[1] |
吴祥厚. 黎平、从江、榕江“禾”考察报告[J]. 贵州农业科学, 1981(5): 65-70.
|
[2] |
韩龙植, 曹桂兰. 中国稻种资源收集、保存和更新现状[J]. 植物遗传资源学报. 2005, 6(3): 359-364.
|
[3] |
FRANKEL O H. Genetic perspectives of germplasm conservation[M]. Cambridge: Cambridge University Press, 1984: 161-170.
|
[4] |
HAUPT M, SCHMID K. Combining focused identification of germplasm and core collection strategies to identify genebank accessions for central European soybean breeding[J]. Plant, Cell & Environment, 2020, 43(6): 1 421-1 436.
|
[5] |
胡标林, 万勇, 李霞, 等. 水稻核心种质表型性状遗传多样性分析及综合评价[J]. 作物学报, 2012, 38(5): 829-839.
|
[6] |
潘英华, 徐志健, 梁云涛. 广西普通野生稻群体结构解析与核心种质构建[J]. 植物遗传资源学报, 2018, 19(3): 498-509.
|
[7] |
马洪文, 陈晓军, 殷延勃, 等. 利用基因型值构建宁夏粳稻核心种质的方法[J]. 种子, 2012, 31(5): 43-49.
|
[8] |
周少川, 柯苇, 缪若维, 等. 水稻核心种质育种理论体系的创建与应用[J]. 中国水稻科学, 2021, 35(6): 529-534.
|
[9] |
WEI X, QIU J, YONG K C, et al. A quantitative genomics map of rice provides genetic insights and guides breeding[J]. Nature Genetics. 2021, 53(2): 243-253.
|
[10] |
HAO C Y, ZHANG X Y, WANG L F, et al. Genetic diversity and core collection evaluations in common wheat germplasm from the Northwestern spring wheat region in China[J]. Molecular Breeding, 2006, 17(1): 69-77.
|
[11] |
DAHLBERG J A, BURKE J J, ROSENOW D T. Development of a sorghum core collection: Refinement and evaluation of a subset from Sudan[J]. Economic Botany, 2004, 58(4): 556-567.
|
[12] |
SU W J, WANG L J, LEI J, et al. Genome-wide assessment of population structure and genetic diversity and development of a core germplasm set for sweet potato based on specific length amplified fragment (SLAF) sequencing[J]. PLoS One, 2017, 12(2): 1-14.
|
[13] |
GIANDOMENICO C, MARTINA C, PIETRO P, et al. Genetic diversity in Italian tomato landraces: Implications for the development of a core collection[J]. Scientia Horticulturae, 2014, 168: 138-144.
|
[14] |
CHANDRA S, HUAMAN Z, KRISHNA S H, et al. Optimal sampling strategy and core collection size of Andean tetraploid potato based on isozyme data - A simulation study[J]. Theoretical and Applied Genetics, 2002, 104(8): 1 325-1 334.
|
[15] |
雷启义, 熊勇, 周江菊, 等. 黔东南香禾糯AFLP遗传多样性分析与评价[J]. 植物遗传资源学报, 2017, 18(6): 1 023-1 031.
|
[16] |
周江波, 吴舒奕, 陈米, 等. 贵州侗族香禾糯及其演化[J]. 中国稻米, 2019, 25(4): 70-73.
|
[17] |
张志斌, 龙思芳, 吴娴, 等. 苟当1号在不同海拔生态环境种植的蒸煮食味品质分析[J]. 中国稻米, 2021, 27(2): 68-72.
|
[18] |
LIU C H, WANG T Y, CHEN H C, et al. Genomic footprints of Kam Sweet Rice domestication indicate possible migration routes of the Dong people in China and provide resources for future rice breeding[J]. Molecular Plant, 2022, 16(2): 415-431.
|
[19] |
韩龙植. 水稻种质资源描述规范和数据标准[M]. 北京: 中国农业出版社, 2006.
|
[20] |
HU J, ZHU J, XU H M. Methods of constructing core collections by stepwise clustering with three sampling strategies based on the genotypic values of crops[J]. Theoretical and Applied Genetics, 2000, 101(1-2): 264-268.
|
[21] |
张洪亮, 李自超, 曹永生, 等. 表型水平上检验水稻核心种质的参数比较[J]. 作物学报, 2003, 29(2): 252-257.
|
[22] |
JACKSON M T. Conservation of rice genetic resources: The role of the International Rice Genebank at IRRI[J]. Plant Molecular Biology, 1997, 35(1-2): 61-67.
|
[23] |
BARBHUIYA A R, KHAN M L, DAYANANDAN S. Genetic structure and diversity of natural and domesticated populations of Citrus medica L. in the Eastern Himalayan region of Northeast India[J]. Ecology and Evolution, 2016, 6(12): 3 898-3 911.
|
[24] |
李国强, 李锡香, 沈镝, 等. 基于形态数据的大白菜核心种质构建方法的研究[J]. 园艺学报, 2008, 35(12): 1 759-1 766.
|
[25] |
胡建斌, 马双武, 王吉明, 等. 基于表型性状的甜瓜核心种质构建[J]. 果树学报, 2013, 30(3): 404-411.
|
[26] |
徐宁, 程须珍, 王素华, 等. 以地理来源分组和利用表型数据构建中国小豆核心种质[J]. 作物学报, 2008, 34(8): 1 366-1 373.
|
[27] |
李自超, 张洪亮, 曹永生, 等. 中国地方稻种资源初级核心种质取样策略研究[J]. 作物学报, 2003, 29(1): 20-24.
|
[28] |
李嘉伟, 苏江硕, 张飞, 等. 基于表型性状构建传统菊花核心种质[J]. 中国农业科学, 2021, 54(16): 3 514-3 526.
|
[29] |
李慧峰, 陈天渊, 黄咏梅, 等. 基于形态性状的甘薯核心种质取样策略研究[J]. 植物遗传资源学报, 2013, 14(1): 91-96.
|
[30] |
李自超, 张洪亮, 曾亚文, 等. 云南地方稻种资源核心种质取样方案研究[J]. 中国农业科学, 2000, 33(5): 1-7.
|
[31] |
BROWN A H D. Core collections: A practical approach to genetic resources management[J]. Genome, 1989, 31(2): 818-824.
|
[32] |
李秀诗, 付瑜华, 周祥, 等. 基于表型性状的薏苡初级核心种质库构建[J]. 热带作物学报, 2020, 41(4): 669-675.
|
[33] |
WANG L, GUAN Y, GUAN R, et al. Establishment of Chinese soybean glycine max core collections with agronomic traits and SSR markers[J]. Euphytica, 2006, 151(2): 215-223.
|
[34] |
NAYAK S N, SONG J, VILLA A, et al. Promoting utilization of Saccharum spp. genetic resources through genetic diversity analysis and core collection construction[J]. PLoS One, 2014, 9: e110856.
|
[35] |
赵立民, 李嘉伟, 张飞, 等. 基于表型数据构建切花小菊核心种质[J]. 园艺学报, 2022, 49(10): 2 273-2 284.
|
[36] |
陈伊航, 唐朝臣, 张雄坚, 等. 基于表型性状和SSR分子标记构建甘薯核心种质[J]. 作物学报, 2022, 49(5): 1 249-1 261.
|
[37] |
李萌, 秦慧彬, 王宇楠, 等. 基于农艺性状指标的山西高粱地方品种核心种质构建[J]. 植物遗传资源学报, 2021, 22(1): 174-182.
|