[1]赵军良, 梁爱华. 高等植物细胞质雄性不育分子机理的研究进展[J]. 西北植物学报, 2004, 24(8):1543-1546.
[2]邹学校, 马艳青, 戴雄泽, 等. 辣椒胞质雄性不育杂交种规模制种技术[J]. 中国蔬菜, 2008, (5):45-47.
[3]陈斌, 耿三省, 张晓芬. 辣椒雄性不育杂交种规模化制种技术探讨[J]. 辣椒杂志, 2010, 3:24-27.
[4]魏兵强, 王兰兰, 陈灵芝, 等. 辣椒不育系制种与可育系制种的比较研究[J]. 长江蔬菜, 2011, 24:10-11.
[5]Peterson PA. Cytoplasmically inherited male sterility in Capsicum[J]. Am Nat, 1958, 92:111-119.
[6]吴鹤鸣, 佘建明, 赵华农, 等. 羊角椒雄性不育系与保持系的细胞学观察[J]. 江苏农业学报, 1988, 4(2):35-38.
[7]耿三省, 王志源, 蒋健箴, 等. 辣椒雄性不育系小孢子发生的细胞学观察[J]. 园艺学报, 1994, 21(2):165-169.
[8]逯红栋, 巩振辉, 王晓敏, 黄炜, 等. 辣椒雄性不育材料小孢子发生的细胞形态学观察[J]. 西北植物学报, 2006, 26:1842-1845.
[9]彭婧, 巩振辉, 黄炜, 等. 辣椒雄性不育材料 H9A 小孢子败育机理[J]. 植物学报, 2010, 45(1):44-51.
[10]张玲玲, 张晓芬, 陈斌, 等. 辣椒细胞质雄性不育系 FS1030A小孢子发生的细胞形态学观察[J]. 华北农学报, 2012, 27(5):122-126.
[11]何长征, 刘志敏, 熊兴耀, 等. 辣椒细胞质雄性不育系 9704A 花药发育的细胞学观察[J]. 园艺学报, 2008, 35:521-528.
[12]王兰兰, 王晓林, 魏兵强, 等. 辣椒雄性不育系及保持系小孢子发育的细胞系比较[J]. 西北农业学报, 2015, 24(1):115-118
[13]Hirose T, Fujimc Y. A new male sterility pepper[J]. Hort Science, 1975, 10(3):314.
[14]石太渊, 印东生, 胡迎雪. 辣椒雄性不育系小孢子发生的细胞学形态学及减数分裂研究[J]. 辽宁农业科学, 1999, (6):7-10.
[15]王述彬, 罗向东, 戴亮芳, 等. 辣(甜)椒细胞质雄性不育系减数分裂和雄配子发生过程[J]. 园艺学报, 2004, 31:807-810.
[16]李雪峰, 梁成亮. 杂交辣椒制种技术研究及应用现状[J]. 湖南农业科学, 2012, 22:20-22.
[17]李莹莹, 魏佑营, 张瑞华, 等. 辣椒雄性不育系与可育系小孢子发生的细胞学观察[J]. 植物研究, 2006, 26(4):411-415.
[18]王永勤, 曹家树, 虞慧芳, 等. 白菜核雄性不育两用系生理生化特性的分析[J]. 园艺学报, 2003, 30(2):212-214.
[19]Villarreal F, Martín V, Colaneri A, et al. Ectopic expression of mitochondrial gamma carbonic anhydrase 2 causes male sterility by anther indehiscence[J]. Plant Mol Biol, 2009, 70(4):471-485.
[20]邓明华, 文锦芬, 邹学校, 等. 辣椒核质互作雄性不育系与保持系呼吸速率研究[J]. 云南农业大学学报, 2009, 24(1):22-25.
[21]邓明华, 邹学校, 周群初, 等. 辣椒细胞质雄性不育系与保持系生化特性研究[J]. 湖南农业大学学报:自然科学版, 2002, 28(6):492-294.
[22]逯红栋, 巩振辉, 黄炜, 等. 9个辣椒雄性不育材料花蕾生理生化特性研究[J]. 西北植物学报, 2006, 26:832-835.
[23]Deng MH, Wen JF, Huo JL, et al. Relationship of metabolism of reactive oxygen species with cytoplasmic male sterility in pepper(Capsicum annuum L. )[J]. Scientia Horticulturae, doi:10. 1016/j. scienta. 2011. 10. 027
[24]王晓林, 王兰兰, 陈灵芝, 等. 辣椒胞质雄性不育系与保持系生理生化特性研究[J]. 甘肃农业大学学报, 2013, 6:64-67.
[25]高夕全, 张子学, 夏凯, 等. 雄性不育辣椒中几种内源植物激素的含量化(简报)[J]. 植物生理学通迅, 2001, 37(1):31-32.
[26]解海岩, 蒋培东, 王晓玲, 等. 棉花细胞质雄性不育花药败育过程中内源激素的变化[J]. 作物学报, 2006, 32(7):1094-1096.
[27]沈火林, 乔志霞, 安岩. 辣椒胞质雄性不育系和保持系内源激素含量的比较[J]. 西北植物学报, 2008, 28(9):1751-1756.
[28]Hanson MR, Bentolila S. Interactions of mitochondrial and nuclear genes that affect male gametophyte development[J]. Plant Cell, 2004, 16(Suppl):154-169.
[29]Chase CD. Cytoplasmicmal esterility:a window to the world of plant mitochondrial- nuclear interactions[J]. Trends Genet, 2006, 23:81-90.
[30]Dieterich JH, Braun HP, Schmitz UK. Alloplasmic male sterility in Brassica napus(CMS-Tournefortii-Stiewe . )is associated with a special gene arrangement around a novel atp 9 gene[J]. Mol Genet Genomics, 2003, 269(6):723 -731.
[31]Peng XJ, Li FH, Li SQ. Expression of a mitochondrial gene orfH 79 from the CMS-HongLian rice inhibits Saccharomyces cerevisiae growth and causes excessive ROS accumulation and decrease in ATP[J]. Biotechnol Lett, 2009, 31:409-414.
[32]Kim DH, Kang JG, Kim BD. Isolation and characterization of the cytoplasmic male sterility-associated orf456 gene of chili pepper(Capsicum annuum L. )[J]. Plant Mol Biol, 2007, 63:519-532.
[33]Kim DH, Kim BD. The organization of mitochondrial atp6 gene region in male fertile and CMS lines of pepper(Capsicum annuum L. )[J]. Curr Genet, 2006, 49:59-67.
[34]Gulyas G, Shin Y, Kim H, et al. Altered transcript reveals an orf507 sterility-related Gene in chili pepper(Capsicum annuum L.)[J]. Plant Mol Biol Rep, 2010, 28:605-612.
[35]Kim DH, Kim BD. Development of SCAR markers for early identification of cytoplasmic male sterility genotype in chili pepper(Capsicum annuum L. )[J]. Mol Cell, 2005, 20:416-422.
[36]Jo YD, Jeong HJ, Kang BC. Development of a CMS specific marker based on chloroplast-derived mitochondual seguence in pepper[J]. Plant Biotechnol Rep, 2009, 3:309-315.
[37]魏兵强, 王兰兰, 陈灵芝. 辣椒胞质雄性不育基因的分子标记[J]. 西北农业学报, 2010, 19(10):166, 168-173.
[38]Novak F, Betlach J, Dubovsky J. Cytoplasmic male sterility in sweet pepper(Capsicum annuum L. ). I. Phenotype and inheritance of male sterile character[J]. Z Pflanzenzucht, 1971, 65:129-140.
[39]Wang LH, Zhang BX, Daubeze AM, et al. Genetics of fertility restoration in cytoplasmic male sterile pepper[J]. Agricultural Sciences in China, 2006, 5(3):188-195.
[40]Shifriss C. Male sterility in pepper(Capsicum annuum L. )[J]. Euphytica, 1997, 93:83-88.
[41]魏兵强, 王兰兰, 陈灵芝, 等. 辣椒胞质雄性不育恢复性的主基因+多基因混合遗传分析[J]. 园艺学报, 2013, 40(11):2263-2268.
[42]Cui XQ, Wise RP, Schnable PS. The rf2 nuclear restorer gene of male-sterile T-cytoplasm maize[J]. Science, 1996, 272:1334-1336.
[43]Desloire S, Gherbi H, Laloui W, et al. Identification of the fertility restoration locus, Rfo, in radish, as a member of the pentatricopeptiderepeat protein family[J]. EMBO Rep, 2003, 4:588-594.
[44]Bentolila S, Hanson MR. Identification of a BIBAC clone that co-segregates with the petunia Restorer of fertility(Rf)gene[J]. Mol Gen Genet, 2001, 266:223-230.
[45]Brown GG, Formanova N, Jin H, et al. The radish Rfo restorer gene of Ogura cytoplasmic male sterility encodes a protein with multiple pentatricopeptide repeats[J]. Plant J, 2003, 35, 262-272.
[46]Komori T, Ohta S, Murai N, et al. Map-based cloning of a fertility restorer gene, Rf-1, in rice(Oryza sativa L. )[J]. Plant J, 2004, 10:1046-1056.
[47]Small ID, Peeters N. The PPR motif—a TPR related motif prevalent in plant organellar proteins[J]. Trends Biochem Sci, 2000, 25:46-47.
[48]Hu J, Wang K, Huang WC. The rice pentatricopeptide repeat protein RF5 restores fertility in Hong-Lian cytoplasmic male-sterile lines via a complex with the glycine-rich protein GRP162[J]. The Plant Cell January, 2012, 24(1):109-122.
[49]Zhang BX, Huang SW, Yang GM, et al. Two RAPD markers linked to a major fertility restorer gene in pepper[J]. Euphytica, 2000, 113:155-161.
[50]Min WK, Lim H, Lee YP, et al. Identification of a third haplotype of the sequence linked to the Restorer-of-fertility(Rf)gene and its implications for male-sterility phenotypes in peppers(Capsicum annuum L. )[J]. Mol Cells, 2008, 25:20-29.
[51]Kumar S, Singh V, Singh M, et al. Genetic and distribution of fertility restoration associated RAPD markers in inbreds of pepper(Capsicum annuum L. )[J]. Scientia Horticulturae, 2007, 111:197-202.
[52]Kim DS, Kim DH, Yoo JH, et al. Cleaved amplified polymorphic sequence and amplified fragment length polymorphism markers linked to the fertility restorer gene in chili pepper(Capsicum annuum L. )[J]. Mol Cells, 2006, 21:135-140.
[53]Gulyas G, Pakozdi K, Lee JS, et al. Analysis of fertility restoration by using cytoplasmic male-sterile red pepper(Capsicum annuum L.)lines[J]. Breed Sci, 2006, 56:331-334.
[54]Lee J, Yoon JB, Park HG. A CAPS marker associated with the partial restoration of cytoplasmic male sterility in chili pepper(Capsicum annuum L. )[J]. Mol Breed, 2008, 21:95-104.
[55]Lee J, Yoon JB, Park HG. Linkage analysis between the partial restoration(pr)and the restorer-of-fertility(Rf)loci in pepper cytoplasmic male sterility[J]. Theor Appl Genet, 2008, 117:383-389.
[56]郭爽, 沈火林, 杨文才, 等. 利用抑制消减杂交技术分离辣椒细胞质雄性不育育性恢复相关EST[J]. 园艺学报, 2009, 36(10):1443-1449.
[57]Wang LH, Zhang BX, Lefebvre V, et al. QTL analysis of fertility restoration in cytoplasmic male sterile pepper[J]. Theor Appl Genet, 2004, 109:1058-1063.
[58]Jo YD, Kim YM, Park MN, et al. Development and evaluation of broadly applicable markers for Restorer-of-fertility(Rf)in pepper[J]. Mol Breed, 2010, 25:187-201.
[59]Kim S, Park M, Yeom SI, et al. Genome sequence of the hot pepper provides insights into the evolution of pungency in Capsicum species[J]. Nature genetics, 2014, doi:10. 1038/ng. 2877.
[60]Qin C, Yu CS, Shen YO, et al. Whole-genome sequencing of cultivated and wild peppers provides insights into Capsicum domestication and specialization[J]. PNAS, 2014, 111(14):5135-5140. |