生物
镰刀菌
数量性状位点
真菌毒素
基因
植物抗病性
基因沉默
遗传学
代谢组学
木质素
植物
生物信息学
作者
Nancy Soni,Bara Altartouri,Niranjan Hegde,Raj Duggavathi,Farhad Nazarian‐Firouzabadi,Ajjamada C. Kushalappa
出处
期刊:Plant Science
[Elsevier BV]
日期:2021-01-11
卷期号:304: 110820-110820
被引量:55
标识
DOI:10.1016/j.plantsci.2021.110820
摘要
Fusarium head blight (FHB) is a destructive disease affecting cereal crops globally due to mycotoxin contamination of grains that reduce yield and quality. Among hundreds of QTLs identified for resistance, the QTL-Fhb1 is of significant interest even today, for its major contribution to FHB resistance. Previously, QTL-Fhb1 dissection based on a combined metabolo-genomics approach, identified a few potential resistance genes, including a NAC like transcription factor for FHB resistance. Sequencing and phylogenetic analysis confirmed NAC to be the wheat TaNAC032. Also, the quantitative RT-PCR studies revealed a greater induced expression of TaNAC032 in resistant NIL in comparison to susceptible NIL upon Fusarium graminearum (Fg) infection. The virus-induced gene silencing (VIGS) based functional validation of TaNAC032 in resistant NIL confirmed increased disease severity and fungal biomass. Metabolic profiling revealed low abundances of resistance-related (RR) metabolites in TaNAC032 silenced NIL-R compared to non-silenced. Silenced plants showed decreased transcript abundances of RR metabolite biosynthetic genes associated with a reduction in total lignin content in rachis, confirming the regulatory role of TaNAC032 in wheat in response to Fg infection. If TaNA032 is mutated in an FHB susceptible cultivar, it can be edited to enhance FHB resistance.
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