Acta Agronomica Sinica ›› 2025, Vol. 51 ›› Issue (2): 548-556.doi: 10.3724/SP.J.1006.2025.44090
• RESEARCH NOTES • Previous Articles
ZHAO Fei-Fei1,2(
), LI Shao-Xiong2, LIU Hao2, LI Hai-Fen2, WANG Run-Feng2, HUANG Lu2, YU Qian-Xia2, HONG Yan-Bin2, CHEN Xiao-Ping2, LU Qing2,*(
), CAO Yu-Man1,*(
)
| [1] | Hammons R O, Herman D, Stalker H T. Origin and Early History of the Peanut. Peanuts. Amsterdam: AOCS, 2016. pp 1-26. |
| [2] | 廖伯寿. 我国花生生产发展现状与潜力分析. 中国油料作物学报, 2020, 42: 161-166. |
|
Liao B S. A review on progress and prospects of peanut industry in China. Chin J Oil Crop Sci, 2020, 42: 161-166 (in Chinese with English abstract).
doi: 10.19802/j.issn.1007-9084.2020115 |
|
| [3] | 付凌晖, 叶礼奇. 中国统计年鉴2023. 北京: 中国统计出版社, 2023. pp 386-403. |
| Fu L H, Ye L Q. China Statistical Yearbook 2023. Beijing: China Statistics Press, 2023. pp 386-403 (in Chinese). | |
| [4] | 郝西, 张俊, 高伟, 易明林, 刘娟, 臧秀旺. 中国花生生产成本与收益分析. 农业科技通讯, 2023, (11): 150-153. |
| Hao X, Zhang J, Gao W, Yi M L, Liu J, Zang X W. Cost and benefit analysis of peanut production in China. Bull Agric Sci Technol, 2023, (11): 150-153 (in Chinese). | |
| [5] | 刘晓慧. 基于碳排放的我国花生绿色全要素生产率评价研究. 山东农业大学硕士学位论文, 山东泰安, 2023. |
| Liu X H. Evaluation of Green Total Factor Productivity of Peanut in China Based on Carbon Emissions. MS Thesis of Shandong Agricultural University, Tai’an, Shandong, China, 2023 (in Chinese with English abstract). | |
| [6] | Donald C M. A barley breeding programme based on an ideotype. J Agric Sci, 1979, 93: 261-269. |
| [7] | Li Y B, Tao F L, Hao Y F, Tong J Y, Xiao Y G, Zhang H, He Z H, Reynolds M. Linking genetic markers with an eco-physiological model to pyramid favourable alleles and design wheat ideotypes. Plant Cell Environ, 2023, 46: 780-795. |
| [8] | Wang Z Q, Wu F K, Chen X D, Zhou W L, Shi H R, Lin Y, Hou S, Yu S F, Zhou H, Li C X, Liu Y X. Fine mapping of the tiller inhibition gene TIN4 contributing to ideal plant architecture in common wheat. Theor Appl Genet, 2022, 135: 527-535. |
| [9] | Cheng Y X, Xiao F, Huang D Y, Yang Y, Cheng W D, Jin S C, Li G H, Ding Y F, Paul M J, Liu Z H. High canopy photosynthesis before anthesis explains the outstanding yield performance of rice cultivars with ideal plant architecture. Field Crops Res, 2024, 306: 109223. |
| [10] |
马梦影, 巩文靓, 康雪蒙, 段海燕. 水稻理想株型改良的研究进展. 中国农学通报, 2020, 36(29): 1-6.
doi: 10.11924/j.issn.1000-6850.casb20190900610 |
|
Ma M Y, Gong W L, Kang X M, Duan H Y. The improvement of ideal plant type of rice: a review. Chin Agric Sci Bull, 2020, 36(29): 1-6 (in Chinese with English abstract).
doi: 10.11924/j.issn.1000-6850.casb20190900610 |
|
| [11] | Dermail A, Fuengtee A, Lertrat K, Suwarno W B, Lübberstedt T, Suriharn K. Simultaneous selection of sweet-waxy corn ideotypes appealing to hybrid seed producers, growers, and consumers in Thailand. Agronomy, 2021, 12: 87. |
| [12] | Li R F, Zhang G Q, Liu G Z, Wang K R, Xie R Z, Hou P, Ming B, Wang Z G, Li S K. Improving the yield potential in maize by constructing the ideal plant type and optimizing the maize canopy structure. Food Energy Secur, 2021, 10: e312. |
| [13] | 李新国, 郭峰, 万书波. 高产花生理想株型的研究. 花生学报, 2013, 42(3): 23-26. |
| Li X G, Guo F, Wan S B. Peanut ideotypes with high yield. J Peanut Sci, 2013, 42(3): 23-26 (in Chinese with English abstract). | |
| [14] | Falster D S, Westoby M. Plant height and evolutionary games. Trends Ecol Evol, 2003, 18: 337-343. |
| [15] |
Salas Fernandez M G, Becraft P W, Yin Y H, Lübberstedt T. From dwarves to giants? Plant height manipulation for biomass yield. Trends Plant Sci, 2009, 14: 454-461.
doi: 10.1016/j.tplants.2009.06.005 pmid: 19616467 |
| [16] | Sarlikioti V, de Visser P H B, Buck-Sorlin G H, Marcelis L F M. How plant architecture affects light absorption and photosynthesis in tomato: towards an ideotype for plant architecture using a functional-structural plant model. Ann Bot, 2011, 108: 1065-1073. |
| [17] | 张佳蕾, 郭峰, 李新国, 杨莎, 耿耘, 孟静静, 张凤, 万书波. 提早化控对高产花生节间分布和产量构成的影响. 花生学报, 2017, 46(4): 63-67. |
| Zhang J L, Guo F, Li X G, Yang S, Geng Y, Meng J J, Zhang F, Wan S B. Effects of earlier chemical control on internode distribution and yield components of high yield peanut. J Peanut Sci, 2017, 46(4): 63-67 (in Chinese with English abstract). | |
| [18] |
张佳蕾, 郭峰, 杨佃卿, 孟静静, 杨莎, 王兴语, 陶寿祥, 李新国, 万书波. 单粒精播对超高产花生群体结构和产量的影响. 中国农业科学, 2015, 48: 3757-3766.
doi: 10.3864/j.issn.0578-1752.2015.18.019 |
| Zhang J L, Guo F, Yang D Q, Meng J J, Yang S, Wang X Y, Tao S X, Li X G, Wan S B. Effects of single-seed precision sowing on population structure and yield of peanuts with super-high yield cultivation. Sci Agric Sin, 2015, 48: 3757-3766 (in Chinese with English abstract). | |
| [19] |
McKim S M. Moving on up - controlling internode growth. New Phytol, 2020, 226: 672-678.
doi: 10.1111/nph.16439 pmid: 31955426 |
| [20] |
Li S C, Sun Z H, Sang Q, Qin C, Kong L P, Huang X, Liu H, Su T, Li H Y, He M L, Fang C, Wang L S, Liu S R, Liu B, Liu B H, Fu X D, Kong F J, Lu S J. Soybean reduced internode 1 determines internode length and improves grain yield at dense planting. Nat Commun, 2023, 14: 7939.
doi: 10.1038/s41467-023-42991-z pmid: 38040709 |
| [21] | Dayan J, Voronin N, Gong F, Sun T P, Hedden P, Fromm H, Aloni R. Leaf-induced gibberellin signaling is essential for internode elongation, cambial activity, and fiber differentiation in tobacco stems. Plant Cell, 2012, 24: 66-79. |
| [22] | Patil V, McDermott H I, McAllister T, Cummins M, Silva J C, Mollison E, Meikle R, Morris J, Hedley P E, Waugh R, Dockter C, Hansson M, McKim S M. APETALA2 control of barley internode elongation. Development, 2019, 146: dev170373. |
| [23] |
Li L, Cui S L, Dang P, Yang X L, Wei X J, Chen K, Liu L F, Chen C Y. GWAS and bulked segregant analysis reveal the Loci controlling growth habit-related traits in cultivated peanut (Arachis hypogaea L.). BMC Genomics, 2022, 23: 403.
doi: 10.1186/s12864-022-08640-3 pmid: 35624420 |
| [24] |
Zhang H, Chu Y, Dang P, Tang Y Y, Jiang T, Clevenger J P, Ozias-Akins P, Holbrook C, Wang M L, Campbell H, Hagan A, Chen C. Identification of QTLs for resistance to leaf spots in cultivated peanut (Arachis hypogaea L.) through GWAS analysis. Theor Appl Genet, 2020, 133: 2051-2061.
doi: 10.1007/s00122-020-03576-2 pmid: 32144466 |
| [25] | Wang J, Yan C X, Shi D C, Zhao X B, Yuan C L, Sun Q X, Mou Y F, Chen H N, Li Y, Li C J, Shan S H. The genetic base for peanut height-related traits revealed by a meta-analysis. Plants (Basel), 2021, 10: 1058. |
| [26] | Lu Q, Huang L, Liu H, Garg V, Gangurde S S, Li H F, Chitikineni A, Guo D D, Pandey M K, Li S X, Liu H Y, Wang R F, Deng Q Q, Du P X, Varshney R K, Liang X Q, Hong Y B, Chen X P. A genomic variation map provides insights into peanut diversity in China and associations with 28 agronomic traits. Nat Genet, 2024, 56: 530-540. |
| [27] | 姜慧芳, 段乃雄. 花生种质资源描述规范和数据标准. 北京: 中国农业出版社, 2006. pp 65-67. |
| Jiang H F, Duan N X. Descriptors and Data Standard for Peanut (Arachis spp.). Beijing: China Agriculture Press, 2006. pp 65-67 (in Chinese). | |
| [28] | Chen X P, Lu Q, Liu H, Zhang J N, Hong Y B, Lan H F, Li H F, Wang J P, Liu H Y, Li S X, Pandey M K, Zhang Z K, Zhou G Y, Yu J G, Zhang G Q, Yuan J Q, Li X Y, Wen S J, Meng F B, Yu S L, Wang X Y, Siddique K H M, Liu Z J, Paterson A H, Varshney R K, Liang X Q. Sequencing of cultivated peanut, Arachis hypogaea, yields insights into genome evolution and oil improvement. Mol Plant, 2019, 12: 920-934. |
| [29] | Wang J B, Zhang Z W. GAPIT version 3: boosting power and accuracy for genomic association and prediction. Genom Proteom Bioinform, 2021, 19: 629-640. |
| [30] | Li Y J, Li L Z, Zhang X R, Zhang K, Ma D C, Liu J Q, Wang X J, Liu F Z, Wan Y S. QTL mapping and marker analysis of main stem height and the first lateral branch length in peanut (Arachis hypogaea L.). Euphytica, 2017, 213: 57. |
| [31] |
Huerta-Cepas J, Forslund K, Coelho L P, Szklarczyk D, Jensen L J, von Mering C, Bork P. Fast genome-wide functional annotation through orthology assignment by eggNOG-mapper. Mol Biol Evol, 2017, 34: 2115-2122.
doi: 10.1093/molbev/msx148 pmid: 28460117 |
| [32] | 于彦丽, 李艳娇, 庞凯元, 张发军, 孙琦, 李文才, 孟昭东. 植物FKBP基因家族的结构及生物学功能. 遗传, 2014, 36: 536-546. |
| Yu Y L, Li Y J, Pang K Y, Zhang F J, Sun Q, Li W C, Meng Z D. Structure and biological functions of plant FKBP family. Hereditas, 2014, 36: 536-546 (in Chinese with English abstract). | |
| [33] | 李鹏云. FKBP家族相关蛋白晶体结构及功能研究. 清华大学博士学位论文, 北京, 2003. |
| Li P Y.Study on Crystal Structure and Function of FKBP Family Related Proteins. PhD Dissertation of Tsinghua University, Beijing, China, 2003 (in Chinese with English abstract). | |
| [34] | Harding M W, Galat A, Uehling D E, Schreiber S L. A receptor for the immunosuppressant FK506 is a Cis-trans peptidyl-prolyl isomerase. Nature, 1989, 341: 758-760. |
| [35] |
Henrichs S, Wang B J, Fukao Y, Zhu J S, Charrier L, Bailly A, Oehring S C, Linnert M, Weiwad M, Endler A, Nanni P, Pollmann S, Mancuso S, Schulz A, Geisler M. Regulation of ABCB1/PGP1-catalysed auxin transport by linker phosphorylation. EMBO J, 2012, 31: 2965-2980.
doi: 10.1038/emboj.2012.120 pmid: 22549467 |
| [36] | Roudier F, Gissot L, Beaudoin F, Haslam R, Michaelson L, Marion J, Molino D, Lima A, Bach L, Morin H, Tellier F, Palauqui J C, Bellec Y, Renne C, Miquel M, Dacosta M, Vignard J, Rochat C, Markham J E, Moreau P, Napier J, Faure J D. Very-long-chain fatty acids are involved in polar auxin transport and developmental patterning in Arabidopsis. Plant Cell, 2010, 22: 364-375. |
| [37] |
Huang L, Ren X P, Wu B, Li X P, Chen W G, Zhou X J, Chen Y N, Pandey M K, Jiao Y Q, Luo H Y, Lei Y, Varshney R K, Liao B S, Jiang H F. Development and deployment of a high-density linkage map identified quantitative trait loci for plant height in peanut (Arachis hypogaea L.). Sci Rep, 2016, 6: 39478.
doi: 10.1038/srep39478 pmid: 27995991 |
| [38] |
Li L, Yang X L, Cui S L, Meng X H, Mu G J, Hou M Y, He M J, Zhang H, Liu L F, Chen C Y. Construction of high-density genetic map and mapping quantitative trait loci for growth habit-related traits of peanut (Arachis hypogaea L.). Front Plant Sci, 2019, 10: 745.
doi: 10.3389/fpls.2019.00745 pmid: 31263472 |
| [39] | Lyu J W, Liu N, Guo J B, Xu Z J, Li X P, Li Z D, Luo H Y, Ren X P, Huang L, Zhou X J, Chen Y N, Chen W G, Lei Y, Tu J X, Jiang H F, Liao B S. Stable QTLs for plant height on chromosome A09 identified from two mapping populations in peanut (Arachis hypogaea L.). Front Plant Sci, 2018, 9: 684. |
| [1] | Mao Jia-Qi, Huang Peng-Yu, Zhao Jia-Jia, Zheng Xing-Wei, Wu Bang-Bang, Hao Yu-Qiong, Qu Fei, Liu Cheng, Ma Peng-Tao, Zheng Jun. Evaluation of powdery mildew resistance in wheat cultivars and molecular detection of resistance genes in Shanxi province, China [J]. Acta Agronomica Sinica, 2026, 52(6): 1669-1681. |
| [2] | 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. |
| [3] | Zheng Yu-Zhen, Qi Fei-Yan, Sun Zi-Qi, Liu Hua, Qin Li, Shi Lei, Wang Juan, Wang Meng-Meng, Han Suo-Yi, Xu Jing, Miao Li-Juan, Huang Bing-Yan, Dong Wen-Zhao, Zheng Zheng, Zhang Xin-You. QTL mapping of total very long-chain fatty acids and seven fatty acid components in peanut seeds [J]. Acta Agronomica Sinica, 2026, 52(6): 1646-1657. |
| [4] | Lu Yi-Chu, Li Zhen-Ying, Mai Chun-Hai, Zhao Xiao-Rui, Wang Li-Xiang. Positively regulating role of the key evening complex gene AhLUX1 in peanut nodulation [J]. Acta Agronomica Sinica, 2026, 52(6): 1658-1668. |
| [5] | Yu Tian-Yi, Wang Chun-Xiao, Xiao Li, Zhong Zhao-Di, Wang Xuan-Cang, Zhao Yong, Lu Ya, Wu Yue, Wu Zheng-Feng. Response of nitrogen accumulation, yield, and quality characteristics of peanut varieties with different nodulation traits to nitrogen fertilizer application rate [J]. Acta Agronomica Sinica, 2026, 52(3): 881-894. |
| [6] | Li Shi-Qing, Wang Qian, Wang Su-Hua, Zhang Yao-Wen, Wang Li-Xia. Evaluation of salt tolerance at the seedling stage and related gene mining in mung bean germplasm resources [J]. Acta Agronomica Sinica, 2026, 52(2): 376-388. |
| [7] | Zhang Sheng-Zhong, Li Guo-Wei, Ge Li-Jiang, Wang Fei-Fei, Hu Xiao-Hui, Miao Hua-Rong, Li Yan, Zhong Wen, Chen Jing. Screening and QTL mapping for mechanical shelling damage related traits in peanut [J]. Acta Agronomica Sinica, 2026, 52(2): 644-652. |
| [8] | Wang Fei-Fei, Zhang Sheng-Zhong, Yang Gui-Hua, Miao Hua-Rong, Hu Xiao-Hui, Zhang Ze-Lin, Liu Sha-Sha, Qiao Li-Xian, Shan Shi-Hua, Chen Jing. Comprehensive evaluation of salt tolerance and identification of elite salt-tolerant germplasm in 331 peanut accessions at seedling stage [J]. Acta Agronomica Sinica, 2026, 52(1): 279-294. |
| [9] | Jin Xin-Xin, Song Ya-Hui, Su Qiao, Yang Yong-Qing, Wang Jin. Growth and dry matter production characteristics of high-yielding, high-oil, and high oleic acid peanut varieties [J]. Acta Agronomica Sinica, 2026, 52(1): 191-201. |
| [10] | Chi Xiao-Yuan, Liu Qing, Zhang Jun, Zhao Xu-Hong, Li Mei, Yu Tian-Yi, Pan Li-Juan, Xu Jing, Jiang Xiao, Yin Xiang-Zhen, Ma Jun-Qing, Chen Na. Field evaluation of salt-alkaline tolerance and trait correlation analysis in different peanut varieties (lines) [J]. Acta Agronomica Sinica, 2026, 52(1): 85-98. |
| [11] | Sun Chen-Shuo, Zhang Yue, Tian Ze-Kai, Yan Li-Ying, Kang Yan-Ping, Chen Yu-Ning, Wang Xin, Huai Dong-Xin, Wang Qian-Qian, Jiang Hui-Fang, Luo Huai-Yong, Huang Li, Liao Bo-Shou, Wang Zhi-Hui, Lei Yong. Genetic differentiation of peg strength and analysis of major influencing factors in peanut germplasm [J]. Acta Agronomica Sinica, 2026, 52(1): 118-130. |
| [12] | LI Yi-Qian, XU Shou-Zhen, LIU Ping, MA Qi, XIE Bin, CHEN Hong. Genome-wide association study of yield components using a 40K SNP array and identification of a stable locus for boll weight in upland cotton (Gossypium hirsutum L.) [J]. Acta Agronomica Sinica, 2025, 51(8): 2128-2138. |
| [13] | GAO Meng-Juan, ZHAO He-Ying, CHEN Jia-Hui, CHEN Xiao-Qian, NIU Meng-Kang, QIAN Qi-Run, CUI Lu-Fei, XING Jiang-Min, YIN Qing-Miao, GUO Wen, ZHANG Ning, SUN Cong-Wei, YANG Xia, PEI Dan, JIA Ao-Lin, CHEN Feng, YU Xiao-Dong, REN Yan. Mapping and identification of a novel sharp eyespot resistance locus Qse.hnau-5AS and its candidate genes in wheat [J]. Acta Agronomica Sinica, 2025, 51(8): 2240-2250. |
| [14] | WAN Shu-Bo, ZHANG Jia-Lei, GAO Hua-Xin, WANG Cai-Bin. Advances and prospects of high-yield peanut cultivation in China [J]. Acta Agronomica Sinica, 2025, 51(7): 1703-1711. |
| [15] | GUO Teng-Da, CUI Meng-Jie, CHEN Lin-Jie, HAN Suo-Yi, GUO Jing-Kun, WU Chen-Di, FU Liu-Yang, HUANG Bing-Yan, DONG Wen-Zhao, ZHANG Xin-You. Cloning and expression analysis of the phosphatidylinositol transfer protein AhSFH gene in peanuts responsive to Aspergillus flavus infection [J]. Acta Agronomica Sinica, 2025, 51(6): 1489-1500. |
|
||