Crops ›› 2023, Vol. 39 ›› Issue (4): 1-6.doi: 10.16035/j.issn.1001-7283.2023.04.001

    Next Articles

Overview of the Funding and Implementation for Miscellaneous Grains in “Economic Crops” Special-Purpose Project of the National Key R & D Program during the 13th Five-Year Plan

Bian Xiaomeng(), Li Huafeng(), Chen Yanbin()   

  1. Development Center of Science and Technology, Ministry of Agriculture and Rural Affairs, Beijing 100176, China
  • Received:2023-03-23 Revised:2023-04-24 Online:2023-08-15 Published:2023-08-15

Abstract:

Miscellaneous grains are mostly healthy food, and they also have important therapy function. They are indispensable in Chinese healthy dietary structure. They are the typical represent of Chinese dietary culture. At the same time, they are of great significance for promoting the supply-side structural reform of agriculture and ensuring food security. For a long time, the Ministry of Science and Technology, the Ministry of Agriculture and Rural Affairs, and other relevant ministries and commissions have approved a number of 973, 863, science and technology support programs and other projects, which have made great progress in the scientific and technological innovation of Chinese miscellaneous grains industry. However, there are still some problems, such as low and unstable dietary quality, high postpartum loss rate, backward product processing technology and so on. Since the launch and implementation of the “economic crops” special-purpose project of the national key R & D program of the 13th Five-Year Plan in 2018, a total of six sub-projects have been established in batches in the field of miscellaneous grains, with a total central financial fund of 181.02 million yuan, accounting for 12.2% of the total budget of the “economic crops” special-purpose project. With the implementation of the projects in the past five years, a series of achievements have been made in scientific and technological innovation in the field of miscellaneous grains. This paper introduced the background and research content of miscellaneous grains in “economic crops” special-purpose program, analyzed the main characteristics of the project setting and implementation, concluded the scientific and technological achievements related to miscellaneous grains, and discussed the expected results.

Key words: Main economic crops, Miscellaneous grains, Project management, National key R &, D program, Implementation achievement

Table 1

“13th Five-Year” national key research and development plan “economic crops” special related projects in the field of coarse grain"

项目类型
Project type
项目名称
Project name
项目编号
Project number
项目牵头单位
Project leading unit
项目参与单位
Project participating units
基础前沿
Basic frontier










杂粮作物抗逆和品质形成与调控










2018YFD1000700











中国农业科学院作物科学研究所










江苏徐淮地区徐州农业科学研究所、中国科学院植物研究所、中国科学院上海生命科学研究院、中国农业科学院作物科学研究所、辽宁省农业科学院、上海市农业科学院、中国农业科学院生物技术研究所、山西省农业科学院农作物品种资源研究所、黑龙江八一农垦大学、北京科技大学、河北省农林科学院谷子研究所、山西农业大学、中国科学院遗传与发育生物学研究所、西藏自治区农牧科学院、扬州大学、山东师范大学、中国农业大学、浙江大学、河北省农林科学院旱作农业研究所、山东农业大学、四川农业大学、山东省农业科学院作物研究所、北京农学院、湖北省农业科学院粮食作物研究所、北京农业生物技术研究中心、浙江省农业科学院、河南大学、河北师范大学、山西省农业科学院谷子研究所、中国科学院遗传与发育生物学研究所农业资源研究中心
杂粮作物核心资源遗传本底评价和深度解析

2019YFD1000700



中国农业科学院作物科学研究所


上海辰山植物园、广东省农业科学院作物研究所、江苏徐淮地区徐州农业科学研究所、中国农业科学院作物科学研究所、河北农业大学、西北农林科技大学、安阳市农业科学院、四川农业大学、河北省农林科学院粮油作物研究所、北京农业生物技术研究中心
重大共性关键技术
Major, common and
key technology

双子叶杂粮高效育种技术与品种创制

2019YFD1001300



江苏徐淮地区徐州农业科学研究所


中国农业科学院作物科学研究所、贵州师范大学、江苏省农业科学院、江苏徐淮地区徐州农业科学研究所、中国农业大学、湖北省农业科学院粮食作物研究所、山东省农业科学院作物研究所、青海省农林科学院、成都大学、云南省农业科学院粮食作物研究所
禾谷类杂粮提质增效品种筛选及配套栽培技术

2019YFD1001700



河北省农林科学院谷子研究所


辽宁省农业科学院、中国农业科学院作物科学研究所、青海省农林科学院、河北省农林科学院谷子研究所、西藏自治区农牧科学院、黑龙江省农业科学院作物资源研究所、山东省农业科学院作物研究所、赤峰市农牧科学研究院、吉林省农业科学院、张家口市农业科学院
应用示范研究
Application
demonstration
research
杂粮优质高效轻简栽培技术集成与示范

2020YFD1000800



山东省农业科学院



江苏省农业科学院、中国农业科学院蔬菜花卉研究所、山西省农业科学院、中国农业科学院作物科学研究所、山东省农业科学院、农业农村部南京农业机械化研究所、西北农林科技大学、吉林省农业科学院、宁夏农林科学院固原分院、西藏自治区农牧科学院农业研究所
杂粮产业链一体化示范

2020YFD1001400


中国农业科学院作物科学研究所

江苏徐淮地区徐州农业科学研究所、山西大学、安徽燕之坊食品有限公司、河北省农林科学院谷子研究所、辽宁省农业科学院、黑龙江八一农垦大学、成都大学、青海省农林科学院、中国农业科学院作物科学研究所、郑州轻工业大学
[1] 于爱芝, 周建军, 张蕙杰. 我国小宗农产品国际贸易现状与趋势分析. 中国农业资源与区划, 2020, 41(8):110-120.
[2] 曲佳佳, 张蕙杰, 麻吉亮. 中国杂粮生产及贸易形势展望. 农业展望, 2021, 17(5):78-85.
[3] 林汝法, 柴岩, 廖琴. 中国小杂粮. 北京: 中国农业科学技术出版社, 2002.
[4] 侯向娟, 李晋陵, 申潞玲. 山西省大同市小杂粮的发展现状、问题与对策. 中国食物与营养, 2016, 22(8):24-27.
[5] 程汝宏, 张婷, 王根平, 等. 新中国成立以来谷子育种的主要研究进展. 粮油食品科技, 2022, 30(4):68-75.
[6] 沙敏, 武拉平. 杂粮研究现状与趋势. 农业展望, 2015, 11(2):53-56.
[7] 庞文渌. 新常态下我国杂粮加工产业发展思路的探讨. 粮食加工, 2022, 47(2):6-8.
[8] 徐琳, 刘超, 田志芳, 等. 山西省杂粮产业现状及产业科技创新发展研究. 农产品加工, 2021(8):72-75.
[9] 柴岩, 冯佰利. 中国小杂粮产业发展现状及对策. 干旱地区农业研究, 2003, 21(3):145-151.
[10] Yang Z, Zhang H, Li X, et al. A mini foxtail millet with an Arabidopsis-like life cycle as a C4 model system. Nature Plants, 2020, 6(9):1167-1178.
doi: 10.1038/s41477-020-0747-7
[11] Cheng Z, Sun Y, Yang S, et al. Establishing in planta haploid inducer line by edited SiMTL in foxtail millet (Setaria italica). Plant Biotechnology Journal, 2021, 19(6):1089-1091.
doi: 10.1111/pbi.v19.6
[12] Zhao M, Tang S, Zhang H, et al. DROOPY LEAF1 controls leaf architecture by orchestrating early brassinosteroid signaling. Proceedings of the National Academy Sciences of the United States of America, 2020, 117(35):21766-21774.
[13] Li P, Liu Y, Tan W, et al. Brittle culm 1 encodes a COBRA-like protein involved in secondary cell wall cellulose biosynthesis in sorghum. Plant and Cell Physiology, 2019, 60(4):788-801.
doi: 10.1093/pcp/pcy246
[14] Cai S, Shen Q, Huang Y, et al. Multi-omics analysis reveals the mechanism underlying the edaphic adaptation in wild barley at Evolution Slope (Tabigha). Advanced Science, 2021, 8(20):e2101374.
[15] Kuang L, Shen Q, Chen L, et al. The genome and gene editing system of sea barleygrass provide a novel platform for cereal domestication and stress tolerance studies. Plant Communications, 2022, 3(5):100333.
doi: 10.1016/j.xplc.2022.100333
[16] Zhang K, He M, Fan Y, et al. Resequencing of global Tartary buckwheat accessions reveals multiple domestication events and key loci associated with agronomic traits. Genome Biology, 2021, 22:23.
doi: 10.1186/s13059-020-02217-7 pmid: 33430931
[17] He M, He Y, Zhang K, et al. Comparison of buckwheat genomes reveals the genetic basis of metabolomic divergence and ecotype differentiation. New Phytologist Foundation, 2022, 235(5):1927-1943.
[18] Ding M, He Y, Zhang K, et al. JA-induced FtBPM3 accumulation promotes FtERF-EAR3 degradation and rutin biosynthesis in Tartary buckwheat. The Plant Journal, 2022, 111(2):323-334.
doi: 10.1111/tpj.15800 pmid: 35524968
[19] Zhao H, He Y, Zhang K, et al. Rewiring of the seed metabolome during Tartary buckwheat domestication. Plant Biotechnology Journal, 2023, 21(1):150-164.
doi: 10.1111/pbi.v21.1
No related articles found!
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!