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1.
八倍体小偃麦染色体组分析   总被引:9,自引:0,他引:9  
钟冠昌  张学勇 《遗传学报》1991,18(4):339-343
本文对普通小麦与长穗偃麦草(Elytrigia elongata=Agropyron elongatum.2n=70)杂交选育出来的5个八倍体小偃麦的染色体组进行了研究。通过八倍体小偃麦与普通小麦杂交,八倍体小偃麦相互间杂交,观察了杂种F_1花粉母细胞减数分裂行为。根据观察结果,讨论了长穗偃麦草染色体组的构成,认为长穗偃麦草的染色体组为E_1E_2F_2F_2N较为合适。在此基础上,确定了5个八倍体小偃麦的染色体组:7430为ABDE_1,68为ABDF_1,693为ABDF_1,7631为ABDF_2,784为ABDN。另外,还讨论了八倍体小偃麦染色组的重组问题。  相似文献   

2.
一个异源胞质单体附加系小麦的遗传分析   总被引:2,自引:0,他引:2  
以长穗偃麦草(Elytrigia elongata=Agropyron elongatum,2n=70)为母本,普通小麦为父本,进行核代换回交,在第九次回交的F_1(BC,F_1)代里,发现了一个异源胞质单体附加系小麦,代号E617。以E617做母本,普通小麦做父本进行杂交,杂种F_1出现正常株和弱株两种类型。正常株具有43条染色体,弱株具有42条染色体。反交,以普通小麦做母本,E617做父本,杂种F_1,无论是具有43条染色体还是具有42条染色体的植株,都是正常的。正反杂交结果表明,长穗偃麦草细胞质对普通小麦的细胞核产生了抑制作用,使核质杂种生长不正常,而附加一条特异的长穗偃麦草染色体(或端体),就能消除长穗偃麦草细胞质的抑制作用,使核质杂种恢复正常生长。  相似文献   

3.
本文是普通小麦与长穗偃麦草杂交育种二十年的经验总结。内容介绍了长穗偃麦草的特性和染色体组型,克服杂交不育和杂种不育的方法,杂交育种的程序及其遗传分析和选出的小偃麦八倍体种、异附加系、异代换系与丰产抗病的小偃麦新品种。  相似文献   

4.
获得了硬粒小麦(2n=6x=28、AABB)与中间偃麦草(2n=6x=42、NNE_1E_1E_2E_2)杂种F_1及回交后代材料。统计分析杂种F_1及回交一代PMC MI染色体配对构型,认为中间偃麦草具较远缘的同亲关系(distant homologous)染色体组。由三价体出现频率分析,中间偃麦草不含小麦的B染色体组,建议用NE_1E_2为其染色体组公式。根据回交一代及其自交后代染色体数目,分析了六倍体小偃麦这一人工新物种的形成过程。  相似文献   

5.
小麦-大麦异代换系的创制及鉴定研究   总被引:1,自引:0,他引:1  
利用"缺体回交法"以小大麦二体异附加系WBA9816作父本与阿勃缺体小麦杂交,创制小大麦异代换系.F1再用该异附加系回交,回交后代通过细胞学鉴定,筛选2n=43的双单体植株套袋自交,从自交后代群体培育出WBS02126;用原位杂交GISH和染色体C-分带技术鉴定表明,WBS02126为2D/2H异代换系;田间试验结果显示,WBS02126生长发育良好,育性基本正常,表现弱春性,叶片宽厚上挺,叶色淡绿,棒状穗,小穗排列紧密,长芒,早熟,综合抗病性好.  相似文献   

6.
“缺体回交法”选育普通小麦—山羊草异代换系的研究   总被引:3,自引:2,他引:1  
利用从兰单体自交分离得到的5个自花结实的4D缺体小麦(映72180、块天选15等)作母本与11个山羊草(Ae.speltoides, Ae.sharonensis等)杂交,再以4D缺体为轮回亲本对杂种进行回交,借助于幼胚培养技术,获得了缺天选15×拟斯卑尔脱山羊草二体异代换系,缺72180×沙融山羊草单体异代换系。代换系生长发育良好,育性基本正常,表明山羊草的4S染色体能够补偿小麦缺失的4D染色体的功能。证明利用“缺体回交法”选育普通小麦—山羊草异代换系是有效的和可行的。  相似文献   

7.
本研究以八倍体小偃麦小偃7430和普通小麦鲁麦1号为亲本,对其杂种的6个世代(F_1、F_2、F_3、B_1F_2、B_1F_3、B_2F_2)的细胞遗传学进行了研究。结果表明:从杂种F_1开始,随着自交和回交世代的增进,杂种后代植株染色体数逐渐减少;植株染色体数越多,减数分裂中期Ⅰ单价体出现频数、多价体出现类型及频数也越多,但二价体出现个数基本稳定在21左右。通过细胞学鉴定和性状观察,从小偃7430与鲁麦1号杂交的不同世代中选出了几个二体异附加株,有的农艺性状较好;还选出了农艺性状好,细胞学基本稳定的2n=42的株系,初步实现了将偃麦草的某些特异染色体或优良基因导入普通小麦遗传背景的目的。  相似文献   

8.
小麦VE161雄性不育异代换系的染色体分析   总被引:7,自引:2,他引:5  
VE161是一个具有一对长穗偃麦草(Agropyron elongatum)染色体的小麦雄性不育异代换系。由于不能用做父本,采用一般单体分析法确定其被代换的染色体比较困难。因此用一套中国春缺-四体和重双端体对其进行了分析,并以F_1花粉母细胞MI单价体的N-显带技术进行了验证。结果表明,VE161代换系所代换的染色体为7B,该方法对确定雄性不育代换系所代换的染色体是一个简单易行的方法。染色体行为观察说明,该代换系的一对长穗偃麦草染色体可能与小麦的染色体7B没有部分同源关系,除了引起雄性不育以外,有时与小麦染色体分裂不同步而表现落后,并有抑制Ph基因的作用,能强烈促进小麦部分同源染色体的联会配对,致使在中期Ⅰ出现很高频率的各种多价体。  相似文献   

9.
15个不同细胞质“中国春”小麦与八倍体小偃麦杂交 ,杂种F1减数分裂的染色体行为表明 :普通小麦与天蓝偃麦草的F或E组染色体之间存在着部分同源关系 ;D2 型细胞质促进部分同源染色体配对、但却抑制同源染色体配对 ;Sv 型细胞质对同源染色体或部分同源染色体的配对均有抑制作用 ;G型细胞质促进同源染色体配对。1 5个不同细胞质“中国春”小麦与六倍体小偃麦杂交 ,F1结实率很低 ,减数分裂中期的染色体行为混乱 ,单价体过多 ,或许意味着在天蓝偃麦草 (Elytrigiain termedium)与长穗偃麦草 (E .elongatum)的E组染色体之间存在着很大差别。随着回交代数的增加 ,选出G型、D2 型、Mt 型、Mu 型等细胞质雄性不育的八倍体小偃麦品系 ,其中D2 型细胞质八倍体小偃麦具有光周期敏感性雄性不育的特征 ;G型细胞质“远中 3”育性正常 ,表明八倍体小偃麦“远中 3”的E组染色体中存在G型胞质的育性恢复基因。  相似文献   

10.
八倍体小偃麦与普通小麦杂交育种的研究   总被引:12,自引:1,他引:11  
利用八倍体小偃麦与普通小麦杂交,创造了一些异附加系和异代换系,选育出一个特早熟、矮秆、抗病、高产、优质小麦新品种-“早优504”。总结了八倍体小偃麦与普通小麦杂交育种程序。  相似文献   

11.
The original blue-grained wheat, Blue 58, was a substitution line derived from hybridization between common wheat (Triticum aestivum L., 2n=6x=42, ABD) and tall wheatgrass (Thinopyrum ponticum Liu & Wang=Agropyron elongatum, 2n=10x=70, StStEeEbEx), in which one pair of 4D chromosomes was replaced by a pair of alien 4Ag chromosomes (unknown group 4 chromosome from A. ponticum). Blue aleurone might be a useful cytological marker in chromosome engineering and wheat breeding. Cytogenetic analysis showed that blue aleurone was controlled by chromosome 4Ag. GISH analysis proved that the 4Ag was a recombination chromosome; its centromeric and pericentromeric regions were from an E-genome chromosome, but the distal regions of its two arms were from an St-genome chromosome. On its short arm, there was a major pAs1 hybridization band, which was very close to the centromere. GISH and FISH analysis in a set of translocation lines with different seed colors revealed that the gene(s) controlling the blue pigment was located on the long arm of 4Ag. It was physically mapped to the 0.71-0.80 regions (distance measured from the centromere of 4Ag). The blue color is a consequence of dosage of this small chromosome region derived from the St genome. We speculate that the blue-grained gene(s) could activate the anthocyanin biosynthetic pathway of wheat.  相似文献   

12.
All 10 chromosomes of maize (Zea mays, 2n = 2x = 20) were recovered as single additions to the haploid complement of oat (Avena sativa, 2n = 6x = 42) among F(1) plants generated from crosses involving three different lines of maize to eight different lines of oat. In vitro rescue culture of more than 4,300 immature F(1) embryos resulted in a germination frequency of 11% with recovery of 379 F(1) plantlets (8.7%) of moderately vigorous growth. Some F(1) plants were sectored with distinct chromosome constitutions among tillers of the same plant and also between root and shoot cells. Meiotic restitution facilitated development of un-reduced gametes in the F(1). Self-pollination of these partially fertile F(1) plants resulted in disomic additions (2n = 6x + 2 = 44) for maize chromosomes 1, 2, 3, 4, 6, 7, and 9. Maize chromosome 8 was recovered as a monosomic addition (2n = 6x + 1 = 43). Monosomic additions for maize chromosomes 5 and 10 to a haploid complement of oat (n = 3x + 1 = 22) were recovered several times among the F(1) plants. Although partially fertile, these chromosome 5 and 10 addition plants have not yet transmitted the added maize chromosome to F(2) offspring. We discuss the development and general utility of this set of oat-maize addition lines as a novel tool for maize genomics and genetics.  相似文献   

13.
八倍体小滨麦与缺体小麦杂交的细胞遗传学研究   总被引:11,自引:3,他引:8  
傅杰  徐霞 《遗传学报》1997,24(4):350-357
八倍体小滨麦与缺体小麦杂交和回交,其后代BC1F1与F2相比较,染色体分离范围小,有利于41条染色体类型的分离,若用异源双单体附加作父本与缺体回交,41条染色体类型的分离率还会提高2倍左右;单体代换在自交世代的传递率为31.91%,二体代换的分离率为19.37%,异染色体的丢失率为29.34%;二体代换在自交世代的传递率为85.26%,异染色体的丢失率为9.21%;PMCMI染色体构型为20.76”+0.31’+0.03"+0.01””,相对紊乱系数为0.01,2n=21”的细胞占86.09%。选育的二体代换系,不同程度地表现出大穗、多花、优质、抗多种病害等滨麦的优良性状。  相似文献   

14.
Wheatgrasses (species of Agropyron complex) have previously been reported to be resistant to barley yellow dwarf virus (BYDV). To introgress this resistance into wheat, Triticum aestivum x Thinopyrum (Agropyron) intermedium hybrids were advanced through a backcrossing program and reaction to BYDV, as determined by enzyme-linked immunosorbent assay (ELISA), is reported for the first time in backcross populations of wide hybrids between wheat and wheatgrasses. ELISA values revealed highly resistant to highly susceptible segregants in backcrosses. BYDV resistance was expressed in some backcross derivatives. Continued selection, based on cytology and ELISA in each generation, eliminated most of the unwanted wheatgrass chromosomes and produced self-fertile BYDV resistant wheat lines. The BYDV resistant lines with 2n = 42 had normal chromosome pairing similar to wheat, and their F1 hybrids with wheat had two univalents. DNA analyses showed that the source of alien chromatin in these BYDV resistant wheat lines is distinguishable from that in other Th. intermedium derived BYDV resistant wheat lines. Chromosome pairing and restriction fragment length polymorphism analyses indicated that the 42 chromosome resistant Purdue wheat lines are substitution lines in which chromosome 7D was replaced by a chromosome from Th. intermedium that was carrying gene(s) for BYDV resistance.  相似文献   

15.
Wheat-aegilops hybrid plants Triticum aestivum L. (2n = 42) x Aegilops cylindrica Host (2n = 28) were investigated with using microsatellite markers. In two BC1F9 lines some genome modifications connected with losing DNA fragments of initial variety or appearing of Aegilops genome elements were detected. In some investigated hybrids new amplicons lacking in parental plants were found. Substitution of wheat chromosomes for aegilops chromosomes was not revealed. Analysis of microsatellite loci in BC2F5 plants showed stable introgression of aegilops genetic elements into wheat; elimination of some transferred aegilops DNA fragments in the course of backcrossing; decreasing size of introgressive elements after backcrossing. Introgressive lines were classified according to genome changes.  相似文献   

16.
We studied some features of the development of self-fertile 42-chromosome lines on the base of self-pollination progeny of 46-chromosome plants obtained by backcrossing of barley--wheat hybrids Hordeum marinum subsp. gussoneanum Hudson (= H. geniculatum All.) (2n = 28) x Triticum aestivum L. (2n = 42). The stabilization of karyotypes, resulting in 42-chromosome plants of the wheat type was generally completed by generation BC1F10. The plants of all self-pollination progenies, including BC1F10, showed some phenotypic traits characteristic of wild barley. Plants of BC1F10 with the chromosome sets 2n = 42 and 2n = 42 + t were analyzed by RAPD with a set of 115 primers. Fragments of the wild barley genome were detected in RAPD patterns with 19 primers. Cross-hybridization confirmed that these fragments belonged to the wild barley genome. We raised four phenotypically different 42-chromosome lines from grains obtained from plants of generation BC1F10, and these lines proved to be cytogenetically stable and self-fertile when grown in the field.  相似文献   

17.
Alloplasmic lines of common wheat with disomic substitution of chromosome 7D for telocentric chromosome 7H1Lmar of barley H. marinum subsp. gussoneanum Hudson were isolated from the plants of generation BC3, produced as a result of backcrossing of barley-wheat hybrids H. marinum subsp. gussoneanum (2n = 28) × T. aestivum (2n = 42), Pyrotrix, cultivar, with 28 common wheat cultivars Pyrotrix 28 and Novosibirskaya 67. Chromosome substitution pattern was determined using SSR analysis and C-banding. In preliminary genomic in situ hybridization experiments, telocentric chromosomes were assigned to wild barley was established. In the BC3F8 generations of three alloplasmic lines with the 7H1Lmar(7D) substitution type the differences in fertility manifestation were observed: most of the L-32(1) plants were sterile, in line L-32(2) only sporadic plants were sterile, and line L-32(3) was fertile. Simultaneously with these experiments, using selfpollinated progeny of the hybrids obtained in crosses of common wheat cultivar Saratovskaya 29 (2n = 41), monosomic for chromosome 7D, with common wheat cultivar Pyrotrix 28 with addition of pair of telocentric chromosomes 7H1Lmar (7D) of barley H. marinum subsp. gussoneanum, euplasmic wheat-barley ditelosomic substitution 7H1Lmar (7D) lines were isolated. The lines obtained had normal fertility. PCR analysis of the 18S/5S mitochondrial repeat (hereafter, mtDNA sequence) in alloplasmic and euplasmic ditelosomic substitution lines 7H1Lmar(7D) was performed. In the plants from alloplasmic sterile line L-32(1), the sequences only of the barley (maternal) type were revealed, while the plants from alloplasmic fertile lines L-32(2) and L-32(3) demonstrated heteroplasmy (the presence of barley- and wheat-like sequences within one individual). In euplasmic ditelosomic substitution lines the presence of only wheat-like 18S/5S mitochondrial repeat sequences was observed. The results indicate that the presence of barley-like mtDNA sequences in alloplasmic substitution lines was not associated with the presence of barley chromosomes in their nuclear genomes.  相似文献   

18.
以中国春3D单体和小麦-长穗偃麦草4E二体异附加系为材料,通过杂交、回交结合染色体鉴定等方法,培育出了一种具有蓝粒标记的小麦4E(3D)单体代换系.该小麦4E(3D)单体代换系籽粒为浅蓝色,能够正常生长,自交结实率为36.1%,其自交后代可分离出深蓝籽粒小麦4E(3D)二体代换系、浅蓝籽粒小麦4E(3D)单体代换系和白粒小麦3D缺体.结果表明,长穗偃麦草4E染色体对小麦3D染色体缺失有一定的补偿功能,对以染色体定向代换方式快速创制蓝粒标记小麦单体系统具有一定的参考价值.  相似文献   

19.
The fertility characteristics expressed during morphogenesis in first-generation self-pollinated backcrossed progenies (BC1) obtained from amphiploid barley-wheat hybrids [Hordeum geniculatum All. (2n = 28) x Triticum aestivum L. (2n = 42)] (2n = 70) backcrossed with common wheat were studied. It was found that, in the case of self-pollination of BC1 plants, karyotype stabilization leads to the formation of alloplasmic euploid (2n = 42), telocentric substitution (2n = 40 + 2t), and telocentric addition (2n = 42 + 2t), (2n = 42 + 2t) plant forms, which may serve as the sources of the respective alloplasmic lines of common wheat. That the expression of fertility characters in BC1F8 plants was shown to depend on growth conditions. The main mechanism of hybrid incompatibility of BC1F1-BC1F8 plants was expressed as grass-clump dwarfism.  相似文献   

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