首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到16条相似文献,搜索用时 156 毫秒
1.
甘蓝型黄籽油菜产量性状的遗传分析   总被引:6,自引:0,他引:6  
利用加性-显性-母体的遗传模型,分析了7个不同遗传来源甘蓝型黄籽油菜品系所配制的完全双列杂交资料。结果表明,产量性状主要受加性和显性效应共同控制,环境对产量性状有一定的影响而母体效应影响很小。基因效应分析发现y4单株粒重有极显著的加性效应,y3×y4单株粒重有极显著的显性效应。  相似文献   

2.
本文采用NCⅡ交配设计方法,以9个陆地棉品种(系)配置16个杂交组合,利用加性—显性与环境互作的遗传模型(ADE模型),分析亲本和F1在2013年持续高温干旱条件下望江、九江2个环境下的农艺和产量性状,估算了各项遗传方差分量,分析了性状间各项遗传效应的相关性和各性状的杂种优势。结果表明,农艺和产量性状易受环境条件影响,子棉产量、皮棉产量、单株铃数和铃重的遗传主要受显性效应控制,衣分同时受加性和显性效应控制,子指主要受加性效应控制。遗传相关分析表明,子棉产量和皮棉产量与铃重和衣分呈显性正相关;铃重与衣分呈显性正相关,衣分与子指的加性和显性均为负相关。杂种优势分析表明,中棉所63的铃重、衣分、子指、子棉产量和皮棉产量的群体平均优势达极显著水平,其皮棉产量的杂种优势可以利用至F3。  相似文献   

3.
陆地棉株型性状对皮棉产量的遗传贡献分析   总被引:1,自引:1,他引:0  
为阐明陆地棉主要株型性状对皮棉产量的贡献,采用加性-显性及与环境互作的遗传模型,利用估算条件方差分量和预测条件遗传效应值的统计方法对9个陆地棉品种(系)及其F1代20个组合皮棉产量和9个株型性状的2年资料进行了贡献分析。结果表明,9个株型性状对皮棉产量的表型贡献率分布在0.1%~11.1%之间。主茎节距、始果枝高、果节数对皮棉产量具有显著或极显著的加性遗传贡献率,分别为29.8%、6.2%和5.7%,果枝夹角对皮棉产量的加性遗传方差具有较大的抑制作用(-39.9%);果节数对皮棉产量的显性遗传方差贡献率最高(57.8%);主茎节距对皮棉产量有极显著的加性×环境互作遗传方差贡献率(17.7%),其它株型性状对皮棉产量的加性×环境互作遗传方差、显性×环境互作遗传方差的贡献率较小或不显著。亲本2和4的果节数、亲本3、5和6的始果枝高、亲本7的主茎节距对其皮棉产量有最大的加性贡献,表明对皮棉产量加性效应贡献最大的株型性状因不同亲本而异。多数杂交组合皮棉产量的显性效应主要受果节数的影响,因此,果节数可作为间接选择皮棉产量显性效应的指标。  相似文献   

4.
陆地棉主要农艺与纤维品质性状的双列杂交分析   总被引:3,自引:2,他引:1  
本文利用加性-显性与环境互作的遗传模型(ADE模型),分析8个陆地棉亲本及其F1在不同环境下的农艺和纤维品质性状,在估算遗传方差分量、遗传效应的基础上,分析各类性状间的遗传相关性,并预测F1和F2的杂种优势,为棉花杂种优势利用和新品种选育提供了较有价值的信息。研究表明,农艺与纤维品质性状的遗传主要受加性、显性和加性与环境互作效应控制。遗传相关分析表明,皮棉产量与纤维品质性状的显性相关系数值较大,利用杂种优势在早期世代可以得到协同改良,纤维品质性状间易实现协同改良。杂种优势分析表明,F1和F2的皮棉产量均具有显著的超亲优势,纤维品质性状的杂种优势不明显。  相似文献   

5.
籼粳交稻米蛋白质含量的基因型与环境互作效应的分析   总被引:13,自引:2,他引:11  
陈建国  朱军 《作物学报》1999,25(5):579-584
用包括基因型×环境互作效应的种子性状遗传模型,对籼粳交组合的蛋白质含量进行了遗传研究,结果表明:在籼粳交组合中,蛋白质含量的遗传表达主要受直接加性和母体加性效应控制,以母体加性效应为主。直接显性、母体显性和细胞质效应方差分量也达到显著或极显著水平。基因型×环境互作主要表现为直接加性×环境、母体加性×  相似文献   

6.
短季棉主要农艺性状的遗传分析   总被引:28,自引:11,他引:17  
选用5个早熟不早衰的短季棉品种和5 个早衰的短季棉品种进行部分双列杂交。通过对亲本、F1 和F2 代分别于2001 年和 2002 年两年田间试验研究。结果表明:子棉产量、皮棉产量和衣分3个性状以显性效应为主,其次为加性效应,同时还存在极显著的加性上位性与环境的互作效应,单铃重和成铃数以显性效应为主;与早熟有关的诸性状,生育期、始花期、铃期和果枝始节4个性状以加性效应为主,其次为显性效应,霜前花率以显性效应×环境互作效应为主,同时存在显著的加性上位效应,落叶株率以加性与加性互作上位性为主,落叶指数以加性效应为主;与纤维品质有关的诸性状,2.5%跨长、比强度、伸长率3个性状以加性效应为主,其次为显性效应,同时还存在着加性、上位性与环境的互作效应;同时还研究了产量、早熟性和纤维品质各性状之遗传和表型相关关系。  相似文献   

7.
陆地棉核不育系杂交组合F1经济性状杂种优势及遗传分析   总被引:4,自引:1,他引:3  
为探究利用陆地棉核不育系配制杂交种在经济性状方面的优势及遗传特点,采用3个陆地棉核不育亲本与4个陆地棉可育亲本不完全双列杂交设计,对12个F1杂交组合及对照经济性状进行表型方差分析,利用加性-显性(AD)模型,对其亲本及12个F1组合进行配合力分析,同时对经济性状进行遗传方差及相关性分析。结果表明,经济性状方面,F1组合竞争优势不明显。不育系2、可育亲本48784特殊配合力和一般配合力均较高,可选作优良杂交亲本;经济性状的加性方差占表型方差比值较大,单铃重、衣分的狭义遗传率在70%以上,早代选择有效;籽棉产量、皮棉产量、霜前皮棉产量的狭义遗传率在25%以上、显性方差占表现总方差的比值达到极显著水平,这3个性状宜在偏晚世代选择,并且有较好的杂种优势利用潜力;除衣分与籽棉产量加性遗传相关不显著、单铃重与衣分加性遗传负向极显著相关外,其他成对性状加性遗传相关均达到了正向显著水平以上;籽棉产量、皮棉产量、霜前皮棉产量之间及单铃重与衣分的显性相关都达到了极显著水平。不育系在棉花杂种优势利用方面具有较大的利用前景。  相似文献   

8.
陆地棉主要农艺与纤维品质性状的双列杂交分 析   总被引:2,自引:2,他引:0  
 本文利用加性-显性与环境互作的遗传模型(ADE模型),分析8个陆地棉亲本及其F1在不同环境下的农艺和纤维品质性状,在估算遗传方差分量、遗传效应的基础上,分析各类性状间的遗传相关性,并预测F1和F2的杂种优势,为棉花杂种优势利用和新品种选育提供了较有价值的信息。研究表明,农艺与纤维品质性状的遗传主要受加性、显性和加性与环境互作效应控制。遗传相关分析表明,皮棉产量与纤维品质性状的显性相关系数值较大,利用杂种优势在早期世代可以得到协同改良,纤维品质性状间易实现协同改良。杂种优势分析表明,F1和F2的皮棉产量均具有显著的超亲优势,纤维品质性状的杂种优势不明显。  相似文献   

9.
采用加性-显性的遗传模型,研究海岛稀11个亲本和30个F1杂交组合8个产量性状的各项遗传方差分量和遗传相关。结果表明:单株有效铃数、单株无效铃数、铃重、籽棉产量的加性方差比率分别达到显著和极显著水平,而显性方差比率均不显著,表明这4个产量性状的遗传以加性效应为主,皮棉产量、衣分、衣指则不显著,且普通次义遗传率较低。遗传分析表明:新海14号和99-1111籽棉产量有显著的加性效应,可作为杂交育种的优良亲本。  相似文献   

10.
转基因抗虫棉产量性状的遗传效应及其杂种优势分析   总被引:2,自引:2,他引:2  
采用加性-显性与环境互作的遗传模型,分析了9个亲本和36个F1的皮棉产量、单株铃数、铃重和衣分的两年资料,估算了转基因抗虫棉各项遗传方差和成对性状间各项遗传效应的相关性.结果表明,转基因抗虫棉的产量性状受加性和显性效应共同控制,皮棉产量、铃重和衣分都以基因的显性效应为主,而单株铃数是以加性效应为主,单株铃数和衣分还具有基因与环境互作效应.遗传相关分析表明,转基因抗虫棉的皮棉产量与单株铃数的基因型和表现型相关系数都比较大而且比较接近;皮棉产量与单株铃数、铃重和衣分的加性相关系数都达到极显著水平,而且皮棉产量与单株铃数、衣分的数值比较大.利用亲本和F1的资料预测了F2基因型值和杂种优势,结果表明,转基因抗虫棉F2的皮棉产量、单株铃数、铃重和衣分的群体平均优势分别为4.0%、5.1%、-1.3%和3.2%,群体超亲优势分别为-7.3%、-6.0%、-4.2%和-0.5%.  相似文献   

11.
显性无腺体与隐性无腺体陆地棉品种间杂种二代利用研究   总被引:9,自引:2,他引:9  
利用4个隐性低酚棉品系为母本,5个显性无腺体品系为父本,按不完全双列杂交(NCⅡ)设计配制20个组合,利用亲本、F1和F2材料采用ADAA模型研究表明,衣分以加性效应为主,其余产量及产量构成因素以显性遗传效应为主。子棉产量和铃重有较低的上位遗传效应。纤维品质性状中,绒长与整齐度以显性遗传效应为主,绒长还存在少量上位效应;比强度与伸长率仅存在显著的加性遗传效应,麦克隆值以加性遗传效应为主。F1皮棉产量、第一次收花率、单株铃数、铃重和衣分的群体超亲优势平均值分别为:27.9%、18.7%、16.2%、9.7%和1%,F2分别为:10.8%、5.1%、4.5%、4.6%和-1.2%。F1绒长的群体平均优势为2.5%,比强度和伸长率为-1.8和0.8%,麦克隆值和整齐度分别为-0.2%和-2.7%。F2绒长略呈下降趋势,比强度、伸长率和麦克隆值F2与F1相近,整齐度F2略优于F1。表明了显性无腺体基因的杂种优势利用前景广阔。  相似文献   

12.
Feiyu Tang  Weujun Xiao 《Euphytica》2013,194(1):41-51
Within-boll yield components are the most basic contributors to lint and seed yield of cotton (Gossypium hirsutum L.), which is a major source of natural fiber and edible oil throughout the world. Little information is available on genetic effects and heterosis of these traits in cotton. Three cotton cultivars and six breeding lines differing in within-boll yield components were used for this study. Parents and their F1 progeny with reciprocals from a 3×6 factorial mating design were grown at Jiangxi Agricultural University experimental farm in 2008 and 2009. Seven within-boll yield components and two boll bur characters were analyzed under an additive-dominance genetic model with genotype and environment interaction. Additive effects were significant for all traits and dominance effects were significant for all traits except seed mass per seed. Genetic variances for lint mass per seed, SM/S and boll bur weight were primarily additive variances ranging from 39.6 to 58.9 %. Lint mass per boll and seed number per boll variances were primarily due to dominance genetic effects ranging from 36.4 to 48.8 %. Dominance and additive effects were equally important for boll weight, seed mass per boll and boll bur percentage. Additive and additive × environment effects were more important than other effects for lint percentage. A802-1 had the best mean performance and additive effects increasing BW, SM/B, S/B and SM/S, but reduced LP and LM/S. A9-1 and Lu40534 had additive effects associated with increasing LP. The two crosses A9-1×Lu40534 and Tezsh×33B were detected with favorable heterozygous dominant effects and heterosis over best parent for BW, LP, LM/B, SM/B and S/B. Favorable genotypic and phenotypic correlations were identified between within-boll lint yield components (LM/B, LM/S) and within-boll seed yield components (SM/B, S/B, SM/S). These results indicate that simultaneous genetic improvement of multiple within-boll yield components can be expected in breeding populations derived from these cotton cultivars and breeding lines.  相似文献   

13.
When alien DNA inserts into the cotton genome in a multicopy manner, several quantitative trait loci (QTLs) in the cotton genome are disrupted; these are called dQTL in this study. A transgenic mutant line is near-isogenic to its recipient, which is divergent for the dQTL from the remaining QTLs. Therefore, a set of data from a transgenic QTL line mutated by Agrobacterium-mediated transformation (30074), its recipient and their F1 hybrids, and three elite lines were analyzed under a modified additive-dominance model with genotype × environment interactions in three different environments to separate the genetic effects due to dQTL from whole-genome effects. Our result showed that dQTL had significant additive effects on lint percentage, boll weight, and boll number per square meter, while it had little genetic association with fiber traits, seed cotton yield, and lint yield. The dQTL in 30074 significantly increased lint percentage and boll number, while significantly decreasing boll weight, having little effect on fibre traits, while those from the recipient and three elite lines showed significant genetic effects on lint percentage. In addition, the remaining QTL other than dQTL had significant additive effects on seed cotton yield, fruiting branch number, uniformity index, micronaire, and short fibre index, and significant dominance effects on seed cotton yield, lint yield, and boll number per square meter. The additive and dominance effects under homozygous and heterozygous conditions for each line are also predicted in this study.  相似文献   

14.
陆地棉配合力与杂种优势、遗传距离的相关性分析   总被引:6,自引:2,他引:4  
 用10个陆地棉亲本进行不完全双列杂交,共配置了45个组合,计算亲本的一般配合力(GCA)、特殊配合力(SCA)、杂种优势,并结合SSR标记研究了陆地棉亲本配合力与杂种优势、遗传距离之间的相关关系。配合力分析发现,10个亲本的一般配合力和特殊配合力存在显著或极显著差异。分析亲本配合力、杂种优势和遗传距离的相关性发现,子棉产量、皮棉产量、衣分的一般配合力和杂种优势呈显著或极显著相关,纤维长度、比强度、麦克隆值、株高、果枝数、单株铃数、铃重、子棉产量、皮棉产量、衣分的特殊配合力和杂种优势均呈极显著正相关,而与遗传距离相关均不显著。单株铃数、铃重、子棉产量、皮棉产量、衣分的杂种优势与遗传距离均为正向显著或极显著相关。在育种实践中这些显著或极显著相关的性状可能具有较高的改良潜力。  相似文献   

15.
QTL遗传效应正反交差异研究   总被引:2,自引:3,他引:2  
应用改良AD模型对转基因棉花QTL突变体系进行遗传效应的正反交比较分析,结果表明,农艺性状的主要遗传方差组分分解正反交表现一致,除铃重存在显著的遗传背景加性效应(A2)外,子棉产量、皮棉产量、衣分和铃数均存在显著或极显著的 dQTL加性效应(A1)和显性效应(D1),农艺性状均有显著或极显著的遗传背景显性效应(D2);棉花纤维性状的主要遗传效应正反交之间无显著差异.铃重的dQTL的加性和显性效应与环境的互作存在显著差异.对转基因系、受体及三个品系的dQTL加性效应分解结果也表明,正反交对不同材料各性状的加性效应估计也是一致的.本文还对不同组合正反交时的纯合及杂合显性效应进行预测比较.  相似文献   

16.
Linghe Zeng  Jixiang Wu 《Euphytica》2012,187(2):247-261
Determination of genetic effects for lint yield and yield components in cotton (Gossypium hirsutum L.) germplasm is critical for its utilization in breeding programs. This study was designed to apply the conditional approach and an additive and dominant model to analyze genetic effects for lint yield and yield components. Forty-eight F2 populations derived from crosses between four existent Upland cotton cultivars as female parents and 12 germplasm lines as male parents were evaluated at two locations in 2008 and 2009. Conditional and unconditional variance components were estimated by the mixed linear model based conditional approach. Lint yield and yield components were mainly controlled by genotypic effects, i.e., additive variance and dominance variance (≥66 % of total phenotypic variation). Lint percentage and lint index had the highest proportions of additive variance component to the total phenotypic variances. SP156 and SP205 had positive additive effects for lint yield and yield components, and were also parents of the most hybrids with positive predicted dominant effects. Therefore, these two lines are good combiners for development of both pure lines and hybrids. Positive additive contribution effects to lint yield from lint percentage, boll number, boll weight, and seed index were detected in different parents. Adding seed index to boll number and lint percentage increased additive contribution effects to lint yield from these two components relative to the contribution effects from either boll number or lint percentage alone. Results in this study suggest that boll number, lint percentage, and seed index should be balanced in pure line development.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号