作物学报 ›› 2014, Vol. 40 ›› Issue (08): 1493-1500.doi: 10.3724/SP.J.1006.2014.01493
周清元,崔翠,阴涛,陈东亮,张正圣,李加纳
ZHOU Qing-Yuan,CUI Cui,YIN Tao,CHEN Dong-Liang,ZHANG Zheng-Sheng,LI Jia-Na
摘要:
| [1]Schiltz S, Munier-Jolain N, Jeudy C, Burstin J, Salon C. Dynamics of exogenous nitrogen partitioning and nitrogen remobilization from vegetative organs in pea revealed by 15N in vivo labeling throughout seed filling. Plant Physiol, 2005, 137: 1463–1473[2]Yang P, Shu C, Chen L, Xu J, Wu J, Liu K . Identification of a major QTL for silique length and seed weight in oilseed rape (Brassica napus L.). Theor Appl Genet, 2012, 125: 285–296[3]Rood S, Major D, Charnetski W. Seasonal changes in 14CO2 assimilation and 14 C translocation in oilseed rape. Field Crops Res, 1984, 8: 341–348[4]冷锁虎, 朱耕如, 邓秀兰. 油菜籽粒干物质来源的研究. 作物学报, 1992, 18: 250–257Leng S H, Zhu G R, Deng X L. Study on the sources of the dry matter in the seed of rapeseed. Acta Agron Sin, 1992, 18: 250–257 (in Chinese with English abstract)[5]Bennett E J, Roberts J A, Wagstaff C. The role of the pod in seed development: strategies for manipulating yield. New Phytol, 2011, 190: 838–853[6]丁秀琦. 白菜型春油菜角果和种子性状研究. 中国油料, 1996, 18(4): 28–30Ding X Q. Study on characters of silique and seed in spring rape (B. campestris L.). Oil Crop China, 1996, 18(4): 28–30 (in Chinese with English abstract)[7]Chay P, Thurling N. Identification of genes controlling pod length in spring rapeseed, Brassica napus L., and their utilization for yield improvement. Plant Breed, 1989, 103: 54–62[8]Diepenbrock W. Yield analysis of winter oilseed rape (Brassica napus L.): a review. Field Crops Res, 2000, 67: 35–49[9]沈熙. 甘蓝型油菜角果长度性状的遗传及QTL定位. 华中农业大学硕士学位论文, 2008Shen X. Genetic Analysic and Gene Maping of Pod Length Trait in Brassica napus L. MS Thesis of Huazhong Agricultural University, Wuhan, China, 2008 (in Chinese with English abstract)[10]危文亮. 甘蓝型油菜长角果变异体的遗传研究. 遗传, 2000, 22: 93–95Wei W L. Studies of the inheritance of a long-pod mutant in Brassica napus L. Hereditas (Beijing), 2000, 22: 93–95 (in Chinese with English abstract)[11]王艳惠, 牛应泽. 人工合成甘蓝型油菜特长角性状的遗传分析. 遗传, 2006, 28: 1273–1279Wang Y H, Niu Y Z. Genetic analysis of a specially long pod character in artificially resythesized Brassica napus L. Hereditas (Beijing), 2006, 28: 1273–1279 (in Chinese with English abstract)[12]王艳惠. 人工合成甘蓝型油菜特长角性状的遗传及分子生物学研究. 四川农业大学博士学位论文, 2009Wang Y H. Genetic and Molecular Biology Research on the Especially-long Pod of Artificially Resynthesized Rapeseed (Brassica napus L.). PhD Dissertation of Sichuan Agricultural University, Ya’an, China, 2009 ((in Chinese with English abstract))[13]盖钧镒, 章元明, 王健康. 植物数量性状遗传体系. 北京, 科学出版社, 2003Gai J Y, Zhang Y M, Wang J K. Genetic system of quantitative traits in plants. Beijing. Science Press, 2003 (in Chinese)[14]代君丽, 崔磊, 刘珂, 宗莹莹, 袁虹霞, 邢小萍, 李洪杰, 李洪连. 小麦品种太空6号对Heterodera avenae郑州群体的抗性遗传分析. 作物学报, 2013, 39: 642–648Dai J L, Cui L, Liu K, Zong Y Y, Yuan H X, Xing X P, Li H J, Li H L. Genetic analysis of common wheat cultivar Taikong 6 for resistance to Heterodera avenae Zhengzhou population. Acta Agron Sin, 2013, 39: 642–648 (in Chinese with English abstract)[15]李余生, 朱镇, 张亚东, 赵凌, 王才林. 水稻稻曲病抗性的主基因+多基因混合遗传模型分析. 作物学报, 2008, 34: 1728–1733Li Y S, Zhu Z, Zhang Y D, Zhao L, Wang C L. Genetic analysis of rice false smut resistance using major gene plus polygene mixed genetic model. Acta Agron Sin, 2008, 34: 1728–1733 (in Chinese with English abstract)[16]王建设, 王建康, 朱立宏, 盖钧镒. 水稻主基因-多基因混合遗传控制白叶枯病抗性的基因效应分析. 遗传, 2000, 27: 34–38Wang J S, Wang J K, Zhu L H, Cai J Y. Major-polygene effect analysis of resistance to bacterial blight (Xanthomonas campestris pv. oryzae) in rice. Hereditas (Beijing), 2000, 27: 34–38 (in Chinese with English abstract)[17]Zheng W J, Liu Z H, Zhao J M, Chen W F. Genetic analysis of stripe disease resistance in rice restorer line c224 using major gene plus polygene mixed effect model. Rice Sci, 2012, 19: 202–206[18]刘莹, 盖钧镒, 吕慧能, 王永军, 陈受宜. 大豆耐旱种质鉴定和相关根系性状的遗传与QTL定位. 遗传学报, 2005, 32: 855–863Liu Y, Gai J Y, Lu H N, Wang Y J, Chen S Y. Identification of drought tolerant germplasm and inheritance and QTL mapping of related root traits in soybean (Glycine max (L.) Merr.). Acta Genet Sin, 2005, 32: 855–863 (in Chinese with English abstract)[19]Zhang X, Li C Q, Wang X Y, Chen G P, Zhang J B, Zhou R Y. Genetic analysis of cryotolerance in cotton during the overwintering period using mixed model of major gene and polygene. J Integr Agric, 2012, 11: 537–544[20]Zhang X Y, Han SY, Tang F S, Xu J, Liu H, Yan M, Dong W Z, Huang B Y, Zhu S J. Genetic analysis of yield in peanut (Arachis hypogaea L.) using mixed model of major gene plus polygene. Afr J Biotechnol, 2011, 10: 7126–7130[21]唐慧珣, 司龙亭. 黄瓜种子休眠性的数量遗传分析. 园艺学报, 2013, 40: 549–554Tang H X, Si L T. Quantitative genetic analysis of seed dormancy in cucumber. Acta Hortic Sin, 2013, 40: 549–554 (in Chinese with English abstract)[22]戚存扣, 盖钧镒, 章元明. 甘蓝型油菜芥酸含量的主基因+多基因遗传. 遗传学报, 2001, 28: 182–187Qi C K, Gai J Y, Zhang Y M. Major gene plus poly-gene inheritance of erucic acid content in Brassica napus L. Acta Genet Sin, 2001, 28: 182–187 (in Chinese with English abstract)[23]Zhang S F, Ma C Z, Zhu J C, Wang J P, Wen Y C, Fu T D. Genetic analysis of oil content in Brassica napus L. using mixed model of major gene and polygene. Acta Genet Sin, 2006, 33: 171–180[24]张洁夫, 戚存扣, 浦惠明, 陈松, 陈锋, 高建芹, 陈新军, 顾慧, 傅寿仲. 甘蓝型油菜含油量的遗传与QTL定位. 作物学报, 2007, 33: 1495–1501Zhang J F, Qi C K, Pu H M, Chen S, Chen F, Gao J Q, Chen X J, Gu H, Fu S Z. Inheritance and QTL identification of oil content in rapeseed (Brassica napus L.). Acta Agron Sin, 2007, 33: 1495–1501 (in Chinese with English abstract)[25]顾慧, 戚存扣. 甘蓝型油菜(Brassica napus L.)抗倒伏性状的主基因+多基因遗传分析. 作物学报, 2008, 34: 376–381Gu H, Qi C K. Genetic analysis of lodging resistance with mixed model of major gene plus polygene in Brassica napus L. Acta Agron Sin, 2008, 34: 376–381 (in Chinese with English abstract)[26]周清元, 李军庆, 崔翠, 卜海东, 阴涛, 颜银华, 李加纳, 张正圣. 油菜半矮杆新品系10D130株型性状的遗传分析. 作物学报, 2013, 39: 207–215Zhou Q Y, Li J Q, Cui C, Bu H D, Yin T, Yan Y H, Li J N, Zhang Z S. Genetic analysis of plant type in semi-dwarf new line (10D130) of rapeseed. Acta Agron Sin, 2013, 39: 1–19 (in Chinese with English abstract)[27]戚存扣, 盖钧镒, 傅寿仲, 浦惠明, 张洁夫, 陈新军, 高建琴. 甘蓝型油菜(Brassica napus L.)千粒重性状遗传体系分析.作物学报, 2004, 30: 1274–1277Qi C K, Gai J Y, Fu S Z, Pu H M, Zhang J F, Chen X J, Gao J Q. Analysis of genetic system of 1000 seed weight in Brassica napus L. Acta Agron Sin, 2004, 30: 1274–1277 (in Chinese with English abstract)[28]Zhang L W, Liu P W, Hong D F, Huang A Q, Li S P, He Q B, Yang G S. Inheritance of seeds per silique in Brassica napus L. using joint segregation analysis. Field Crops Res, 2010, 116: 58–67[29]田露申, 牛应泽, 余青青, 郭世星, 柳丽. 甘蓝型油菜白花性状的主基因+多基因遗传分析. 中国农业科学, 2009, 42: 3987–3995Tian L S, Niu Y Z, Yu Q Q, Guo S X, Liu L. Genetic analysis of white flower color with mixed model of major gene plus polygene in Brassica napus L. Sci Agric Sin, 2009, 42: 3987–3995 (in Chinese with English abstract)[30]周清元. 甘蓝型油菜新种质资源创建及其株型性状遗传分析. 西南大学博士学位论文, 2009Zhou Q Y. Study on Germplasm Creation of Brassica napus L. and Genetic Analysis of Plant-type Characters. PhD Dissertation of Southwest University, Chongqing, China, 2009 (in Chinese with English abstract)[31]Zhang Y M, Gai J Y, Yang Y H. The EIM algorithm in the joint segregation analysis of quantitative traits. Genet Res, 2003, 81: 157–163[32]Akaike H. On entropy maximum principles. In: Krishnaiag G, ed. Applications of Statistics. Amsterdam, Netherlands: North-Holland Publishing, 1977. pp 27–41[33]王春娥, 盖钧镒, 傅三雄, 喻德跃, 陈受宜. 大豆豆腐和豆乳得率的遗传分析与QTL定位. 中国农业科学, 2008, 41: 1274–1282Wang C E, Gai J Y, Fu S X, Yu D Y, Chen S Y. Inheritance and QTL mapping of tofu and soymilk output in soybean. Sci Agric Sin, 2008, 41: 1274–1282 (in Chinese with English abstract) |
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