-17 DOI:10.1186/s12870-025-06226-1
Subhashree Subramanyam, Jill A Nemacheck, Taylor E Suetsugu, Rachel D Flynn, Ahmed Faik
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Abstract

Background: Wheat production is increasingly challenged by the devastating damage caused by insect pests. The advent of global warming is further exacerbating this threat. Hessian fly (Mayetiola destructor), a dipteran gall midge, is a destructive pest of host wheat (Triticum aestivum) having severe economic consequences. Planting wheat cultivars harboring resistance genes is the most effective and economical Hessian fly management strategy. However, heat stress poses a challenge to this strategy, as elevated temperature often breaks down Hessian fly resistance in wheat. Our prior study identified temperature-independent resistant T. turgidum (durum wheat) accessions that maintained resistance to Hessian fly when challenged with an increased temperature of 30 °C. In this study, we carried out follow-up characterization of these durum lines to highlight molecular components involved during Hessian fly resistance or susceptibility in wheat following heat stress.

Results: Temperature-independent resistant durum lines were greater than 70% resistant to multiple Hessian fly biotypes at the elevated temperature of 30 °C. At the molecular level, these lines showed increased transcripts of Hfr-1, a gene encoding an antinutrient lectin, unlike the heat-triggered susceptible durum wheat. The Hessian fly susceptibility-associated biomarker genes were significantly upregulated in the durum wheat with heat-triggered susceptibility at 30 °C, resembling the gene expression profile observed in susceptible wheat. None of these susceptibility-associated genes were differentially expressed in the temperature-independent resistant wheat. Genes involved in oxidative stress and jasmonic acid pathways did not reveal any specific expression pattern attributed to either heat stress or larval feeding. Neutral red staining revealed limited cell wall permeability in the temperature-independent resistant wheat, unlike the heat-triggered susceptible durum plants that were highly permeable similar to a wheat line susceptible to Hessian fly at 20 °C.

Conclusions: Temperature-independent resistant durum wheat lines provided robust resistance to multiple Hessian fly biotypes at higher temperatures. These lines offer a valuable resource for wheat producers for providing resistance following heat stress.

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高温胁迫下黑森抗蝇硬粒小麦对幼虫攻击的遗传和表型响应。
背景:小麦生产日益受到害虫破坏性破坏的挑战。全球变暖的到来进一步加剧了这一威胁。黑森蝇(Mayetiola destructor)是一种双翅目瘿蚊,是对寄主小麦(Triticum aestivum)的破坏性害虫,具有严重的经济后果。种植含有抗性基因的小麦品种是最有效、最经济的黑森蝇防治策略。然而,热应激对这一策略提出了挑战,因为高温通常会破坏小麦的黑森蝇抗性。我们之前的研究发现,当温度升高30°C时,具有温度不依赖性的抗T. turgidum(硬粒小麦)材料仍能保持对黑森蝇的抗性。在这项研究中,我们对这些硬膜系进行了后续鉴定,以突出热胁迫下小麦对黑森蝇抗性或易感性的分子成分。结果:温度不依赖抗性硬膜系在30℃高温下对多种黑森蝇生物型的抗性大于70%。在分子水平上,这些品系表现出增加的Hfr-1转录本,这是一种编码抗营养凝集素的基因,与热触发敏感的硬粒小麦不同。黑森蝇易感相关的生物标记基因在30°C高温易感硬粒小麦中显著上调,与在易感小麦中观察到的基因表达谱相似。这些易感相关基因在温度不依赖性抗性小麦中均无差异表达。参与氧化应激和茉莉酸途径的基因没有显示出热应激或幼虫摄食的任何特定表达模式。中性红染色显示,与温度无关的抗性小麦细胞壁渗透性有限,而热触发敏感的硬粒小麦细胞壁渗透性高,类似于对黑森蝇敏感的小麦品系在20°C时的渗透性。结论:温度不依赖抗性硬粒小麦品系在较高温度下对多种黑森蝇生物型具有较强的抗性。这些品系为小麦生产者提供了耐热性的宝贵资源。
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来源期刊
BMC Plant Biology
BMC Plant Biology 生物-植物科学
CiteScore
8.40
自引率
3.80%
发文量
539
审稿时长
3.8 months
期刊介绍: BMC Plant Biology is an open access, peer-reviewed journal that considers articles on all aspects of plant biology, including molecular, cellular, tissue, organ and whole organism research.
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