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1.
小麦-中间偃麦草双体异附加系的选育和鉴定   总被引:1,自引:0,他引:1  
在小麦-中间偃麦草59个杂交后代种质系中,筛选出6个小麦-中间偃麦草双体异附加系(line0605,line0607,line0609,line0610,line0611,line0625),并对其进行了形态学、白粉病抗性、细胞学和RAPD鉴定。形态学结果表明:6个双体异附加系农艺性状较好地结合了双亲的优良特点;细胞学结果表明:6个双体异附加系具有高度的细胞学稳定性,花粉母细胞减数分裂中期Ⅰ(PMCMI)的染色体构型为2n=22Ⅱ;RAPD分析表明:在供试的209个随机引物中有5个引物分别能在6个异附加系中稳定地扩增出不同的特异带型,可以作为各个异附加系所附加染色体的特异分子标记;白粉病抗性鉴定结果表明:line0605表现免疫,line0610和line0625表现高抗,line0607表现中抗,line0609和line0611表现中感。  相似文献   

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应用在小麦品种烟农15与中间偃麦草杂交的五个世代群体中直接筛选2n=22Ⅱ植株的方法,获得11个双体异附加株,分别命名为DAL1、DAL2、……、DAL11。双体异附加株的细胞学稳定性较强,外源染色体传递频率高。形态学和细胞学鉴定结果表明:DAL1、3、5、6、8、9、10、11等8个异附加系中附加的可能是中间偃麦草第2部分同源群的染色体。 其中,DAL5、9、10、11是同一种异附加系,DAL6和DAL8为同一种异附加系,DAL3可能与之相同;DAL1与上述7个异附加系均不同。DAL2和DAL4可能分别附加了中间偃麦草第5部分同源群的1对染色体,但二者在形态上存在差异。DAL7可能附加了中间偃麦草第7部分同源群的1对染色体。旗叶卷曲是异附加系DAL、3、5、6、8、9、10、11共有的形态标记。11个异附加系可作为进一步研究和转移中间偃麦草有益基因的良好中间材料。  相似文献   

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小麦-中间偃麦草双体异附加系的选育和鉴定   总被引:3,自引:0,他引:3  
在小麦-中间偃麦草59个杂交后代种质系中,筛选出6个小麦-中间偃麦草双体异附加系(line 0605,line 0607,line 0609,line 0610,line 06ll,line 0625),并对其进行了形态学、白粉病抗性、细胞学和RAPD鉴定。形态学结果表明:6个双体异附加系农艺性状较好地结合了双亲的优良特点;细胞学结果表明:6个双体异附加系具有高度的细胞学稳定性,花粉母细胞减数分裂中期I(PMCMI)的染色体构型为2n=22II;RAPD分析表明:在供试的209个随机引物中有5个引物分别能在6个异附加系中稳定地扩增出不同的特异带型,可以作为各个异附加系所附加染色体的特异分子标记;白粉病抗性鉴定结果表明:line 0605表现免疫,line 0610和line 0625表现高抗,line 0607表现中抗,line 0609和line 06ll表现中感。  相似文献   

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以生物素标记中间偃麦草基因组DNA为探针,与抗黄矮病小麦-中间偃麦草染色体异附加系Z6进行原位杂交,鉴定出附加的1对中间偃麦草染色体。对异附加系Z6和L1及它们的小麦亲本进行了RAPD分析,从120个随机引物中,筛选出2个引物可以扩增出附加染色体的特异DNA片段,可作为鉴定导入小麦的中间偃麦草染色质的分子标记。  相似文献   

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小冰麦异附加系TAI系列的每一个材料中分别附加了1对来自中问偃麦草的染色体,附加染色体很容易丢失,使得失去附加染色体的小麦可以作为异附加系的对照材料。通过分析TAI系列异附加系及各自对照材料的高分子量麦谷蛋白亚基组成与低分子量麦谷蛋白基因的PCR图谱,鉴定出异附加系TAI-13和TAI-25中具有编码中问偃麦草麦谷蛋白的基因位点,附加的中间偃麦草染色体属于第一同源群。异附加系TAI-11中附加的中间偃麦草染色体只具有低分子量麦谷蛋白基因位点。  相似文献   

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以生物素(Biotin-16-dUTP)标记中间偃麦草基因组 DNA为探针,与抗黄矮病小麦-中间偃麦草染色体异附加系Z6进行原位杂交,鉴定出附加的1对中间偃麦草染色体。对异附加系 Z6和 L1及它们的小麦亲本进行了 RAPD分析,从 120个随机引物中,筛选出 2个引物可以扩增出附加染色体的特异DNA片段,可作为鉴定寻人小麦的中间偃麦草染色质的分子标记。  相似文献   

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以中间偃麦草(Thinopyrum intermedium,2n=42)与普通小麦‘烟农15’杂交,从其杂种后代中选育出一个细胞学稳定的二体异附加系‘山农120211’,该研究对其细胞学和主要性状特点进行了鉴定。白粉病抗性鉴定结果表明,‘山农120211’成株期对白粉病的田间抗性为免疫,苗期对白粉病菌种E09表现为免疫。以耐盐品种‘山融3号’为对照进行苗期耐盐性鉴定表明,‘山农120211’耐盐级别为2级(较强)。细胞学鉴定表明:‘山农120211’根尖细胞染色体数目为2n=44,PMC MI染色体构型为2n=22Ⅱ,具有高度的细胞学稳定性。以拟鹅观草基因组DNA为探针,‘烟农15’DNA为封阻,在‘山农120211’的根尖有丝分裂细胞中检测到2条染色体具有明显的杂交信号,确定其为二体异附加系。利用该实验室筛选的71对E组染色体特异分子标记,对‘山农120211’分析显示,标记BE494262在中间偃麦草和‘山农120211’中可以稳定扩增出1条440bp特异带,而‘烟农15’中缺少此带,BE494262可作为‘山农120211’中附加中间偃麦草染色体的特异标记。利用二倍体长穗偃麦草和一套中国春-长穗偃麦草异附加系(1Ee~7Ee),进一步将BE494262定位在2Ee染色体,确定‘山农120211’所附加的中间偃麦草染色体为2Ee染色体。  相似文献   

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抗条锈病小麦—中间偃麦草异附加系的生化与分子标记   总被引:12,自引:2,他引:10  
对小麦-中间偃麦草部分双二倍体无芒中4、异附加系C076、宛7107和中国春进行了肽链内切酶(EP-1)等电聚焦电泳。结果表明,肽链内切酶在阳极处有一特异带。肽链内切酶已定位于小麦第7部分同源群,故附加的染色体为第7部分同源群的2条染色体,对中间偃麦草,无芒中4、C076和宛7107进行了RAPD分析。获得了可用于检测C076中外源染色体的3个RAPD标记,即OPI05-800、OPI10-600、OPK01-900。  相似文献   

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抗条锈病小偃麦双体异附加系山农87074-519的鉴定   总被引:7,自引:1,他引:6  
综合利用抗性接种鉴定、细胞学分析、SSR分子标记和基因组原位杂交(GISH)技术相结合的方法,对从长穗偃麦草与小麦复合杂交后代中选育的抗条锈病种质系山农87074-519进行了鉴定。结果表明,山农87074-519的根尖细胞染色体数目2n=44,花粉母细胞减数分裂中期I(PMCMI)绝大多数细胞内可观察到22个二价体,平均染色体构型2n=44=21.82Ⅱ 0.36Ⅰ,它与普通小麦中国春杂种F1的多数花粉母细胞内染色体构型为2n=21Ⅱ 1Ⅰ,因此它是1个附加了1对长穗偃麦草染色体的双体异附加系;以假鹅冠草St基因组总DNA作探针进行原位杂交发现山农87074-519的44条染色体中有2条出现黄绿色杂交信号,且杂交信号遍布整条染色体,证明其附加的长穗偃麦草染色体为St基组;利用SSR分子标记技术,在170对SSR引物中筛选出特异引物BARC165,它能稳定地在山农87074-519中扩增出长穗偃麦草特异标记BARC165268;将长穗偃麦草中BARC165的特异扩增片段克隆测序后制备成探针进行原位杂交,可在山农87074-519的间期染色体和有丝分裂中期染色体检测到杂交信号。山农87074-519综合农艺性状较好,对条锈病免疫,其抗性基因为显性,且位于附加的长穗偃麦草St基组染色体上,暂将其表示为YrSt。该种质系在小麦的遗传改良中具有重要利用价值。  相似文献   

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抗白粉病小麦-中间偃麦草种质的选育和SSR鉴定   总被引:1,自引:0,他引:1  
在从抗白粉痛小麦砷间偃麦草异附加系Ⅱ-1—1与含杀3C配子染色体的农林26杂交井自交的后代中,通过人工接种鉴定,选出4个抗白粉病种质03012、04060、04112、04146。细胞学鉴定表明,4个种质的染色体数目均为2n=42条。花粉母细胞减数分裂中期Ⅰ多形成二价体。03012/烟农15杂种F1花粉母细胞减数分裂中期Ⅰ细胞中平均形成2个单价体,可能为异代换系。04060/烟农15、04112/烟农15和04146/烟农15的F1中均出现一定数量的单价体和多价体,可能为易位系。利用SSR标记鉴定表明,引物WMC327是含中间偃麦草抗白粉病基因所在染色体的特异标记;03012可能是一个2D染色体的异代换系。  相似文献   

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Curcumin is the yellow pigment of turmeric that interacts irreversibly forming an adduct with thioredoxin reductase (TrxR), an enzyme responsible for redox control of cell and defence against oxidative stress. Docking at both the active sites of TrxR was performed to compare the potency of three naturally occurring curcuminoids, namely curcumin, demethoxy curcumin and bis-demethoxy curcumin. Results show that active sites of TrxR occur at the junction of E and F chains. Volume and area of both cavities is predicted. It has been concluded by distance mapping of the most active conformations that Se atom of catalytic residue SeCYS498, is at a distance of 3.56 from C13 of demethoxy curcumin at the E chain active site, whereas C13 carbon atom forms adduct with Se atom of SeCys 498. We report that at least one methoxy group in curcuminoids is necessary for interation with catalytic residues of thioredoxin. Pharmacophore of both active sites of the TrxR receptor for curcumin and demethoxy curcumin molecules has been drawn and proposed for design and synthesis of most probable potent antiproliferative synthetic drugs.  相似文献   

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正Dear Editor,In December 2019, a novel human coronavirus caused an epidemic of severe pneumonia(Coronavirus Disease 2019,COVID-19) in Wuhan, Hubei, China(Wu et al. 2020; Zhu et al. 2020). So far, this virus has spread to all areas of China and even to other countries. The epidemic has caused 67,102 confirmed infections with 1526 fatal cases  相似文献   

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The young pistils in the melanthioid tribes, Hewardieae, Petrosavieae and Tricyrteae, are uniformly tricarpellate and syncarpous. They lack raphide idioblasts. All are multiovulate, with bitegmic ovules. The Petrosavieae are marked by the presence of septal glands and incomplete syncarpy. Tepals and stamens adhere to the ovary in the Hewardieae and the Petrosavieae but not in the Tricyrteae. Two vascular bundles occur in the stamens of the Hewartlieae and Tricyrtis latifolia. Ventral bundles in the upper part of the ovary of the Hewardieae are continuous with compound septal bundles and placental bundles in the lower part. Putative ventral bundles occur in the alternate position in the Tricyrteae and putative placental bundles in the opposite. position in the Petrosavieae. The dichtomously branched stigma in each carpel of the Tricyrteae is supplied by a bifurcated dorsal bundle.  相似文献   

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Some closely related members of the monocotyledonous familiesAlismataceae, Liliaceae, Juncaceae, Cyperaceae, Poaceae andAraceae with variable modes of pollination (insect- and wind-pollination) were studied in relation to the ultrastructure of pollenkitt and exine (amount, consistency and distribution of pollenkitt on the surface of pollen grains). The character syndromes of pollen cementing in entomophilous, anemophilous and intermediate (ambophilous or amphiphilous) monocotyledons are the same in principal as in dicotyledons. Comparing present with former results one can summarize: 1) The pollenkitt is always produced in the same manner by the anther tapetum in all angiosperm sub-classes. 2) The variable stickiness of entomophilous and anemophilous pollen always depends on the particular distribution and consistency of the pollenkitt, but not its amount on the pollen surface. 3) The mostly dry and powdery pollen of anemophilous plants always contains a variable amount of inactive pollenkitt in its exine cavities. 4) A step-by step change of the pollen cementing syndrome can be observed from entomophily towards anemophily. 5) From the omnipresence of pollenkitt in all wind-pollinated angiosperms studied one can conclude that the ancestors of anemophilous angiosperms probably have been zoophilous (i.e. entomophilous) throughout.
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正Dear Editor,Parainfluenza virus 5 (PIV5), known as canine parainfluenza virus in the veterinary field, is a negative-sense,nonsegmented, single-stranded RNA virus belonging to the Paramyxoviridae family (Chen 2018). The virus was first reported in primary monkey kidney cells in 1954 (Hsiung1972), then it has been frequently discovered in various  相似文献   

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