Acta Agronomica Sinica ›› 2024, Vol. 50 ›› Issue (2): 383-393.doi: 10.3724/SP.J.1006.2024.34063
• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS • Previous Articles Next Articles
ZHU Xiao-Ya(), ZHANG Qiang-Qiang, ZHAO Peng, LIU Ming, WANG Jing, JIN Rong, YU Yong-Chao, TANG Zhong-Hou*()
[1] | 联合国粮食及农业组织(FAO)数据库. (2020-02-06). [2022-02-15] https://www.fao.org/faostat/zh/#faq. |
Food and Agricultural Organization of the United Nations. (2020-2-6). [2022-02-15] https://www.fao.org/faostat/zh/#faq (in Chinese). | |
[2] |
Jin K M, White P J, Whalley W R, Shen J, Shi L. Shaping an optimal soil by root-soil interaction. Trends Plant Sci, 2017, 22: 823-829.
doi: S1360-1385(17)30158-9 pmid: 28803694 |
[3] |
Gao P, Liu Y, Wang Y, Liu X, Wang Z, Ma L Q. Spatial and temporal changes of P and Ca distribution and fractionation in soil and sediment in a karst farmland-wetland system. Chemosphere, 2019, 220: 644-650.
doi: S0045-6535(18)32524-4 pmid: 30599322 |
[4] | 唐忠厚, 张允刚, 魏猛, 陈晓光, 史新敏, 张爱君, 李洪民, 丁艳锋. 耐低钾和钾高效型甘薯品种(系)的筛选及评价指标. 作物学报, 2014, 40: 521-528. |
Tang Z H, Zhang Y G, Wei M, Chen X G, Shi X M, Zhang A J, Ding Y F. Screening and evaluation indicators for low potassium-tolerant and potassium efficient sweetpotato (Ipomoea batatas L.) varieties (lines). Acta Agron Sin, 2014, 40: 521-528 (in Chinese with English abstract). | |
[5] |
Villordon A, Gregorie J C. Variation in phosphorus availability, root architecture attributes, and onset of storage root formation among sweet potato cultivars. HortScience, 2020, 55: 1903-1911.
doi: 10.21273/HORTSCI15358-20 |
[6] |
Sattari S Z, Bouwman A F, Giller K E, van Ittersum M K. Residual soil phosphorus as the missing piece in the global phosphorus crisis puzzle. Proc Natl Acad Sci USA, 2012, 109: 6348-6353.
doi: 10.1073/pnas.1113675109 pmid: 22431593 |
[7] | 裴福云, 董超文, 陈文哲, 杨勇, 房钦飞, 段继贤, 黄培钊, 王德汉. 纳米硅肥的制备及对苋菜生长的影响. 园艺与种苗, 2015, (6): 12-17. |
Pei F Y, Dong C W, Chen W Z, Yang Y, Fang Q F, Duan J X, Huang P Z, Wang D H. Preparation and the effect of nano-silicon fertilizer on the growth of Amaranth. Hortic Seed, 2015, (6): 12-17 (in Chinese with English abstract). | |
[8] | Wang Y J, Chen R Y, Liu H C, Song S W, Su W, Sun G W. Effects of nano-devices on growth and major elements absorption of hydroponic lettuce. Adv Energy Environ Mater Sci, 2016, 151-154. |
[9] | 尹勇, 刘灵. 三种纳米材料对水稻幼苗生长及根际土壤肥力的影响. 农业资源与环境学报, 2020, 37: 736-743. |
Yin Y, Liu L. Effects of three nanomaterials on the growth and rhizospheric soil fertility of rice seedlings. J Agric Res Environ, 2020, 37: 736-743 (in Chinese with English abstract). | |
[10] |
Su L, Ma X, Zhao K, Shen C, Lou Q, Yin D, Shan C. Carbon nanodots for enhancing the stress resistance of peanut plants. ACS Omega, 2018, 3: 17770-17777.
doi: 10.1021/acsomega.8b02604 |
[11] |
Dimkpa C O, Singh U, Bindraban P S, Elmer W H, Gardea-Torresdey J L, White J C. Zinc oxide nanoparticles alleviate drought-induced alterations in sorghum performance, nutrient acquisition, and grain fortification. Sci Total Environ, 2019, 688: 926-934.
doi: 10.1016/j.scitotenv.2019.06.392 |
[12] |
Li Y, Li W, Yang X, Kang Y, Zhang H, Liu Y, Lei B. Salvia miltiorrhiza-derived carbon dots as scavengers of reactive oxygen species for reducing oxidative damage of plants. ACS Appl Nano Mater, 2021, 4: 113-120.
doi: 10.1021/acsanm.0c02419 |
[13] |
Li Y J, Tang Z H, Pan Z Y, Wang R G, Wang X, Zhao P, Liu M, Zhu Y X, Li C, Wang W C, Liang Q, Gao J, Yu Y C, Li Z Y, Lei B F, Sun J. Calcium-mobilizing properties of Salvia miltiorrhiza-derived carbon dots confer enhanced environmental adaptability in plants. ACS Nano, 2022, 16: 4357-4370.
doi: 10.1021/acsnano.1c10556 |
[14] |
Yang H Y, Wang C X, Chen F, Yue L, Cao X S, Li J, Zhao X L, Wu F C, Wang Z Y, Xing B S. Foliar carbon dot amendment modulates carbohydrate metabolism, rhizospheric properties and drought tolerance in maize seedling. Sci Total Environ, 2022, 809: 151105.
doi: 10.1016/j.scitotenv.2021.151105 |
[15] | 朱晓亚, 张强强, 于永超, 赵鹏, 刘明, 王静, 靳容, 唐忠厚. 甘薯苗期耐低磷基因型筛选及磷效率综合评价. 江苏师范大学学报(自然科学版), 2023, 41(1): 27-31. |
Zhu X Y, Zhang Q Q, Yu Y C, Zhao P, Liu M, Wang J, Jin R, Tang Z H. Screening of low phosphorus tolerance genotypes and comprehensive evaluation of phosphorus efficiency in sweetpotato at seedling stage. J Jiangsu Norm Univ (Nat Sci Edn), 2023, 41(1): 27-31 (in Chinese with English abstract). | |
[16] | 鲍士旦. 土壤农化分析(第三版). 北京: 中国农业出版社, 2000. pp 268-270. |
Bao S D. Soil Agrochemical Analysis, 3nd edn. Beijing: China Agriculture Press, 2000. pp 268-270 (in Chinese). | |
[17] |
Anderson A J, McLean J E, Jacobson A R, Britt D W. CuO and ZnO nanoparticles modify interkingdom cell signaling processes relevant to crop production. J Agric Food Chem, 2018, 66: 6513-6524.
doi: 10.1021/acs.jafc.7b01302 |
[18] | 丁广大, 陈水森, 石磊, 蔡红梅, 叶祥盛. 植物耐低磷胁迫的遗传调控机理研究进展. 植物营养与肥料学报, 2013, 19: 733-744. |
Ding G D, Chen S S, Shi L, Cai H M, Ye X S. Advances in genetic regulation mechanism of plant tolerance to phosphorus deficiency. J Plant Nutr Fert, 2013, 19: 733-744 (in Chinese with English abstract). | |
[19] | 邓美菊, 王飞, 毛传澡. 植物磷酸盐转运体及其分子调控机制. 植物生理学报, 2017, 53: 377-387. |
Deng M J, Wang F, Mao C Z. Plant phosphate transporters and its molecular regulation mechanism. Plant Physiol J, 2017, 53: 377-387 (in Chinese with English abstract).
doi: 10.1104/pp.53.3.377 |
|
[20] |
Devaiah B N, Nagarajan V K, Raghothama K G. Phosphate homeostasis and root development in Arabidopsis are synchronized by the zinc finger transcription factor ZAT6. Plant Physiol, 2007, 145: 147-159.
doi: 10.1104/pp.107.101691 |
[21] |
Mallory A C, Bartel D R, Bartel B. Micro RNA-directed regulation of Arabidopsis AUXIN RESPONSE FACTOR17 is essential for proper development and modulates expression of early auxin response genes. Plant Cell, 2005, 17: 1360-1375.
doi: 10.1105/tpc.105.031716 |
[22] | 周忠静. C2H2型锌指蛋白基因ZFP5, ZFP6和GIS3通过植物激素调控表皮细胞形成和发育分子机制研究. 浙江大学博士学位论文, 浙江杭州, 2011. |
Zhou Z J. Molecular Mechanism of C2H2 Zinc Finger Protein Genes ZFP5, ZFP6, and GIS3 Regulating Epidermal Cell Formation and Development Through Plant Hormones. PhD Dissertation of Zhejiang University, Hangzhou, Zhejiang, China, 2011 (in Chinese with English abstract). | |
[23] | 王永荣, 刘飞, 许元富. 六磷酸肌醇激酶(IP6Ks)的生物学功能及其在疾病中的作用. 中国细胞生物学学报, 2018, 40(1): 132-138. |
Wang Y R, Liu F, Xu Y F. The biological function of inositol hexaphosphate kinases (IP6Ks) and its role in the development of diseases. Chin J Cell Biol, 2018, 40(1): 132-138 (in Chinese with English abstract). | |
[24] | 于丽娟, 曾科文, 刘丽, 番兴明. 植物低磷胁迫信号转导与适应性反应研究进展. 中国农业科技导报, 2012, 14(3): 22-30. |
Yu L J, Zeng K W, Liu L, Fan X M. Research progress on signaling pathway and adaptive response under phosphorus deficiency stress in plants. J Agric Sci Technol, 2012, 14(3): 22-30 (in Chinese with English abstract). | |
[25] | 熊欢. 生长素在拟南芥低磷胁迫应答主根伸长调控中的作用研究. 华中师范大学硕士学位论文, 湖北武汉, 2016. |
Xiong H. Role of Auxin in Regulation of Taproot Elongation in Response to Low Phosphorus Stress in Arabidopsis thaliana. MS Thesis of Central China Normal University, Wuhan, Hubei, China, 2016 (in Chinese with English abstract). | |
[26] | 任永哲, 徐艳花, 李振声, 童依平. 拟南芥根系发育的分子机制研究进展. 西北植物学报, 2011, 31: 1497-1504. |
Ren Y Z, Xu Y H, Li Z S, Tong Y P. Advances in the molecular mechanisms of root development in Arabidopsis thaliana. Acta Bot Boreali-Occident Sin, 2011, 31: 1497-1504 (in Chinese with English abstract). | |
[27] |
Li M, Welti R, Wang X. Quantitative profiling of Arabidopsis polar glycerolipids in response to phosphorus starvation. Roles of phospholipases DZl and DZ2 in phosphatidylcholine hydrolysis and digalactosyldiacylglycerol accumulation in phosphorus-starved plants. Plant Physiol, 2006, 142: 750-761.
doi: 10.1104/pp.106.085647 |
[28] | 王保明, 陈永忠, 王湘南, 陈隆升, 彭邵锋, 王瑞, 马力, 杨小胡, 罗键. 植物低磷胁迫响应及其调控机制. 福建农林大学学报(自然科学版), 2015, 44: 567-575. |
Wang B M, Chen Y Z, Wang X N, Chen L S, Peng S F, Wang R, Ma L, Yang X H, Luo J. The response to low phosphorus stress and its regulation mechanism in plants. J Fujian Agric For Univ (Nat Sci Edn), 2015, 44: 567-575 (in Chinese with English abstract). |
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