致敬专栏

小麦养分高效利用育种新方法的实践与思考

展开
  • 中国科学院遗传与发育生物学研究所,北京 100101
童依平,博士,研究员,研究方向:小麦营养遗传学。E-mail: yptong@genetics.ac.cn

收稿日期: 2025-01-03

  修回日期: 2025-01-24

  网络出版日期: 2025-02-17

基金资助

国家自然科学基金项目(32072660)

Thinking and practices of new methods for breeding wheat with improved nutrient use efficiency

Expand
  • Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China

Received date: 2025-01-03

  Revised date: 2025-01-24

  Online published: 2025-02-17

Supported by

National Natural Science Foundation of China(32072660)

摘要

20世纪90年代初,李振声从我国基本国情出发提出走资源节约型高产农业道路的可持续农业发展观,开展了作物高效利用营养元素的育种探索,开创了以提高磷、氮吸收和利用效率为主,以“少投入、多产出、保护环境、持续发展”为目标的小麦育种新方向,引领并极大地推动了我国农业“第二次绿色革命”。2024年9月,李振声院士被授予了“共和国勋章”。本文总结了李振声倡导育种新方向的战略考量,以及如何布局开展小麦磷高效利用的生理和遗传基础研究,以此向李振声院士在作物营养高效利用研究领域作出的出色工作致敬,期望能进一步展现李振声的治学方法和精神为后来者提供借鉴。

本文引用格式

童依平, 滕婉, 凌宏清, 张爱民 . 小麦养分高效利用育种新方法的实践与思考[J]. 遗传, 2025 , 47(3) : 300 -307 . DOI: 10.16288/j.yczz.25-006

Abstract

In the early 1990s, based on China’s basic national conditions, Li Zhensheng put forward the concept of sustainable agricultural development that took the path of resource-conserving and high-yield agriculture. He carried out breeding explorations on the efficient use of mineral nutrients by crops and pioneered a new direction for wheat breeding with the goals of “less input, more output, environmental protection, and sustainable development”, mainly focusing on improving the absorption and utilization efficiency of phosphorus and nitrogen. He has led and greatly promoted “the Second Green Revolution” in China’s agriculture. In September 2024, Academician Li Zhensheng was awarded the “Medal of the Republic”. This review summarizes Academician Li Zhensheng’s strategic considerations in advocating the new direction of breeding and how he arranged to conduct research on the physiological and genetic basis of phosphorus efficient use in wheat. By doing so, we pay tribute to the outstanding work done by Academician Li Zhensheng in the research field of nutrient-efficient use by crops, and it is expected to further demonstrate Li Zhensheng’s academic approaches and spirit so as to provide references for those who come after him.

参考文献

[1] 李振声. 论我国农业持续稳定发展的若干原则. 中国科学院院刊, 1990, 5(4): 324-326.
[2] Bieleski RL. Phosphate pools, phosphate transport and phosphate availability. Ann Rev Plant Physiol, 1973, 24: 225-252.
[3] Shen RF, Jiang BF. Distribution and availability of various forms of inorganic-P in calcareous soils. Acta Pedologica Sinica, 1992, 29(1): 80-86.
  沈仁芳, 蒋柏藩. 石灰性土壤无机磷的形态分布及其有效性. 土壤学报, 1992, 29(1): 80-86.
[4] Li HG, Huang G, Meng QY, Ma LN, Yuan LX, Wang FY, Zhang WL, Cui Z, Shen JY, Chen XG, Jiang RF, Zhang F. Integrated soil and plant phosphorus management for crop and environment in China. A review. Plant Soil, 2011, 349(1-2): 157-167.
[5] Teng W, Deng Y, Chen XP, Xu XF, Chen RY, Lv Y, Zhao YY, Zhao XQ, He X, Li B, Tong YP, Zhang FS, Li ZS. Characterization of root response to phosphorus supply from morphology to gene analysis in field-grown wheat. J Exp Bot, 2013, 64(5): 1403-1411.
[6] 李继云, 刘秀娣, 周伟, 孙建华, 童依平, 刘全友, 李振声, 王培田, 姚树江. 有效利用土壤营养元素的作物育种新技术研究. 中国科学(B辑), 1995, 25(1): 41-48.
[7] Ren YZ, He X, Liu DC, Li JJ, Zhao XQ, Li B, Tong YP, Zhang AM, Li ZS. Major quantitative trait loci for seminal root morphology of wheat seedlings. Mol Breeding, 2012, 30(1): 139-148.
[8] Davies TGE, Ying J, Xu Q, LI ZS, Li J, Gordon-Weeks R. Expression analysis of putative high-affinity phosphate transporters in Chinese winter wheats. Plant Cell Environ, 2002, 25(10): 1325-1339.
[9] Li ZS. New revolution of agricultural science and technology and research on crop breeding for super high yield. Bull Natl Nat Sci Found China, 2000, 14(1): 40-42.
  李振声. 新农业科技革命和作物超高产育种研究. 中国科学基金, 2000, 14(1): 40-42.
[10] Xing HY, Wang EM, Li B, Li JY, Li ZS. Studies on wheat germplasm screening method for efficient utilization of soil phosphorus. Acta Agron Sin, 2000, 26(6): 839-844
  邢宏燕, 王二明, 李滨, 李继云, 李振声. 有效利用土壤磷的小麦种质筛选方法研究. 作物学报, 2000, 26(6): 839-844.
[11] Xing HY, Li B, Li JY, Li ZS. Study on analysis of types for phosphorus nutrition characteristics and their stabilities over testing years. Acta Bot Boreal-Occid Sin, 1999, 19(2): 53-62.
  邢宏燕, 李滨, 李继云, 李振声. 小麦品种磷营养特性的类型分析及其年度间稳定性的研究. 西北植物学报, 1999, 19(2): 53-62.
[12] Liu JZ, Li YJ, Li B, Yao SJ, Li JY, Li ZS. Identification of efficiently utilizing potential soil phosphorus characterristics of common wheat cultivars grown at different times. Acta Agron Sin, 1999, 25(5): 560-564.
  刘建中, 李玉京, 李滨, 姚树江, 李继云, 李振声. 不同生产时期小麦品种有效利用土壤潜在磷特性的鉴定. 作物学报, 1999, 25(5): 560-564.
[13] Kong LQ. Identification and genetic analysis on efficient utilization of soil phosphorus characters in wheat germplasms of various ploidies and wheat-Thinopyrum intermedium addition lines [Dissertation]. Institute of Genetics, Chinese Academy of Sciences, 1995.
  孔令旗. 不同倍性小麦种质与小麦-中间偃麦草异附加系有效利用土壤磷营养特性的遗传分析[学位论文]. 中国科学院遗传研究所, 1995.
[14] Li YJ, Liu JZ, LI B, Li JY, Yao SJ, Li ZS. Chromosomal control of the tolerance to phosphorus deficiency in genome of Triticum aestivum Chinese Spring. Acta Genet Sin, 1999, 26(5): 529-538.
  李玉京, 刘建中, 李滨, 李继云, 姚树江, 李振声. 普通小麦基因组中耐低磷胁迫特性的染色体控制. 遗传学报, 1999, 26(5): 529-538.
[15] Li YJ, Liu JZ, LI B, Li JY, Yao SJ, Li ZS. Chromosomal location of the genes conferring the tolerance to phosphorus deficiency stress in Lophopyrum elongatum genome. Acta Genet Sin, 1999, 26(6): 703-710.
  李玉京, 刘建中, 李滨, 李继云, 姚树江, 李振声. 长穗偃麦草基因组中与耐低磷营养胁迫有关的基因的染色体定位. 遗传学报, 1999, 26(6): 703-710.
[16] Li YJ. Identification and genetic analysis of efficiently utilizing soil phosphorus characters in disomic addition lines and disomic substitution lines of Triticum (Chinese Spring)-Agropyron elongatum (2n = 14, EE), disomic addition lines of Triticum (Chinese Spring)-Agropyron jnceum (2n=14, JJ) and nullitetrasomics of Triticum Chinese Spring[Dissertation]. Institute of Genetics, Chinese Academy of Sciences,, 1996.
  李玉京. 长穗偃麦草-中国春异附加系、异代换系及灯芯偃麦草-中国春异附加系与中国春缺四体磷利用效率特性鉴定及遗传分析[学位论文]. 中国科学院遗传研究所, 1996.
[17] Liu JZ. Identification and genetic analysis of efficiently utilizing soil phosphorus characteristics in common wheat cultivars grown at various period and wheat-rye disomic addition lines [Dissertation]. Institute of Genetics, Chinese Academy of Sciences, 1995.
  刘建中. 不同生产发展阶段普通小麦品种与小麦-黑麦附加系有效利用土壤磷特性鉴定与遗传分析[学位论文]. 中国科学院遗传研究所, 1995.
[18] Wang J, Sun JH, Miao J, Guo JK, Shi ZL, He MQ, Chen Y, Zhao XQ, Li B, Han FP, Tong YP, Li ZS. A phosphate starvation response regulator Ta-PHR1 is involved in phosphate signalling and increases grain yield in wheat. Ann Bot, 2013, 111(6): 1139-1153.
[19] Teng W, Zhao YY, Zhao XQ, He X, Ma WY, Deng Y, Chen XP, Tong YP. Genome-wide identification, characterization, and expression analysis of PHT1 phosphate transporters in wheat. Front Plant Sci, 2017, 8: 543.
[20] Ouyang X, Hong X, Zhao XQ, Zhang W, He X, Ma WY, Teng W, Tong YP. Knock out of the PHOSPHATE 2gene TaPHO2-A1 improves phosphorus uptake and grain yield under low phosphorus conditions in common wheat. Sci Rep, 2016, 6: 29850.
[21] Xu ZY, Zhang AM. Using the “green genes” to facilitate the second “green revolution”. J Agr Sci Tech, 2000, 2(5): 54-57.
  许占友, 张爱民. 挖掘“绿色基因”促进第二次“绿色革命”. 中国农业科技导报, 2000, 2(5): 54-57.
[22] Liu Q, Wu K, Song WZ, Zhong N, Wu YZ, Fu XD. Improving crop nitrogen use efficiency toward sustainable Green Revolution. Annu Rev Plant Biol, 2022, 73(1): 523-551.
[23] Gu M, Hu X, Wang TT, Xu GH. Modulation of plant root traits by nitrogen and phosphate: transporters, long- distance signaling proteins and peptides, and potential artificial traps. Breed Sci, 2021, 71(1): 62-75.
[24] Song L, Liu J, Cao BL, Liu B, Zhang XP, Chen ZY, Dong CQ, Liu XQ, Zhang ZH, Wang WX, Chai LL, Liu J, Zhu J, Cui SB, He F, Peng HR, Hu ZR, Su ZQ, Guo WL, Xin MM, Yao YY, Yan Y, Song YM, Bai GH, Sun QX, Ni ZF. Reducing brassinosteroid signalling enhances grain yield in semi-dwarf wheat. Nature, 2023, 617(7959): 118-124.
文章导航

/