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Home > Archive>Volume 0, Issue 9, >. DOI:10.13430/j.cnki.jpgr.20250305001 Online First
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Differences of Main Agronomic Traits and Heat Tolerance for Indica Rice Varieties Developed in Different Years
DOI:
10.13430/j.cnki.jpgr.20250305001
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  • liujiajun 1

    liujiajun

    Heilongjiang Bayi Agricultural University
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  • cuidi 2

    cuidi

    Institue of Crop Sciences, Chinese Academy of Agricultural Sciences
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  • yangyaolong 3

    yangyaolong


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  • maxiaoding 2

    maxiaoding

    Institue of Crop Sciences, Chinese Academy of Agricultural Sciences
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  • xiaxiuzhong 4

    xiaxiuzhong


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  • qiudongfeng 5

    qiudongfeng


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  • lixiaobing 6

    lixiaobing


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  • hanbing 2

    hanbing

    Institue of Crop Sciences, Chinese Academy of Agricultural Sciences
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  • guoxiaohong 1

    guoxiaohong

    Heilongjiang Bayi Agricultural University
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  • hanlonghzi 2

    hanlonghzi

    Institue of Crop Sciences, Chinese Academy of Agricultural Sciences
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Affiliation:

1.Heilongjiang Bayi Agricultural University;2.Institue of Crop Sciences, Chinese Academy of Agricultural Sciences

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Fund Project:

The National Natural Science Foundation of China (Grant No. 32201765); the National Key Research and Development Program of China (2021YFD1200500); the CAAS Science and Technology Innovation Program; the National Crop Germplasm Resource Center (Grant No. NCGRC-2023-02)

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    Abstract:

    The production of Indica rice in China is facing severe challenges from biological and non-biological disasters such as pests, diseases, and heat stress. There is an urgent need to explore elite Indica rice germplasm resources that can adapt to climate change for current and future rice breeding. In this study, 654 indica rice varieties of different periods from various southern provinces of China were selected as experimental materials. The main agronomic traits were evaluated in four different environments, including Nanning in Guangxi, Guiyang in Guizhou, Jingzhou in Hubei, and Hangzhou in Zhejiang. Additionally, heat tolerance at the seedling stage was assessed in artificial climate incubator. The results showed that there were obvious phenotypic differences in these agronomic traits in the different environments. The rice yield per plant in Jingzhou and Hangzhou with higher latitude and lower altitude was higher than that in Guiyang and Nanning with lower latitude and higher altitude. The altitude of the Guiyang is significantly higher than that of the other sites, and the summer temperature is lower than that of the other sites, therefore, compared to the other sites, the seed setting rate, thousand grain weight, and grain width of rice have increased, while the plant height, panicle length, panicle number per plant, and yield per plant have decreased. Under multiple environmental conditions, the phenotypic values of panicle number per plant, panicle length, thousand grain weight, grain length, and grain width are relatively stable, followed by heading days, plant height, seed setting rate, and yield per plant, while the stability of grain number per panicle is poorer. The stability coefficients of heading days, plant height, seed setting rate, and yield per plant for Indica rice varieties in different periods decrease with the increase of breeding periods, indicating that with the progress of periods, the ecological adaptability of the varieties gradually tends to strengthen. The comparison of phenotypes of Indica rice varieties in different periods indicates that the phenotypic traits of Indica rice varieties have been genetically improved overall towards larger panicle, more grain, longer grain, higher yield, and stronger heat tolerance. The genetic relationship between the varieties in Periods II (varieties developed before 1980) and Periods III (varieties developed between 1980 and 1999) was relatively closer, followed by that between the varieties in Periods II, Periods III and Periods I (landraces), while that between the varieties in Periods IV (varieties developed after 2000) and other periods'' were relatively further. Thirty varieties such as Guihuazhan, Shangcun Zao, Huanan 15 and Ganzaoxian 45, were identified, which had better adaptability to the multiple environments and could be used as parent materials for future rice breeding.

    Key words:Indica rice; germplasm resources; agronomic traits; seedling heat tolerance; stability; genetic relationship
    Reference
    [1] 中华人民共和国国家统计局国家数据网站, http://data.stats.gov.cn. National data website of the national statistical bureau of the people''s republic of China, http://data.stats.gov.cn
    [2] 杨陶陶.双季籼稻产量和稻米品质对增温的响应特征及其机理.江西农业大学,2020 Yang TT. Response of Indica grain yield and grain quality to experimental warming in a double rice cropping system and its mechanism. Jiangxi Agricultural University, 2020
    [3] Li ZK, Zhang F. Rice breeding in the post-genomics era: from concept to practice. Current opinion in plant biology, 2013,16 (2):261-269
    [4] Lv ZF, Zhu Y, Liu XJ, Ye HH, Tian YC, Li FF. Climate change impacts on regional rice production in China. Climatic Change, 2018, 147:523–537
    [5] Liu ZQ, Zhu YJ, Shi HB, Qiu JH, Ding XH, Kou YJ. Recent progress in rice broad-spectrum disease resistance. International Journal of Molecular Sciences, 2021, 22:11658
    [6] Visakh RL, Anand S, Arya SN, Sasmita B, Jha UC, Sah RP, Beena R. Rice Heat tolerance breeding: a comprehensive review and forward gaze. Rice Science, 2024, 31 (4): 375?400
    [7] 赵璐,杨治伟,部丽群,田玲,苏梅,田蕾,张银霞,杨淑琴,李培富.宁夏和新疆水稻种质资源表型遗传多样性分析及综合评价.作物杂志,2018(1):25-34 Zhao L, Yang ZY, Bu LQ, Tian L, Su M, Tian L, Zhang SQ, Li PF. Analysis and comprehensive evalution of phenotypic genetic diversity of Ningxia and Xinjiang rice germplasm. Crops, 2018, 1: 25-34
    [8] 汤翠凤,张恩来,董超,阿新祥,张斐斐,申时全,韩龙植.云南新收集水稻地方品种的表型多样性分析.植物遗传资源学报,2018,19(6):1106-1116 Tang CF, Zhang EL, Dong C, A XX, Zhang FF, Shen SQ, Han LZ. Analysis on phenotypic diversity of rice landraces newly collected in Yunnan province. Journal of Plant Genetic Resources, 2018, 19 (6): 1106-1116
    [9] 胡标林,万勇,李霞,雷建国,罗向东,严文贵,谢建坤.水稻核心种质表型性状遗传多样性分析及综合评价.作物学报,2012,38(5):829-839 Hu LB, Wan Y, Li X, Lei JG, Luo XD, Yan WG, Xie JK. Analysis on genetic diversity of phenotypic traits in rice (Oryza sativa) core collection and its comprehensive assessment. Acta Agronomica Sinica, 2012, 38 (5): 829-839
    [10] 周健,崔迪,赵洙敏,孙建昌,黎毛毛,马小定,王先俱,李相奎,赵埈贤,朴东洙,郭晓红,韩龙植.不同年代水稻品种主要农艺性状的表型评价.植物遗传资源学报,2019,20(06) Zhou J, Cui D, Zhao ZM, Sun JC, Li MM, Ma XD, Wang XJ, Li XK, Piao DZ, Guo XH, Han LZ. Phenotypic evaluation of main agronomic traits in rice varieties that were released over the past few decades. Journal of Plant Genetic Resources, 2019, 20 (06)
    [11] 金京花,李淑芳,赵亚东,王迪,张妤,金国光,李鹤南,全成哲,张强.1775份水稻种质资源重要农艺性状遗传多样性研究.植物遗传资源学报,2024 Jin JH, Li SF, Zhao YD, Wang D, Zhang S, Jin GG, Li HN, Quan CZ, Zhang Q. Study on important agronomic characters and genetic diversity of 1775 rice germplasm resources. Journal of Plant Genetic Resources, 2024
    [12] 贺乔乔,周希希,王业文,李培江,王胜宝,张羽.基于SNP和表型性状的籼稻种质资源遗传多样性研究.中国农业大学学报,2023,28(8):80-93 He QQ, Zhou XX, Wang YW, Li PJ, Wang SB, Zhang Y. Genetic diversity of Indica rice germplasm resources based on SNP and phenotypic makers. Journal of China Agricultural University, 2023, 28 (8): 80-93
    [13] 韩龙植,魏兴华.水稻种质资源描述规范和数据标准.北京: 中国农业出版社,2006 Han LZ, Wei XH. Descriptors and data standard for rice (Oryza sativa L.). Beijing: China Agricultural Press, 2006
    [14] 刘进,崔迪,余丽琴,张立娜,周慧颖,马小定,胡佳晓,韩冰,韩龙植,黎毛毛.水稻苗期耐热种质资源筛选及QTL定位.中国水稻科学,2022,36(3):259-268. Liu J, Cui D, Yu LQ, Zhang LN, Zhou HY, Ma XD, Hu JX, Han B, Han LZ, Li MM. Screening and QTL mapping of heat-tolerant rice (Oryza sativa L.) germplasm resources at seedling stage. Chinese Journal of Rice Science, 2022, 36 (3): 259-268
    [15] 吴为人.对基于AMMI模型的品种稳定性分析方法的一点改进.遗传,2000,22(1):31-32 Wu WR. An improvement on the method of variety stability analysis based on the AMMI model. Hereditas (Beijing), 2000, 22 (1): 31-32
    [16] Ushio M, Saito H, Tojo M, Nagano AJ. An ecological network approach for detecting and validating influential organisms for rice growth. eLife, 2023;12: RP87202
    [17] 邓飞,王丽,刘利,刘代银,任万军,杨文钰.不同生态条件下栽培方式对水稻干物质生产和产量的影响.作物学报,2012,38(10):1930-1942 Deng F, Wang L, Liu DY, Ren WJ, Yang WY. Effects of cultivation methods on dry matter production and yield of rice under different ecological conditions. Acta Agronomica Sinica, 2012, 38 (10): 1930?1942
    [18] 程方民,钟连进.不同气候生态条件下稻米品质性状的变异及主要影响因子分析.中国水稻科学,2001,15(3):187-191 Cheng FM, Zhong LJ. Variation of rice quality T raits under different climate conditions and its main affected factors. Chinese Journal of Rice Science, 2001, 15 (3): 187-191
    [19] 韩龙植,张三元,乔永利,金钟焕,徐福荣,曹桂兰,南钟浩,戴陆园,芮钟斗,高熙宗.不同生长环境下水稻结实率数量性状位点的检测.作物学报,2006,32(7):1024-1030. Han LZ, Zhang SY, Qiao YL, Jin ZH, Xu FR, Cao GL, Nan ZH, Dai LY, Rui ZD, Gao XZ. Identification of QTLs for seed setting rate in rice under different growing environments. Acta Agronomica Sinica, 2006, 32 (7): 1024-1030
    [20] Li XK, Wu L, Geng X, Xia XH, Wang XH, Xu ZJ, Xu Q. Deciphering the environmental impacts on rice quality for different rice cultivated areas. Rice (N Y), 2018, 11 (1): 7
    [21] Kim J, Sang W, Shin P, Cho P, Seo, M, Yoo B, Kim KS. Evaluation of regional climate scenario data for impact assessment of climate change on rice productivity in Korea. Journal of Crop Science and Biotechnology, 2015, 18 (4): 257-264
    [22] Shi WJ, Yin XY, Struik PC, Xie FM, Schmidt RC, Jagadish KSV. Grain yield and quality responses of tropical hybrid rice to high night-time temperature. Field Crops Research, 2016, 190: 18-25
    [23] 刘文江,李浩杰,汪旭东,周开达.用AMMI模型分析杂交水稻基本性状的稳定性.作物学报,2002,28(4):569-573 Liu WJ, Li HJ, Wang XD, Zhou KD. Stability analysis for elementary characters of hybrid rice by AMMI model. Acta Agronomica Sinica, 2002, 28 (4): 569-573
    [24] 刘丽华,王新兵,汤凤兰,李红宇,郑桂萍,左豫虎.水稻产量及产量构成的稳定性和高产相关性分析.干旱地区农业研究,2013,31(5):84-88 Liu LH, Wang XB, Tang FL, Li HY, Zheng GP, Zuo YH. Stability of yield and yield components of rice and correlation analysis of high-yield related characters. Agricultural Research in the Arid Areas, 2013, 31 (5): 84-88
    [25] 陈海星,蔡国海,朱旭东,杨尧诚,赵忠良,曹立勇,严文潮,卢华金,熊振民,申宗坦.水稻穿梭育种研究初报.中国农业科学,1991,24 (6):20-26 Chen HX, Cai GH, Zhu XD, Yang YC, Zhao ZL, Cao LY, Yan WC, Lu HJ, Xiong ZM, Shen ZT. Preliminary study on rice shuttle Breeding in rice. Scientia Agricultural Sinica, 1991, 24 (6): 20-26
    [26] Cui D, Zhou H, Ma XD, Lin ZC, Sun LH, Han B, Li MM, Sun JC, Liu J, Jin GX, Wang XJ, Cao GL, Deng XW, He H, Han LZ. Genomic insights on the contribution of introgressions from Xian/Indica to the genetic improvement of Geng/Japonica rice cultivars. Plant Communications, 2022, 3 (3): 100325
    [27] Ferrero-Serrano á, Cantos C, Assmann SM. The Role of dwarfing traits in historical and modern agriculture with a focus on rice. Cold Spring Harb Perspect Biol, 2019, 11 (11): a034645
    [28] Zhao DS, Li QF, Zhang CQ, Zhang C, Yang QQ, Pan LX, Ren XY, Lu J, Gu MH, Liu QQ. GS9 acts as a transcriptional activator to regulate rice grain shape and appearance quality. Nature Communications, 2018, 9 (1): 1240
    [29] Calingacion M, Laborte A, Nelson A, Resurreccion A, Concepcion JC, Daygon VD, Mumm R, Reinke R, Dipti S, Bassinello PZ, Manful J, Sophany S, Lara KC, Bao JS, Xie LH, Loaiza K, El-hissewy A, Gayin J, Sharma N, Rajeswari S, Manonmani S, Rani NS, Kota S, Indrasari SD, Habibi F, Hosseini M, Tavasoli F, Suzuki K, Umemoto T, Boualaphanh C, Lee HH, Hung YP, Ramli A, Aung PP, Ahmad R, Wattoo JD, Bandonill E, Romero M, Brites CM, Hafeel R, Lur HS, Cheaupun K, Jongdee S, Blanco P, Bryant R, Lang NT, Hall RD, Fitzgerald M. Diversity of global rice markets and the science required for consumer-targeted rice breeding. PLoS One, 2014, 9 (1): e85106
    [30] 张桂莲,陈立云,雷东阳,张顺堂.水稻耐热性研究进展.杂交水稻,2005,20(1):1-5 Zhang GL, Chen LY, Lei DY, Zhang ST. Progresses in research on heat tolerance in rice. Hybrid Rice, 2005, 20 (1): 1-5
    [31] 曹立勇,朱军,赵松涛,何立斌,颜启传.水稻籼粳交DH群体耐热性的QTLs定位.农业生物技术学报,2002,10(3):210-214 Cao LY, Zhu J, Zhao ST, He LB, Yan QC. Mapping QTLs for heat tolerance in a DH population from Indica-Japonica cross in rice (Oryza sative). Journal of Agricultural Biotechnology, 2002, 10 (3): 210-214
    [32] 刘刚,夏快飞,吴艳,张明永,张再君,杨金松,邱东峰.水稻耐热新种质R203的创制与应用.中国农业科学,2023,56(3):405-415 Liu G, Xia KF, Wu Y, Zhang MY, Zhang ZJ, Yang JS, Qiu DF. Breeding and application of a new thermo-tolerance rice germplasm R203. Scientia Agricultura Sinica, 2023, 56 (3): 405-415
    [33] 刘传光,周新桥,陈达刚,周汉钦,冯道基,李丽君,李巨昌,张桂权,陈友订.华南地区常规籼稻主栽品种间亲缘系数分析.华南农业大学学报,2012,33(3):277-281 Liu CG, Zhou XQ, Chen DG, Zhou HQ, Feng DJ, Li LJ, Li JC, Zhang GQ, Chen YD. Analysis of coefficient of parentage among major commercial inbred Indica rice cultivars in south China. Journal of South China Agricultural University, 2012, 33 (3): 277-281
    [34] 李培富,杨淑琴,马宏伟.宁夏水稻主要农艺性状的主成分及聚类分析.中国农学通报,2006,22(12):162-166 Li PF, Yang SQ, Ma HW. Principal Component and cluster analysis of main agronomic characters of rice in NingXia. Chinese Agricultural Science Bulletin, 2006, 22 (12): 162-166
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  • Received:March 05,2025
  • Revised:April 02,2025
  • Adopted:April 16,2025
  • Online: April 23,2025
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