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1.
矮泰引-3中半矮秆基因的分子定位   总被引:6,自引:1,他引:5  
矮泰引-3的矮生性状受两对独立遗传的半矮秆基因控制,利用SSR标记将这两个矮秆基因分别定位到第1和第4染色体上。等位性测交的结果表明,位于第1染色体上的矮秆基因与sd1是等位的,所以仍然称其为sd1;而位于第4染色体上的矮秆基因是一个新基因,暂命名为sdt2。利用SSR标记将sd1定位于RM297、RM302和RM212的同一侧,而与OSR3共分离,它们之间的位置关系可能是RM297-RM302-RM212-OSR3-sd1,遗传距离分别为4.7cM、0cM、0.8cM和0cM,这与sd1在第1染色体长臂上的确切位置是基本一致的。利用已有的SSR标记和拓展的SSR标记将sdt2定位于SSR332、RM1305和RM5633、RM307、RM401之间,它们的排列位置可能是SSR332-RM1305-sdt2-RM5633-RM307-RM401,它们之间的遗传距离分别为11.6cM、3.8cM、0.4cM、0cM和0.4cM。  相似文献   

2.
两个大麦新矮秆基因的SSR标记   总被引:2,自引:1,他引:1  
采用SSR技术对沪95-2639和91冬27携带的两个新的矮秆基因进行了分子标记.在大麦4H染色体的长臂上,发现SSR标记位点HVM67同时与这两个新的矮秆基因连锁,距91冬27的较近,约10.0cM,离沪95-2639的较远,为23.3cM.初步绘制出大麦4H染色体上矮秆基因与SSR标记位点的遗传连锁图谱.  相似文献   

3.
一个新的水稻小粒矮秆基因的分子标记定位及效应分析   总被引:6,自引:0,他引:6  
从水稻(Oryza safjva L.)半矮秆品种蜀恢I62中发现一份小粒矮秆突变体“I62d”。对I62d与4个半矮秆品种杂交F1和F2代的遗传分析表明,I62d的矮生性由一对隐性基因控制。以II-32B/162d F2代作定位群体,用分子标记将I62d突变基凶定位丁水稻第3染色体短臂,该基因与微卫星标记RM218和RMI57之间的遗传距离分别为3.5cM和10.0cM。同时,利用近等基因系分析了该基因的表型效应,结果表明它可使株高降为正常高度的1/4左右,籽粒降为正常大小的1/4左右,并使叶片显著缩短、加宽,结实率显著降低。我们认为162d突变基因是一个新的水稻小粒矮秆某因,暂命名为dI62(t)。  相似文献   

4.
利用SSR定位籼稻品种Kaharamana中抗褐飞虱基因Bph9   总被引:8,自引:0,他引:8  
褐飞虱是危害水稻生产最重要的害虫之一,利用寄主抗性被认为是防治褐飞虱最经济而有效的方法。斯里兰卡水稻品种Kaharamana对东亚和东南亚的褐飞虱种群均表现抗虫性,利用分子遗传学的方法对其携带的Bph9基因进行了SSR定位。所用的遗传群体为来源于Kaharamana和02428的含有180个单株的F2分离群体,每个F2单株套袋自交获得F2:3家系。利用苗期集团鉴定埘F2:3家系进行抗褐飞虱鉴定,以推测相应F2单株的基因型。连锁分析表明,Bph9位于第12染色体上的两个SSR标记RM463和RM5341之间,分别与之相距6.8cM和9.7cM。该标记有助十将Bph9用于分子标记辅助选择育种研究。  相似文献   

5.
水稻抗褐飞虱基因bph2的SSR定位和标记辅助选择   总被引:6,自引:1,他引:5  
利用综合性状较好对褐飞虱敏感的粳稻恢复系C418为父本,以含有bph2基因的抗褐飞虱品种ASD7为母本构建了包含134个F23家系的群体,利用苗期鉴定法对F2:3家系进行抗性鉴定:用SSR标记技术,将bph2基因定位在第12染色体长臂上,标记RM7102和RM463之间,其遗传距离分别为7.6cM和7.2cM。在进行表型选择的同时,利用与bph2基因连锁的SSR标记RM7102和RM463对BC1F1和BC2F1进行了标记辅助选择,选择效率分别为89.9%和91.2%,为培育高抗褐飞虱水稻品种奠定了基础。  相似文献   

6.
从水稻(Oryza sativa L.)的两个半矮秆籼稻品种6442S-7和蜀恢881杂交F2代群体中发现一个高秆突变体D111,其株高和秆长分别比亲本蜀恢881增加63.0%和87.0%.用205个微卫星标记分析D¨1及其原始亲本6442S-7和蜀恢881之间的基因组DNA多态性,结果未发现D111具有2个原始亲本都没有的新带型,证明D1¨的确是6442S-7和蜀恢881的杂交后代发生基因突变产生的.将D111分别与蜀恢881、蜀恢527、明恢63、9311、IR68、G46B等6个半矮秆品种和高秆对照品种南京6号杂交,分析F1和F2代株高的遗传行为,结果表明D1¨的高秆性状由一对显性基因控制,且该基因与南京6号的高秆基因紧密连锁或等位.以蜀恢527/D111 F2群体为定位群体,运用微卫星标记将D111显性高秆突变基因定位于水稻第一染色体长臂,与RM212、RM302和RM472的遗传距离分别是27.7 cM、25.5 cM和6.0 cM,该基因暂命名为LC(t).认为D111是首例从半矮秆品种自然突变产生的水稻显性高秆突变体,LC(t)为首次定位的水稻显性高秆突变基因.此外,将上述基因定位结果与Causse等(1994)和Temnykh等(2000,2001)发表的水稻分子连锁图谱进行比较,发现LC(t)基因恰巧位于与水稻"绿色革命基因"sd1相同或十分相近的染色体区域,因此,还就LC(t)基因与sd1基因之间的可能关系进行了讨论.  相似文献   

7.
水稻脆性突变体是研究细胞壁组分结构形成机制的重要材料。通过离子束诱变籼稻9311获得1个茎秆、叶片均脆的突变体,命名为bc9311-1。bc9311-1突变体与野生型9311相比,分蘖数减少,结实率显著降低,其他农艺性状无明显差异。叶片和茎秆的细胞壁成分分析表明,与野生型相比,bc9311-1突变体茎秆中的纤维素和木质素含量明显降低,半纤维素和SiO2含量显著增加;叶片中的纤维素含量降低,半纤维素和木质素含量增加,SiO2含量无明显差异。遗传分析表明,该脆性突变体脆性性状受单隐性基因控制。以bc9311-1突变体与02428杂交的F2群体为基因定位群体,利用SSR标记将bc9311-1突变位点定位在水稻第1染色体上,位于SSR分子标记的RM1095和RM3632之间,遗传距离分别为0.6cM和3.4cM,与其中的标记RM1183表现共分离。这些结果为进一步克隆突变基因,揭示脆性性状的分子机制奠定坚实基础。  相似文献   

8.
一个水稻显性高秆突变体的遗传分析和基因定位   总被引:6,自引:0,他引:6  
从水稻(Oryza sativa L.)的两个半矮秆籼稻品种6442S-7和蜀恢881杂交F2代群体中发现一个高秆突变体D111,其株高和秆长分别比亲本蜀恢881增加63.0%和87.0%。用205个微卫星标记分析D111及其原始亲本6442S-7和蜀恢881之间的基因组DNA多态性,结果未发现D111具有2个原始亲本都没有的新带型,证明D111的确是6442S-7和蜀恢881的杂交后代发生基因突变产生的。将D111分别与蜀恢881、蜀恢527、明恢63、9311、IR68、G46B等6个半矮秆品种和高秆对照品种南京6号杂交,分析F1和F2代株高的遗传行为,结果表明D111的高秆性状由一对显性基因控制,且该基因与南京6号的高秆基因紧密连锁或等位。以蜀恢527/D111 F2群体为定位群体,运用微卫星标记将D111显性高秆突变基因定位于水稻第一染色体长臂,与RM212、RM302和RM472的遗传距离分别是27.7 cM、25.5 cM和6.0 cM,该基因暂命名为LC(t)。认为D111是首例从半矮秆品种自然突变产生的水稻显性高秆突变体,LC(t)为首次定位的水稻显性高秆突变基因。此外,将上述基因定位结果与Causse等(1994)和Temnykh等(2000; 2001)发表的水稻分子连锁图谱进行比较,发现LC(t)基因恰巧位于与水稻“绿色革命基因”sd1相同或十分相近的染色体区域,因此,还就LC(t)基因与sd1基因之间的可能关系进行了讨论。  相似文献   

9.
水稻抗白叶枯病基因Xa-25的分子定位   总被引:14,自引:0,他引:14  
Xa-25是从体细胞突变体HX-3中鉴定出的水稻抗白叶枯病基因。通过花药培养构建了02428(粳稻)和HX-3(籼稻)的双单倍体(DH)群体,该群体包含了129个稳定株系,以我国长江流域水稻白叶枯病的代表菌株浙173对DH群体进行抗病性鉴定,抗病株系数和感病株系数分别为62和67。共选用覆盖水稻12条染色体的300对SSR引物对02428和HX-3进行多态性分析,有74对引物在双亲之间表现差异。利用这些差异引物对DH群体进行连锁分析,从而将抗白叶枯病基因Xa-25定位到第4染色体长臂末端的两个SSR标记RM6748和RM1153之间,连锁距离分别为9.3cM和3.0cM。  相似文献   

10.
一个水稻卷叶主效QTL的定位及其物理图谱的构建   总被引:17,自引:0,他引:17  
以水稻平展叶品种奇妙香和中度卷叶品种91SP068组合的F2无性系群体为定位群体,利用微卫星标记(SSR)对卷叶基因进行定位。在第5染色体长臂上定位到1个卷叶主效QTLS(rl8),它来自亲本91SP068,两侧标记为RM6954和RM6841,标记间的遗传距离为3.8cM,rl8距RM6954 1.0cM。所估计的加性效应和显性效应两年间均有所不同,2002年和2003年通过复合区间作图法所估计的加性效应分别为9.61和6.23,显性效应分别为-1.19和-4.44,两年间对表型的贡献率变化在20%~33%。同时,构建了覆盖该QTL区间的物理图谱,两标记间的物理距离为542kb,遗传距离和物理距离之比为144kb/cM。  相似文献   

11.
Two mutants possessing elongated uppermost internode, Xieqingzao eB-1 (XQZeB-1) and Xieqingzao eB-2 (XQZeB-2), were identified from M 2 population of Xieqingzao B-line (XQZB) treated with γ-ray. The proportion of uppermost internode length to entire culm length of XQZeB-2 and XQZeB-1 were 65.3%and 54.8%, respectively. Compared with the original XQZB, the increased length of uppermost internode of XQZeB-2 contributed to the total increased culm length by 90.2% as well as XQZeB-1 by 53.3%. Genetic analysis showed that the characters of elongated uppermost internode in the two mutants were governed by one pair of recessive gene respectively. The recessive gene of XQZeB-1 is allelic to the reported eui , but that of XQZeB-2 is non-allelic to it by allelic test. Therefore, the elongated-uppermost-internode gene of XQZeB-2 is a new gene, designated as eui2. Microsatellite markers RM258, RM269, RM271 and RM304, which were linked with eui2 and located on chromosome 10, were identified. The genetic distances from the four markers to eui2 were 12.0 cM, 12.9 cM, 35.1 cM, 1.4 cM, respectively. It could be concluded that eui2 gene was located on the middle of the long arm of chromosome 10.  相似文献   

12.
水稻白色中脉Oswm2的遗传分析与分子标记定位   总被引:4,自引:0,他引:4  
胡景涛  张甲  李园园  付崇允  郑静  陈家彬  胡燕  李仕贵 《遗传》2008,30(9):1201-1206
从T-DNA突变体库中获得一份以中花11为遗传背景的白色中脉突变体。该突变体剑叶以下叶片的中下部中脉表现为白色, 白色中脉附近的叶色微黄, 并且伴随株高等农艺性状的改变, 暂时将其定名为Oswm2(Oryza sativa white midrib 2)。遗传分析表明该突变性状受一对隐性单基因控制, 以Oswm2和粳稻02428杂交的F2分离群体作为定位群体, 将OsWM2基因定位在水稻第7染色体的SSR标记RM21478和RM418之间, 遗传距离分别为8.7和15.9 cM。  相似文献   

13.
A rice mutant, G069, characteristic of few tiller numbers, was found in anther culture progeny from the F1 hybrid between an indica-japonica cross, Gui630×02428. The mutant has another two major features: delayed tillering development and yellowing apex and margin on the mature leaves. As a donor parent, G069 was further backcrossed with the recurrent parent, 02428, for two turns to develop a BC2F2 population. Genetic analysis in the BC2F2 population showed that the traits of few-tillering and yellowing apex and margin on the mature leaves were controlled by one recessive gene. A pool of equally mixed genomic DNA, from few-tillering individual plants in BC2F2, was constructed to screen polymorphism with simple sequence repeat (SSR) markers in comparison with the 02428 genome. One SSR marker and three restriction fragment length polymorphism (RFLP) markers were found possibly linked with the recessive gene. By using these markers, the gene of few-tillering was mapped on chromosome 2 between RFLP marker C  相似文献   

14.
A novel floral organ mutant of rice (Oryza sativa L. subsp. indica), termed pistilloid-stamen (ps) here, has flowers with degenerated lemma and palea, with some stamens transformed into pistils and pistil-stamen chimeras. Genetic analysis confirmed that the ps trait is controlled by a single recessive gene. F2 and F3 segregation populations derived from PS ps heterozygote crossed with Oryza sativa subsp. indica 'Luhui-17' (PS PS) were used for molecular mapping of the gene using simple sequence repeat (SSR) markers. With 97 recessive individuals from an F2 segregation population, the ps locus was preliminarily mapped 6.2 cM distal to marker RM6324 and 3.1 cM proximal to marker RM6340 in the terminal region of the short arm of chromosome 1. With a large F3 segregation population, the gene was fine-mapped between markers RM6470 and RM1141, at distances of 0.10 and 0.03 cM to each marker, respectively. The position of the ps gene was finally located within a 20 kb physical region containing 3 annotated putative genes. One of them, encoding a protein with a single C2H2 zinc-finger domain, may be the candidate gene for PS.  相似文献   

15.
A mutant of spikelet differentiation in rice called frizzle panicle (fzp) was discovered in the progeny of a cross between Oryza sativa ssp. indica cv. V20B and cv. Hua1B. The mutant exhibits normal plant morphology but has apparently fewer tillers. The most striking change in fzp is that its spikelet differentiation is completely blocked, with unlimited subsequent rachis branches generated from the positions where spikelets normally develop in wild-type plants. Genetic analysis suggests that fzp is controlled by a single recessive gene, which is temporarily named fzp (t). Based on its mutant phenotype, fzp (t) represents a key gene controlling spikelet differentiation. Some F2 mutant plants derived from various genetic background appeared as the "middle type", suggesting that the action of fzp (t) is influenced by the presence of redundant, modifier or interactive genes. By using simple sequence repeat (SSR) markers and bulked segregant analysis (BSA) method, fzp (t) gene was mapped in the terminal region of the long arm of chromosome 7, with RM172 and RM248 on one side, 3.2 cM and 6.4 cM from fzp (t), and RM18 and RM234 on the other side, 23.1 cM and 26.3 cM from fzp(t), respectively. These results will facilitate the positional cloning and function studies of the gene.  相似文献   

16.
Monocots and dicots have diverged for 120 million years. The floral morpha of cereals isunique and much different from that of dicot plants. Nevertheless, it has been found that most genes controlling flower development share a conserved sequence called MADS-box[1]. Therefore,it is likely that monocots and dicots could have similar basic characteristics of flower developmentbut the mechanisms of genetic regulation for flowering induction and floral differentiation might be different[2,3]. Du…  相似文献   

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