| [1] |
Gu S H, Wen W L, Xu T J, Lu X J, Yu Z T, Guo X Y, Zhao C J. Use of 3D modeling to refine predictions of canopy light utilization:a comparative study on canopy photosynthesis models with different dimensions[J]. Frontiers in Plant Science, 2022, 13:735981.doi: 10.3389/fpls.2022.735981.
URL
|
| [2] |
Tian J G, Wang C L, Xia J L, Wu L S, Xu G H, Wu W H, Li D, Qin W C, Han X, Chen Q Y, Jin W W, Tian F. Teosinte ligule allele narrows plant architecture and enhances high-density maize yields[J]. Science, 2019, 365(6454):658-664.doi: 10.1126/science.aax5482.
pmid: 31416957
|
| [3] |
Wen W L, Gu S H, Xiao B X, Wang C Y, Wang J L, Ma L M, Wang Y J, Lu X J, Yu Z T, Zhang Y, Du J J, Guo X Y. In situ evaluation of stalk lodging resistance for different maize( Zea mays L.) cultivars using a mobile wind machine[J]. Plant Methods, 2019, 15(1):96.doi: 10.1186/s13007-019-0481-1.
|
| [4] |
Flint-Garcia S A, Thuillet A C, Yu J M, Pressoir G, Romero S M, Mitchell S E, Doebley J, Kresovich S, Goodman M M, Buckler E S. Maize association population:a high-resolution platform for quantitative trait locus dissection[J]. The Plant Journal, 2005, 44(6):1054-1064.doi: 10.1111/j.1365-313x.2005.02591.x.
URL
|
| [5] |
Cui M, Jia B, Liu H H, Kan X, Zhang Y, Zhou R H, Li Z P, Yang L, Deng D X, Yin Z T. Genetic mapping of the leaf number above the primary ear and its relationship with plant height and flowering time in maize[J]. Frontiers in Plant Science, 2017, 8:1437.doi: 10.3389/fpls.2017.01437.
pmid: 28868062
|
| [6] |
Cai H G, Chu Q, Gu R L, Yuan L X, Liu J C, Zhang X Z, Chen F J, Mi G H, Zhang F S. Identification of QTLs for plant height,ear height and grain yield in maize( Zea mays L.) in response to nitrogen and phosphorus supply[J]. Plant Breeding, 2012, 131(4):502-510.doi: 10.1111/j.1439-0523.2012.01963.x.
URL
|
| [7] |
|
|
Cui L Y, Study on genetic characteristic and QTL mapping for the leaf number above ear in maize[D]. Zhengzhou: Henan Agricultural University, 2020.
|
| [8] |
李丹. 玉米叶片数遗传结构的解析及目标QTL的克隆[D]. 北京: 中国农业大学, 2015.
|
|
Li D. Genetic architecture of maize leaf number and target QTL cloning[D]. Beijing: China Agricultural University, 2015.
|
| [9] |
|
|
Zhang X R. QTL analysis of maize plant-type associated traits based on two RIL populations[D]. Zhengzhou: Henan Agricultural University, 2016.
|
| [10] |
郭爽, 聂蕾, 何玥, 王栋, 涂亮, 刘鹏飞, 蒋喻林, 郭向阳, 王安贵, 祝云芳, 吴迅, 陈泽辉. 玉米叶部性状的QTL定位与候选基因分析[J]. 江苏农业学报, 2024, 40(10):1777-1786.doi: 10.3969/j.issn.1000-4440.2024.10.001.
|
|
Guo S, Nie L, He Y, Wang D, Tu L, Liu P F, Jiang Y L, Guo X Y, Wang A G, Zhu Y F, Wu X, Chen Z H. QTL mapping and candidate gene analysis of leaf related traits in maize[J]. Jiangsu Journal of Agricultural Sciences, 2024, 40(10):1777-1786.
|
| [11] |
Li Z G, Li K, Yang X H, Hao H Q, Jing H C. Combined QTL mapping and association study reveals candidate genes for leaf number and flowering time in maize[J]. Theoretical and Applied Genetics, 2021, 134(10):3459-3472.doi: 10.1007/s00122-021-03907-x.
pmid: 34247253
|
| [12] |
Li Y, Wang J, Zhong S Y, Huo Q, Wang Q, Shi Y L, Liu H Q, Liu J C, Song Y, Fang X J, Lin Z W. MADS-box encoding gene Tunicate1 positively controls maize yield by increasing leaf number above the ear[J]. Nature Communications, 2025, 15:9799.doi: 10.1038/s41467-024-54148-7.
|
| [13] |
Churchill G A, Doerge R W. Empirical threshold values for quantitative trait mapping[J]. Genetics, 1994, 138(3):963-971.doi: 10.1093/genetics/138.3.963.
pmid: 7851788
|
| [14] |
Sun X W, Liu D Y, Zhang X F, Li W B, Liu H, Hong W G, Jiang C B, Guan N, Ma C X, Zeng H P, Xu C H, Song J, Huang L, Wang C M, Shi J J, Wang R, Zheng X H, Lu C Y, Wang X W, Zheng H K. SLAF-seq:an efficient method of large-scale de novo SNP discovery and genotyping using high-throughput sequencing[J]. PLoS One, 2013, 8(3):e58700.doi: 10.1371/journal.pone.0058700.
URL
|
| [15] |
Finn R D, Bateman A, Clements J, Coggill P, Eberhardt R Y, Eddy S R, Heger A, Hetherington K, Holm L, Mistry J, Sonnhammer E L L, Tate J, Punta M. Pfam:the protein families database[J]. Nucleic Acids Research, 2014, 42(Database issue):D222-D230.doi: 10.1093/nar/gkt1223.
|
| [16] |
Kanehisa M, Araki M, Goto S, Hattori M, Hirakawa M, Itoh M, Katayama T, Kawashima S, Okuda S, Tokimatsu T, Yamanishi Y. KEGG for linking genomes to life and the environment[J]. Nucleic Acids Research, 2008, 36(Database issue):D480-D484.doi: 10.1093/nar/gkm882.
|
| [17] |
Deng Y Y, Li J Q, Wu S F, Zhu Y, Chen Y, He F C. Integrated NR Database in protein annotation system and its localization[J]. Computer Engineering, 2006, 32(5):71-72.doi: 10.1109/INFOCOM.2006.241.
|
| [18] |
Apweiler R, Bairoch A, Wu C H, Barker W C, Boeckmann B, Ferro S, Gasteiger E, Huang H Z, Lopez R, Magrane M, Martin M J, Natale D A, O'Donovan C, Redaschi N, Yeh L L. UniProt:the universal protein knowledgebase[J]. Nucleic Acids Research, 2004, 32(Database issue):D115-D119.doi: 10.1093/nar/gkh131.
|
| [19] |
|
|
Shang Q Q, Zhang D G, Wang K X, Wang G L, Pan J B, Li X H, Shi L Y. Diversity analysis of stalk traits in maize inbred lines in China[J]. Journal of Plant Genetic Resources, 2020, 21(2):321-329.
|
| [20] |
|
|
Sun G X, Ren X J, Yang W, Ci J B, Zhang Y, Yang W G. Study on density-tolerance of improved lines of Chang 7-2 and its hybrids[J]. Journal of Jilin Agricultural University, 2015, 37(2):141-147,165.
|
| [21] |
Ai L, Qiu J, Wang J G, Qian M Y, Liu T T, Cao W, Xing F Y, Gul H, Zhang Y Y, Gong X L, Li J, Duan H, Xiao Q L, Liu Z Z. A naturally occurring 31 bp deletion in TEOSINTE BRANCHED1 causes branched ears in maize[J]. Journal of Integrative Agriculture, 2025, 24(9):3322-3333.doi: 10.1016/j.jia.2023.12.024.
URL
|
| [22] |
|
|
Hu Y, Pan L, Xu C W. Sequence variation analysis of gene Dwarf8 and its association with plant height trait of maize elite inbred lines and its derivatives[J]. Jiangsu Agricultural Sciences, 2016, 44(8):89-94.
|
| [23] |
Sheng H J, Zhang H, Deng H, Zhang Z X, Qiu F Z, Yang F. Maize COMPACT PLANT 3 regulates plant architecture and facilitates high-density planting[J]. The Plant Cell, 2025, 37(2):koaf029.doi: 10.1093/plcell/koaf029.
|
| [24] |
Tsukaya H. Leaf shape:genetic controls and environmental factors[J]. The International Journal of Developmental Biology, 2005, 49(5/6):547-555.doi: 10.1387/ijdb.041921ht.
URL
|
| [25] |
园园, 恩和巴雅尔, 齐艳华. 植物GH3基因家族生物学功能研究进展[J]. 植物学报, 2023, 58(5):770-782.doi: 10.11983/CBB22263.
|
|
Yuan Y, Enhebayaer, Qi Y H. Research advances in biological functions of GH3 gene family in plants[J]. Chinese Bulletin of Botany, 2023, 58(5):770-782.
|
| [26] |
Niu Y H, Guo F Q. Nitric oxide regulates dark-induced leaf senescence through EIN2 in Arabidopsis[J]. Journal of Integrative Plant Biology, 2012, 54(8):516-525.doi: 10.1111/j.1744-7909.2012.01140.x.
URL
|
| [27] |
Wang Y T, Cao Y, Qin G J. Multifaceted roles of TCP transcription factors in fate determination[J]. The New Phytologist, 2025, 245(1):95-101.doi: 10.1111/nph.20188.
URL
|
| [28] |
Cackett L, Luginbuehl L H, Schreier T B, Lopez-Juez E, Hibberd J M. Chloroplast development in green plant tissues:the interplay between light,hormone,and transcriptional regulation[J]. The New Phytologist, 2022, 233(5):2000-2016.doi: 10.1111/nph.17839.
URL
|
| [29] |
Zhang Y M, Guo P R, Xia X L, Guo H W, Li Z H. Multiple layers of regulation on leaf senescence:new advances and perspectives[J]. Frontiers in Plant Science, 2021, 12:788996.doi: 10.3389/fpls.2021.788996.
URL
|