Acta Agron Sin ›› 2012, Vol. 38 ›› Issue (10): 1802-1809.doi: 10.3724/SP.J.1006.2012.01802
• CROP GENETICS & BREEDING · GERMPLASM RESOURCES · MOLECULAR GENETICS • Previous Articles Next Articles
XIE Tian-Tian1,2, CHEN Yu-Bo3,2, HUANG Ji-Xiang2, ZHANG Yao-Feng2, XU Ai-Xia 4, CHEN Fei2, NI Xi-Yuan2, and ZHAO Jian-Yi2,*
| [1]Becker H C, Loptien H, Robblen G. Breeding of Brassica: An overview In: Gomez-Campo C, ed. Biology of Brassica coenospecies. Amsterdam: Elsevier, Science BV, 1999. pp 413–460[2]Liu H-S(刘后利). Practical Rapeseed Cultivation. Shanghai: Shanghai Scientific and Technical Publishers, 1987. pp 256–260, 538–539 (in Chinese)[3]Islam N, Evans E J. Influence of lodging and nitrogen rate on the yield and yield attributes of oilseed rape (Brassica napus L.). Theor Appl Genet, 1994, 88: 530–534[4]Buzza G C. Brassica oilseed: Production and Utilization. In: Kimber D, McGregor D I, eds. Plant Breeding. Cambridge: University Press, 1995. pp 153–175[5]Butruille D V, Guries R P, Osborn T C. Linkage analysis of molecular markers and quantitative trait loci in populations of inbred backcross lines of Brassica napus L. Genetics, 1999, 153: 949–964[6]Mei D-S(梅德圣). Mapping QTLs of Plant Height and Flowering Time and Identification of Molecular Markers for Yellow Seed Trait in Brassica napus. PhD Dissertation of Chinese Academy of Agricultural Sciences, 2004 (in Chinese with English abstract)[7]Udall J A, Quijada P A, Lambert B, Osborn T C. Identification of alleles from unadapted germplasm affecting seed yield and other quantitative traits in hybrid spring oilseed Brassica napus L. Theor Appl Genet, 2006, 113: 597–609[8]Quijada P A, Udall J A, Lambert B, Osborn T C. Identification of genomic regions from winter germplasm that affect seed yield and other complex traits in hybrid spring rapeseed (Brassica napus L.). Theor Appl Genet, 2006, 113: 549–561[9]Chen W, Zhang Y, Liu X P, Chen B Y, Tu J X, Fu T D. Detection of QTL for six yield-related traits in oilseed rape (Brassica napus) using DH and immortalized F2 populations. Theor Appl Genet, 2007, 115: 849–858[10]Gao B-J(高必军). Cloning of the napin Gene Promoter and Preliminary QTL of Some Agronomical Import Traits in Brassica napus. PhD Dissertation of Sichuan Agricultural University, 2007. pp 1–105 (in Chinese with English abstract)[11]Wang F(王峰). Genetic Linkage Map Construction and QTL Analysis of Important Agronomic and Quality Traits in Rapeseed (Brassica napus L.). PhD Dissertation of Hunan Agricultural University, 2009. pp 1–60 (in Chinese with English abstract)[12]Henderson C R. A simple method to account for selected base populations. J Dairy Sci, 1988, 71: 3399–3404[13]Zhu J. Analysis of conditional genetic effects and variance components in developmental genetics. Genetics, 1995, 141: 1633–1639[14]Wu W-R(吴为人), Li W-M(李维明), Lu H-R(卢浩然). Strategy of dynamic mapping of quantitative trait loci. J Biomathem (生物数学学报), 1997, 12(5): 490–495 (in Chinese with English abstract)[15]Yan J, Zhu J, He C, Benmoussa M, Wu P. Molecular dissection of developmental behavior of plant height in rice (Oryza sativa L.). Genetics, 1998, 150: 1257–1265[16]Yang G, Xing Y, Li S, Ding J, Yue B, Deng K, Li Y, Zhu Y. Molecular dissection of developmental behavior of tiller number and plant height and their relationship in rice (Oryza sativa L.). Hereditas, 2006, 143: 236–245[17]Cui F, Li J, Ding A, Zhao C, Wang L, Wang X, Li S, Bao Y, Li X, Feng D, Kong L, Wang H. Conditional QTL mapping for plant height with respect to the length of the spike and internode in two mapping populations of wheat. Theor Appl Genet, 2011, 12: 1517–1536[18]Yan J-B(严建兵), Tang H(汤华), Huang Y-Q(黄益勤), Shi Y-G(石永刚), Li J-S(李建生), Zheng Y-L(郑用琏). Dynamic analysis of QTL for plant height at different developmental stages in maize. Chin Sci Bull (科学通报), 2003, 48(18): 1959–1964 (in Chinese)[19]Sun D-S(孙德生), Li W-B(李文滨), Zhang Z-C(张忠臣), Chen Q-S(陈庆山), Yang Q-K(杨庆凯). Analysis of QTL for plant height at different developmental stages in soybean. Acta Agron Sin (作物学报), 2006, 32(4): 509–514 (in Chinese with English abstract)[20]Zhao J Y, Becker H C, Zhang D Q, Zhang Y F, Ecke W. Conditional QTL mapping of oil content in rapeseed with respect to protein content and traits related to plant development and grain yield. Theor Appl Genet, 2006, 113: 33–38[21]Zhao J Y, Becker H C, Zhang D Q, Zhang Y, Ecke W. Oil content in a European × Chinese rapeseed population: QTL with additive and epistatic effects and their genotype-environment interactions. Crop Sci, 2005, 45: 51–59[22]Zhao J Y, Huang J X, Chen F, Xu F, Ni X Y, Xu H M, Wang Y L, Jiang C C, Wang H, Xu A X, Huang R Z, Li D R, Meng J L. Molecular mapping of Arabidopsis thaliana lipid-related orthologous genes in Brassica napus. Theor Appl Genet, 2012, 124: 407–421[23]Zeng Z B. Precision mapping of quantitative trait loci. Genetics, 1994, 136: 1457–1468[24]Foisset N, Delourme R, Barret P, Renard M. Molecular tagging of the dwarf BREIZH (Bzh) gene in Brassica napus. Theor Appl Genet, 1995, 91: 756–761[25]Liu C, Wang J, Huang T, Wang F, Yuan F, Cheng X, Zhang Y, Shi S, Wu J, Liu K. A missense mutation in the VHYNP motif of a DELLA protein causes a semi-dwarf mutant phenotype in Brassica napus. Theor Appl Genet, 2010, 121: 249–258[26]Zeng X, Zhu L, Chen Y, Qi L, Pu Y, Wen J, Yi B, Shen J, Ma C, Tu J, Fu T. Identification, fine mapping and characterization of a dwarf mutant (bnaC.dwf) in Brassica napus. Theor Appl Genet, 2011, 122: 421–428 |
| [1] | Tang Kuan-Qiang, Li Gong-Yun, Song Mei-Yi, Zhao Xue, Chang Chun-Ling. Genome-wide association analysis and prediction model construction for soybean plant height [J]. Acta Agronomica Sinica, 2026, 52(6): 1743-1756. |
| [2] | GUO Xu-Hu, LI Ling-Zhi, LI Feng, MA Bo-Yan, JIA Xiao-Yu. Functional study on the regulation of plant architecture by tomato type I MADS-box gene SlMADS79 [J]. Acta Agronomica Sinica, 2025, 51(4): 982-991. |
| [3] | XU Jian-Xia, DING Yan-Qing, CAO Ning, CHENG Bin, GAO Xu, LI Wen-Zhen, ZHANG Li-Yi. Genome-wide association analysis and prediction of candidate genes for plant height and internode number in Chinese sorghum [J]. Acta Agronomica Sinica, 2025, 51(3): 568-585. |
| [4] | ZHAO Hai-Hong, LI Meng-Yuan, LIU Jin-Jing, WANG Yuan-Yuan, DU Lei, WANG Juan, DONG Cheng-Guang, LI Cheng-Qi. Detection of QTNs and QTN-by-environment interactions for plant height in upland cotton (G. hirsutum L.) using the 3VmrMLM method [J]. Acta Agronomica Sinica, 2025, 51(10): 2619-2631. |
| [5] | LIU Wei, WANG Yu-Bin, LI Wei, ZHANG Li-Feng, XU Ran, WANG Cai-Jie, ZHANG Yan-Wei. Overexpression of soybean isopropyl malate dehydrogenase gene GmIPMDH promotes flowering and growth [J]. Acta Agronomica Sinica, 2024, 50(3): 613-622. |
| [6] | DIAO Xian-Min, WANG Li-Wei, ZHI Hui, ZHANG Jun, LI Shun-Guo, CHENG Ru-Hong. Development, genetic deciphering, and breeding utilization of dwarf lines in foxtail millet [J]. Acta Agronomica Sinica, 2024, 50(2): 265-279. |
| [7] | YANG Shi-Jie, WANG Hua-Zhi, PAN Yi-Min, HUANG Rui, HOU Sen, QIN Hui-Bin, MU Zhi-Xin, WANG Hai-Gang. Genome-wide association analysis for plant height in foxtail millet (Setaria italica L.) germplasm resources in Shanxi, China [J]. Acta Agronomica Sinica, 2024, 50(12): 2984-2997. |
| [8] | ZHAO Yang, LI Long, YANG Jin-Wen, JING Rui-Lian, SUN Dai-Zhen, WANG Jing-Yi. An E3 ubiquitin ligase gene TaSINA-3A is associated with plant height and 1000-grain weight in various environments in wheat [J]. Acta Agronomica Sinica, 2024, 50(10): 2654-2664. |
| [9] | YANG Chen-Xi, ZHOU Wen-Qi, ZHOU Xiang-Yan, LIU Zhong-Xiang, ZHOU Yu-Qian, LIU Jie-Shan, YANG Yan-Zhong, HE Hai-Jun, WANG Xiao-Juan, LIAN Xiao-Rong, LI Yong-Sheng. Mapping and cloning of plant height gene PHR1 in maize [J]. Acta Agronomica Sinica, 2024, 50(1): 55-66. |
| [10] | ZHU Zhi, LI Long, LI Chao-Nan, MAO Xin-Guo, HAO Chen-Yang, ZHU Ting, WANG Jing-Yi, CHANG Jian-Zhong, JING Rui-Lian. Transcription factor TaMYB5-3B is associated with plant height and 1000- grain weight in wheat [J]. Acta Agronomica Sinica, 2023, 49(4): 906-916. |
| [11] | MA Ya-Jie, BAO Jian-Xi, GAO Yue-Xin, LI Ya-Nan, QIN Wen-Xuan, WANG Yan-Bo, LONG Yan, LI Jin-Ping, DONG Zhen-Ying, WAN Xiang-Yuan. Genome-wide association analysis of plant height and ear height related traits in maize [J]. Acta Agronomica Sinica, 2023, 49(3): 647-661. |
| [12] | ZHAO Die, HU Wen-Jing, CHENG Xiao-Ming, WANG Shu-Ping, ZHANG Chun-Mei, LI Dong-Sheng, GAO De-Rong. Detection and verification of QTL for plant height in Yangmai 4/Yanzhan 1 recombinant inbred lines population and their genetic effects on Fusarium head blight resistance [J]. Acta Agronomica Sinica, 2023, 49(12): 3215-3226. |
| [13] | WEI Gang, CHEN Dan-Yang, REN De-Yong, YANG Hong-Xia, WU Jing-Wen, FENG Ping, WANG Nan. Identification and gene mapping of slender stem mutant sr10 in rice (Oryza sativa L.) [J]. Acta Agronomica Sinica, 2022, 48(8): 2125-2133. |
| [14] | HU Wen-Jing, LI Dong-Sheng, YI Xin, ZHANG Chun-Mei, ZHANG Yong. Molecular mapping and validation of quantitative trait loci for spike-related traits and plant height in wheat [J]. Acta Agronomica Sinica, 2022, 48(6): 1346-1356. |
| [15] | YU Chun-Miao, ZHANG Yong, WANG Hao-Rang, YANG Xing-Yong, DONG Quan-Zhong, XUE Hong, ZHANG Ming-Ming, LI Wei-Wei, WANG Lei, HU Kai-Feng, GU Yong-Zhe, QIU Li-Juan. Construction of a high density genetic map between cultivated and semi-wild soybeans and identification of QTLs for plant height [J]. Acta Agronomica Sinica, 2022, 48(5): 1091-1102. |
|
||