[1]郑淑娟, 白净. 世界油梨产销发展概况及前景[J]. 世界热带农业信息, 2011(11):6-9. [2]欧珍贵. 油梨的研究现状及在贵州地区的发展前景[J]. 林业科技开发, 2006, 20(3):11-13. [3] 中国科学院中国植物志编辑委员会. 中国植物志:第31卷[M]. 北京:科学出版社, 1982. [4]钱学射, 张卫明, 顾龚平, 等. 鳄梨资源的开发利用[J]. 中国野生植物资源, 2010, 29(5):23-25. [5] 陈海红. 油梨新品种的区域化表现及栽培技术研究[D]. 南宁:广西大学, 2006. [6] Litt M, Luty JA. A hypervariable microsatellite revealed by in vitro amplification of a dinucleotide repeat within the cardiac muscle actin gene[J]. Am J Hum Genet, 1989, 44:397-401. [7] Tautz D. Hyper variability of simple sequence as a general source for polymorphic DNA marker[J]. Nucleic Acids Search, 1989, 17(16):6463-6471. [8] Smeets AJM, Brunner HG, Ropers HH, et al. Use of variable simple sequence motifs as genetic markers:application to study of myotonic dystrophy[J]. Human Genetics, 1989, 83:245-251. [9] Weber JL, May PE. Abundant class of human DNA polymorphisms which can be typed using the polymerase chain reaction[J]. American Journal of Human Genetics, 1989, 44:388-396. [10] Hamada H, Petrino MG, Kakunaga T. A novel repeated element with Z-DNA-forming potential is widely found in evolutionarily diverse eukaryotic genomes[J]. Proc Nat Acad Sci USA, 1982, 79:6465-6469. [11]Stallings RL, Ford AF, Nelson D, et al. Evolution and distribution of(GT)n repetitive sequences in mammalian genomes[J]. Genomics, 1991, 10:807-815. [12]Weissenbach J, Gyapay G, et al. A second generation linkage map of the human genome[J]. Nature, 1992, 359:794-801. [13]Schmidt E, Heslop-Harrison JS. The physical and genomic organization of microsatellites in sugar beet[J]. Proceedings of the National Academy of Sciences of the United States of America, 1996, 93:8761-8765. [14] Roots EH, Baker RJ. Distribution and characterization of microsat-ellites in the emu(Dromaius novaehollandiae)genome[J]. Journal of Heredity, 2002, 93:100-106. [15] Song BH, Thomas MO. High genetic diversity and population diffe-rentiation in Boechera fecunda, a rare relative of Arabidopsis[J]. Molecular Ecology, 2007, 16:4079-4088. [16] Gong W, Gu L, Zhang DX. Low genetic diversity and high genetic divergence caused by inbreeding and geographical isolation in the populations of endangered species Loropetalum suhcordatum(Hamamelidaceae)endemic to China[J]. Conservation Genetics, 2010, 11:2281-2288. [17]张萌. 基于SSR分子标记的葡萄种质资源的遗传多样性分析及品种鉴定[D]. 南京:南京农业大学, 2012. [18]李丽, 徐立, 李志英, 等. 不同地理来源美丽鸡血藤遗传多样性的SSR分析[J]. 广东农业科学, 2013(22):156-160. [19]杨勇. 甘蓝型油菜遗传多样性分析及核心亲本的构建[D]. 武汉:华中农业大学, 2013. [20]Zhang Y, Mary KS, Bouton JH. Genome mapping of white clover(Trifolium repens L. )and comparative analysis within the Trifolieae using cross-species SSR markers[J]. Theoretical and Applied Genetics, 2007, 114:1367-1378. [21]Zraidia A, Stiftg G, Pachner M, et al. A consensus map for Cucurbita pepo[J]. Mol Breeding, 2007, 20(4):375-388. [22]文雁成, 王汉中, 沈金雄, 等. SRAP和SSR标记构建的甘蓝型油菜品种指纹图谱比较[J]. 中国油料作物学报, 2006, 28(3):233-239. [23]李鸿雁, 李志勇, 米福贵, 等. 利用微星标记鉴定扁蓿豆种质资源[J]. 华北农学报, 2008, 23(3):67-71. [24]王永强, 刘建光, 赵俊丽, 等. 利用SSR分子标记辅助棉花提纯选育的研究[J]. 分子植物育种, 2014, 12(3):492-498. [25] 周志成, 王惠林, 王贤磊, 等. SSR标记鉴定甜瓜品种“红月亮”种子纯度[J]. 中国瓜菜, 2014, 27(1):21-24. [26]曾莉娟, 郑成木. SSR技术及其应用[J]. 热带农业科学, 2001(3):56-59. [27]Furnier GR, Cummings MP, Clegg MT. Evolution of the avocados as revealed by DNA restriction fragment variation[J]. Journal of Heredity, 1990, 81(3):183-188. [28]Lavi U, Hillel J, Vainstein A, et al. Application of DNA fingerprints for identification and genetic analysis of avocado[J]. J Amer Soc Hort Sci, 1991, 116(6):1078-1081. [29]Mhameed S, Sharon D, Hillel J, et al. Level of heterozygosity and mode of inheritance of variable number of tandem repeat loci in avocado[J]. Journal of the American Society for Horticulturalence, 1996, 121(5):768-772. [30]Davis J, Henderson D, Kobayashi M, et al. Genealogical relationships among cultivated avocado as revealed through RFLP analysis[J]. Journal of Heredity, 1998, 89(4):319-323. [31]Fiedler J, Bufler G, Bangerth F. Genetic relationships of avocado(Persea americana Mill. )using RAPD markers[J]. Euphytica, 1998, 101:249-255. [32]Schnell RJ, Brown JS, Olano CT, et al. Evaluation of avocado germplasm using microsatellite markers[J]. Journal of the American Society for Horticulturalence, 2003, 128(6):881-889. [33]Rodriguez NN, Fuentes JL, Coto O, et al. Proc VI World Avocado Congress:Comparative study of polymorphism level, discrimination capacity and informativeness of AFLP, ISTR, SSR and Isoenzymes markers and agro-morphological traits in avocado[C]. Vi?a del Mar, Chile, 2007:76. [34]Alcaraz ML, Hormaza JI. Molecular characterization and genetic diversity in an avocado collection of cultivars and local Spanish genotypes using SSRs[J]. Hereditas, 2007, 144:244-253. [35]Sharon D, Cregan PB, Mhameed S, et al. An integrated genetic linkage map of avocado[J]. Theoretical & Applied Genetics, 1997, 95:911-921. [36]Viruel MA, Gross E, Barcelo-munoz A. Proc VI World Avocado Congress:Development of a linkage map with SSR and AFLP markers in avocado[C]. Vi?a del Mar, Chile, 2007:52. [37]Borrone JW, Brown JS, Tondo CL, et al. An EST-SSR-based linkage map for Persea Americana Mill. (avocado)[J]. Tree Genetics & Genomes, 2009, 5:553-560. [38]刘康德, 李建国, 彭世清, 等. 油梨基因组DNA的提取及RAPD分析[J]. 热带作物学报, 1999, 20(4):58-61. [39]张泰芳. 油梨(Persea americana)授粉的研究——微卫星技术(SSR)在油梨种群父本鉴定上的应用[D]. 儋州:华南热带农业大学, 2007. [40] Ashworth VETM, Kobayashi MC, De La Cruz M, et al. Microsatel-lite markers in avocado(Persea americana Mill. ):development of dinucleotide and trinucleotide markers[J]. Scientia Horticult-urae, 2004, 101(3):255-267. [41] 杨珺. 蝴蝶兰种植资源鉴定与评价[D]. 海口:海南大学, 2010. [42] 安娜, 郭宏波, 周铜水, 等. 党参基因组DNA提取、ISSR-PCR反应体系优化及引物筛选[J]. 植物研究, 2009, 29(3):346-351. [43] Dellaporta SL, Wood J, Hicks JB. A plant DNA minipreparation:version II[J]. Plant Mol Biol Rep, 1983, 1(4):19-21. [44]Moller EM, Bahnweg G, Sandermann H, et al. A simple and efficient protocol for isolation of high molecular weight DNA from filamentous fungi, fruit bodies, and infected plant tissues[J]. Nucleic Acids Research, 1992, 20(22):6115-6116. [45]Porebski S, Bailey LG, Bernard R. Modification of a CTAB DNA extraction protocol for plants containing high polysaccharide and polyphenol components[J]. Plant Molecular Biology Reporter, 1997, 15(1):8-15. [46]郑云柯, 胡翔宇, 宋希强, 等. 石解属植物基因组DNA提取方法的对比[J]. 热带生物学报, 2015, 6(2):148-152. [47] 谭晓风, 漆龙霖, 黄晓光, 等. 山茶属植物叶片的DNA抽提[J]. 中南林学院学报, 1999, 19(4):75-79. [48]陈析丰, 查笑君, 范文杰, 等. 山茶花叶片DNA提取及RAPD反应体系的研究[J]. 植物研究, 2007, 27(2):218-223. [49]徐虹, 郑敏, 章军, 等. 三种樟科植物的细胞总DNA 提取[J]. 云南植物研究, 2004, 26(4):451-457. [50]闫桂琴, 任鹰, 张变红, 等. 三种木本植物基因组DNA的提取及纯度检测[J]. 山西师范大学学报:自然科学版, 2004, 18(l):72-77. [51]姜同川. 正交试验设计[M]. 济南:山东科学技术出版社, 1985:1-71. [52]张冬梅, 杨娅, 沈熙环, 等. 油松SSR-PCR引物筛选及反应体系的建立[J]. 北京林业大学学报, 2007, 29(2):13-17. [53]谢文刚, 张新全, 彭燕, 等. 鸭茅SSR-PCR反应体系优化及引物筛选[J]. 分子植物育种, 2008, 6(2):381-386. [54]苏辉, 李志刚, 宋书宏. 正交设计优化大豆SSR-PCR反应体系及引物筛选[J]. 华北农学报, 2009, 24(2):99-102. [55]唐健民, 陈宗游, 韦霄, 等. 东兴金花茶SSR-PCR反应体系的优化及引物筛选[J]. 基因组学与应用生物学, 2014, 33(2):398-404. [56]房冬梅, 吕品, 侯建华. 油葵SSR-PCR反应体系的优化及引物筛选[J]. 中国农学通报, 2015, 31(12):205-209. [57]潘珍珍, 吴才君, 刘文睿, 等. 冬瓜SSR-PCR体系优化及引物筛选[J]. 分子植物育种, 2015, 13(4):898-902. [58]李亚慧, 黄丛林, 董然. 菊花SSR-PCR反应体系的建立和优化[J]. 北方园艺, 2012(13):127-131. |