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德克萨斯州番茄感染番茄斑萎正番茄病毒的Sw-5抗性突破株的首次报道

First report of Sw-5 resistance-breaking strain of tomato spotted wilt orthotospovirus infecting tomato in Texas.

作者信息

Chinnaiah Senthilraja, Gautam Saurabh, Workneh Fekede, Crosby Kevin, Rush Charles, Gadhave Kiran R

机构信息

Texas A&M University, 14736, Entomology, Texas A&M AgriLife Research, 6500 W Amarillo Blvd, W Amarillo, TX 79106, Amarillo, Texas, United States, 79106.

Texas A&M AgriLife Amarillo Research and Extension Center, 199040, Amarillo, Texas, United States, 79106-1796;

出版信息

Plant Dis. 2023 Mar 14. doi: 10.1094/PDIS-11-22-2699-PDN.

Abstract

Tomato spotted wilt orthotospovirus (TSWV) is one of the most devastating plant viruses causing crop disease epidemics of global economic significance. A single dominant resistant gene 'Sw-5' offering a broad-spectrum resistance to multiple orthotospoviruses was introduced in tomato cultivars. However, multiple resistance-breaking strains of TSWV were reported worldwide (Ciuffo 2005; Zaccardelli et al. 2008; Batuman et al. 2017; di Rienzo et al. 2018). Symptoms suggestive of orthotospoviral infection including stunting, bronzing, and inward rolling of leaves, and concentric necrotic spots on leaves, petioles, and fruits were observed in two TSWV-resistant tomato cultivars ('BL163' and 'HT 2') planted in a tomato variety trial in Bushland, TX in 2022. Leaf tissues from 45 resistant tomato plants (symptomatic or asymptomatic) from both resistant cultivars were tested using a TaqMan probe-based qPCR assay targeting a 200bp region in nucleoprotein (N) of the TSWV (Gautam et al. 2022). While 25 of those samples tested positive for TSWV, only ten expressed characteristic disease symptoms described above. The possibility of mixed infection in those samples with other endemic viruses in the region viz., alfalfa mosaic virus, groundnut ringspot orthotospovirus, tobacco mosaic virus, tomato chlorotic spot orthotospovirus, tomato mosaic virus, tomato necrotic streak virus, tomato ringspot virus, and tomato torrado virus was discounted through RT-PCR analysis (Kumar et al. 2011; Verbeek et al. 2012; Bratsch et al. 2018). To test the RB phenotype of the observed putative TSWV-RB strains, three-week-old tomato plants from eight commercially available TSWV resistant cultivars and one non-resistant cultivar (n=10 each) were mechanically inoculated with leaf tissues collected from a single symptomatic plant from one of the field-grown resistant cultivars. The experiment was replicated twice. Hypersensitive response was observed on all inoculated leaves of resistant plants one week post inoculation. Furthermore, all eight resistant cultivars started expressing local and systemic TSW symptoms 12 to 16 days post inoculation (dpi), while non-resistant cultivar started expressing symptoms at 9 dpi. TSW incidence across all resistant cultivars was 30-70%, while in susceptible cultivar it was 90%. Symptoms exhibited by all resistant cultivars resembled those of symptoms observed in field collected plants. The expression of Sw-5 gene in all eight resistant cultivars and the lack thereof in a susceptible cultivar was confirmed using Sw-5b specific primers and using Actin as a housekeeping gene in qRT-PCR (Islam et al. 2022). The RB strains in Sw-5 resistant tomato in California (Batuman et al. 2017) had the C118Y mutation in the TSWV NSm protein, consistent with the original reporting of C118Y or T120N RB mutations in 11 TSWV isolates from Spain (NCBI accession # HM015517 & HM015518) (Lopez et al. 2011). The nucleotide and amino acid sequence analysis of NSm gene from Bushland RB isolates from four resistant cultivars (NCBI accessions # OP810513-14 [field], OQ247901-05 [mechanically inoculated]) shared 98.9 and 99.4% homology with the Californian NSm sequences of TSWV RB tomato isolate (KX898453 and ASO67371), respectively. While the Nsm C118Y or T120N RB mutations were absent in all Bushland TSWV RB isolates, they had six additional unique point mutations across the NSm (I163V, P227Q, V290I, N293S, V294I, K296Q), which could potentially be responsible for resistance breaking. Despite the lack of C118Y or T120N RB mutations, Bushland isolates were capable of disrupting Sw-5-mediated TSWV resistance in all eight commercial resistant tomato cultivars. This study suggests a new or a different class of fundamental mechanisms are likely to be responsible for resistance breaking in Sw-5b resistant tomatoes. The new RB strain/s of TSWV therefore pose a substantial threat to tomato production in TX and other tomato-growing regions of the US.

摘要

番茄斑萎正番茄病毒(TSWV)是最具破坏性的植物病毒之一,可引发具有全球经济意义的作物病害流行。番茄品种中引入了一个单一的显性抗性基因“Sw-5”,它对多种正番茄病毒具有广谱抗性。然而,全球范围内已报道了多种能突破抗性的TSWV毒株(Ciuffo,2005年;Zaccardelli等人,2008年;Batuman等人,2017年;di Rienzo等人,2018年)。2022年,在得克萨斯州布什兰的一个番茄品种试验中,种植的两个抗TSWV的番茄品种(“BL163”和“HT 2”)出现了疑似正番茄病毒感染的症状,包括植株矮小、叶片变褐和向内卷曲,以及叶片、叶柄和果实上的同心坏死斑。使用基于TaqMan探针的qPCR检测方法,对来自两个抗性品种的45株抗性番茄植株(有症状或无症状)的叶片组织进行检测,该检测方法针对TSWV核蛋白(N)中一个200bp的区域(Gautam等人,2022年)。虽然其中25个样本检测出TSWV呈阳性,但只有10个表现出上述典型的病害症状。通过RT-PCR分析排除了这些样本与该地区其他地方性病毒(即苜蓿花叶病毒、花生环斑正番茄病毒、烟草花叶病毒、番茄褪绿斑点正番茄病毒、番茄花叶病毒、番茄坏死条纹病毒、番茄环斑病毒和番茄托拉多病毒)混合感染的可能性(Kumar等人,2011年;Verbeek等人,2012年;Bratsch等人,2018年)。为了检测观察到的疑似TSWV抗性突破毒株的抗性突破表型,从8个市售抗TSWV品种和1个非抗性品种中选取三周龄的番茄植株(每个品种n = 10),用从田间种植的一个抗性品种的一株有症状植株上采集的叶片组织进行机械接种。该实验重复了两次。接种一周后,在抗性植株的所有接种叶片上观察到过敏反应。此外,所有8个抗性品种在接种后12至16天开始表现出局部和系统的TS症状,而非抗性品种在接种后9天开始表现出症状。所有抗性品种的TS发病率为30 - 70%,而在易感品种中为90%。所有抗性品种表现出的症状与在田间采集的植株上观察到的症状相似。使用Sw-5b特异性引物并以肌动蛋白作为qRT-PCR中的看家基因,证实了所有8个抗性品种中Sw-5基因的表达以及易感品种中该基因的缺失(Islam等人,2022年)。加利福尼亚州Sw-5抗性番茄中的抗性突破毒株(Batuman等人,2017年)在TSWV NSm蛋白中具有C118Y突变,这与西班牙11个TSWV分离株(NCBI登录号# HM015517 & HM015518)中最初报道的C118Y或T120N抗性突破突变一致(Lopez等人,2011年)。来自四个抗性品种的布什兰抗性突破分离株(NCBI登录号# OP810513 - 14 [田间],OQ247901 - 05 [机械接种])的NSm基因的核苷酸和氨基酸序列分析与TSWV抗性突破番茄分离株(KX898453和ASO67371)的加利福尼亚NSm序列分别具有98.9%和99.4%的同源性。虽然所有布什兰TSWV抗性突破分离株中均不存在Nsm C118Y或T120N抗性突破突变,但它们在NSm上还有另外六个独特的点突变(I163V、P227Q、V290I、N293S、V294I、K296Q),这些突变可能是导致抗性突破的原因。尽管缺乏C118Y或T120N抗性突破突变,但布什兰分离株能够破坏所有8个商业抗性番茄品种中Sw-5介导的TSWV抗性。这项研究表明,可能存在一种新的或不同类型的基本机制导致Sw-5b抗性番茄出现抗性突破。因此,新的TSWV抗性突破毒株对得克萨斯州以及美国其他番茄种植地区的番茄生产构成了重大威胁。

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