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1.
Host-plant resistance is the most practical and economical approach to control the rice planthoppers. However, up to date, few rice germplasm accessions that are resistant to the all three kinds of planthoppers (1) brown planthopper (BPH; Nilaparvata lugens Stål), (2) the small brown planthopper (SBPH; Laodelphax striatellus Fallen), and (3) the whitebacked planthopper (WBPH, Sogatella furcifera Horvath) have been identified; consequently, the genetic basis for host-plant broad spectrum resistance to rice planthoppers in a single variety has been seldom studied. Here, one wild species, Oryza officinalis (Acc. HY018, 2n = 24, CC), was detected showing resistance to the all three kinds of planthoppers. Because resistance to WBPH and BPH in O. officinalis has previously been reported, the study mainly focused on its SBPH resistance. The SBPH resistance gene(s) was (were) introduced into cultivated rice via asymmetric somatic hybridization. Three QTLs for SBPH resistance detected by the SSST method were mapped and confirmed on chromosomes 3, 7, and 12, respectively. The allelic/non-allelic relationship and relative map positions of the three kinds of planthopper resistance genes in O. officinalis show that the SBPH, WBPH, and BPH resistance genes in O. officinalis were governed by multiple genes, but not by any major gene. The data on the genetics of host-plant broad spectrum resistance to planthoppers in a single accession suggested that the most ideally practical and economical approach for rice breeders is to screen the sources of broad spectrum resistance to planthoppers, but not to employ broad spectrum resistance gene for the management of planthoppers. Pyramiding these genes in a variety can be an effective way for the management of planthoppers.  相似文献   

2.
Genetic and biochemical mechanisms of rice resistance to planthopper   总被引:2,自引:0,他引:2  

Key message

This article presents a comprehensive review on the genetic and biochemicalmechanisms governing rice-planthopper interactions, aiming to contribute substantialplanthopper control and facilitate breeding for resistance to planthoppers in rice.

Abstract

The rice planthopper is the most destructive pest of rice and a substantial threat to rice production. The brown planthopper (BPH), white-backed planthopper (WBPH) and small brown planthopper (SBPH) are three species of delphacid planthoppers and important piercing-sucking pests of rice. Host-plant resistance has been recognized as the most practical, economical and environmentally friendly strategy to control planthoppers. Until now, at least 30, 14 and 34 major genes/quantitative trait loci for resistance to BPH, WBPH and SBPH have been identified, respectively. Recent inheritance and molecular mapping of gene analysis showed that some planthopper-resistance genes in rice derived from different donors aggregate in clusters, while resistance to these three species of planthoppers in a single donor is governed not by any one dominant gene but by multiple genes. Notably, Bph14, Bph26, Bph3 and Bph29 were successfully identified as BPH-resistance genes in rice. Biological and chemical studies on the feeding of planthoppers indicate that rice plants have acquired various forms of defence against planthoppers. Between the rice-planthopper interactions, rice plants defend against planthoppers through activation the salicylic acid-dependent systemic acquired resistance but not jasmonate-dependent hormone response pathways. Transgenic rice for the planthopper-resistance mechanism shows that jasmonate and its metabolites function diversely in rice’s resistance to planthopper. Understanding the genetic and biochemical mechanisms underlying resistance in rice will contribute to the substantial control of such pests and facilitate breeding for rice’s resistance to planthopper more efficiently.
  相似文献   

3.
Identification and mapping of two brown planthopper resistance genes in rice   总被引:25,自引:0,他引:25  
The brown planthopper (BPH) is one of the most serious insect pests of rice. In this study, we conducted a molecular marker-based genetic analysis of the BPH resistance of ’B5’, a highly resistant line that derived its resistant genes from the wild rice Oryza officinalis. Insect resistance was evaluated using 250 F3 families from a cross between ’B5’ and ’Minghui 63’, based on which the resistance of each F2 plant was inferred. Two bulks were made by mixing, respectively, DNA samples from highly resistant plants and highly susceptible plants selected from the F2 population. The bulks were surveyed for restriction fragment length polymorphism using probes representing all 12 chromosomes at regular intervals. The survey revealed two genomic regions on chromosome 3 and chromosome 4 respectively that contained genes for BPH resistance. The existence of the two loci were further assessed by QTL (quantitative trait locus) analysis, which resolved these two loci to a 14.3-cM interval on chromosome 3 and a 0.4-cM interval on chromosome 4. Comparison of the chromosomal locations and reactions to BPH biotypes indicated that these two genes are different from at least nine of the ten previously identified BPH resistance genes. Both of the genes had large effects on BPH resistance and the two loci acted essentially independent of each other in determining t he resistance. These two genes may be a useful BPH resistance resource for rice breeding programs. Received: 6 March 2000 / Accepted: 28 July 2000  相似文献   

4.
Brown planthopper (BPH) is one of the most destructive insect pests of rice. Wild species of rice are a valuable source of resistance genes for developing resistant cultivars. A molecular marker-based genetic analysis of BPH resistance was conducted using an F2 population derived from a cross between an introgression line, ‘IR71033-121-15’, from Oryza minuta (Accession number 101141) and a susceptible Korean japonica variety, ‘Junambyeo’. Resistance to BPH (biotype 1) was evaluated using 190 F3 families. Two major quantitative trait loci (QTLs) and two significant digenic epistatic interactions between marker intervals were identified for BPH resistance. One QTL was mapped to 193.4-kb region located on the short arm of chromosome 4, and the other QTL was mapped to a 194.0-kb region on the long arm of chromosome 12. The two QTLs additively increased the resistance to BPH. Markers co-segregating with the two resistance QTLs were developed at each locus. Comparing the physical map positions of the two QTLs with previously reported BPH resistance genes, we conclude that these major QTLs are new BPH resistance loci and have designated them as Bph20(t) on chromosome 4 and Bph21(t) on chromosome 12. This is the first report of BPH resistance genes from the wild species O. minuta. These two new genes and markers reported here will be useful to rice breeding programs interested in new sources of BPH resistance.  相似文献   

5.
Quantitative trait loci (QTLs), conferring quantitative resistance to rice brown planthopper (BPH), were investigated using 160 F11 recombinant inbred lines (RILs) from the Lemont/Teqing cross, a complete RFLP map, and replicated phenotyping of seedbox inoculation. The paternal indica parent, Teqing, was more-resistant to BPH than the maternal japonica parent, Lemont. The RILs showed transgressive segregation for resistance to BPH. Seven main-effect QTLs and many epistatic QTL pairs were identified and mapped on the 12 rice chromosomes. Collectively, the main-effect and epistatic QTLs accounted for over 70% of the total variation in damage scores. Teqing has the resistance allele at four main-effect QTLs, and the Lemont allele resulted in resistance at the other three. Of the main-effect QTLs identified, QBphr5b was mapped to the vicinity of gl1, a major gene controlling leaf and stem pubescence. The Teqing allele controlling leaf and stem pubescence was associated with resistance, while the Lemont allele for glabrous stem and leaves was associated with susceptibility, indicating that this gene may have contributed to resistance through antixenosis. Similar to the reported BPH resistance genes, the other six detected main-effect QTLs were all mapped to regions where major disease resistance genes locate, suggesting they might have contributed either to antibiosis or tolerance. Our results indicated that marker-aided pyramiding of major resistance genes and QTLs should provide effective and stable control over this devastating pest. Received: 10 December 2000 / Accepted: 7 May 2001  相似文献   

6.
【目的】监测我国与越南褐飞虱Nilaparvata lugens St?l和白背飞虱Sogatella furcifera Horvath生物型,为抗虫育种工作提供指导。【方法】应用群体集团检测法和蜜露量检测法研究了中国广西、云南、河南、湖南、重庆、贵州和越南河内、河静、顺化、胡志明市和九龙江田间褐飞虱和白背飞虱的致害特性和生物型组成结构。【结果】我国主要稻区(除云南思茅外)和越南中北部的田间褐飞虱以Ⅱ型的比例多,对含Bph1、bph2基因的鉴别品种表现为致害;云南思茅的田间褐飞虱以Ⅱ+Ⅱ型的比例多,对含Bph1、bph2和bph4基因的鉴别品种表现为致害或强致害;越南胡志明市、九龙江的田间褐飞虱以Ⅱ+Ⅱ型的比例多,对含Bph1、bph2、Bph3、bph4基因的鉴别品种主要表现为致害或强致害。我国白背飞虱以Ⅰ型比例较多;越南顺化和河内以Ⅱ型比例多;所有监测点白背飞虱的致害特性总体表现为对含Wph1、Wbph2基因的鉴别品种的致害能力较强,对Wbph3的致害能力表现不一,对含Wph5基因的鉴别品种表现为中等致害。【结论】抗虫育种选择抗源时,不要选含Bph1、bph2基因的水稻品种作为褐飞虱抗源,不要选含基因Wbph1或Wbph2的水稻品种作为白背飞虱抗源。  相似文献   

7.
A pre-infestation of the white-backed planthopper (WBPH), Sogatella furcifera Horváth, conferred resistance to bacterial blight caused by Xanthomonas oryzae pv. oryzae ( Xoo ) in rice ( Oryza sativa  L.) under both laboratory and field conditions. The infestation of another planthopper species, the brown planthopper (BPH) Nilaparvata lugens Stål, did not significantly reduce the incidence of bacterial blight symptoms. A large-scale screening using a rice DNA microarray and quantitative RT-PCR revealed that WBPH infestation caused the upregulation of more defence-related genes than did BPH infestation. Hydroperoxide lyase 2 ( OsHPL2 ), an enzyme for producing C6 volatiles, was upregulated by WBPH infestation, but not by BPH infestation. One C6 volatile, ( E )-2-hexenal, accumulated in rice after WBPH infestation, but not after BPH infestation. A direct application of ( E )-2-hexenal to a liquid culture of Xoo inhibited the growth of the bacterium. Furthermore, a vapour treatment of rice plants with ( E )-2-hexenal induced resistance to bacterial blight. OsHPL2 -overexpressing transgenic rice plants exhibited increased resistance to bacterial blight. Based on these data, we conclude that OsHPL2 and its derived ( E )-2-hexenal play some role in WBPH-induced resistance in rice.  相似文献   

8.
Sun L  Liu Y  Jiang L  Su C  Wang C  Zhai H  Wan J 《Hereditas》2007,144(2):48-52
The brown planthopper (BPH) is one of the most serious insect pests of rice throughout Asia. In this study, we constructed a linkage map to determine the locus for BPH resistance gene, using an F(2) population from a cross between a resistant indica cultivar, 'Col.5 Thailand', and a susceptible cultivar '02428'. Insect resistance was evaluated using 147 F(3) families and the genotype of each F(2) plant was inferred from the phenotype of corresponding F(3) families. Two QTLs was detected on chromosome 2 (explains 29.4% phenotypic variation) and 6 (46.2% variation explained) associated with resistance to BPH in the mapping population. Comparison of the chromosomal locations and reactions to BPH biotypes indicated that the gene on chromosome 6 is different from at least 18 of the 19 previously identified BPH resistance genes. These two genes have large effects on BPH resistance and may be a useful BPH resistance resource for rice breeding programs.  相似文献   

9.
Interactions and co-evolution between plants and herbivorous insects are critically important in agriculture. Brown planthopper (BPH) is the most severe insect of rice, and the biotypes adapt to feed on different rice genotypes. Here, we present genomics analyses on 1,520 global rice germplasms for resistance to three BPH biotypes. Genome-wide association studies identified 3,502 single nucleotide polymorphisms (SNPs) and 59 loci associated with BPH resistance in rice. We cloned a previously unidentified gene Bph37 that confers resistance to BPH. The associated loci showed high nucleotide diversity. Genome-wide scans for trans-species polymorphisms revealed ancient balancing selection at the loci. The secondarily evolved insect biotypes II and III exhibited significantly higher virulence and overcame more rice varieties than the primary biotype I. In response, more SNPs and loci evolved in rice for resistance to biotypes II and III. Notably, three exceptional large regions with high SNP density and resistance-associated loci on chromosomes 4 and 6 appear distinct between the resistant and susceptible rice varieties. Surprisingly, these regions in resistant rice might have been retained from wild species Oryza nivara. Our findings expand the understanding of long-term interactions between rice and BPH and provide resistance genes and germplasm resources for breeding durable BPH-resistant rice varieties.  相似文献   

10.
褐飞虱和白背飞虱的取食为害对水稻营养生长的影响   总被引:11,自引:4,他引:7  
对塑料钵栽培的水稻进行罩宠试验,研究了褐飞虱和白背飞虱在不同若虫密度下取食为害对水稻营养生长的影响.结果表明,两种飞虱的成虫干重、水稻叶面积和其地上部干重因若虫密度的增加而下降.叶片干重占地上部干重的比例和稻株分配给叶片干物质量随为害程度的加重而增大;褐飞虱和白背飞虱总干重(X)与稻株地上部损失量(Y)之间存在着极显著的线性关系.两种飞虱干重每增加1mg,水稻地上部干重则分别损失26.01mg和21.90mg.讨论了稻飞虱取食为害对水稻致害的可能机制.  相似文献   

11.
12.
药用野生稻转育后代一个抗白叶枯病新基因的定位   总被引:31,自引:0,他引:31  
从药用野生稻渗入后代选育的水稻株系B5表现为高抗褐飞虱、白背飞虱和白叶枯病。对B5与籼稻品种明恢63杂交组合的187个重组自交系(RILs)进行了抗白叶枯病接种鉴定,采用分离集团分析法(Bulked Segregant Analysis,BSA),在第1染色体上筛选到与水稻抗白叶枯病基因相连锁RFLP分子标记。利用RILs抗病性表现型鉴定资料和构建的分子标记连锁图谱,将抗白叶枯病基因定位在第1染色体短臂的C904和R596之间,这两个分子标记间遗传距离为1.3cM。该基因对RILs群体抗病性变异的贡献率为52.96%,是一效应值较大的主效基因。这一抗白叶枯病基因不同于已报道的抗白叶枯病基因的位点,因此将其命名为Xa29(t)。  相似文献   

13.
Brown plant hopper, a major pest in rice causes "hopper burn" in the field. The resistance gene for brown planthopper was mapped by using 20 recombinant inbred lines (RIL's) derived from a cross between resistant line Oryza. officinalis derivative (IR 54742-2-21-12-17-6) and a susceptible rice cultivar ASD 16 using bulked segregant analysis. On an average of 4 loci were amplified and two RAPD primers amplified loci that co-segregated with resistance/susceptibility. The segregating RAPD loci were mapped using Mapmaker programme into 13 groups. The expected and the 95% confidence level were found to be 15.2 and 47.7 cM respectively, confirming the location of the brown planthopper resistant gene on the region of chromosome 4. These RAPD markers will accelerate breeding programme for brown planthopper resistance.  相似文献   

14.
Yang H  Ren X  Weng Q  Zhu L  He G 《Hereditas》2002,136(1):39-43
The brown planthopper (BPH), Nilaparvata lugens St?l, is a serious insect pest of rice (Oryza saliva L.). We have determined the chromosomal location of a BPH resistance gene in rice using SSR and RFLP techniques. A rice line 'B14', derived from the wild rice Oryza latifolia, showed high resistance to BPH. For tagging the resistance gene in 'B14X', an F2 population and a recombinant inbred (RI) population from a cross between Taichung Native 1 and 'B14' were developed and evaluated for BPH resistance. The results showed that a single dominant gene controlled the resistance of 'B14' to BPH. Bulked segregant SSR analysis was employed for identification of DNA markers linked to the resistance gene. From the survey of 302 SSR primer pairs, three SSR (RM335, RM261, RM185) markers linked to the resistance gene were identified. The closest SSR marker RM261 was linked to the resistance gene at a distance of 1.8 cM. Regions surrounding the resistance gene and the SSR markers were examined with additional RFLP markers on chromosome 4 to define the location of the resistance gene. Linkage of RFLP markers C820, R288, C946 with the resistance gene further confirmed its location on the short arm of chromosome 4. Closely linked DNA markers will facilitate selection for resistant lines in breeding programs and provide the basis for map-based cloning of this resistance gene.  相似文献   

15.
Brown planthopper (BPH), Nilaparvata lugens Stål, is a destructive insect pest of rice (Oryza sativa L.). Identification and utilization of resistance genes is an efficient strategy for controlling this insect. BPH-resistant indica cultivars Balamawee, Kaharamana and Pokkali were previously reported to have the same dominant gene Bph9 on chromosome 12. Our studies of BPH feeding performance showed that Balamawee had higher levels of antixenosis and antibiosis against BPH than Kaharamana and Pokkali. In order to identify the BPH resistance gene in Balamawee, an F2 population was derived by crossing Balamawee and susceptible japonica cultivar 02428. A single major resistance gene was identified and mapped to the long arm of chromosome 4. Further recombination analysis showed that the gene was located in an interval of about 63 kb between InDel markers Q52 and Q20. This new BPH resistance locus was designated Bph27(t).  相似文献   

16.
为了明确江苏省稻飞虱(白背飞虱Sogatella furcifera Horváth和褐飞虱Nilaparvata lugens St?l)在沉寂近10年后再次暴发的成因,通过分析江苏2020年白背飞虱和褐飞虱的田间调查及灯诱数据,并结合气象条件,研究了江苏省稻飞虱暴发的主要影响因素。结果表明:(1)2020年,江苏省白背飞虱虫源主要来自于江西中、北部,湖南东部以及湖北东部;褐飞虱虫源主要来自于安徽南部、浙江北部、本省南部以及江西省中北部。(2)江淮地区自6月中旬至7月下旬的超长降雨期有利于江苏省早期迁入虫源大量降落。(3)9月初,田间已存在大量褐飞虱短翅型成虫,适宜的秋季温度促使田间短翅型褐飞虱大量繁殖,导致后期田间褐飞虱大暴发。总而言之,超长降雨期有利于早期稻飞虱的迁入降落,而秋季的适宜温度引发短翅型成虫大量繁殖,是导致江苏省稻飞虱在沉寂近10年后再次暴发的主要因素。这些结果为稻飞虱暴发规律的阐明及可持续治理提供了理论依据和参考价值。  相似文献   

17.
水稻飞虱的抗药性监测研究   总被引:17,自引:0,他引:17  
1989-1993年选用有机磷、氨基甲酸酯和拟除虫菊酯三大粪12种常用杀虫剂,对水稻褐飞虱和白背飞虱进行了5年系统的抗药性监测研究,发现两种飞虱对药剂的敏感性年度间变化较大,分析可能与其迁飞习性有关。将我们所测的LD50与日本Nagata(1967)测定结果比较.褐飞虱对有机磷类的抗性倍数为3.22-16.12倍,对氨基甲酸酯类为5.59-9.12倍;白背飞虱对有机磷类的抗性为48.90-208.16倍.对氨基甲酸酯类为3.29-19.50倍.抗性发展速率明显高于褐飞虱。两种飞虱对菊酯类药剂的敏感性差异较大。抗马拉硫磷的褐飞虱种群对二氯苯醚菊酯表现较高交互抗性。  相似文献   

18.
对捕食性节肢动物的捕食作用进行评价是害虫生物防治研究的一个重要内容。本文利用酶联免疫吸附试验(ELISA)定量评价了食虫沟瘤蛛对稻飞虱的捕食作用。结果表明,方法特异性完全符合试验要求;食虫沟瘤蛛在捕食3头3-5龄白背飞虱或褐飞虱若虫后的检出期分别为96小时和120小时;在早稻田中,捕食性天敌对白背飞虱和褐飞虱的阳性反应率分别为19.05%-47.34%和19.05%-66.67%,在飞虱密度较低时,捕食性天敌仍表现出较高的阳性率;捕食量随飞虱密度的增加而增加,但捕食率下降。捕食性节肢动物是调节褐飞虱种群动态的重要因子之一。  相似文献   

19.
Brown planthopper (Nilaparvata lugens Stål, BPH) is one of the most destructive insect pests of rice. Exploring resistance genes from diverse germplasms and incorporating them into cultivated varieties are critical for controlling this insect. The rice variety Swarnalata was reported to carry a resistance gene (designated Bph6), which has not yet been assigned to a chromosome location and the resistance mechanism is still unknown. In this study, we identified and mapped this gene using the F2 and backcrossing populations and characterized its resistance in indica 9311 and japonica Nipponbare using near isogenic lines (NILs). In analysis of 9311/Swarnalata F2 population, the Bph6 gene was located on the long arm of chromosome 4 between the SSR markers RM6997 and RM5742. The gene was further mapped precisely to a 25-kb region delimited between the STS markers Y19 and Y9; and the distance between these markers is 25-kb in Nipponbare genome. The Bph6 explained 77.5% of the phenotypic variance of BPH resistance in F2 population and 84.9% in BC2F2 population. Allele from Swarnalata significantly increased resistance to the BPH, resulted in a reduced damage score. In characterization of Bph6-mediated resistance, the BPH insects showed significant preference between NIL-9311 and 9311 in 3 h and between NIL-NIP and Nipponbare in 120 h after release. BPH growth and development were inhibited, and the insect’s survival rates were lower on Bph6-NIL plants, compared with the parents 9311 and Nipponbare. The results indicate that the Bph6 exerted prolonged antixenotic and antibiotic effects in Bph6-NIL plants, and NIL-9311 plants showed a quicker and stronger effect toward BPH than NIL-NIP plants.  相似文献   

20.
The brown planthopper (Nilaparvata lugens Stål; BPH) is one of the most serious rice pests worldwide. Growing resistant varieties is the most effective way to manage this insect, and wild rice species are a valuable source of resistance genes for developing resistant cultivars. BPH27 derived from an accession of Guangxi wild rice, Oryza rufipogon Griff. (Accession no. 2183, hereafter named GX2183), was primarily mapped to a 17-cM region on the long arm of the chromosome four. In this study, fine mapping of BPH27 was conducted using two BC1F2 populations derived from introgression lines of GX2183. Insect resistance was evaluated in the BC1F2 populations with 6,010 individual offsprings, and 346 resistance extremes were obtained and employed for fine mapping of BPH27. High-resolution linkage analysis defined the BPH27 locus to an 86.3-kb region in Nipponbare. Regarding the sequence information of rice cultivars, Nipponbare and 93-11, all predicted open reading frames (ORFs) in the fine-mapping region have been annotated as 11 types of proteins, and three ORFs encode disease-related proteins. Moreover, the average BPH numbers showed significant differences in 96–120 h after release in comparisons between the preliminary near-isogenic lines (pre-NILs, lines harboring resistance genes) and BaiR54. BPH growth and development were inhibited and survival rates were lower in the pre-NIL plants compared with the recurrent parent BaiR54. The pre-NIL exhibited 50.7 % reductions in population growth rates (PGR) compared to BaiR54. The new development in fine mapping of BPH27 will facilitate the efforts to clone this important resistant gene and to use it in BPH-resistance rice breeding.  相似文献   

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