Scientia Agricultura Sinica ›› 2018, Vol. 51 ›› Issue (2): 246-256.doi: 10.3864/j.issn.0578-1752.2018.02.005

• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY·AGRICULTURE INFORMATION TECHNOLOGY • Previous Articles     Next Articles

Temporal and Spatial Changes in Yield and Quality with Grain Sorghum Variety Improvement in China

LI SongBo, TANG ChaoChen, CHEN Feng, XIE GuangHui   

  1. College of Agronomy and Biotechnology, China Agriculture University/National Energy R&D Center for Non-Food Biomass, Beijing 100193
  • Received:2017-05-22 Online:2018-01-16 Published:2018-01-16

Abstract: 【Objective】 In order to provide a theoretical basis for variety breeding and production, yield and quality relevant traits of accredited grain sorghum varieties were investigated from 1977 to 2016. 【Method】 The information of a total of 324 grain sorghum varieties authorized by state and province were obtained through yearbook and related articles search, and their yield and quality trials in regional trial were analyzed. 【ResultIn temporal evolution, sorghum plant height decreased annually by 1.36 cm whereas yield of regional trial increased annually by 69.1 kg·hm-2 in 40 years. The content of starch and tannin were obviously increased (P0.05), whereas protein content decreased markedly (P0.05). Lys and fat content showed no significant trend over time. In spatial distribution, average growth period of grain sorghum was found a large difference in different zones. Higher spike grain weight (105.4 g) in the spring and summer sowing zone, contrary to south zone (64.6 g). 1 000 grain weight exhibited significant difference among in different zones (P0.05), and visualized maximum value of 30.3 g in spring-seeding and late-maturing zone, and expressed minimum value of 22.6 g in south zone. Average starch content was 74.2%, while fat content was 3.5% in spring-seeding and early-maturing zone, as well as spring-seeding and late-maturing zone. Tannin content was assumed the highest in south zone. Protein and Lys content showed no significant difference in different zones. 【Conclusion】 More significant measures should be taken for 1000 grain weight improvement greatly based on dwarfing of stalk and breeding special varieties. It is essential for liquor-making to develop with appropriate high starch content, reasonable content of protein and Lys, and especially in improving tannin content. The major approach of forage sorghum development should be the decreasing of tannin content and increasing of protein and Lys content based on development of high starch content.

Key words: grain sorghum, accredited variety, yield, quality, evolution

[1]    丽敏, 刘智全, 陈冰嬬, 郝东云, 高士杰, 景海春. 我国能源甜高粱育种现状及应用前景. 中国农业大学学报, 2012, 17(6): 76-82.
ZHANG L M, LIU Z Q, CHEN B R, HAO D Y, GAO S J, JING H C. Current status and application prospects of sweet sorghum breeding in China. Journal of China Agricultural University, 2012, 17(6): 76-82. (in Chinese)
[2]    卢庆善, 邹剑秋, 朱凯, 张志鹏. 试论我国高粱产业发展——一论全国高粱生产优势区. 杂粮作物, 2009, 29(2): 78-80.
LU Q S, ZOU J Q, ZHU K, ZHANG Z P. Predominance of sorghum production regions——Industrial development of sorghum in China. Rain Fed Crops, 2009, 29(2): 78-80. (in Chinese)
[3]    中华人民共和国国家统计局. 中国统计年鉴. 北京: 中国统计出版社, 2015.
National Bureau of Statistics of the People’s Republic of China.  ChinaStatistical Yearbook. Beijing: China Statistics Press, 2015. (in Chinese)
[4]    白文斌, 张福跃, 焦晓燕, 董良利, 柳青山, 平俊爱. 中国高粱产业工程技术研究的定位思考. 中国农学通报, 2013, 29(11): 107-110.
BAI W B, ZHANG F Y, JIAO X Y, DONG L L, LIU Q S, PING J A. The fixed position thought of sorghum engineering technology research in China. Chinese Agricultural Science Bulletin, 2013, 29(11): 107-110. (in Chinese)
[5]    山仑, 徐炳成. 论高粱的抗旱性及在旱区农业中的地位. 中国农业科学, 2009, 42(7): 2342-2348.
SHAN L, XU B C. Discussion on drought resistance of sorghum and its status in agriculture in arid and semiarid regions. Scientia Agricultura Sinica, 2009, 42(7): 2342-2348. (in Chinese)
[6]    张福耀, 吴树彪, 柳青山. 影响高粱饲用价值主要内在因素及其对策. 动物营养学报, 2016, 28(1): 1-8.
ZHANG F Y, WU S B, LIU Q S. Main internal factors of influencing [yxh1] sorghum feeding value and its countermeasures. Chinese Journal of Animal Nutrition, 2016, 28(1): 1-8. (in Chinese)
[7]    谢光辉. 非粮生物质原料体系研发进展及方向. 中国农业大学学报, 2012, 17(6): 1-19.
XIE G H. Progress and direction of non-food biomass feedstock supply research and development in China. Journal of China Agricultural University, 2012, 17(6): 1-19. (in Chinese)
[8]    Wang D, Bean S, McLaren J, Seib P, Madl R, Tuinstra M, Shi Y, Lenz M, Wu X, Zhao R. Grain sorghum is a viable feedstock for ethanol production. Journal of Industrial Microbiology & Biotechnology, 2008, 35(5): 313-320.
[9]    邹剑秋. 我国高粱产业现状、存在问题及发展趋势. 第四届中国国际高粱产业研讨会, 2017: 4-17.
ZOU J Q. Industrial situation and existing problems and developing trend of sorghum in China. The 4th International Sorghum Industry Conference in China, 2017: 4-17. (in Chinese)
[10]   卢庆善, 孙毅. 杂交高粱遗传改良. 北京: 中国农业科学技术出版社, 2005.
LU Q S, SUN Y. Genetic Improvement of Hybrid Sorghum.    Beijing: China Agricultural Science and Technology Press, 2005. (in Chinese)
[11]   杨扬, 王凤格, 赵久然, 刘亚维. 中国玉米品种审定现状分析. 中国农业科学, 2014, 47(22): 4360-4370.
YANG Y, WANG F G, ZHAO J R, LIU Y W. Analysis of the current situation of accredited maize varieties in China. Scientia Agricultura Sinica, 2014, 47(22): 4360-4370. (in Chinese)
[12]   孙琦, 张世煌, 李新海, 孟昭东, 慈晓科, 张德贵, 郝转芳, 翁建峰, 白丽, 李明顺. 中国不同年代主推玉米品种品质性状的变化趋势. 中国农业科学, 2014, 47(14): 2723-2730.
SUN Q, ZHANG S H, LI X H, MENG Z D, CI X K, ZHANG D G, HAO Z F, WENG J F, BAI L, LI M S. The trend of quality traits of maize varieties released extensively in different eras in China. Scientia Agricultura Sinica, 2014, 47(14): 2723-2730. (in Chinese)
[13]   汤圣祥, 王秀东, 刘旭. 中国常规水稻品种的更替趋势和核心骨干亲本研究. 中国农业科学, 2012, 45(8): 1455-1464.
TANG S X, WANG X D, LIU X. Study on the renewed tendency and key backbone-parents of inbred rice varieties (O. sativa L.) in China. Scientia Agricultura Sinica, 2012, 45(8): 1455-1464. (in Chinese)
[14]   杜永, 王艳, 王学红, 孙乃立, 杨建昌. 黄淮地区不同粳稻品种株型、产量与品质的比较分析. 作物学报, 2007, 33(7): 1079-1085.
DU Y, WANG Y, WANG X H, SUN N L, YANG J C. Comparisons of plant type , grain yield , and quality of different japonica rice cultivars in Huanghe-Huaihe River area. Acta Agronomica Sinica, 2007, 33(7): 1079-1085. (in Chinese)
[15]   WU W, LI C J, MA B L, SHAH F, LIU Y, LIAO Y C. Genetic progress in wheat yield and associated traits in China since 1945 and future prospects. Euphytica, 2014, 196(2): 155-168.
[16]   宋健民, 戴双, 李豪圣, 程敦公, 刘爱峰, 曹新有, 刘建军, 赵振东. 山东省近年来审定小麦品种农艺和品质性状演变分析. 中国农业科学, 2013, 46(6): 1114-1126.
SONG J M, DAI S, LI H S, CHENG D G, LIU A F, CAO X Y, LIU J J, ZHAO Z D. Evolution of agronomic and quality traits of wheat cultivars released in Shandong province recently. Scientia Agricultura Sinica, 2013, 46(6): 1114-1126. (in Chinese)
[17]   王洪山, 朱凯, 张志鹏, 石永顺, 王艳秋, 段有厚. 辽宁省高粱品种遗传改良的成就及发展趋势. 杂粮作物, 2005, 25(2): 75-76.
WANG H S, ZHU K, ZHANG Z P, SHI Y S, WANG Y Q, DUAN Y H. Achievement and developing trend of genetic improvement of sorghum in Liaoning. Rain Fed Crops, 2005, 25(2): 75-76. (in Chinese)
[18]   李继洪, 高士杰, 李淑杰, 刘晓辉, 李伟, 王方. 吉林省高粱生产历程、问题及对策. 杂粮作物, 2004, 24(5): 292-293.
LI J H, GAO S J, LI S J, LIU X H, LI W, WANG F. Production development and problem and countermeasure of sorghum in Jilin. Rain Fed Crops, 2004, 24(5): 292-293. (in Chinese)
[19]   王黎明. 黑龙江省高粱生产及育种工作展望. 作物杂志, 2007(3): 34-36.
WANG L M. Production and breeding prospect of sorghum in Heilongjiang. Crops, 2007(3): 34-36. (in Chinese)
[20]   成慧娟, 张姼, 隋虹杰, 王立新, 葛占宇, 严福忠. 内蒙古高粱的育种研究历程、问题及发展对策. 种子, 2014, 33(7): 73-74.
CHENG H J, ZHANG S, SUI H J, WANG L X, GE Z Y, YAN F Z. The breeding research progress, problems and development countermeasures of Inner Mongolia sorghum. Seed, 2014, 33(7): 73-74. (in Chinese)
[21]   宋仁本, 卢峰, 卢庆善. 建国50年来中国高粱品种改良发展阶段及代表品种. 杂粮作物, 2002, 22(2): 75-77.
SONG R B, LU F, LU Q S. Developing stages of sorghum varieties and representative varieties in China from 1949. Rain Fed Crops, 2002, 22(2): 75-77. (in Chinese)
[22]   高士杰, 刘晓辉, 李继洪. 我国粒用高粱育种现状、问题与对策. 作物杂志, 2006(3): 11-13.
GAO S J, LIU X H, LI J H. Status and problem and countermeasures of grain sorghum in China. Crops, 2006(3): 11-13. (in Chinese)
[23]   王劲松, 杨楠, 董二伟, 王立革, 武爱莲, 丁玉川, 白文斌, 焦晓燕. 不同种植密度对高粱生长、产量及养分吸收的影响. 中国农学通报, 2013, 29(36): 253-258.
WANG J S, YANG N, DONG E W, WANG L G, WU A L, DING Y C, BAI W B, JIAO X Y. Effect of different plant density on growth, yield and nutrient uptake of sorghum. Chinese Agricultural Science Bulletin, 2013, 29(36): 253-258. (in Chinese)
[24]   刘贵锋, 白文斌, 赵建武, 王金转, 郑香萍, 申慧勇. 旱地不同种植密度对中晚熟矮秆高粱品种农艺性状及产量的影响. 农学学报, 2012, 2(5): 32-35.
LIU G F, BAI W B, ZHAO J W, WANG J Z, ZHENG X P, SHEN H Y. Effects of planting density on agronomic characters and yield of middle-late maturing short-stalked sorghum in dry areas. Journal of Agriculture, 2012, 2(5): 32-35. (in Chinese)
[25]   黄瑞冬, 高悦, 周宇飞, 吴奇, 张姣, 尚培培, 张壮, 高铭悦, 韩熠, 许文娟. 矮秆高粱辽杂35光合特性与产量构成因素. 中国农业科学, 2017, 50(5): 822-829.
Huang R D, Gao Y, Zhou Y F, Wu Q, Zhang J, Shang P P, Zhang Z, Gao M Y, Han Y, Xu W J. Photosynthetic characteristics and yield components of dwarf sorghum hybrid Liaoza 35. Scientia Agricultura Sinica, 2017, 50(5): 822-829. (in Chinese)
[26]   柯福来, 朱凯, 石永顺, 李志华, 邹剑秋. 粒用高粱超高产群体的产量构成分析. 辽宁农业科学, 2014(1): 28-30.
Ke F L, Zhu K, Shi Y S, Li Z H, Zou J Q. Analysis of yield component of super high yield population of grain sorghum. Liaoning Agricultural Sciences, 2014(1): 28-30. (in Chinese)
[27]   高士杰, 刘晓辉, 李继洪, 王鼐. 粒用高粱超高产育种的思考. 中国农业科技导报, 2006, 8(1): 23-25.
GAO S J, LIU X H, LI J H, WANG N. Think of super high yield breeding of grain sorghum. Review of China Agricultural Science and Technology, 2006, 8(1): 23-25. (in Chinese)
[28]   程建峰, 沈允钢. 作物高光效之管见. 作物学报, 2010, 36(8): 1235-1247.
CHENG J F, SHEN Y G. My humble opinions on high photosynthetic efficiency of crop. Acta Agronomica Sinica, 2010, 36(8): 1235-1247. (in Chinese)
[29]   沈海军. 黑龙江省高粱生产概况. 黑龙江农业科学, 2011(12): 152-154.
SHEN H J. Sorghum production situation in Heilongjiang province. Heilongjiang Agricultural Sciences, 2011(12): 152-154. (in Chinese)
[30]   曹新莉. 原料与酿酒. 酿酒科技, 2002(4): 53-54.
CAO X L. Correlations of raw materials and liquor-making. Liquor-Making Science & Technology, 2002(4): 53-54. (in Chinese)
[31]   LOBELL D B, GOURDJI S M. The influence of climate change on global crop productivity. Plant Physiology, 2012, 160(4): 1686-1697.
[32]   杨伟光. 高粱生育期的遗传分析. 中国农业科学, 1989, 22(5): 19-24.
YANG W G. Genetic analysis of growth period in Chinese sorghum. Scientia Agricultura Sinica, 1989, 22(5): 19-24. (in Chinese)
[33]   辽宁省粮食科学研究所, 辽宁省粮油检验检测所. GB/T 26633- 2011. 工业用高粱. 北京: 中国标准出版社, 2011.
Liaoning Grain Science Research Institute, Liaoning Grain and Oil Inspection and Testing Institute. GB/T 26633-2011. Sorghum for Industrial Use. Beijing: China Standard Press, 2011. (in Chinese)
[34]   丁国祥, 曾庆曦, 陈国民, 刘兴全. 四川糯高粱品种的酿酒品质及其育种目标. 绵阳农专学报, 1994, 11(2): 14-16.
DING G X, ZENG Q X, CHEN G M, LIU X Q. Brewing quality and breeding objective of glutinous sorghum in Sichuan. Journal of Mianyang Agricultural College, 1994, 11(2): 14-16. (in Chinese)
[35]   卢庆善, 邹剑秋, 石永顺. 试论我国高粱产业的发展——四论高粱饲料业的发展. 杂粮作物, 2009, 29(5): 313-317.
LU Q S, ZOU J Q, SHI Y S. Development of forge sorghum—— Industrial development of sorghum in China. Rain Fed Crops, 2009, 29(5): 313-317. (in Chinese)
[36]   NYACHOTI C M, ATKINSON J L, LEESON S. Sorghum tannins: A review. World's Poultry Science Journal, 1997, 53(1): 5-21.
[37]   张跃廷, 刘琼. 浅淡杂醇油. 酿酒, 2002, 29(5): 18-20.
Zhang Y T, Liu Q. A study about fusel oil. Liquor Making, 2002, 29(5): 18-20. (in Chinese)
[38]   唐玉明. 高粱籽粒的酿酒品质研究. 酿酒, 2000(4): 45-47.
Tang Y M. The study of brewing quality of grain sorghum. Niangjiu, 2000(4): 45-47. (in Chinese)
[39]   张智先. 国内高粱进口消费状况与后期展望. 中国粮食经济, 2017(4): 34-36.
Zhang Z X. Consumption and its prospects of domestic sorghum import. China Grain Economy, 2017(4): 34-36. (in Chinese)
[40]   申瑞玲, 陈明, 任贵兴. 高粱淀粉的研究进展. 中国粮油学报, 2012, 27(7): 123-128.
SHEN R L, CHEN M, REN G X. Research progress of the sorghum starch. Journal of the Chinese Cereals and Oils Association, 2012, 27(7): 123-128. (in Chinese)
[1] ZHANG XiaoLi, TAO Wei, GAO GuoQing, CHEN Lei, GUO Hui, ZHANG Hua, TANG MaoYan, LIANG TianFeng. Effects of Direct Seeding Cultivation Method on Growth Stage, Lodging Resistance and Yield Benefit of Double-Cropping Early Rice [J]. Scientia Agricultura Sinica, 2023, 56(2): 249-263.
[2] YAN YanGe, ZHANG ShuiQin, LI YanTing, ZHAO BingQiang, YUAN Liang. Effects of Dextran Modified Urea on Winter Wheat Yield and Fate of Nitrogen Fertilizer [J]. Scientia Agricultura Sinica, 2023, 56(2): 287-299.
[3] XU JiuKai, YUAN Liang, WEN YanChen, ZHANG ShuiQin, LI YanTing, LI HaiYan, ZHAO BingQiang. Nitrogen Fertilizer Replacement Value of Livestock Manure in the Winter Wheat Growing Season [J]. Scientia Agricultura Sinica, 2023, 56(2): 300-313.
[4] WANG CaiXiang,YUAN WenMin,LIU JuanJuan,XIE XiaoYu,MA Qi,JU JiSheng,CHEN Da,WANG Ning,FENG KeYun,SU JunJi. Comprehensive Evaluation and Breeding Evolution of Early Maturing Upland Cotton Varieties in the Northwest Inland of China [J]. Scientia Agricultura Sinica, 2023, 56(1): 1-16.
[5] ZHAO ZhengXin,WANG XiaoYun,TIAN YaJie,WANG Rui,PENG Qing,CAI HuanJie. Effects of Straw Returning and Nitrogen Fertilizer Types on Summer Maize Yield and Soil Ammonia Volatilization Under Future Climate Change [J]. Scientia Agricultura Sinica, 2023, 56(1): 104-117.
[6] ZHANG Wei,YAN LingLing,FU ZhiQiang,XU Ying,GUO HuiJuan,ZHOU MengYao,LONG Pan. Effects of Sowing Date on Yield of Double Cropping Rice and Utilization Efficiency of Light and Heat Energy in Hunan Province [J]. Scientia Agricultura Sinica, 2023, 56(1): 31-45.
[7] FENG XiangQian,YIN Min,WANG MengJia,MA HengYu,CHU Guang,LIU YuanHui,XU ChunMei,ZHANG XiuFu,ZHANG YunBo,WANG DanYing,CHEN Song. Effects of Meteorological Factors on Quality of Late Japonica Rice During Late Season Grain Filling Stage Under ‘Early Indica and Late Japonica’ Cultivation Pattern in Southern China [J]. Scientia Agricultura Sinica, 2023, 56(1): 46-63.
[8] XIONG WeiYi,XU KaiWei,LIU MingPeng,XIAO Hua,PEI LiZhen,PENG DanDan,CHEN YuanXue. Effects of Different Nitrogen Application Levels on Photosynthetic Characteristics, Nitrogen Use Efficiency and Yield of Spring Maize in Sichuan Province [J]. Scientia Agricultura Sinica, 2022, 55(9): 1735-1748.
[9] LI YiLing,PENG XiHong,CHEN Ping,DU Qing,REN JunBo,YANG XueLi,LEI Lu,YONG TaiWen,YANG WenYu. Effects of Reducing Nitrogen Application on Leaf Stay-Green, Photosynthetic Characteristics and System Yield in Maize-Soybean Relay Strip Intercropping [J]. Scientia Agricultura Sinica, 2022, 55(9): 1749-1762.
[10] GUO ShiBo,ZHANG FangLiang,ZHANG ZhenTao,ZHOU LiTao,ZHAO Jin,YANG XiaoGuang. The Possible Effects of Global Warming on Cropping Systems in China XIV. Distribution of High-Stable-Yield Zones and Agro-Meteorological Disasters of Soybean in Northeast China [J]. Scientia Agricultura Sinica, 2022, 55(9): 1763-1780.
[11] WANG HaoLin,MA Yue,LI YongHua,LI Chao,ZHAO MingQin,YUAN AiJing,QIU WeiHong,HE Gang,SHI Mei,WANG ZhaoHui. Optimal Management of Phosphorus Fertilization Based on the Yield and Grain Manganese Concentration of Wheat [J]. Scientia Agricultura Sinica, 2022, 55(9): 1800-1810.
[12] GUI RunFei,WANG ZaiMan,PAN ShengGang,ZHANG MingHua,TANG XiangRu,MO ZhaoWen. Effects of Nitrogen-Reducing Side Deep Application of Liquid Fertilizer at Tillering Stage on Yield and Nitrogen Utilization of Fragrant Rice [J]. Scientia Agricultura Sinica, 2022, 55(8): 1529-1545.
[13] LIAO Ping,MENG Yi,WENG WenAn,HUANG Shan,ZENG YongJun,ZHANG HongCheng. Effects of Hybrid Rice on Grain Yield and Nitrogen Use Efficiency: A Meta-Analysis [J]. Scientia Agricultura Sinica, 2022, 55(8): 1546-1556.
[14] LI Qian,QIN YuBo,YIN CaiXia,KONG LiLi,WANG Meng,HOU YunPeng,SUN Bo,ZHAO YinKai,XU Chen,LIU ZhiQuan. Effect of Drip Fertigation Mode on Maize Yield, Nutrient Uptake and Economic Benefit [J]. Scientia Agricultura Sinica, 2022, 55(8): 1604-1616.
[15] ZHU DaWei,ZHANG LinPing,CHEN MingXue,FANG ChangYun,YU YongHong,ZHENG XiaoLong,SHAO YaFang. Characteristics of High-Quality Rice Varieties and Taste Sensory Evaluation Values in China [J]. Scientia Agricultura Sinica, 2022, 55(7): 1271-1283.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!