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1.
普通冬小麦品系99-2439在郑州连续4年对田间白粉菌(Blumeria graminis sp. tritici)表现高抗,但其抗性基因来源不清。通过染色体C-分带和1RS染色体特异性SCAR标记鉴定, 表明它是一个小麦-黑麦(Triticum aestivum - Secale cereale)1BL/1RS异易位系。通过对中国春×99-2439杂交F2代分离群 体抗性鉴定和1RS染色体臂检测结果分析, 证明该抗病基因不在1RS染色体臂上。用单孢小麦白粉菌分离株对其抗性遗传进行研究, 结果表明, 99-2439的白粉病抗性由一对小种专化、隐性抗病基因控制。由于携带Pm5a的Hope/8Cc对中国的21个小麦白粉菌分离菌株均高度感病, 而99-2439高抗混和白粉菌和5个单孢分离菌株, 所以, 99-2439所携带的抗白粉病基因不同于Pm5a。  相似文献   

2.
对99份硬粒小麦-粗山羊双二倍体用北京地区流行的5号白粉菌生理小种进行了白粉病抗性鉴定,筛选出11个苗期抗病的双二倍体材料和2个全生育期抗病的材料M53和M81。对M53和M81及其硬粒小麦和粗山羊草亲本进行的抗白粉病鉴定结果表明,其抗性来源于粗山羊草。与M53和M81具有相同硬粒小麦亲本、不同粗山羊草亲本双二倍体的抗性结果也表明抗性基因来源于粗山羊草。对M53和M81的抗性遗传分析表明,它们均携带1个单显性抗病基因。用14个白粉菌生理小种对已知抗病基因品系与M53和M81两份待测材料进行接种鉴定,结果表明,M53和M81与已知基因的抗菌谱均不相同,M53与M81的抗菌谱也不相同,说明M53和M81各自分别携带1个新的显性抗白粉病基因。  相似文献   

3.
用离体叶段接种方法鉴定了11个四倍体小麦一山羊草双二倍体、波斯小麦PS5、硬粒小麦DR147、5份山羊草、杂交高代材料Am9/莱州953*^2F5和(DR147/Ael4)//莱州953*^2F4对20个具有不同毒力白粉菌株的抗谱。通过与含有已知抗病基因品种或品系的反应模式比较,推测Am9/莱州953*^2F5含有Pm4b,波斯小麦PS5含有Pm4b与一个未知抗病基因组合;(DR147/Ael4)//莱州953*^2F4和硬粒小麦DR147含有Pm4a和一个未知抗病基因组合;尾状山羊草Ael4和小伞山羊草Y39抗所有白粉菌株,由于迄今还没有在尾状山羊草和小伞山羊草中鉴定出抗白粉病基因,推测这2份山羊草含有新的抗白粉病基因。除Am9外,在其它双二倍体中波斯小麦或硬粒小麦的抗性部分受到抑制。山羊草的抗性部分或完全量到抑制。  相似文献   

4.
白粉病是河北省小麦生产的重要常发病害,明确小麦审定品种和高代品系中所携带的抗病基因对合理利用和布局已知抗源、实现对小麦白粉病的有效防控具有重要意义。本研究结合人工接种白粉病菌株E09和E20与抗病基因连锁(或共分离)标记对1956-2018年间河北省371份小麦材料(含审定品种256份、高代品系115份)进行苗期抗白粉病鉴定和抗病基因检测。结果表明:供试材料中,抗E09的材料占6.2%,抗E20的占11.9%,兼抗两个菌株的材料占4.9%;部分材料携带Pm1c、Pm2、Pm4b、Pm21、Pm24和Pm35基因,未检测到Pm12基因。Pm8基因在供试材料中所占比例较高,接近50%。供试材料中抗病审定品种比例远大于高代品系,说明小麦抗白粉病种质创新仍为当务之急,需要引起重视。在用连锁或共分离标记进行抗病基因检测时,通过计算某基因对两个菌株抗病反应型与标记检测结果一致的材料比例,发现Pm12、Pm21和Pm35等基因的标记检测效率较高,同时这些基因的标记也方便使用,可优先考虑用这些标记检测目的基因。  相似文献   

5.
小麦近缘种属来源的抗白粉病基因是培育小麦抗病品种,防治白粉病危害的最重要基因来源。Pm57是位于西尔斯山羊草2S^s#l染色体长臂上的一个外源基因,对小麦白粉病具有苗期和成株期广谱抗性。为了创制Pm57白粉病抗性丧失突变体,利用基于基因突变体的植物抗病基因克隆新兴技术分离Pm57基因,选用0.625%的甲基磺酸乙酯(EMS)对1万粒小麦-西尔斯山羊草Pm57易位系89(5)69种子进行了诱变处理,M1大田密播种植,收获了1598个M2可育株系。初步对其中300个M2株系进行苗期白粉病抗性接种鉴定,并利用2个Pm57基因特异分子标记X2L4g9P4/HaeⅢ和X284274及小麦全国区试品系DUS测试所用的42对SSR核心引物对Pm57抗性丧失突变体进行鉴定,筛选出来自27个M2株系的真实抗性丧失突变体70个,Pm57基因抗性丧失突变体频率达到9.0%。本研究所获得的白粉病抗性丧失突变体为Pm57基因的后续克隆与抗白粉病分子机理研究提供了重要的材料基础。  相似文献   

6.
小麦白粉病是由布氏禾白粉菌(Blumeria graminis f.sp.tritici)引起,在小麦生产上发生最广泛的世界性病害之一。普通小麦品种农大399(系谱为Torino/2*2552//9516/3/5*石4185)是利用"滚动式加代回交转育"育成的高产、抗白粉病新品种。利用农大399和高感白粉病小麦品种石4185进行杂交,获得农大399/石4185的F1、F2分离群体和F2:3家系。对F1、F2分离群体和F2:3家系进行了苗期抗白粉病鉴定和遗传分析,结果表明:农大399对白粉菌生理小种E09的抗性受l对显性基因控制,暂命名为MlND399。通过BSA和分子标记分析,获得了与MlND399连锁的1个SSR标记Xcfd81和2个AFLP-SCAR标记SCAR203和SCAR112。其中MlND399与Xcfd81的遗传距离为0.2 cM,与SCAR203的遗传距离为1.0 cM,与SCAR112的遗传距离为1.2 cM。根据SSR标记在中国春缺体-四体、双端体和缺失系中的定位结果,将MlND399定位在小麦染色体臂5DSBin 0.67~0.78区间上。根据对抗白粉病基因的染色体定位结果,推测MlND399是Pm2基因。这些与MlND399连锁分子标记为利用农大399的抗白粉病基因进行抗病基因聚合和分子标记辅助选择育种奠定了基础。  相似文献   

7.
簇毛麦(Dasypyrum villosum(L.)P.Candargy 2n=14,VV)是小麦改良重要的三级基因源.簇毛麦5VS染色体臂上携带抗白粉病基因Pm55、抗条锈病基因Yr5V和籽粒硬度基因Dina/Dinb等优异基因.已创制的小麦-簇毛麦T5VS.5AL和T5VS.5DL易位系为小麦抗病和品质改良提供了优...  相似文献   

8.
小麦主栽品种中的1RS分布和兰考90(6)系列白粉病新抗源   总被引:5,自引:0,他引:5  
利用黑麦染色体臂1RS的特异性PCR标记,对黄淮麦区138个小麦主栽品种、系进行了PCR扩增,结果表明:有42.0%的小麦品种、系携带1RS染色体臂。以六倍体小黑麦Mzalenod Beer为黑麦染色体供体,培育的兰考90(6)系列小麦品系是新的小麦-黑麦1BL/1RS易位系。这些品系对小麦白粉病具有很高的抗性,是小麦抗白粉病育种的新抗源。对兰考90(6)系列品系白粉病抗性进行了研究,结果表明,兰考90(6)系列品系的抗谱与许多已经知道的小麦抗白粉病基因的抗谱不同,并具有数量抗性特点。  相似文献   

9.
小麦硫代硫酸硫转移酶类似基因的克隆与定位   总被引:8,自引:2,他引:6  
小麦-簇毛麦6VS/6AL易位系92R137含有抗白粉病基因Pm21。为了研究该易位系的抗病机理,应用mRNA差异显示和快速扩增cDNA未端(Rapid Amplification of cDNAEnd,RACE)技术对在白粉菌诱导后表达增强的基因进行了克隆,分离到1个命名为TaTST的全长cDNA序列。Northern杂交分析表明,TaTST基因在白粉菌诱导后表达明显增强,24h达到峰值,氨基酸序列同源性分析表明,TaTST与Datisca glomerata的硫代硫酸硫转移酶基因(rho-danese,EC,2.8.1.1)序列有64%相同,80%相似,用中国春缺体/四体系和端体系Southern杂交和基因特异性引物扩增(gene specific primer-PCR)将TaTST基因定位在小麦6B染色体短臂上,Southern杂交表明,该基因为单拷贝基因,由于在杨麦5号和6VS/6AL易位系间存在明显多态,可以推测在6VS上有TaTST的同源基因,TaTST是从小麦中分离的新基因。白粉菌诱导后的表达变化提示;TaTST与小麦抗白粉病反应有关。  相似文献   

10.
一粒小麦抗白粉病和条锈病基因的分析   总被引:2,自引:0,他引:2  
一粒小麦是普通小麦抗性改良的宝贵资源.本研究对24份一粒小麦分别进行了白粉病和条锈病混合菌种苗期接种鉴定,进一步分别用一套白粉病菌菌株(15个)对2份乌拉尔图小麦和条锈病菌小种(21个)对1份栽培一粒小麦进行接种鉴定,其中乌拉尔图小麦UR206能抵抗所有供试白粉菌菌株,UR204除对白粉菌菌株E11感病外,对其余菌株表现抗性;栽培一粒小麦MO205对不同条锈菌小种表现出不同的抗性反应,研究表明乌拉尔图小麦UR206、UR204和栽培一粒小麦MO205分别含有与已知抗白粉病和抗条锈病基因不同的新基因.对乌拉尔图小麦UR204、UR206和栽培一粒小麦MO205分别进行抗白粉和条锈病基因的遗传分析,结果表明乌拉尔图小麦UR204和UR206分别含有一对显性抗白粉病基因,栽培一粒小麦MO205含有两对独立遗传的显性抗条锈病基因.  相似文献   

11.
为研究抗白粉病小麦(Triticum aestivum L.)品系在小麦白粉病菌(Blumeria graminis f. sp.tritici)侵染后有无LRK10同源基因表达,依据小麦蛋白激酶LRK10和其它植物蛋白激酶第6亚结构域设计了一个5’-RACE兼并性引物。以接种小麦白粉病菌后的小麦抗白粉病品系“99—2439”幼苗叶片cDNA为模板进行5’-RACE扩增,获得了一个1551bp长的蛋白激酶基因cDNA片段(S1125,GenBank登录号:AY584533)。此后,通过RACE技术成功地获得了该基因的全长cDNA克隆。该克隆编码637个氨基酸组成的多肽。同源性查寻表明,该基因属于先前命名为wfrk(wheat leaf rust kinase)的小麦类受体蛋白激酶基因家族。与LRK10相似,这个新的小麦类受体蛋白激酶有5个明显的功能域:位于氨基端的疏水信号序列、推测的胞外结构域、跨膜域、高荷电序列和位于羧基端的丝氨酸/苏氨酸激酶域,因此被命名为TaLRK(Triticum aestivum LRK)。以小麦肌动蛋白基因为对照,通过半定量反转录PCR(semi—QRT—PCR)技术对叶片中TaLRK基因在小麦白粉病菌接种后的转录水平表达谱进行了研究。结果表明,小麦白粉病菌的侵染使TaLRK基因的转录显著增强。组织特异性表达分析证明,这一基因仅在小麦的绿色部分表达。研究结果提示TaLRK可能参与了小麦的抗白粉病反应。  相似文献   

12.
L Qi  M Cao  P Chen  W Li  D Liu 《Génome》1996,39(1):191-197
A new powdery mildew resistance gene designated Pm21, from Haynaldia villosa, a relative of wheat, has been identified and incorporated into wheat through an alien translocation line. Cytogenetic and biochemical analyses showed that chromosome arms 6VS and 6AL were involved in this translocation. Random amplified polymorphic DNA (RAPD) analysis was performed on recipient wheat cultivar Yangmai 5, the translocation line, and H. villosa with 180 random primers. Eight of the 180 primers amplified polymorphic DNA in the translocation line, and the same results were obtained in four replications. Furthermore, RAPD analysis was reported for substitution line 6V, seven addition lines (1V-7V), and the F1, as well as F2 plants of (translocation line x 'Yangmai 5'), using two of the eight random primers. One RAPD marker, specific to chromosome arm 6VS, OPH17-1900, could be used as a molecular marker for the detection of gene Pm21 in breeding materials with powdery mildew resistance introduced from H. villosa. Key words : RAPD analysis, 6VS-specific marker, Pm21, Erysiphe graminis f.sp. tritici, Triticum aestivum - Haynaldia villosa translocation.  相似文献   

13.
A dominant powdery mildew resistance gene introduced from Triticum timopheevii in line 146-155-T of common wheat, Triticum aestivum, was located on chromosome 6B by monosomic analysis. Restriction fragment length polymorphism (RFLP) and microsatellite analyses detected the presence of a T. timopheevii segment, translocated to chromosome 6B, with breakpoints between the loci Xpsr8/Xpsr964 on 6BS and Xpsr154/Xpsr546 on 6BL. The novel powdery mildew resistance gene, which has been designated Pm27, was shown to cosegregate with the microsatellite locus Xpsp3131, which is located on the introgressed T. timopheevii segment. The molecular data confirm the location of Pm27 on the translocated 6B chromosome.  相似文献   

14.
Pm23: a new allele of Pm4 located on chromosome 2AL in wheat   总被引:1,自引:1,他引:0  
Powdery mildew, caused by Blumeria graminis f. sp. tritici, is one of the major diseases of common wheat (Triticum aestivum) worldwide. The powdery mildew resistance gene Pm23, identified in the common wheat Line 81-7241 and originally assigned to wheat chromosome 5A, was relocated on chromosome 2AL with the aid of molecular markers. Mapping of microsatellite markers in two wheat crosses segregating for Pm23 and Pm4b, respectively, in combination with the reported mapping of Pm4a, indicated that the three genes were all linked to the marker Xgwm356 with a distance of 3-5 cM. Allelism between Pm4b and Pm23 was then confirmed, when the progenies of a cross between VPM1 (Pm4b) and Line 81-7241, were shown to be all resistant to a B. graminis isolate avirulent to the both parents. Pm23 is therefore a new allele of the Pm4 locus, and was redesignated as Pm4c.  相似文献   

15.
小麦Beclin1类似基因的分子克隆与鉴定   总被引:2,自引:0,他引:2  
以小麦 簇毛麦 (Triticumaestivum Haynal diavillosa) 6VS/6AL易位系 92R1 3 7为材料 ,应用mRNA差异显示和快速扩增cDNA末端 (rapidam plificationofcDNAends,RACE)技术对在白粉菌(Blumeriagraminis)诱导后表达增强的基因进行了克隆。分离到一个与拟南芥Beclin1类似基因同源的全长cDNA克隆 ,暂定名为小麦Beclin1类似基因。它编码 441个氨基酸组成的多肽。二级结构推导显示与人类Beclin相似 ,具有螺旋结构。Northern杂交分析表明 ,小麦Beclin1类似基因在白粉菌诱导后表达增强。Southern分析证明 ,小麦Beclin1类似基因为单拷贝基因  相似文献   

16.
In order to transfer useful genes of Hordeum californicum into common wheat (Triticum aestivum L.), the T. aestivum c.v. Chinese Spring (CS)-H. californicum amphiploid was crossed to CS, and its backcrossing and self-fertilized progenies were analyzed by morpho-logical observation, cytological, biochemical and molecular marker techniques. Alien addition lines with two H. californicum chromo-somes were identified and their genetic constitution was characterized. STS-PCR analysis using chromosome 2B specific markers indi-cated that chromosome H3 of 1t. califomicum belongs to homoeologous group 2, and was thus designated 2H. SDS-PAGE showed that chromosome H2 of H. californicum belongs to homoeologous group 5, and was designated 5H. The CS-H. californicum amphiploid and the chromosome addition lines (DA2H and MA5H) identified were evaluated for powdery mildew (Erysiphe graminis f. sp. triticii) resis-tance in field. The preliminary results indicated that the amphiploid showed higher powdery mildew resistance than CS. However, chro-mosome addition lines DA2H and MA5H were highly susceptible to powdery mildew, indicating that major powdery mildew resistant genes of H. californicum should be located on chromosomes other than 2H and 5H.  相似文献   

17.
The powdery mildew resistance gene Pm22, identified in the Italian wheat cultivar Virest and originally assigned to wheat chromosome 1D, was mapped to chromosome 7A with the aid of molecular markers. Mapping of common AFLP and SSR markers in two wheat crosses segregating for Pm22 and Pm1c, respectively, indicated that Pm22 is a member of the complex Pm1 locus. Pm22 also showed a pattern of resistance reaction to a differential set of Blumeria graminis f. sp. tritici isolates that was distinguishable from those from other Pm1 alleles in lines Axminster/8*Cc ( Pm1a), MocZlatka ( Pm1b), Weihenstephan Stamm M1N ( Pm1c) and Triticum spelta var. duhamelianum TRI 2258 ( Pm1d). Based on these results, the gene symbol Pm1e is proposed for the powdery mildew resistance gene in cv. Virest.  相似文献   

18.
Two dominant powdery mildew resistance genes introduced from Triticum carthlicum accession PS5 to common wheat were identified and tagged using microsatellite markers. The gene designated PmPS5A was placed on wheat chromosome 2AL and linked to the microsatellite marker Xgwm356 at a genetic distance of 10.2 cM. Based on the information of its origin, chromosome location, and reactions to 5 powdery mildew isolates, this gene could be a member of the complex Pm4 locus. The 2nd gene designated PmPS5B was located on wheat chromosome 2BL with 3 microsatellite markers mapping proximally to the gene: Xwmc317 at 1.1 cM; Xgwm111 at 2.2 cM; and Xgwm382 at 4.0 cM; and 1 marker, Xgwm526, mapping distally to the gene at a distance of 18.1 cM. Since this gene showed no linkage to the other 2 known powdery mildew resistance genes on wheat chromosome 2B, Pm6 and Pm26, we believe it is a novel powdery mildew resistance gene and propose to designate this gene as Pm33.  相似文献   

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