新疆农业科学 ›› 2024, Vol. 61 ›› Issue (4): 885-891.DOI: 10.6048/j.issn.1001-4330.2024.04.012
• 作物遗传育种·种质资源·分子遗传学·生理生化 • 上一篇 下一篇
收稿日期:
2023-08-15
出版日期:
2024-04-20
发布日期:
2024-05-31
通信作者:
黄成(1989-),男,湖南人,副教授,博士,硕士生导师,研究方向为玉米分子遗传育种,(E-mail)hc66@hunau.edu.cn作者简介:
高沐甜(1999-),女,宁夏人,硕士研究生,研究方向为玉米分子育种,(E-mail)gmt66@stu.hunau.edu.cn
基金资助:
GAO Mutian1, XIAO Yanmei1, LIAO Zhijie1, HUANG Cheng1,2,3()
Received:
2023-08-15
Published:
2024-04-20
Online:
2024-05-31
Correspondence author:
HUANG Cheng (1989-), male,from Hunan, Ph.D., associate professor, research direction: molecular genetic breeding of maize,(E-mail)hc66@hunau.edu.cnSupported by:
摘要:
【目的】研究玉米-大刍草渗入系群体的品质差异,为选育高品质玉米品种提供依据。【方法】对玉米-大刍草渗入系群体866份家系,采用主成分分析和聚类分析法综合评价其籽粒(粒长、粒宽、粒厚、百粒重)和品质(蛋白质、淀粉、可溶性糖、赖氨酸、磷、钾)等相关性状。【结果】10个性状的变异较丰富,变异系数为6.401%~20.451%。籽粒性状普遍与品质性状负相关,而品质性状间除淀粉、蛋白质和可溶性糖呈负相关,其余皆呈正相关。筛选出10份较为良好的自交系,其中第3类群皆包含其中。【结论】该群体各个家系的籽粒及品质性状均有不同程度的相关性,在后续产量与品质育种时,可依据其相关性定向选择材料。筛选出了在淀粉、可溶性糖与粒重等方向性状表现较好的自交系材料,可作为品质育种的核心种质资源。
中图分类号:
高沐甜, 肖艳梅, 廖志杰, 黄成. 玉米-大刍草渗入系群体籽粒及品质性状的综合评价[J]. 新疆农业科学, 2024, 61(4): 885-891.
GAO Mutian, XIAO Yanmei, LIAO Zhijie, HUANG Cheng. Comprehensive evaluation of kernel and quality traits in maize-teosinte introgression line population[J]. Xinjiang Agricultural Sciences, 2024, 61(4): 885-891.
性状 Traits | 最大值 Maximum | 最小值 Minimum | 变异幅度 Range | 平均值 Mean | 标准差 Standard deviation(%) | 变异系数 Coefficient of variation(%) |
---|---|---|---|---|---|---|
蛋白质 Protein content(%) | 11.581 | 3.698 | 7.883 | 9.156 | 0.897 | 9.802 |
淀粉 Starch content(%) | 85.254 | 56.173 | 29.082 | 75.462 | 5.223 | 6.921 |
可溶性糖 Soluble sugar content(%) | 4.825 | 1.479 | 3.346 | 2.479 | 0.363 | 14.653 |
赖氨酸 Lysine content(%) | 0.364 | 0.110 | 0.254 | 0.232 | 0.043 | 18.727 |
磷Phosphorus content(%) | 2.234 | 0.209 | 2.025 | 0.411 | 0.084 | 20.451 |
钾Potassium content(%) | 2.192 | 0.310 | 1.882 | 0.439 | 0.082 | 18.664 |
粒长 Kernel length(mm) | 10.082 | 5.966 | 4.116 | 8.325 | 0.602 61 | 7.238 |
粒宽 Kernel width(mm) | 8.710 | 5.114 | 3.596 | 6.795 | 0.514 07 | 7.566 |
粒厚 Kernel thickness(mm) | 7.981 | 4.279 | 3.703 | 5.390 | 0.344 97 | 6.401 |
百粒重 100-kernel weight(g) | 30.890 | 10.700 | 20.190 | 22.043 | 3.395 50 | 15.404 |
表1 玉米-大刍草渗入系群体产量性状和品质性状
Tab.1 Descriptive analysis of kernel and quality traits in Maize-Teosinte Introgression Line Population
性状 Traits | 最大值 Maximum | 最小值 Minimum | 变异幅度 Range | 平均值 Mean | 标准差 Standard deviation(%) | 变异系数 Coefficient of variation(%) |
---|---|---|---|---|---|---|
蛋白质 Protein content(%) | 11.581 | 3.698 | 7.883 | 9.156 | 0.897 | 9.802 |
淀粉 Starch content(%) | 85.254 | 56.173 | 29.082 | 75.462 | 5.223 | 6.921 |
可溶性糖 Soluble sugar content(%) | 4.825 | 1.479 | 3.346 | 2.479 | 0.363 | 14.653 |
赖氨酸 Lysine content(%) | 0.364 | 0.110 | 0.254 | 0.232 | 0.043 | 18.727 |
磷Phosphorus content(%) | 2.234 | 0.209 | 2.025 | 0.411 | 0.084 | 20.451 |
钾Potassium content(%) | 2.192 | 0.310 | 1.882 | 0.439 | 0.082 | 18.664 |
粒长 Kernel length(mm) | 10.082 | 5.966 | 4.116 | 8.325 | 0.602 61 | 7.238 |
粒宽 Kernel width(mm) | 8.710 | 5.114 | 3.596 | 6.795 | 0.514 07 | 7.566 |
粒厚 Kernel thickness(mm) | 7.981 | 4.279 | 3.703 | 5.390 | 0.344 97 | 6.401 |
百粒重 100-kernel weight(g) | 30.890 | 10.700 | 20.190 | 22.043 | 3.395 50 | 15.404 |
图1 玉米-大刍草渗入系群体籽粒及其品质性状的相关性 注:*P<0.05,差异水平显著;**P<0.01,差异水平极显著
Fig.1 Correlation analysis for different traits of maize-teosinte introgression line population Note: *P<0.05, significant level of difference; **P<0.01, highly significant level of difference
图2 玉米-大刍草渗入系群体籽粒和品质性状的聚类 注:因家系过多,图中仅显示部分家系编号
Fig.2 Cluster analysis for different traits of maize-teosinte introgression line population Note: Because of the large number of lineages, only some of the lineage numbers are shown in the figure 2
性状 Traits | 因子1 Factor 1 | 因子2 Factor 2 | 因子3 Factor 3 | 因子4 Factor 4 |
---|---|---|---|---|
蛋白质 Protein content(%) | -0.275 | 0.207 | 0.641 | 0.151 |
淀粉 Starch content(%) | -0.023 | -0.253 | 0.460 | 0.446 |
可溶性糖 Soluble sugar content(%) | 0.037 | 0.613 | -0.334 | -0.355 |
赖氨酸 Lysine content(%) | -0.271 | 0.588 | 0.282 | -0.232 |
磷 Phosphorus content(%) | -0.234 | 0.500 | 0.019 | 0.308 |
钾 Potassium content(%) | -0.178 | 0.539 | -0.115 | 0.521 |
粒长 Kernel length(mm) | 0.824 | 0.139 | -0.114 | 0.231 |
粒宽 Kernel width(mm) | 0.918 | 0.124 | 0.042 | 0.105 |
粒厚 Kernel thickness(mm) | 0.313 | 0.106 | 0.623 | -0.452 |
百粒重 100-kernel weight(g) | 0.923 | 0.150 | 0.131 | 0.023 |
特征值 Characteristic value | 2.709 | 1.438 | 1.248 | 1.038 |
贡献率(%) Contribution rate | 27.09 | 14.38 | 12.48 | 10.38 |
表2 玉米-大刍草渗入系群体性状的主成分变化
Tab.2 Changes of principal component analysis for population traits in Maize-Teosinte Introgression Line Population
性状 Traits | 因子1 Factor 1 | 因子2 Factor 2 | 因子3 Factor 3 | 因子4 Factor 4 |
---|---|---|---|---|
蛋白质 Protein content(%) | -0.275 | 0.207 | 0.641 | 0.151 |
淀粉 Starch content(%) | -0.023 | -0.253 | 0.460 | 0.446 |
可溶性糖 Soluble sugar content(%) | 0.037 | 0.613 | -0.334 | -0.355 |
赖氨酸 Lysine content(%) | -0.271 | 0.588 | 0.282 | -0.232 |
磷 Phosphorus content(%) | -0.234 | 0.500 | 0.019 | 0.308 |
钾 Potassium content(%) | -0.178 | 0.539 | -0.115 | 0.521 |
粒长 Kernel length(mm) | 0.824 | 0.139 | -0.114 | 0.231 |
粒宽 Kernel width(mm) | 0.918 | 0.124 | 0.042 | 0.105 |
粒厚 Kernel thickness(mm) | 0.313 | 0.106 | 0.623 | -0.452 |
百粒重 100-kernel weight(g) | 0.923 | 0.150 | 0.131 | 0.023 |
特征值 Characteristic value | 2.709 | 1.438 | 1.248 | 1.038 |
贡献率(%) Contribution rate | 27.09 | 14.38 | 12.48 | 10.38 |
性状Traits | 得分系数Scoring factors | |||
---|---|---|---|---|
蛋白质 Protein content(%) | -0.167 | 0.173 | 0.574 | 0.148 |
淀粉 Starch content(%) | -0.014 | -0.211 | 0.412 | 0.438 |
可溶性糖 Soluble sugar content(%) | 0.023 | 0.511 | -0.299 | -0.348 |
赖氨酸 Lysine content(%) | -0.165 | 0.490 | 0.252 | -0.228 |
磷 Phosphorus content(%) | -0.142 | 0.417 | 0.017 | 0.303 |
钾 Potassium content(%) | -0.108 | 0.450 | -0.103 | 0.512 |
粒长 Kernel length(mm) | 0.501 | 0.116 | -0.102 | 0.227 |
粒宽 Kernel width(mm) | 0.558 | 0.104 | 0.037 | 0.104 |
粒厚 Kernel thickness(mm) | 0.190 | 0.089 | 0.558 | -0.444 |
百粒重 100-kernel weight(g) | 0.561 | 0.125 | 0.117 | 0.023 |
表3 主成分得分系数矩阵
Tab.3 Principal component score coefficient matrix
性状Traits | 得分系数Scoring factors | |||
---|---|---|---|---|
蛋白质 Protein content(%) | -0.167 | 0.173 | 0.574 | 0.148 |
淀粉 Starch content(%) | -0.014 | -0.211 | 0.412 | 0.438 |
可溶性糖 Soluble sugar content(%) | 0.023 | 0.511 | -0.299 | -0.348 |
赖氨酸 Lysine content(%) | -0.165 | 0.490 | 0.252 | -0.228 |
磷 Phosphorus content(%) | -0.142 | 0.417 | 0.017 | 0.303 |
钾 Potassium content(%) | -0.108 | 0.450 | -0.103 | 0.512 |
粒长 Kernel length(mm) | 0.501 | 0.116 | -0.102 | 0.227 |
粒宽 Kernel width(mm) | 0.558 | 0.104 | 0.037 | 0.104 |
粒厚 Kernel thickness(mm) | 0.190 | 0.089 | 0.558 | -0.444 |
百粒重 100-kernel weight(g) | 0.561 | 0.125 | 0.117 | 0.023 |
家系 Family | 主成分得分Principal component score | Yi | |||
---|---|---|---|---|---|
Y1 | Y2 | Y3 | Y4 | ||
T-625 | -2.41 | 8.98 | -2.85 | 11.72 | 1.5 |
T-543 | 4.07 | 0.81 | 3.41 | -2.26 | 1.41 |
T-768 | 4.59 | 0.81 | -1.46 | 0.8 | 1.26 |
T-200 | 3.18 | 1.83 | -2.11 | -1.72 | 1.18 |
T-072 | 2.97 | 1.67 | -0.05 | 1.29 | 1.17 |
T-810 | -2.54 | 9.01 | -0.54 | 5.91 | 1.15 |
T-627 | 2.83 | 0.57 | 0.73 | 1.68 | 1.11 |
T-007 | 2.84 | 1.68 | -1.47 | 2.3 | 1.07 |
T-519 | 2.95 | 0.68 | 1.53 | -0.35 | 1.05 |
T-063 | 2.97 | 1.23 | 1.09 | -0.8 | 1.03 |
T-074 | 2.88 | 1.95 | 0.15 | -0.96 | 0.98 |
表4 前10位家系主成分综合得分矩阵
Tab.4 Matrix of combined principal component scores for the top 10 lineages
家系 Family | 主成分得分Principal component score | Yi | |||
---|---|---|---|---|---|
Y1 | Y2 | Y3 | Y4 | ||
T-625 | -2.41 | 8.98 | -2.85 | 11.72 | 1.5 |
T-543 | 4.07 | 0.81 | 3.41 | -2.26 | 1.41 |
T-768 | 4.59 | 0.81 | -1.46 | 0.8 | 1.26 |
T-200 | 3.18 | 1.83 | -2.11 | -1.72 | 1.18 |
T-072 | 2.97 | 1.67 | -0.05 | 1.29 | 1.17 |
T-810 | -2.54 | 9.01 | -0.54 | 5.91 | 1.15 |
T-627 | 2.83 | 0.57 | 0.73 | 1.68 | 1.11 |
T-007 | 2.84 | 1.68 | -1.47 | 2.3 | 1.07 |
T-519 | 2.95 | 0.68 | 1.53 | -0.35 | 1.05 |
T-063 | 2.97 | 1.23 | 1.09 | -0.8 | 1.03 |
T-074 | 2.88 | 1.95 | 0.15 | -0.96 | 0.98 |
[1] | Tang H, Xu C S, Qi X, et al. Study on periodic pulsation characteristics of corn grain in a grain cylinder during the unloading stage[J]. Foods, 2021, 10(10): 2314. |
[2] | WANG Zhenhua, ZHANG Qianjin. Determination and analysis of major quality characters in maize kernel in China[J]. Journal of Maize Sciences, 2006, 14(3): 36-39. |
[3] | Huang Y C, Wang H H, Zhu Y D, et al. THP9 enhances seed protein content and nitrogen-use efficiency in maize[J]. Nature, 2022, 612(7939): 292-300. |
[4] | Peng Z, Mao X Z, Zhang J, et al. Effective biodegradation of chicken feather waste by co-cultivation of keratinase producing strains[J]. Microbial Cell Factories, 2019, 18(1): 84. |
[5] | 马先红, 张文露, 张铭鉴. 玉米淀粉的研究现状[J]. 粮食与油脂, 2019, 32(2): 4-6. |
MA Xianhong, ZHANG Wenlu, ZHANG Mingjian. Research status of corn starch[J]. Cereals & Oils, 2019, 32(2): 4-6. | |
[6] | 安林, 程乙, 罗上轲, 等. 鲜食糯玉米营养品质及其影响因素研究进展[J]. 山地农业生物学报, 2023, 42(5): 40-45. |
AN Lin, CHENG Yi, LUO Shangke, et al. Research progress on nutritional quality of fresh waxy corn and its influencing factors[J]. Journal of Mountain Agriculture and Biology, 2023, 42(5): 40-45. | |
[7] | 赵国华, 赵小皖, 明建. 成熟度对渝甜糯玉米籽粒营养成分及色泽的影响[J]. 中国粮油学报, 2015, 30(6): 5-9, 14. |
ZHAO Guohua, ZHAO Xiaowan, MING Jian. Effects of maturity on nutrients and color of Chongqing sweet-waxy maize seed[J]. Journal of the Chinese Cereals and Oils Association, 2015, 30(6): 5-9, 14. | |
[8] |
王帅, 宋伟, 王荣焕, 等. 我国玉米生物学研究进展[J]. 中国农业科技导报, 2022, 24(7): 23-31.
DOI |
WANG Shuai, SONG Wei, WANG Ronghuan, et al. Progress of maize biology research in China[J]. Journal of Agricultural Science and Technology, 2022, 24(7): 23-31.
DOI |
|
[9] | 丁璐, 刘海学, 王聿双, 等. 26个玉米杂交组合农艺性状的相关性与主成分分析[J]. 分子植物育种, 2020, 18(3): 995-1002. |
DING Lu, LIU Haixue, WANG Yushuang, et al. Correlation and principal component analysis of the agronomic traits of 26 corn hybrids combinations[J]. Molecular Plant Breeding, 2020, 18(3): 995-1002. | |
[10] | 邹成林, 谭华, 黄开健, 等. 24份热带玉米自交系主要农艺性状的遗传效应分析[J]. 西南农业学报, 2022, 35(7): 1500-1508. |
ZOU Chenglin, TAN Hua, HUANG Kaijian, et al. Genetic effect analysis of main agronomic characters of 24 tropical maize inbred lines[J]. Southwest China Journal of Agricultural Sciences, 2022, 35(7): 1500-1508. | |
[11] | 张培风, 任帅, 孙佩, 等. 102份玉米地方种质资源品质分析与评价[J]. 江苏农业科学, 2023, 51(15): 49-55. |
ZHANG Peifeng, REN Shuai, SUN Pei, et al. Quality analysis and evaluation of 102 local maize germplasm resources[J]. Jiangsu Agricultural Sciences, 2023, 51(15): 49-55. | |
[12] | 贾晓艳, 朱良佳, 田汉钊, 等. 玉米自交系粒重与品质性状的相关分析[J]. 种子, 2021, 40(7): 33-38, 44. |
JIA Xiaoyan, ZHU Liangjia, TIAN Hanzhao, et al. Correlation analysis of grain weight and quality character of maize inbred lines[J]. Seed, 2021, 40(7): 33-38, 44. | |
[13] | 徐广海, 张成冉, 孙鹏, 等. 糯玉米自交系籽粒淀粉理化特性的相关和聚类分析[J]. 扬州大学学报(农业与生命科学版), 2021, 42(3): 97-103. |
XU Guanghai, ZHANG Chengran, SUN Peng, et al. Correlation and cluster analysis of starch physicochemical properties of waxy corn inbred lines[J]. Journal of Yangzhou University (Agricultural and Life Science Edition), 2021, 42(3): 97-103. | |
[14] | 赵海军, 史佳晴, 王彬, 等. 150份玉米自交系籽粒及其品质性状的综合评价[J]. 河南农业科学, 2023, 52(5): 33-39. |
ZHAO Haijun, SHI Jiaqing, WANG Bin, et al. Comprehensive evaluation of grain and its quality traits of 150Maize inbred lines[J]. Journal of Henan Agricultural Sciences, 2023, 52(5): 33-39. | |
[15] | 齐欣, 姜敏, 马骏, 等. 东欧玉米核心种质资源鉴定及聚类分析[J]. 辽宁农业科学, 2022,(2): 15-18. |
QI Xin, JIANG Min, MA Jun, et al. Identification and cluster analysis of eastern European maize core germplasm resources[J]. Liaoning Agricultural Sciences, 2022,(2): 15-18. | |
[16] | 邓穗生, 洪彩香. 靛酚蓝比色法测定植物全氮含量方法的改进[J]. 热带农业科学, 2013, 33(4): 5-7, 29. |
DENG Suisheng, HONG Caixiang. Improvement of phenol method for determining total nitrogen in plant[J]. Chinese Journal of Tropical Agriculture, 2013, 33(4): 5-7, 29. | |
[17] | 加列西·马那甫, 景伟文, 削合来提·再丁. 双波长法测定谷类和豆类作物籽粒中直链和支链淀粉的含量[J]. 新疆农业科学, 2010, 47(3): 564-568. |
Jialiexi Manafu, JING Weiwen, Xuekelaiti Zaiding. Determination of amylose and amylopectin in grain and bean by dual-wavelength spectrophotometry[J]. Xinjiang Agricultural Sciences, 2010, 47(3): 564-568. | |
[18] | 黄婷. 砷钼酸比色法在批量烟叶样品含糖量测定中的应用[J]. 耕作与栽培, 2001,(6): 61-62. |
HUANG Ting. Application of arsenic molybdate colorimetry in the determination of sugar content in batch tobacco samples[J]. Tillage and Cultivation, 2001,(6): 61-62. | |
[19] | 刘飞飞, 李群, 于岚. 茚三酮比色法定量检测赖氨酸条件的研究[J]. 中国食品添加剂, 2010,(5): 223-225, 234. |
LIU Feifei, LI Qun, YU Lan. Research of determination of lysine by ninhydrin colorimetry[J]. China Food Additives, 2010,(5): 223-225, 234. | |
[20] | 鲍士旦. 土壤农化分析[M]. 3版. 北京: 中国农业出版社, 2000. |
BAO Shidan. Soil and agricultural chemistry analysis[M]. 3rd ed. Beijing: China Agriculture Press, 2000. | |
[21] | 高文丽. 作物的产量及产量因素的形成[J]. 吉林农业, 2016,(3): 72. |
GAO Wenli. Crop yield and the formation of yield factors[J]. Agriculture of Jilin, 2016,(3): 72. | |
[22] | 张正, 董春林, 杨睿, 等. 不同类型玉米品种产量与穗部性状的相关性分析[J]. 中国种业, 2022,(2): 80-84. |
ZHANG Zheng, DONG Chunlin, YANG Rui, et al. Correlation analysis between yield and ear traits of different types of maize varieties[J]. China Seed Industry, 2022,(2): 80-84. | |
[23] | 张振良, 黄小兰, 薛林, 等. 基于主成分分析和聚类分析的甜糯玉米新组合育种潜力评价[J]. 江西农业学报, 2019, 31(2): 19-25. |
ZHANG Zhenliang, HUANG Xiaolan, XUE Lin, et al. Evaluation of breeding potential of sweet waxy maize new combinations based on principal component analysis and cluster analysis[J]. Acta Agriculturae Jiangxi, 2019, 31(2): 19-25. | |
[24] | Laidig F, Piepho H P, Rentel D, et al. Breeding progress, environmental variation and correlation of winter wheat yield and quality traits in German official variety trials and on-farm during 1983-2014[J]. TAG Theoretical and Applied Genetics Theoretische Und Angewandte Genetik, 2017, 130(1): 223-245. |
[1] | 郭文超, 贾尊尊, 丁新华, 叶晓琴, 付开赟, 吐尔逊·阿合买提, 王小武, 乔小燕, 孙建博. 新疆荒漠绿洲生态区亚洲玉米螟和欧洲玉米螟的种间竞争取代研究综述[J]. 新疆农业科学, 2024, 61(S1): 1-11. |
[2] | 孙健博, 吴莉莉, 贾尊尊, 叶晓琴, 丁新华, 付开赟, 吐尔逊·阿合买提, 王哲, 李亚文, 付文君, 艾尔肯娜依·买买提江, 安尼瓦尔·库尔班, 郭文超. 新疆伊犁河谷玉米主要害虫田间一喷多防药效评价[J]. 新疆农业科学, 2024, 61(S1): 12-18. |
[3] | 张帅, 高国文, 吴莉莉, 赵海燕, 王小武, 付开赟, 贾尊尊, 吐尔逊·阿合买提, 丁新华, 李克梅, 郭文超. 增效剂及微肥与种衣剂协同施用评价玉米茎腐病的防效[J]. 新疆农业科学, 2024, 61(S1): 19-27. |
[4] | 戴爱梅, 叶梦迪, 丁志梅, 王志慧, 乔晓燕, 王小武, 付开赟, 贾尊尊, 叶晓琴, 吐尔逊·阿合买提, 康健, 丁新华, 郭文超. 不同苯唑氟草酮施药方式防除玉米田杂草药效及安全性评价[J]. 新疆农业科学, 2024, 61(S1): 28-34. |
[5] | 袁梓涵, 赵雯慧, 王小武, 吐尔逊·阿合买提, 丁新华, 张帅, 付开赟, 贾尊尊, 郭文超. 玉米茎腐病生防菌的筛选及生防效果评价[J]. 新疆农业科学, 2024, 61(S1): 35-48. |
[6] | 巩雪花, 王小武, 付开赟, 贾尊尊, 吐尔逊·阿合买提, 乔小燕, 叶晓琴, 郭文超, 丁新华. 新疆绿洲灌区玉米田杂草种子库及环境因子对杂草种子萌发的影响[J]. 新疆农业科学, 2024, 61(S1): 49-59. |
[7] | 张磊, 孙诗仁, 谢小清, 王业建, 李冬, 唐怀君, 刘成. 额敏县玉米灌溉用水现状及节水灌溉策略[J]. 新疆农业科学, 2024, 61(S1): 81-84. |
[8] | 杨明花, 廖必勇, 刘强, 彭云承, 达吾来·杰克山, 冯国瑞, 唐式敏. 鲜食糯玉米籽粒营养品质的差异变化分析[J]. 新疆农业科学, 2024, 61(9): 2087-2093. |
[9] | 田海燕, 张占琴, 颉建辉, 王建江, 杨相昆. 加工番茄果实番茄红素与主要品质性状的关系[J]. 新疆农业科学, 2024, 61(9): 2197-2202. |
[10] | 苗雨, 陈翠霞, 马艳明, 邢国芳, 董裕生, 陈智军, 王仙, 向莉. 276份中亚大麦种质资源表型性状的遗传多样性分析[J]. 新疆农业科学, 2024, 61(8): 1888-1895. |
[11] | 杨彩霞, 顾炜, 关媛, 瞿静涛, 党冬冬, 吴鹏昊, 郑洪建. 甜玉米基因Sugary1(Su1)序列的变异分析[J]. 新疆农业科学, 2024, 61(7): 1605-1614. |
[12] | 钟辉丽, 武均, 陆祥生. 甜玉米不同生育期施用改良剂组合对其产量及河西走廊次生盐碱化土壤性质的影响[J]. 新疆农业科学, 2024, 61(7): 1615-1625. |
[13] | 杨明花, 刘强, 冯国瑞, 廖必勇, 达吾来·杰克山, 彭云承, 布阿依夏木·那曼提, 陈艳萍. 鲜食糯玉米适宜采收期与籽粒含水量分析[J]. 新疆农业科学, 2024, 61(7): 1626-1630. |
[14] | 付浩, 张学军, 史增录, 程金鹏, 吴海峰, 于永良, 饶志强. 滴灌区玉米精量免耕播种机设计与试验[J]. 新疆农业科学, 2024, 61(5): 1094-1101. |
[15] | 杨璐, 王娜, 范少丽, 程平, 李宏, 汪阳东. 黑桑种质资源表型性状变异特征分析[J]. 新疆农业科学, 2024, 61(5): 1172-1181. |
阅读次数 | ||||||||||||||||||||||||||||||||||||||||||||||||||
全文 36
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
摘要 |
|
|||||||||||||||||||||||||||||||||||||||||||||||||