Citation: | XIAO W Y, ZHOU X Y, REN H L, et al. Characteristics of SSRs in Zicaitai Mitochondrial Genome [J]. Fujian Journal of Agricultural Sciences,2024,39(1):49−56 doi: 10.19303/j.issn.1008-0384.2024.01.007 |
[1] |
聂启军, 李金泉, 董斌峰, 等. 紫菜薹名优品种: 洪山菜薹 [J]. 湖北农业科学, 2020, 59(22):133−135.
NIE Q J, LI J Q, DONG B F, et al. A famous variety of purple Caitai—Hongshan Caitai [J]. Hubei Agricultural Sciences , 2020, 59(22): 133−135. (in Chinese)
|
[2] |
邝敏杰, 齐敏玉, 何静仁, 等. 紫菜薹花色苷组分鉴定及其稳定性和抗氧化性 [J]. 中国农业科学, 2014, 47(20):4067−4077.
KUANG M J, QI M Y, HE J R, et al. Identification of anthocyanins in Brassica campestris L. and their stability and antioxidant activity [J]. Scientia Agricultura Sinica , 2014, 47(20): 4067−4077. (in Chinese)
|
[3] |
ZHANG X, ZHANG K, WU J, et al. QTL-seq and sequence assembly rapidly mapped the gene BrMYBL2.1 for the purple trait in Brassica rapa [J]. Scientific Reports , 2020, 10: 2328. doi: 10.1038/s41598-020-58916-5
|
[4] |
LI G H, CHEN H C, LIU J L, et al. A high-density genetic map developed by specific-locus amplified fragment (SLAF) sequencing and identification of a locus controlling anthocyanin pigmentation in stalk of Zicaitai ( Brassica rapa L. ssp. chinensis var. purpurea) [J]. BMC Genomics , 2019, 20(1): 343. doi: 10.1186/s12864-019-5693-2
|
[5] |
吴朝林, 陈文超. 中国紫菜薹地方品种初步研究 [J]. 作物品种资源, 1997, (3):8−10.
WU (C /Z)L, CHEN W C. Preliminary study on local varieties of Chinese purple flowering Chinese cabbage [J]. China Seed Industry , 1997(3): 8−10. (in Chinese)
|
[6] |
唐向民, 杨守臻, 陈怀珠, 等. 栽培大豆和野生大豆线粒体基因组密码子使用偏性的比较分析 [J]. 广西植物, 2020, 40(7):926−934.
TANG X M, YANG S Z, CHEN H Z, et al. Comparative analysis on codon usage bias in mitogenome of two species in genus Glycine [J]. Guihaia , 2020, 40(7): 926−934. (in Chinese)
|
[7] |
王建军, 徐园园, 刘同坤, 等. 紫菜薹BrbHLH49基因克隆与功能分析 [J]. 南京农业大学学报, 2021, 44(3):421−427.
WANG J J, XU Y Y, LIU T K, et al. Cloning and function analysis of BrbHLH49 gene in purple tsai-Tai [J]. Journal of Nanjing Agricultural University , 2021, 44(3): 421−427. (in Chinese)
|
[8] |
郭宁, 郑姝宁, 武剑, 等. 紫菜薹、紫色芜菁和紫色白菜花青苷分析 [J]. 园艺学报, 2014, 41(8):1707−1715.
GUO N, ZHENG S N, WU J, et al. The anthocyanin metabolic profiling analysis of three purple Brassica rapa vegetables [J]. Acta Horticulturae Sinica , 2014, 41(8): 1707−1715. (in Chinese)
|
[9] |
姚满昌. 紫菜薹: 小青菜: 水稻高效栽培模式 [J]. 长江蔬菜, 2017, (23):32−33.
YAO M C. Efficient cultivation model of purple flowering cabbage-small vegetables-rice [J]. Journal of Changjiang Vegetables , 2017(23): 32−33. (in Chinese)
|
[10] |
郑海涛, 吴平安, 邓正春, 等. 富硒紫菜薹高产栽培关键技术 [J]. 湖南农业科学, 2012, (24):29−30.
ZHENG H T, WU P A, DENG Z C, et al. Key techniques for high-yield cultivation of selenium-enriched purple flowering cabbage [J]. Hunan Agricultural Sciences , 2012(24): 29−30. (in Chinese)
|
[11] |
朱红芳, 李晓锋, 奚丹丹, 等. 优质紫菜薹新品系“申薹紫仙” 的选育 [J]. 上海农业学报, 2021, 37(5):35−38.
ZHU H F, LI X F, XI D D, et al. Breeding of a new high quality purple-Caitai “Shentaizixian” [J]. Acta Agriculturae Shanghai , 2021, 37(5): 35−38. (in Chinese)
|
[12] |
曹艳会. 紫菜薹雄性不育杂交制种技术 [J]. 种子科技, 2011, 29(10):30−31. doi: 10.3969/j.issn.1005-2690.2011.10.019
CAO Y H. Hybrid seed production techniques of male sterility in purple flowering Chinese flowering Chinese cabbage [J]. Seed Science & Technology , 2011, 29(10): 30−31. (in Chinese) doi: 10.3969/j.issn.1005-2690.2011.10.019
|
[13] |
白占兵, 丁茁荑, 李雪峰, 等. 紫菜薹总DNA的快速提取与SSR分子标记鉴定 [J]. 中国农学通报, 2009, 25(14):63−66.
BAI Z B, DING Z Y, LI X F, et al. Rapid extraction total DNA from purple tsai-Tai and characterization with SSR molecular marker [J]. Chinese Agricultural Science Bulletin , 2009, 25(14): 63−66. (in Chinese)
|
[14] |
DING Z Y, BAI Z B, WU Y F, et al. Study on genetic relationship of purple tsai-Tai germplasms with SSR markers [J]. Agricultural Science & Technology , 2012, 13(8): 1664−1669.
|
[15] |
周晓波, 白占兵, 丁茁荑, 等. 利用SSR分析红菜苔的遗传多样性 [J]. 植物遗传资源学报, 2012, 13(6):1088−1092.
ZHOU X B, BAI Z B, DING Z Y, et al. Genetic diversity of tsai-Tai germplasm revealed by SSR markers [J]. Journal of Plant Genetic Resources , 2012, 13(6): 1088−1092. (in Chinese)
|
[16] |
戴希刚, 郭瑞, 陶敏, 等. 红菜薹种质资源遗传多样性ISSR分析 [J]. 江西农业大学学报, 2019, 41(1):154−162.
DAI X G, GUO R, TAO M, et al. ISSR analysis of genetic diversity of germplasm resources in purple flowering stalk [J]. Acta Agriculturae Universitatis Jiangxiensis , 2019, 41(1): 154−162. (in Chinese)
|
[17] |
张婉, 崔继哲, 于拴仓, 等. 白菜品种的SSR指纹图谱数据库的构建 [J]. 分子植物育种, 2013, 11(6):843−857.
ZHANG W, CUI J Z, YU S C, et al. Construction o f SSR fingerprint database of Chinese cabbage varieties( Brassica campestris L. ssp. pekinensis) [J]. Molecular Plant Breeding , 2013, 11(6): 843−857. (in Chinese)
|
[18] |
李光光, 黄红弟, 张华, 等. 利用SSR分子标记研究白菜类亚种资源的遗传多样性 [J]. 热带作物学报, 2017, 38(7):1316−1322.
LI G G, HUANG H D, ZHANG H, et al. Genetic diversity analysis in Chinese cabbage[ssp. chinensis(L. ) makino]resources based on SSR molecular markers [J]. Chinese Journal of Tropical Crops , 2017, 38(7): 1316−1322. (in Chinese)
|
[19] |
王晶, 闫国华, 张晓明, 等. 甜樱桃高密度连锁图谱的构建 [J]. 果树学报, 2014, 31(S1):29−35.
WANG J, YAN G H, ZHANG X M, et al. Construction of high density linkage map of sweet cherry [J]. Journal of Fruit Science , 2014, 31(S1): 29−35. (in Chinese)
|
[20] |
马猛, 闫会, 高闰飞, 等. 紫甘薯SSR标记遗传图谱构建与重要农艺性状QTL定位 [J]. 作物学报, 2021, 47(11):2147−2162. doi: 10.3724/SP.J.1006.2021.04271
MA M, YAN H, GAO R F, et al. Construction linkage maps and identification of quantitative trait loci associated with important agronomic traits in purple-fleshed sweetpotato [J]. Acta Agronomica Sinica , 2021, 47(11): 2147−2162. (in Chinese) doi: 10.3724/SP.J.1006.2021.04271
|
[21] |
REN Y J. The complete mitochondrial genome of turnip ( Brassica rapa ssp. rapa) [J]. Mitochondrial DNA Part B , 2021, 6(4): 1566−1567. doi: 10.1080/23802359.2021.1917314
|
[22] |
CHANG S X, YANG T T, DU T Q, et al. Mitochondrial genome sequencing helps show the evolutionary mechanism of mitochondrial genome formation in Brassica [J]. BMC Genomics , 2011, 12: 497. doi: 10.1186/1471-2164-12-497
|
[23] |
LI P R, ZHANG D S, SU T B, et al. Genome-wide analysis of mRNA and lncRNA expression and mitochondrial genome sequencing provide insights into the mechanisms underlying a novel cytoplasmic male sterility system, BVRC-CMS96, in Brassicarapa [J]. Theoretical and Applied Genetics , 2020, 133(7): 2157−2170. doi: 10.1007/s00122-020-03587-z
|
[24] |
HANDA H. The complete nucleotide sequence and RNA editing content of the mitochondrial genome of rapeseed ( Brassica napus L. ): Comparative analysis of the mitochondrial genomes of rapeseed and Arabidopsis thaliana [J]. Nucleic Acids Research , 2003, 31(20): 5907−5916. doi: 10.1093/nar/gkg795
|
[25] |
BEIER S, THIEL T, MÜNCH T, et al. MISA-web: A web server for microsatellite prediction [J]. Bioinformatics, 2017, 33(16): 2583−2585. doi: 10.1093/bioinformatics/btx198
|
[26] |
邱炳发, 梁馨元, 王建忠, 等. 大花序桉基因组SSR的分布特征及序列分析 [J]. 南方农业学报, 2021, 52(10):2744−2750. doi: 10.3969/j.issn.2095-1191.2021.10.014
QIU B F, LIANG X Y, WANG J Z, et al. Characteristics and analysis of simple sequence repeats(SSR) in Eucalyptus cloeziana genome [J]. Journal of Southern Agriculture , 2021, 52(10): 2744−2750. (in Chinese) doi: 10.3969/j.issn.2095-1191.2021.10.014
|
[27] |
李新玉, 王希胤. 重复序列对植物基因组大小进化的影响 [J]. 华北理工大学学报(自然科学版), 2021, 43(4):98−107.
LI X Y, WANG X Y. Effects of repetitive sequences to evolution of plant genome size [J]. Journal of North China University of Science and Technology (Natural Science Edition) , 2021, 43(4): 98−107. (in Chinese)
|
[28] |
ZHAO C X, ZHU R L, LIU Y. Simple sequence repeats in bryophyte mitochondrial genomes [J]. Mitochondrial DNA Part A, DNA Mapping, Sequencing, and Analysis , 2016, 27(1): 191−197.
|
[29] |
SHEN J S, LI X Q, LI M Z, et al. Characterization, comparative phylogenetic, and gene transfer analyses of organelle genomes of Rhododendron × pulchrum [J]. Frontiers in Plant Science , 2022, 13: 969765. doi: 10.3389/fpls.2022.969765
|
[30] |
VARSHNEY R K, GRANER A, SORRELLS M E. Genic microsatellite markers in plants: Features and applications [J]. Trends in Biotechnology , 2005, 23(1): 48−55. doi: 10.1016/j.tibtech.2004.11.005
|
[31] |
BIET E, SUN J, DUTREIX M. Conserved sequence preference in DNA binding among recombination proteins: An effect of ssDNA secondary structure [J]. Nucleic Acids Research , 1999, 27(2): 596−600. doi: 10.1093/nar/27.2.596
|
[32] |
周勃, 任海龙, 张龑, 等. 金花菜与苜蓿属主要物种基因组SSR分布特征的比较分析 [J]. 新疆农业科学, 2022, 59(9):2217−2223.
ZHOU B, REN H L, ZHANG Y, et al. Characteristics and analysis of simple sequence repeats(SSR) in Medicago polymorpha and main medicagospecies genome [J]. Xinjiang Agricultural Sciences , 2022, 59(9): 2217−2223. (in Chinese)
|
[33] |
LIU G , XIE Y J, ZHANG D Q, et al. Analysis of SSR loci and development of SSR primers in Eucalyptus [J]. Journal of Forestry Research, 2018, 29(2): 273−282.
|
[34] |
严佳文, 解璞, 袁启凤, 等. 紫果西番莲基因组调查及SSR特征分析 [J]. 分子植物育种, 2020, 18(24):8171−8177.
YAN J W, XIE P, YUAN Q F, et al. Genome survey and characteristic analysis of SSR in Passiflora edulis Sims [J]. Molecular Plant Breeding , 2020, 18(24): 8171−8177. (in Chinese)
|
[35] |
奚丹丹, 高璐, 李晓锋, 等. 基于转录组测序的菜薹SSR分子标记开发及初步验证[J/OL]. 分子植物育种, 1-8[2024-01-16] http://kns.cnki.net/kcms/detail/46.1068.S.20220916.1333.050.html.
XI D D, GAO L, LI X F, et al. Development and Identification of SSR Molecular Markers Based on Transcriptome Sequencing of Caitai[J/OL]. Molecular Plant Breeding, 1-8[2024-01-16] http://kns.cnki.net/kcms/detail/46.1068.S.20220916.1333.050.html.(in Chinese)
|