[1] 钟丽凡, 胡芸青, 王利, 等. 怀化碣滩茶产业发展调研与思考[J]. 湖南农业, 2024(8): 34-35. Zhong L F, Hu Y Q, Wang L, et al.Research and reflection on the development of Jietan tea industry in Huaihua[J]. Hunan Agriculture, 2024(08): 34-35. [2] The International SNP Map Working Group. A map of human genome sequence variation containing 1.42 million single nucleotide polymorphisms[J]. Nature, 2001, 409(6822): 928-933. [3] Turner T L, Bourne E C, Wettberg E V, et al.Population resequencing reveals local adaptation of Arabidopsis lyrata to serpentine soils[J]. Nature Genetics, 2010, 42: 260-263. doi: 10.1038/ng.515. [4] 唐立群, 肖层林, 王伟平. SNP分子标记的研究及其应用进展[J]. 中国农学通报, 2012, 28(12): 154-158. Tang L Q, Xiao C L, Wang W P.Research and application progress of SNP molecular markers[J]. Chinese Agricultural Science Bulletin, 2012, 28(12): 154-158. [5] Lin Y, Yu W T, Zhou L, et al.Genetic diversity of oolong tea (Camellia sinensis) germplasms based on the nanofluidic array of single-nucleotide polymorphism (SNP) markers[J]. Tree Genetics & Genomes, 2019, 16: 3. doi: 10.1007/s11295-019-1392-z. [6] 罗祥宗, 胡云飞, 吴淋慧, 等. 茶树叶绿体基因组SNP分子标记的初步研究[J]. 茶叶科学, 2022, 42(6): 768-778. Luo X Z, Hu Y F, Wu L H, et al.Preliminary study on SNP molecular markers in tea plant chloroplast genomes[J]. Journal of Tea Science, 2022, 42(6): 768-778. [1] Yi L, Yu W T, Cai C P, et al.Rapid varietal authentication of oolong tea products by microfluidic-based SNP genotyping[J]. Food Research International, 2022, 162(PartA): 111970. doi: 10.1016/j.foodres.2022.111970. [7] 钟丽凡. 基于ISSR分子标记的湖南本土牡丹种质资源亲缘关系研究[D]. 长沙: 湖南农业大学, 2018. Zhong L F.Study on the genetic relationship among native peony germplasm in Hunan based on ISSR molecular markers [D]. Changsha: Hunan Agricultural University, 2018. [8] Cock P J A, Fields C J, Goto N, et al. The sanger FASTQ file format for sequences with quality scores, and the Solexa/Illumina FASTQ variants[J]. Nucleic Acids Research, 2010, 38(6): 1767-1771. [9] Xia E H, Li F F, Tong W, et al.Tea plant information archive: a comprehensive genomics and bioinformatics platform for tea plant[J]. Plant Biotechnology Journal, 2019, 17(10): 1938-1953. [10] 马蕊, 杨颖香, 黄菡. 秋茶特异性品种筛选与利用[J]. 广西职业技术学院学报, 2024, 17(2): 55-61. Ma R, Yang Y X, Huang H.Screening and utilization of specific varieties for autumn tea[J]. Journal of Guangxi Vocational and Technical College, 2024, 17(2): 55-61 [11] 杨春, 乔大河, 郭燕, 等. 115份贵州茶树资源氨基酸和茶氨酸分析与特异资源筛选[J]. 浙江农业学报, 2022, 34(7): 1351-1360. Yang C, Qiao D H, Guo Y, et al.Analysis into amino acids and theanine contents of 115 tea germplasms and special germplasm resource screening in Guizhou, China[J]. Journal of Zhejiang Agricultural Sciences, 2022, 34(7): 1351-1360. [12] 方开星, 姜晓辉, 秦丹丹, 等. 高氨基酸和高茶氨酸茶树资源筛选[J]. 核农学报, 2019, 33(9): 1724-1733. Fang K X, Jiang X H, Qin D D, et al.Selection of tea germplasm with high contents of amino acid and theanine[J]. Journal of Nuclear Agricultural Sciences, 2019, 33(9): 1724-1733. [13] 李泽宇. 海南茶树亲缘关系分析及特异种质资源筛选[D]. 杭州: 浙江大学, 2023. Li Z Y.Hainan tea plants phylogenetic analysis and specific germplasm resources selection [D]. Hangzhou: Zhejiang University, 2023. [14] 谢思艺. 基于简化基因组测序的福建省茶树起源演化与传播轨迹分析[D]. 福州: 福建农林大学, 2022. Xie S Y.Analysis of the evolutionary origin and spread trajectories of Camellia sinensis in Fujian Province based on simplified genome sequencing [D]. Fuzhou: Fujian Agriculture and Forestry University, 2022. [15] 张华莲. 基于表型、叶绿体DNA条形码和ISSRs的油茶品种遗传变异及亲缘关系研究[D]. 合肥: 安徽农业大学, 2021. Zhang H L.Genetic variation and relationships of oil tea varieties (Camellia spp.) based on phenotype, chloroplast DNA barcoding and ISSRs [D]. Hefei: Anhui Agricultural University, 2021. [16] 郭锐. 茶树不同花期自交不亲和性差异及其机理研究[D]. 合肥: 安徽农业大学, 2021. Guo R.Study on the difference and mechanism of self-incompatibility at different flowering stages in tea plant [D]. Hefei: Anhui Agricultural University, 2021. |