| [1] |
许辰慧. 玉米胚芽鞘生长的生理和蛋白质组学研究[D]. 郑州: 河南农业大学, 2018.
|
|
Xu C H. Physiological and protein omics study on the growth of maize coleoptile[D]. Zhengzhou: Henan Agricultural University, 2018. (in Chinese)
|
| [2] |
Qiao J Z, Quan R D, Wang J, Li Y X, Xiao D L, Zhao Z H, Huang R F, Qin H. OsEIL1 and OsEIL2, two master regulators of rice ethylene signaling, promote the expression of ROS scavenging genes to facilitate coleoptile elongation and seedling emergence from soil[J]. Plant Communications, 2024, 5(3): 100771.
doi: 10.1016/j.xplc.2023.100771
|
| [3] |
Rebetzke G J, Richards R A, Fettell N A, Long M, Condon A G, Forrester R I, Botwright T L. Genotypic increases in coleoptile length improves stand establishment, vigour and grain yield of deep-sown wheat[J]. Field Crops Research, 2007, 100(1): 10-23.
doi: 10.1016/j.fcr.2006.05.001
|
| [4] |
Yu S M, Lee H T, Lo S F, Ho T D. How does rice cope with too little oxygen during its early life?[J]. The New Phytologist, 2021, 229(1): 36-41.
doi: 10.1111/nph.v229.1
|
| [5] |
陈丽, 孙建昌. 水稻种子特性与直播栽培出苗状况的关系研究[J]. 东北农业科学, 2024, 49(5): 1-5.
|
|
Chen L, Sun J C. The relationship between seed characteristics and seedling emergence in direct seeding cultivation[J]. Journal of Northeast Agricultural Sciences, 2024, 49(5): 1-5. (in Chinese)
|
| [6] |
Lollato R, Pradella L O, Cuell A R, others. Coleoptile length of winter wheat varieties 2025: MF3612[R]. Kansas State University, 2025.
|
| [7] |
Hu Y M, Vandenbussche F, Van Der Straeten D. Regulation of seedling growth by ethylene and the ethylene-auxin crosstalk[J]. Planta, 2017, 245(3): 467-489.
doi: 10.1007/s00425-017-2651-6
pmid: 28188422
|
| [8] |
Yin C C, Zhao H, Ma B, Chen S Y, Zhang J S. Diverse roles of ethylene in regulating agronomic traits in rice[J]. Frontiers in Plant Science, 2017, 8: 1676.
doi: 10.3389/fpls.2017.01676
|
| [9] |
Qin H, He L N, Huang R F. The coordination of ethylene and other hormones in primary root development[J]. Frontiers in Plant Science, 2019, 10: 874.
doi: 10.3389/fpls.2019.00874
pmid: 31354757
|
| [10] |
Zhao H, Yin C C, Ma B, Chen S Y, Zhang J S. Ethylene signaling in rice and Arabidopsis: New regulators and mechanisms[J]. Journal of Integrative Plant Biology, 2021, 63(1): 102-125.
doi: 10.1111/jipb.v63.1
|
| [11] |
Ma B, He S J, Duan K X, Yin C C, Chen H, Yang C, Xiong Q, Song Q X, Lu X, Chen H W, Zhang W K, Lu T G, Chen S Y, Zhang J S. Identification of rice ethylene-response mutants and characterization of MHZ7/OsEIN2 in distinct ethylene response and yield trait regulation[J]. Molecular Plant, 2013, 6(6): 1830-1848.
doi: 10.1093/mp/sst087
pmid: 23718947
|
| [12] |
Ma N N, Wang Y, Qiu S C, Kang Z H, Che S G, Wang G X, Huang J L. Overexpression of OsEXPA8, a root-specific gene, improves rice growth and root system architecture by facilitating cell extension[J]. PLoS ONE, 2013, 8(10): e75997.
doi: 10.1371/journal.pone.0075997
|
| [13] |
Zhong S W, Shi H, Xue C, Wei N, Guo H W, Deng X W. Ethylene-orchestrated circuitry coordinates a seedling’s response to soil cover and etiolated growth[J]. Proceedings of the National Academy of Sciences of the United States of America, 2014, 111(11): 3913-3920.
|
| [14] |
Shi H, Liu R L, Xue C, Shen X, Wei N, Deng X W, Zhong S W. Seedlings transduce the depth and mechanical pressure of covering soil using COP1 and ethylene to regulate EBF1/EBF2 for soil emergence[J]. Current Biology, 2016, 26(2): 139-149.
doi: S0960-9822(15)01497-9
pmid: 26748855
|
| [15] |
Xiong Q, Ma B, Lu X, Huang Y H, He S J, Yang C, Yin C C, Zhao H, Zhou Y, Zhang W K, Wang W S, Li Z K, Chen S Y, Zhang J S. Ethylene-inhibited jasmonic acid biosynthesis promotes mesocotyl/ coleoptile elongation of etiolated rice seedlings[J]. The Plant Cell, 2017, 29(5): 1053-1072.
doi: 10.1105/tpc.16.00981
pmid: 28465411
|
| [16] |
Kefford N P. Auxin-gibberellin interaction in rice coleoptile elongation[J]. Plant Physiology, 1962, 37(3): 380-386.
doi: 10.1104/pp.37.3.380
pmid: 16655662
|
| [17] |
刘婧, 柳艳梅, TAKANO Makoto, 王宝山, 谢先芝. 光敏色素影响赤霉素调控的水稻幼苗光形态建成特征[J]. 科学通报, 2010, 55(24): 2384-2390.
|
|
Liu J, Liu Y M, Makoto T, Wang B S, Xie X Z. Involvement of phytochromes in gibberellin-mediated pnotomorphogenesis in rice seedlings[J]. Chinese Science Bulletin, 2010, 55(24): 2384-2390. (in Chinese)
|
| [18] |
|
|
Tang N, Jiang Y, He B R, Hu Y G. Effects of dwarfing genes of rht-B1b, rht-D1b and Rht8 with different response to GA3 on coleoptile length and plant height of wheat[J]. Scientia Agricultura Sinica, 2009, 42(11): 3774-3784. DOI: 10.3864/j.issn.0578-1752.2009.11.003. (in Chinese)
|
| [19] |
Cleland R, McCombs N. Gibberellic acid: Action in barley endosperm does not require endogenous auxin[J]. Science, 1965, 150(3695): 497-498.
pmid: 5835785
|
| [20] |
费思恬, 侯鹰翔, 李兰, 张超. 水稻赤霉素信号负调控因子SLR1的生物学功能及其调控网络[J]. 生物技术通报, 2026, 42(1): 13-30.
doi: 10.13560/j.cnki.biotech.bull.1985.2025-0643
|
|
Fei S T, Hou Y X, Li L, Zhang C. Biological functions and regulatory network of SLR1, a negative regulator of gibberellin signaling in rice[J]. Biotechnology Bulletin, 2026, 42(1): 13-30. (in Chinese)
|
| [21] |
黄先忠, 蒋才富, 廖立力, 傅向东. 赤霉素作用机理的分子基础与调控模式研究进展[J]. 植物学通报, 2006, 23(5): 499-510.
|
|
Huang X Z, Jiang C F, Liao L L, Fu X D. Progress on molecular foundation of GA biosynthesis pathway and signaling[J]. Chinese Bulletin of Botany, 2006, 23(5): 499-510. (in Chinese)
|
| [22] |
Li X X, Xie Z Z, Qin T, Zhan C H, Jin L, Huang J L. The SLR 1- O s MADS 23- D14 module mediates the crosstalk between strigolactone and gibberellin signaling to control rice tillering[J]. New Phytologist, 2025, 246(5): 2137-2154.
doi: 10.1111/nph.v246.5
|
| [23] |
Dahal P, Wang Y, Hu J H, Park J, Forker K, Zhang Z L, Sharma K, Borgnia M J, Sun T P, Zhou P. Structural insights into proteolysis- dependent and-independent suppression of the master regulator DELLA by the gibberellin receptor[J]. Proceedings of the National Academy of Sciences of the United States of America, 2025, 122(32): e2511012122.
|
| [24] |
Ueguchi-Tanaka M, Nakajima M, Katoh E, Ohmiya H, Asano K, Saji S, Xiang H Y, Ashikari M, Kitano H, Yamaguchi I, Matsuoka M. Molecular interactions of a soluble gibberellin receptor, GID1, with a rice DELLA protein, SLR1, and gibberellin[J]. The Plant Cell, 2007, 19(7): 2140-2155.
doi: 10.1105/tpc.106.043729
|
| [25] |
Islam S, Park K, Xia J, Kwon E, Kim D Y. Structural insights into gibberellin-mediated DELLA protein degradation[J]. Molecular Plant, 2025, 18(7): 1210-1221.
doi: 10.1016/j.molp.2025.06.010
|
| [26] |
An F Y, Zhang X, Zhu Z Q, Ji Y S, He W R, Jiang Z Q, Li M Z, Guo H W. Coordinated regulation of apical hook development by gibberellins and ethylene in etiolated Arabidopsis seedlings[J]. Cell Research, 2012, 22(5): 915-927.
doi: 10.1038/cr.2012.29
|
| [27] |
Lü Y S, Dong X L, Niu S P, Cao R J, Shao G N, Sheng Z H, Jiao G A, Xie L H, Hu S K, Tang S Q, Wei X J, Hu P S. An orchestrated ethylene-gibberellin signaling cascade contributes to mesocotyl elongation and emergence of rice direct seeding[J]. Journal of Integrative Plant Biology, 2024, 66(7): 1427-1439.
doi: 10.1111/jipb.v66.7
|
| [28] |
Qin H, Pandey B K, Li Y X, Huang G Q, Wang J, Quan R D, Zhou J H, Zhou Y, Miao Y C, Zhang D B, Bennett M J, Huang R F. Orchestration of ethylene and gibberellin signals determines primary root elongation in rice[J]. The Plant Cell, 2022, 34(4): 1273-1288.
doi: 10.1093/plcell/koac008
pmid: 35021223
|
| [29] |
Dong C Q, Cheng X L, Yuan M, Zhang Z, Wang Y Q, Liu J, Song L, Wang H R, Jiang Y J, Liu X Q, Wu J H, Yao Y Y, Ni Z F, Sun Q X, Chai L L, Liu J. Phase separation of Rht8-derived RNHL1 integrates ethylene and gibberellin signaling to regulate wheat internode elongation[J]. The Plant Cell, 2026, 38(4): koag081.
|
| [30] |
Mo W P, Tang W J, Du Y X, Jing Y J, Bu Q Y, Lin R C. PHYTOCHROME-INTERACTING FACTOR-LIKE14 and SLENDER RICE1 interaction controls seedling growth under salt stress[J]. Plant Physiology, 2020, 184(1): 506-517.
doi: 10.1104/pp.20.00024
pmid: 32581115
|
| [31] |
Wu H, He Q, He B, He S Y, Zeng L J, Yang L B, Zhang H, Wei Z R, Hu X M, Hu J, Zhang Y, Shang L G, Wang S K, Cui P, Xiong G S, Qian Q, Wang Q. Gibberellin signaling regulates lignin biosynthesis to modulate rice seed shattering[J]. The Plant Cell, 2023, 35(12): 4383-4404.
doi: 10.1093/plcell/koad244
pmid: 37738159
|
| [32] |
Garg R, Tyagi A K, Jain M. Microarray analysis reveals overlapping and specific transcriptional responses to different plant hormones in rice[J]. Plant Signaling & Behavior, 2012, 7(8): 951-956.
|
| [33] |
Hirano K, Asano K, Tsuji H, Kawamura M, Mori H, Kitano H, Ueguchi-Tanaka M, Matsuoka M. Characterization of the molecular mechanism underlying gibberellin perception complex formation in rice[J]. The Plant Cell, 2010, 22(8): 2680-2696.
doi: 10.1105/tpc.110.075549
pmid: 20716699
|