[1] |
游华建, 鲁增辉, 张植纬, 等. 药用水蛭及其代用品的人工养殖进展[J]. 黑龙江畜牧兽医, 2017(19):86-89.
|
[2] |
栾淑华, 刘君. 中药宽体金钱蛭抗凝血有效部位的提取工艺研究[J]. 中国医药指南, 2017, 15(10):37-39.
|
[3] |
沈勤. 池塘大网箱养殖宽体金线蛭技术[J]. 河北渔业, 2016(1):40-41.
|
[4] |
王建国, 熊良伟, 陶桂庆, 等. 宽体金线蛭苗对萝卜螺和方形环棱螺仔螺摄食及生长特征研究[J]. 中药材, 2018, 41(5):1022-1026.
|
[5] |
刘英奎. 基于数值分类学及分子系统学的宽体金线蛭和光润金线蛭分类研究[D]. 西安: 陕西师范大学, 2011.
|
[6] |
涂乾, 刘义梅, 陈科力, 等. 宽体金线蛭抗凝血有效成分分离研究[J]. 时珍国医国药, 2016, 27(5):1086-1088.
|
[7] |
李战福, 罗莉, 李伟龙, 等. 宽体金线蛭人工养殖技术研究进展[J]. 中国渔业质量与标准, 2018, 8(2):36-41.
|
[8] |
岳丽佳, 熊良伟, 王帅兵, 等. 基于线粒体Cytb序列的3个宽体金线蛭群体遗传多样性分析[J]. 上海海洋大学学报, 2020, 29(1):9-16.
|
[9] |
姜爱兰, 王信海, 丁辰龙, 等. 宽体金线蛭5个地理群体遗传多样性的RAPD分析及生长指标的比较研究[J]. 江西农业学报, 2018(10):7-12.
|
[10] |
熊良伟, 王帅兵, 岳丽佳, 等. 宽体金线蛭基因组SSR序列特征分析及其分子标记开发[J]. 南方农业学报, 2018, 49(11):2298-2303.
|
[11] |
LIU F, SHI H, GUO Q, et al. Isolation and characterization of microsatellite loci for the analysis of genetic diversity in Whitmania pigra[J]. Biochemical systematics and ecology, 2013, 51:207-214.
|
[12] |
滕爽爽, 胡高宇, 范建勋, 等. 缢蛏5个群体遗传多样性和遗传分化的SNP分析[J]. 水生生物学报, 2021, 45(4):861-870.
|
[13] |
GANAL M W, ALTMANN T, DER M S R. SNP identification in crop plants[J]. Current opinion in plant biology, 2009, 12(2):211-217.
doi: 10.1016/j.pbi.2008.12.009
pmid: 19186095
|
[14] |
LIU C Z, WANG X, XIANG J H, et al. EST-derived SNP discovery and selective pressure analysis in Pacific white shrimp (Litopenaeus vannamei)[J]. Chinese journal of oceanology and limnology, 2012, 30(5):713-723.
|
[15] |
李梓榕, 袁雄, 陈叶, 等. 基于全基因组SNP高效鉴定水稻种质资源并构建指纹图谱[J]. 分子植物育种, 2020, 18(18):6050-6057.
|
[16] |
NYMAN S, DUCHEMIN S I, DE KONING D J, et al. Genome-wide association study of normal and atypical progesterone profiles in Holstein-Friesian dairy cows[J]. Journal of dairy science, 2019, 102(4):3204-3215.
doi: S0022-0302(19)30165-1
pmid: 30799107
|
[17] |
EWING B, GREEN P. Base-calling of automated sequencer traces using phred. II. Error probabilities[J]. Genome research, 1998, 8(3):186-194.
pmid: 9521922
|
[18] |
YAMAZAKI D, CHIBA S. Comparing the genetic diversity and population structure of sister marine snails having contrasting habitat specificity[J]. Molecular biology reports, 2022, 49(1):393-401.
|
[19] |
JIA Y, LIU X. Diversification of the aquaporin family in geographical isolated oyster species promote the adaptability to dynamic environments[J]. BMC genomics, 2022, 23(1):211-230.
|
[20] |
ROUSSET F. Genetic differentiation and estimation of gene flow from F-statistics under isolation by distance[J]. Genetics, 1997, 145(4):1219-1228.
doi: 10.1093/genetics/145.4.1219
pmid: 9093870
|
[21] |
SHAKLEE J B, TAMARU C S, WAPLES R S. Speciation and evolution of marine fishes studied by the electrophoretic analysis of proteins[J]. Pacific science, 1982, 36(2):141-157.
|
[22] |
刘飞. 蚂蟥生长繁殖习性及其遗传多样性分子标记研究[D]. 南京: 南京农业大学, 2008.
|
[23] |
GRANT W S, BOWEN B W, O'BRIEN S J. Shallow population histories in deep evolutionary lineages of marine fishes; insights from sardines and anchovies and lessons for conservation[J]. The journal of heredity, 1998, 89(5):415-426.
|
[24] |
BOTSTEIN D, WHITE R L, SKOLNICK M, et al. Construction of a genetic linkage map in man using restriction fragment length polymorphisms[J]. American journal of human genetics, 1980, 32(3):314-331.
pmid: 6247908
|
[25] |
张树苗, 田恒玖, 李夷平, 等. 基于简化基因组测序的麋鹿遗传资源多样性及种群结构分析[J]. 野生动物学报, 2023, 44(4):788-797.
|
[26] |
TAJIMA F. Statistical method for testing the neutral mutation hypothesis by DNA polymorphism[J]. Genetics, 1989, 123(3):585-595.
doi: 10.1093/genetics/123.3.585
pmid: 2513255
|