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1.
盾叶薯蓣自然变异类型间的比较研究   总被引:7,自引:0,他引:7  
对取自云南期纳的二倍体和三倍体盾叶薯蓣植株以及重庆城口的四倍体植株进行了形态学、染色体数目及同工酶的比较研究。结果表明,这3种类型植株在叶片形态上有明显的差异。二倍体的染色体数目是2n=2x=20,三倍体为2n=3x=30,四倍体为2n=4x=40;酯酶(EST)和超氧化物歧化酶(SOD)酶谱显示,3种类型植株之间具有明显的相关性,但多倍体较二倍体的酶带条数少且着色浅。这些差异除了有地理分布不同的因素外,倍性的不同也是很重要的因素。  相似文献   

2.
通过染色体位点揭示鲫鱼的同源三倍体起源   总被引:1,自引:0,他引:1  
在洞庭湖水系统中,鲫鱼复合体表现出二倍体群体(2n=100,简称2n CC)和多倍体群体共存的特征.虽然染色体数目与核型分析已经揭示了这些多倍体鲫鱼分别为三倍体(3n=150)和四倍体(4n=200),但是一直缺乏直接的遗传证据.本研究通过对5S rDNA的染色体位点进行分析,证明了拥有150条染色体的鲫鱼个体(简称3n CC)是三倍体起源(3n=150).进一步对具有物种特异性的染色体着丝粒位点进行分析,揭示了3n CC拥有的3套染色体均来源于鲫鱼.相关研究结果提供了直接的细胞遗传学证据,证明了鲫鱼复合体群体中拥有150条染色体的鲫鱼个体是同源三倍体起源.相关研究结果有利于脊椎动物多倍体化和进化研究.  相似文献   

3.
八种国产葱属植物染色体研究   总被引:10,自引:3,他引:7  
本文对国产葱属Allium 8个种的14个居群的染色体进行了研究。其染色体基数均为x=8,其中7个居群为二倍体(2n=2x=16),6个居群为四倍体(2n=4x=32),1个居群为多倍体复合体(2n=4x=32,2n=6x=48,2n=8x=64和2n=9x=72)。并发现随体染色体十分活跃,在多倍体中其数目并不都与其倍性相对应,并有“串状随体”现象出现;在有些类群中其形态变异较大,而随体染色体杂合形式的多态现象也较普遍。本文重点讨论了随体染色体的数目、形态变异及杂合现象在葱属进化中的作用,认为随体染色体形态变异及杂合现象的出现是葱属中遗传变异的重要源泉之一。并对葱属中的染色体基数及种内多倍性问题进行了初步讨论。  相似文献   

4.
我们感到目前使用染色体数目的符号不够准确,常常看到一些文章、小册子是这样叙述染色体数目的。 “以”表示基本染色体组的染色体数,称为单倍体,则含有二个染色体组的细胞或个体称为二倍体,用2n表示;含有三个染色体组的细胞或个体称为三倍体,用3n表示;依此类推,还有四倍体、五倍体、六倍体……可用4n、5n、6n……表示。凡体细胞中具有二倍以上的染色体数的生物均称为多倍体,包括三倍体、四倍体、五倍体……等”。 “小麦属的多倍体系有一粒小麦,体细胞染色体数2n=14;二粒小麦,体细胞染色体数2n=28,为异源四倍体;普通小麦,体细胞染色体数2n=42,为异源六倍体”。 这种说法并不少见。开始“以n代表基本染色体  相似文献   

5.
昆明地区滇韭形态及染色体多态性研究   总被引:6,自引:1,他引:5  
对昆明地区滇韭的 8个当地居群开展了形态及核型研究 ,并对形态及染色体性状进行了巢式方差分析。结果表明 :滇韭的形态性状在居群内具丰富多态性 ,在居群间具明显多型性 ;核型较对称 ,存在两种倍性的分化 :梁王山居群为二倍体 (2x) ,昆明居群为四倍体(4x)。二倍体核型公式为K (2n ) =2x =16 =14m 2sm ,四倍体核型公式为K (2n ) =4x =32=2 8m 4sm。滇韭的染色体因存在倍性变化、B -染色体形态和数目变化及随体染色体的形态和大小变化而具有一定程度的多态性。  相似文献   

6.
远缘杂交导致不同倍性鱼的形成   总被引:5,自引:0,他引:5       下载免费PDF全文
远缘杂交可以使基因组从一个物种转移到另一个物种中,从而导致杂交后代的表现型和基因型都发生改变.本文描述了在红鲫(♀)与鲤鱼(♂)的远缘杂交后代中,形成了F3~F18两性可育异源四倍体鲫鲤群体(4n=200,简称为4nAT).4nAT的雌、雄个体分别产生的二倍体卵子和二倍体精子,经过雌核发育和雄核发育,在没有染色体加倍处理情况下,分别发育成雌核发育二倍体后代和雄核发育二倍体后代.其中雌核发育体系衍生出具有遗传变异的改良四倍体鲫鲤和改良二倍体鱼,二倍体杂交鱼产生不减数的配子的现象与减数分裂前核内复制或者核内有丝分裂或者生殖细胞融合有关.用雄性4nAT与雌性二倍体鱼进行倍间交配大规模制备了不育三倍体鱼.在红鲫(♀)与团头鲂(♂)的远缘杂交后代中,成功地获得两性可育的天然雌核发育红鲫(2n=100),不育的三倍体鲫鲂(3n=124)以及两性可育的四倍体鲫鲂(4n=148),此外,还制备了两种五倍体鲫鲂(5n=172;5n=198).该文在细胞和分子水平上对不同倍性鱼的生物学特点和形成机制进行了比较,揭示了远缘杂交或者将远缘杂交与雌核发育和雄核发育相结合的方法在具有遗传变异的不同倍性鱼的形成中发挥着积极作用,这在生物进化和鱼类遗传育种方面都具有重要意义.  相似文献   

7.
以拟南芥(Columbia生态型)二倍体(AA,2n=10)为材料,经0.2%秋水仙素处理和细胞学鉴定,成功获得拟南芥同源四倍体(AAAA,2n=20)。以二倍体为对照,通过对拟南芥同源四倍体减数分裂过程染色体行为的观察,以及减数分裂调控同源染色体联会与重组相关基因的定量PCR分析,研究结果表明,与二倍体相比,拟南芥同源四倍体叶片表皮细胞间气孔孔径显著增大,荚果变长,但气孔密度和结实率显著降低;在减数分裂过程中出现部分单价体和三价体,以及二价体和四价体等染色体配对构型;减数分裂期重组相关基因ZYP1表达水平降低,ASY1、DMC1、MRE11和SPO11-1表达水平均升高。因此,我们推断,伴随着多倍体化,与二倍体相比,多倍体植物减数分裂期染色体行为和相关基因表达都有一定改变,影响多倍体植物生殖发育以适应环境。  相似文献   

8.
应用等电聚焦(IEF)和SDS PAGE方法分析了二倍体长穗偃麦草(Agropyronelongatum2x)和四倍体长穗偃麦草(Ag.elongatum4x)的16种同工酶和3种贮藏蛋白的电泳图谱。结果表明,只有两种同工酶在四倍体和二倍体长穗偃麦草之间表现相同的酶谱,该类型仅占分析标记总数的10.5%;而10种同工酶和3种贮藏蛋白的电泳图谱在四倍体中除了具有全部二倍体的谱带以外,还有自己独特的条带,该类型最多,占分析标记总数的63.2%;另外5种同工酶在二倍体和四倍体之间只有部分条带相同,同时具有各自特异的条带,该类型占分析标记总数的26.3%。由此推测,四倍体长穗偃麦草可能是一个异源四倍体,即只含有一个起源于二倍体类型的染色体组Ee,而另一个染色体组在所分析的生化标记上明显不同于近缘种中的St、J和N染色体组,其起源尚待进一步研究。进一步用小麦的SSR引物对二倍体和四倍体长穗偃麦草进行扩增,结果表明大多数SSR引物在四倍体中既能扩出与二倍体相同的条带,同时还有其特异的条带,这一结果验证了由生化标记得出的四倍体长穗偃麦草是异源四倍体的初步结论。  相似文献   

9.
田埂报春多倍体诱导及其形态学研究   总被引:1,自引:0,他引:1  
在离体培养条件下,比较不同浓度、不同处理时间的秋水仙素对田埂报春进行染色体加倍的诱导效果。结果表明:0.08%秋水仙素处理48h的诱变效果最佳,诱变率高达56%。经秋水仙素诱导后形成的多倍体植株与原二倍体植株比较,在形态上,四倍体植株表现出多倍体特征,叶片变厚,叶形指数减小,保卫细胞增大,单位面积气孔数减少,叶绿体数明显增多。对变异植株进行细胞学研究发现,体细胞中期染色体数目为2n=4x=36,而原二倍体的染色体数目为2n=2x=18,基数x=9,因此,变异植株(2n=4x=36)为四倍体。前者的核型公式为2n=4x=8L+12M2+4M1+12S,核型属于1A;后者的核型公式为2n=2x=4L+6M2+2M1+6S,核型也属于1A。检测发现少数个体有非整倍体变异。  相似文献   

10.
远缘杂交形成的二倍体鱼和多倍体鱼生殖细胞染色体研究   总被引:3,自引:0,他引:3  
本文采用性腺染色体制片及组织学切片方法,系统地研究了不同发育时期的鲫鲤杂交第二代(F2) (2n=100)、异源四倍体鲫鲤(4n=200)、三倍体鲫鱼(3n=150))、雌核发育二倍体鲫鲤第二代(G2)(2n=100)及鲤鱼(Cypninus carpio L)(2n=100)(对照组)生殖细胞的染色体特征.研究结果表明,对照组中鲤鱼精原细胞染色体数与体细胞染色体数一致,为二倍体精原细胞(2n=100),而远缘杂交形成的二倍体鱼和多倍体鱼的生殖细胞中则观察到明显的染色体数加倍现象,其中,鲫鲤杂交第二代(F2)精巢生殖细胞染色体数加倍现象特别丰富,占检测的染色体分裂相的21.6%,为其产生不减半的二倍体配子提供了直接的细胞学证据,同时也说明远缘杂交是导致生殖细胞染色体数加倍的一个重要因素.该研究在探讨多倍体鱼的发生及鱼类遗传育种方面具有重要意义.  相似文献   

11.
车前属两种植物的核型研究   总被引:2,自引:0,他引:2  
张华宣   《广西植物》1998,18(2):119-122
本文对我国两种车前属Plantago植物的核型进行了分析。2个种的染色体数目均为2n=2x=12。它们的核型是:海滨车前P.camtschaticaLink,Enum.2n=2x=12=8m+4sm;毛车前P.jehohlensisKoidz.2n=2x=12=6m+4sm+2st。它们的核型均属“2A”型。由12条染色体组成。  相似文献   

12.
葱属植物棱叶薤的形态性状与核型特征   总被引:1,自引:0,他引:1  
对新疆不同地理位置分布的葱属植物棱叶薤的形态性状以及核型特征进行了研究,结果表明:鳞茎、株型、叶形等43个形态性状在3个棱叶薤居群之间不存在差异,而株芽、叶色、叶长、单株叶片数、小花数目、花序高度、花葶长度等19个性状在3个棱叶薤居群之间存在显著或极显著差异。采集自乌鲁木齐红旗水库居群的棱叶薤的核型公式是2n=2x=16=12m+4sm;塔城阿西尔乡巴尔鲁克山居群的棱叶薤的核型公式是2n=3x=24=18m+3sm+3st;裕民巴旦杏保护区居群的棱叶薤的核型公式是2n=4x=32=28m(4SAT)﹢4sm。棱叶薤居群内形态性状和倍性稳定,居群间存在形态性状分化,同时还存在二倍体、三倍体、四倍体的倍性分化。居群间染色体结构组成和相对长度组成也存在差异。核型类型均为2A型。  相似文献   

13.
内葵杂3号染色体核型分析   总被引:2,自引:2,他引:0  
对内蒙古地区的栽培品种内葵杂3号三交种和单交种了进行了核型分析。其结果为:内葵杂3号三交种和单交种的染色体数均为2n=34,各具一对随体染色体。三交种第2对染色体具随体且为近中部着丝粒染色体,其余为中部着丝粒染色体,染色体相对长度变异范围4.105%~7.703%,核型公式为2n=2x=34=32m+2sm(2sat),核型类型属于1A型;单交种均为中部着丝粒染色体,第4对染色体具随体,染色体相对长度变异范围3.661%~8.128%,其核型公式为:2n=2x=34=34m(2sat),核型类型属于1B型。  相似文献   

14.
Summary F1 hybrids with the genome constitution ABDERR (2n = 6x = 42) or ABDE(AB)RR (2n = 7x = 49), selected from crosses between either an octoploid Triticum aestivum/Thinopyrum elongatun amphiploid and tetraploid Secale cereale (AABBDDEE x RRRR) or autoallohexaploid triticale [AABBDDEE x (AB)(AB)RRRR], were backcrossed to tetraploid triticale (AB)(AB)RR and selfed for six generations. Thirty-three different tetraploid F6 progenies were karyotyped using C-banding. The aneuploidy frequency was 6.6% with 4.0% hypoploids and 2.6% hyperploids. Among 71 plants with 28 chromosomes, 53.5% had a stabilized karyotype while 46.5% were unstabilized with at least one homoeologous group segregating for A-, B-, or D-genome chromosomes. The stabilized plants represent 19 different tetraploid karyotypes with six of them not containing any detectable D-genome chromosomes from T. aestivum or E-genome chromosome from Th. elongatum. Thirteen lines were (ABD)(ABD)RR tetraploids with one-to-three disomic substitutions of D-genome chromosomes for A or B-genome chromosomes. No disomic substitution of E-genome chromosomes was identified. On average 0.58 D substitutions per line were determined. Of the seven D-genome chromosomes only four, 1D, 2D, 5D, and 7D, were present in their disomic state. In unstabilized karyotypes, chromosomes 3D, 4D, and 6D were present in their monosomic state. Among all 30 viable plants (42.3%), the order of decreasing frequency of Dgenome chromosomes was 5D (25.0%), 1D (20.0%), 2D (10.0%), 6D (5.0%), and 3D (1.7%). Plants with 4D and 7D chromosomes were not viable. An increase in the number of D-genome chromosomes in the (ABD) genome is associated with a decrease in viability and fertility. Minor differences in the C-banding of chromosomes in homoeologous groups 1, 5, and 6 indicate the possibility of translocations between A-, B-, D-, and E-genome chromosomes. Evolutionary and breeding aspects of tetraploid triticale with mixed genomes are discussed.  相似文献   

15.
16.
二倍体石蒜在安徽发现   总被引:15,自引:2,他引:13  
本文以根尖细胞为材料,观察了石蒜Lycoris radiata(L′Her.)Herb.三个不同居群植物的染色体数目和核型,发现石蒜为一复合体,包括两种不同类型:(1)三倍体类型,主要包括一群以鳞茎无性繁殖的园艺栽培植株,其染色体数目和核型为2n=33=33t(st),属“4A”核型,且极其稳定。(2)二倍体类型,主要包括一群野生植株,变异较大,我们发现有下列几种情况:一是芜湖产石蒜(L.radiata)的野生材料,其染色体数目和核型为2n=21+1B=1m+12st+8t+1B,属“3A”核型,在石蒜种内迄今未见有类似报道;另一是黄山产野生材料,观察到两个细胞型,绝大多数细胞为2n=22=12st+1Ot,极个别细胞出现2n=22+1B=6st+14t+2T+1B的情况,均属“4A”核型。芜湖和黄山野生材料的染色体数目和核型均为首次报道。石蒜(L.radiata)的二倍体类群也是首次在安徽发现。  相似文献   

17.
热休克诱导虹鳟四倍体   总被引:23,自引:4,他引:19  
虹鳟卵受精后5—9小时期间,用热休克处理,12月龄时检查,四倍体出现频率为5%。较高的温度处理可导致卵的高死亡率。2n=60的虹鳟核型中,有中部和亚中部着丝点染色体22对,近端着丝点染色体1对,端部着丝点染色体7对,总臂数NF=104。4n=120的虹鳟四倍体核型中,有22套中部和亚中部着丝点染色体,1套近端着丝点染色体,和7套端部着丝点染色体,总臂数NF=208。未发现有染色体倍性镶嵌的个体。分析比较了二倍体和四倍体两类鱼的红细胞及其核的9个度量值(DNA相对含量,细胞及核的长轴、短轴,面积和体积),为应用红细胞鉴定四倍体虹鳟提供了倍性标准。在形态、解剖和生长速度方面未发现两类鱼有什么差别。  相似文献   

18.
The present paper reports the chromosome numbers and karyotypes of five species in Polygonatum from Anhui of China. The materials used in this work are listed in Table 1, Photomicrographs of somatic metaphase and karyograms of the five species of Polygonatum in Plate 1, 2, 3, the idiograms in Fig. 1-11 and a comparison of the karyotype of them is provided in Table 2. The results are shown as follows: 1. Polygonatum odoratum (Mill.)Druce Two materials were examined. One from Mt. Huangshan, Anhui, has 2n= 16 = 10m (3sc)+ 6sm (Plate 1 :A, B). The idiogram is shown in Fig. 1. The chromosomes range in length from 2.85 to 8.85 μm, with the total length 48.63μm and the ratio of the longest to the shortest 3.11, The karyotype belong to Stebbins’(1971) 2B. The two chromosomes of the first pair have arm ratios 1.01 and 1.29 respectively, and The first pair has one chromosome carrying a satellite attached to the short arm, showing heterozyosity .The chromosome num ber of 2n= 16 in P. odoratum and its karyotype are reported for the first time. The other from Langyashan, Chu - xian, Anhui, is found to have 2n = 18 = 10m (Isc)+2sm+6st(2sc) (Plate 1: C, D). The idiogram is shown in Fig. 2. The chromosomes range in length from 2.43 to 8.29μm, with the total length 46.67µm and the ratio of the longest to the shortest 3.41. The karyotype is also of 2B. In a somatic chromosome complement the 2nd pair have one chromosome carrying a satellite attached to the long arm, showing heterozygosity. 2. Polygonatum filipes Merr. Two materials were examined. One from the Huangshan, Anhui is found to have two cytotypes: 2n= 16 and 2n=22. This paper reports one of them. The karyotype formula is 2n=22=8m+8sm(2sc)+6st(Plate 3: Q, R). The idiogram is shown in Fig. 3. The chromosomes range in length from 2.55- 5.85μm, with the total length 45.01 μm and the ratio of the longest to the shortest 2.29. The karyotype belongs to 3B. The other material from the Fangchang, Anhui, is shown to have four cytitypes: 2n= 14, 2n= 16, 2n=20 (Plate 3: W) and 2n=22. This paper reports two of them. Type I: the karytype formula is 2n=14=10m+4sm (Plate 3: S, T). The idiogram is shown in Fig. 5. The chromosomes range in length from 2.59 to 7.61μm, the total length 37.44μm and the ratio of the longest to the shortest is 2.94. the karyotype belongs to 2B. Type II :The karyotype formula is 2n=16=8m+4sm+4st (Plate 3: U, V). The idiogram is shown in Fig. 4. The chromosomes range in length from 2.65 to 8.21 μm, the total length 46.01 μm and the ratio of the longest to the shortest 3.10. The karyotype belongs to 2B. The chromosome numbers of 2n=20, 2n= 14 and 2n=22, and karyotype of 2n= 14 and 2n=22 in P. filipes are reported for the first time. 3. Polygonatum cytonema Hua Two materials were examined. One from the Langyashan, Chuxian, anhui, is found to have 2n = 18 = 8m (2sc)+ 6sm+ 4st (Plate 2: K, L). The idiogram is shown in Fig. 7. The chromosomes range in length from 3.41 to 9.21 μm, the total length 56.34μm and the ratio of the longest to the shortest is 2.70. The karyotype belongs to 2B. The other material from the Huangshan, Anhui, has two cytotypes: 2n=20 and 2n= 22. Type I: The karyotype formula is 2n= 20= 8m+ 6sm+ 6st (Plate 2: M, N). The idiogram is shown in Fig. 8. The chromosomes range in length from 1.75 to 5.03μm, with the total length 32. 91μm and the ratio of the longest to the shortest 2. 87. The karyotype is also of 2B. Type II: The karyotype formula is 2n=22=6m+ 8sm+4st+ 4t (Plate 2: O, P ). The idiogram is Shown in Fig. 10. The chromosomes range in length from 1.75 to 4.95 μm, with total length 35.05μm and the ratio of the longest to the shortest 2.83. The karyotype brlongs to 3B. 4. Polygonatum desoulayi kom. The material from Xuancheng, Anhui, is found to have karyotype 2n = 22 = 10m (2sc) + 6sm (lsc) + 6st ( Plate 2. I, J). The idiogram is shown in Fig. 6. The chromosomes range in length from 1.86 to 5.61μm, with the total length 41.98μm and the ratio of the longest to the shortest 3.02. The karyotype is also of 3B. The first pair has one chromosome carrying a satellite attached to the long arm, showing heterozygosity. The chromosome number and karyotype of Chinese material are reported for the first time. 5. Polygonatum verticillatum (L.) All. The material from the Langyashan, Chuxian, Anhui is found to have two cytotypes. Type 1: the karyotype formula is 2n = 18 = 2m+ 2sm+ 10st+ 2t+ 2T (Plate 1: G, H). The idiogram is shown in Fig.9. The chromosomes range in length from 1.86 to 4.03μm, with total length 28.28μm and the ratio of the longest to the shortest 2.17. The karyotype classification belongs to 3B. Type II: The karyotype formula is 2n=24=6m+4sm+12st+2T (Plate 1: E, F). The idiogram is shown in Fig. II. The chromosomes range in length from 2.01 to 5.03μm, with total length 41.36μm and the ratio of longest to shortest 2.50. The karyotype is also of 3B. The chromosome numbers and karyotypes of Chinese material are reported for the first time.  相似文献   

19.
T Lelley  E Kazman  K M Devos  M D Gale 《Génome》1995,38(2):250-254
Tetraploid triticale, (A/B)(A/B)RR (2n = 28), is a botanical novelty, an amphiploid composed of a diploid rye and a 14 chromosome wheat genome made up of chromosomes of the A and B genomes of tetraploid wheat. Restriction fragment length polymorphism (RFLP) markers were used to elucidate the chromosome composition of the mixed wheat genome of 35 different tetraploid triticale lines. Of 128 possible A/B chromosome pair combinations, only 6 were found among these lines, with a prevalence of the 1A, 2A, 3B, 4B, 5B, 6B, and 7B karyotype. In most triticale lines stable wheat genomes made up of only homologous A or B genome chromosome pairs were identified, however, in some lines homoeologous chromosome pairs were found. In this paper we demonstrate that RFLPs can be used successfully as an alternative to C-banding for the identification of the chromosome composition of tetraploid triticale and discuss the possible selective advantage of specific chromosome composition.  相似文献   

20.
Summary Tetraploid triticale with the genome constitution (ABD) (ABD)RR (2n=4x=28) selected from the progenies of DDRR x (AB)(AB)RR hybrids (D(AB)RR) were karyotyped using C-banding. The aneuploidy frequency was 10.7% with 4.4% hypoploids and 6.3% hyperploids in the F5. Among 67 plants having 28 chromosomes, 41.8% had a stabilized karyotype, while 58.2% were unstabilized with at least one homoeologous group segregating for A-, B- or D-genome chromosomes. The stabilized plants represented ten different karyotypes that contained one to five disome substitutions of D-genome chromosomes for A- or B-genome chromosomes. Two (BD) (BD)RR tetraploids had no A-genome chromosomes. The average number of D substitutions was 3.0 per line. Of the seven substitutions possible only one, 4D(4B), was not present. In the progeny of plants selected for fertility a selection pressure acted against wheat chromosomes 1B, 3B, 4D and 7D. The most favoured chromosome constitution of the (ABD) mixed genome was 1D, 2A, 3D, 4B, 5B, 6A and 7B. Plants of that karyotype but with a heterologous pair of chromosomes 5B and 5D had the best seed set. Evolutionary and breeding aspects of tetraploid triticale are discussed.  相似文献   

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