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References

  • Ahmad, R., Struss, D. and Southwick, S.M. (2003) Development and characterization of microsatellite markers in Citrus. J. Am. Soc. Hort. Sci. 128, 584–590.

    CAS  Google Scholar 

  • Al-Khayri, J.M. and Al-Bahrany, A.M. (2001) In vitro micropropagation of Citrus aurantifolia (lime). Curr. Sci. 81(9), 1242–1246.

    CAS  Google Scholar 

  • Asins, M.J. (2002) Present and future of quantitative trait locus analysis in plant breeding. Plant Breed. 121, 281–291.

    Article  Google Scholar 

  • Bacchi, O. (1943) Cytological observations in citrus. III. Megasporogenesis, fertilization and polyembryony. Bot. Gaz. 105, 221–225.

    Article  Google Scholar 

  • Bain, J.M. (1958) Morphological, anatomical, and physiological changes in the developing fruit of the Valencia orange, Citrus sinensis (L.) Osbeck. Austr. J. Bot. 6, 1–24.

    Article  CAS  Google Scholar 

  • Banerji, I. (1954) Morphological and cytological studies on Citrus grandis Osbeck. Phytomorph. 4, 390–396.

    Google Scholar 

  • Berkeley, N.A., Roose, M.L., Krueger, R.R. and Federici, C.T..(2006) Assessing genetic diversity and population structure in a citrus germplasm collection utilizing simple sequence repeat markers (SSRs). Theor. Appl. Genet. 112, 1519–1531.

    Article  CAS  Google Scholar 

  • Barlass, M. and Skene, G.M. (1986) Citrus (Citrus species). In: Y.P.S. Bajaj (Ed.), Biotechnology in agriculture and forestry, Vol. 1: trees I. Springer, Berlin, pp. 207–219.

    Google Scholar 

  • Barrett, H.C. and Rhodes, A.M. (1976) A numerical taxonomic study of affinity relationships in cultivated Citrus and its close relatives. System. Bot. 1, 105–136.

    Google Scholar 

  • Ben-Hayyim, G. and Goffer, Y. (1989) Plantlet regeneration from a NaCl-selected salt-tolerant callus culture of Shamouti orange (Citrus sinensis L. Osbeck). Plant Cell Rep. 7, 680–683.

    CAS  Google Scholar 

  • Bernet, G.P., Breto, M.P. and Asins, M.J. (2004) Expressed sequence enrichment for candidate gene analysis of citrus tristeza virus resistance. Theor. Appl. Genet. 108, 592–602.

    Article  PubMed  CAS  Google Scholar 

  • Bevington, K.B. (1987) Scope for development of improved orange varieties. In: R.R. Walker (Ed.), Proc. citrus breeding workshop. CSIRO, Australia, pp. 20–29.

    Google Scholar 

  • Bowman, K.D., Wutscher, H.K., Kaplan, D.T. and Chaparro, J.X. (1999) A new hybrid citrus rootstock for Florida: US-852. Proc Fla. State Hort. Soc. 112, 54–55.

    Google Scholar 

  • Bret, M.P., Ruiz, C., Pina, J.A. and Asins, M.J. (2001) The diversification of Citrus clementina Hort. ex Tan., a vegetatively propagated crop species. Mol. Phylo. Evol. 21, 285–293.

    Article  CAS  Google Scholar 

  • Button, J. (1978) The effect of some carbohydrates on the growth and organization of Citrus ovular callus, Z. Pflanzenphysiol. 88, 61–68.

    CAS  Google Scholar 

  • Cai, Q., Guy, C.L. and Moore, G.A. (1996) Detection of cytosine methylation and mapping of a gene influencing cytosine methylation in the genome of Citrus. Genome 39, 235–242.

    Article  PubMed  CAS  Google Scholar 

  • Calovic, M., Viloria, Z., Nielsen, B., Gmitter Jr, F.G., Castle, W.S. and Grosser, J.W. (2003) Somatic embryogenesis from lemon styles and analysis of genetic stability in regenerated plants using RAPD and flow cytometry. Proc. Intl. Soc. Citriculture, pp. 131–134.

    Google Scholar 

  • Cameron, J.W. and Burnett, R.H. (1978) Use of sexual tetraploids seed parents for production of triploid citrus hybrids. Hort. Sci. 13, 167–169.

    Google Scholar 

  • Cameron, J.W. and Frost, H.B. (1968) Genetics, breeding and nucellar embryony. In: W. Reuther, L.D. Batchelor and H.J. Webber (Eds.), The citrus industry, Vol. 2. Univ. of California, Berkeley, California, pp. 86–126.

    Google Scholar 

  • Cameron, J.W. and Garber, M.J. (1968) Identical-twin hybrids of Citrus x Poncirus from strictly sexual seed parents. Am. J. Bot. 55, 199–205.

    Article  Google Scholar 

  • Cameron, J.W. and Soost, R.K. (1969) Citrus. In: F.R. Ferwerda and F. Wit (Eds.), Outlines of perennial crop breeding in the tropics. Wageningen: Veenman and Zonen, pp. 129–162.

    Google Scholar 

  • Cameron, J.W. and Soost, R.K. (1984) Citrus. In: N.W. Simmonds (Ed.), Evolution of crop plants. Logman, New York, pp. 261–264.

    Google Scholar 

  • Cameron, J.W., Soost, R.K. and Frost, H.B. (1965) Encore and Pixie-two new mandarin hybrids with unusually late seasons of use. Calif. Agr. Exp. Sta. Bul. 814, 8.

    Google Scholar 

  • Carimi, F., De Pasquale, F. and Crescimanno, F.G. (1995) Somatic embryogenesis in Citrus from styles culture. Plant Sci. 105, 81–86.

    Article  CAS  Google Scholar 

  • Carimi, F., Tortorici, M.C., De Pasquale, F. and Crescimanno, F.G. (1998) Somatic embryogenesis and plant regeneration from undeveloped ovules and stigma/style explants of sweet orange navel group [Citrus sinensis (L.) Osb.]. Plant Cell Tiss. Org. Cult. 54, 183–189.

    Article  Google Scholar 

  • Carimi, F., De Pasquale, F. and Crescimanno, F.G. (1999) Somatic embryogenesis and plant regeneration from pistil thin cell layers of Citrus. Plant Cell Rep. 18, 935–940.

    Google Scholar 

  • Cassin, J., Bourdeaut, B., Gougue, F., Furin, V., Gaillard, J.P., Le Bourdelles, J., Montigut, C. and Monevil, C. (1969) The influence of climate upon the blooming of citrus in tropical areas. In: H.D. Chapman (Ed.), Proc. Ist intl citrus symp, Vol. I. University of California, Riverside, California, pp. 315–323.

    Google Scholar 

  • Cavalcante-Alves, J.M., Pasqual, M., Dutra, L.F., Alves, G.P. and Finotti, D.R. (2003) In vitro culture of immature embryos from ‘Ponca’ mandarin fertilized by ‘Pera’ orange: Photoperiod. Proc. Intl. Soc. Citriculture 92–93.

    Google Scholar 

  • Cervera, M., Juarez, J., Navarro, A., Pina, J.A., Duran-Vila, N., Navarro, L. and Pena, L. (1998) Genetic transformation and regeneration of mature tissues of woody fruit plants bypassing the juvenile stage. Transgenic Res. 7, 51–59.

    Article  CAS  Google Scholar 

  • Cervera, M., Ortega, C., Navarro, A., Navarro, L. and Pena, L. (2000) Generation of transgenic citrus plants with the tolerance to salinity gene HAL2 from yeast. J. Hort. Soc. Biotech. 75, 26–30.

    CAS  Google Scholar 

  • Chaparro, J.X. (2003) USDA 77–19, an early ripening grapefruit hybrid. Proc. Intl. Soc. Citriculture 28

    Google Scholar 

  • Chaturvedi, H.C. and Mitra, G.C. (1974) A shift in morphogenetic pattern in citrus callus tissue during prolonged culture. Ann. Bot. 39, 683–687.

    Google Scholar 

  • Chaturvedi, H.C. and Sharma, A.K. (1985) Production of androgenic plants of Citrus aurantifolia. J. Plant Physiol. 119, 473–477.

    Article  Google Scholar 

  • Chen, C., Bowman, K.D., Choi, Y.A., Phat, D., Nageswara Rao, M., Huang, S., Soneji, J.R., McCollum, G. and Gmitter, F.G. Jr. (2008) EST-SSR genetic maps for Citrus sinensis and Poncirus trifoliata. Tree Genet. Genomes, 4, 1–10.

    Article  Google Scholar 

  • Chen, Z., Wang, M. and Liao, H. (1980) The induction of Citrus pollen plants in artificial media. Acta Genet. Sinica 7, 189–191.

    Google Scholar 

  • Cheng, F.S., Roose, M.L. (1995) Origin and inheritance of dwarfing by Citrus rootstock Poncirus trifoliata “Flying Dragon”. J. Am. Soc. Hort. Sci. 120, 286–291.

    Google Scholar 

  • Chiancone, B., Tassoni, A., Bagni, N. and Germana, M.A. (2006) Effect of polyamines on in vitro anther culture of Citrus clementina Hort. ex Tan. Plant Cell Tiss. Organ Cult. 87, 145–153.

    Article  CAS  Google Scholar 

  • Citrus and Date Crop Germplasm Committee (2004) www.ars.usda.gov/SP2UserFiles/Place/53103000/Crop_Vulnerability_2004.pdf

  • Costa, M.C.G., Otoni, W.C. and Moore, G.A. (2002) An evaluation of factors affecting the efficiency of Agrobacterium-mediated transformation of Citrus paradisi (macf.) and production of transgenic plants containing carotenoid biosynthetic genes. Plant Cell Rep. 21, 365–373.

    Article  CAS  Google Scholar 

  • Davenport, T.L. (1990) Citrus flowering. In: J. Janick (Ed.), Horticultural reviews. Timber Press, Portland, Oregon, pp. 245–248.

    Google Scholar 

  • Davies, F.S. and Albrigo, L.G. (1994) Citrus. CABI, Wallingford, UK.

    Google Scholar 

  • Deng, X.X. (2003) Citrus cultivars released during the past 10 years in China. Proc. Intl. Soc. Citriculture 37–38.

    Google Scholar 

  • Deng, Z. and Zhang, W.C. (1988) Mutagenic effects of EMS (ethylmethanesulphonate) on chromosomes of pollen mother cells in kumquat. China Citrus 17, 5–7.

    Google Scholar 

  • Deng, Z., Zhang, W.C. and Wan, S.Y. (1993) In vitro induction and protoplast plant regeneration from NaCl-tolerant lines in Citrus. Acta Hort. Sinica 20, 127–131.

    Google Scholar 

  • Deng, Z. and Gmitter, F.G., Jr. (2003) Cloning and characterization of receptor kinase class disease resistance gene candidates in Citrus. Theor. Appl. Genet. 108, 53–61.

    Article  PubMed  CAS  Google Scholar 

  • Deng, Z., Huang, S., Xiao, S. and Gmitter, F.G., Jr. (1997) Development and characterization of SCAR markers linked to the citrus tristeza virus resistance gene from Poncirus trifoliata. Genome 40, 697–704.

    Article  PubMed  CAS  Google Scholar 

  • Deng, Z., Huang, S., Ling, P., Chen, C., Yu, C., Weber, C.A., Moore, G.A., Gmitter, F.G., Jr. (2000) Cloning and characterization of the NBS-LRR class resistance-gene candidate sequence in citrus. Theor. Appl. Genet. 101, 814–822.

    Article  CAS  Google Scholar 

  • Deng, Z., Huang, S., Ling, P., Yu, C., Tao, Q., Chen, C., Wendell, M.K., Zhang, H.B., Gmitter, F.G., Jr. (2001) Fine genetic mapping and BAC contig development for the citrus tristeza virus resistance gene locus in Poncirus trifoliata (Raf.). Mol. Genet. Genom. 265, 739–747.

    Article  CAS  Google Scholar 

  • Dominguez, A., Guerri, J., Cambra, M., Navarro, L., Moreno, P. and Pena, L. (2000) Efficient production of transgenic citrus plants expressing the coat protein gene of citrus tristeza virus. Plant Cell Rep. 19, 427–433.

    Article  CAS  Google Scholar 

  • D’Onghia, A.M., Carimi, F., De Pasquale, F., Djelouah K., Martelli, G.P. (2003) Somatic embryogenesis from style culture: a new technique for the sanitization, conservation and safe exchange of citrus germplasm. Proc. Intl. Soc. Citriculture, 147–149.

    Google Scholar 

  • Durham, R.E., Liou, P.C., Gmitter, F.G., Jr. and Moore, G.A. (1992) Linkage of restriction fragment length polymorphisms and isozymes in Citrus. Theor. Appl. Genet. 84, 39–48.

    Article  CAS  Google Scholar 

  • Erickson, L.C. (1968) The general physiology of citrus. In: W. Reuther, L.D. Batchelor and H.J. Webber (Eds.), The citrus industry, Vol. 2. University of California, Berkeley, California, pp. 86–126.

    Google Scholar 

  • Erner, Y. (1989) Citrus fruit set: carbohydrate, hormone and leaf mineral relationships. In: C.J. Wright (Ed.), Manipulation of fruiting. Butterworth and Co, London, pp. 233–242.

    Google Scholar 

  • Esen, A. and Soost, R.K. (1971) Unexpected triploids in citrus: their origin, identification and possible use. J. Hered. 62, 329–333.

    Google Scholar 

  • Fagoaga, C., Lopez, C., de Mendoza, A.H., Moreno, P., Navarro, L., Flores, R. and Pena, L. (2006) Post-transcriptional gene silencing of the p23 silencing suppressor of Citrus tristeza virus confers resistance to the virus in transgenic Mexican lime. Plant Mol. Biol. 60, 153–165.

    Article  PubMed  CAS  Google Scholar 

  • Fang, D.Q. and Roose, M.L. (1997) Identification of closely related citrus cultivars with inter-simple sequence repeat markers. Theor Appl. Genet. 95, 408–417.

    Article  CAS  Google Scholar 

  • Fang, D.Q., Federici, C.T. and Roose, M.L. (1997) Development of molecular markers linked to a gene controlling fruit acidity in citrus. Genome 40, 841–849.

    Article  PubMed  CAS  Google Scholar 

  • Fann, J.Y., Kovarik, A., Hemleben, V., Tsirekidze, N.I. and Beridze, T.G. (2001) Molecular and structural evolution of Citrus satellite DNA. Theor. Appl. Genet. 103, 1068–1073.

    Article  CAS  Google Scholar 

  • Food and Agriculture Organization of the United Nations (2006) Developments in international citrus trade in 2004–2005 (www.fao.org/es/esc/en/20953/20990/highlight_28187en.html)

  • Forner, J.B., Forner-Giner, M.A. and Alcaide, A. (2003) Forner-Alcaide 5 and Forner-Alcaide 13: two new citrus rootstocks released in Spain. HortScience 38(4), 629–630.

    Google Scholar 

  • Frost, H.B. and Soost, R.K. (1968) Seed reproduction: development of gametes and embryos. In: W. Reuther, L.D. Batchelor and H.J. Webber (Eds.), The citrus industry, Vol. 2. University of California, Berkeley, California, pp. 817–913.

    Google Scholar 

  • Furr, J.R. (1964) New tangerines for the desert. Calif. Citrog. 49(7), 266.

    Google Scholar 

  • Furr, J.R. (1969) Citrus breeding for the arid southwestern United States. In: H.D. Chapman (Ed.), Proc. 1st intl. citrus symp, Vol. 1. University of California, Riverside, California, pp. 191–197.

    Google Scholar 

  • Garcia, R., Asins, M.J., Forner, J. and Carbonell, E.A. (1999) Genetic analysis of apomixis in Citrus and Poncirus by molecular markers. Theor. Appl. Genet. 99, 511–518.

    Article  PubMed  CAS  Google Scholar 

  • Gentile, A., Deng, Z.N., Tribulato, E., Vardi, A., Albanese, G., Grimaldi, V. and Catara, A. (2000) Evaluation of lemon somaclones for tolerance to mal secco disease by artificial inoculatıon. Acta Hort. 535, 259–263.

    Google Scholar 

  • Geraci, G., Esen, A. and Soost, R.K. (1975) Triploid progenies from 2x × 2x crosses of Citrus cultivars. J. Hered. 66, 177–178.

    Google Scholar 

  • Germana, M.A. and Reforgiato, G. (1997) Haploid embryos regeneration from anther culture of ‘Mapo’ tangelo (Citrus deliciosa x C. paradisi). Adv. Hortl. Sci. 11, 147–152.

    Google Scholar 

  • Germana, M.A., Crescimanno, F.G., Reforgiato, G. and Russo, M.P. (1991) Androgenesis in 5 cultivars of Citrus limon L. Burm. Acta Hort. 300, 315–324.

    Google Scholar 

  • Germana, M.A., Wang, Y.Y., Barbagallo, M.G., Iannolino, G. and Crescimanno, F.G. (1994) Recovery of haploid and diploid plantlets from anther culture of Citrus clementina Hort. Ex Tan. and Citrus reticulata Blanco. J. Hortl. Sci. 69, 473–480.

    Google Scholar 

  • Germana, M.A. and Chiancone, B. (2001) Gynogenetic haploids of Citrus after in vitro pollination with triploid pollen grains. Plant Cell Tiss. Org. Cult. 66, 59–66.

    Google Scholar 

  • Germana, M.A., Chiancone, B., Lain, O. and Testolin, R. (2005) Anther culture in Citrus clementina: a way to regenerate tri-haploids. Australian J. Agril. Res. 56, 839–845.

    Article  Google Scholar 

  • Ghorbel, R., LaMalfa, S., Lopez, M.M., Petit, A., Navarro, L. and Pena, L. (2001) Additional copies of virG from pTiBo542 provide a super-transformation ability to Agrobacterium tumefaciens in citrus. Physiol. Mol. Plant Pathol. 58, 103–110.

    Article  CAS  Google Scholar 

  • Gmitter, F.G., Jr. and Hu, X. (1990) The possible role of Yunnan, China in the origin of contemporary Citrus species (Rutaceae). Econo. Bot. 44, 267–277.

    Article  Google Scholar 

  • Gmitter, F.G., Jr. and Ling, X. (1991) Embryogenesis in vitro and nonchimeric tetraploid plant recovery from undeveloped citrus ovules treated with colchicine. J. Am. Soc. Hort. Sci. 116, 317–321.

    Google Scholar 

  • Gmitter, F.G., Jr. and Moore, G.A. (1986) Plant regeneration from undeveloped ovules and embryogenic calli of Citrus: embryo production, germination, and plant survival. Plant Cell Tiss. Organ Cult. 6, 139–147.

    Article  CAS  Google Scholar 

  • Gmitter, F.G., Jr., Ling, X.B. and Deng, X.X. (1990) Induction of triploid citrus plants from endosperm calli in vitro. Theor. Appl. Genet. 80, 785–790.

    Article  Google Scholar 

  • Gmitter, F.G., Jr., Ling, X.B., Cai, C.Y. and Grosser, J.W. (1991) Colchicine-induced polyploidy in citrus embryogenic cultures, somatic embryos and regenerated plants. Plant Sci. 74, 135–141.

    Article  CAS  Google Scholar 

  • Gmitter, F.G., Jr., Grosser, J.W. and Moore, G.A. (1992) Citrus. In: F.A. Hammerschlag and R.E. Litz (Eds.), Biotechnology of perennial fruit crops. CABI, Wallingford, pp. 335–369.

    Google Scholar 

  • Gmitter, F.G., Jr., Xiao, S.Y., Huang, S., Hu, X.L., Garnsey, S.M. and Deng, Z. (1996) A localized linkage map of the citrus tristeza virus resistance gene region. Theor. Appl. Genet. 92, 688–695.

    Article  CAS  Google Scholar 

  • Gmitter, F.G., Jr., Louzada, E.S., Deng, Z. and Huang, S. (1998) A bacterial artificial chromosome (BAC) library for cloning a citrus tristeza virus-resistance gene. Acta Hort. 461, 355–359.

    Google Scholar 

  • Goldschmidt, E.E. and Monselise, S.P. (1978) Physiological assumptions towards the development of a citrus fruiting model. Proc. Intl. Soc. Citriculture 2, 668–672.

    Google Scholar 

  • Goldschmidt, E.E., Aschkenazi, N., Herzano, Y., Schaffer, A.A. and Monselise, S.P. (1985) A role for carbohydrate levels in the control of flowering in citrus. Sci. Hort. 26, 159–166.

    Article  CAS  Google Scholar 

  • Grosser, J.W. and Gmitter, F.G., Jr. (1990) Protoplast fusion and citrus improvement. Plant Breed. Rev. 8, 339–374.

    Google Scholar 

  • Grosser, J.W., Jiang, J., Mourao-Fo, F.A.A., Louzada, E.S., Baergen, K., Chandler, J.L. and Gmitter, .FG., Jr. (1998) Somatic hybridization, an integral component of citrus cultivar improvement: I Scion improvement. HortSci. 33, 1057–1059.

    Google Scholar 

  • Grosser, J.W., Ollitrault, P. and Olivares-Fuster, O. (2000) Somatic hybridization in citrus: an effective tool to facilitate variety improvement. In Vitro-Plant 36, 434–449.

    Article  Google Scholar 

  • Grosser, J.W., Chandler, J.L. and Gmitter, F.G., Jr. (2003) Development of improved sweet oranges via somaclonal variation. Proc. Intl. Soc. Citriculture, 42–45.

    Google Scholar 

  • Grosser, J.W., Deng, X.X. and Goodrich, R.M. (2007) Somaclonal variation in sweet orange: practical applications for variety improvement and possible causes. In: I.H. Kahn (Ed.), Citrus genetics, breeding and biotechnology, CAB International, pp. 219–234.

    Google Scholar 

  • Gulsen, O., Uzun, A., Pala, H., Canihos, E. and Kafa, G. (2007) Development of seedless and Mal Secco tolerant mutant lemons through budwood irradiation. Sci. Hort. 112, 184–190.

    Google Scholar 

  • Guo, W.W., Duan, Y., Olivares-Fuster, O., Wu, Z., Arias, C.R., Burns, J.K. and Grosser, J.W. (2005) Protoplast transformation and regeneration of transgenic Valencia sweet orange plants containing a juice quality-related pectin methylesterase gene. Plant Cell Rep., 24, 482–486.

    Article  PubMed  CAS  Google Scholar 

  • Gutierrez-E, M.A., Luth, D. and Moore, G.A. (1997) Factors affecting Agrobacterium-mediated transformation in Citrus and production of sour orange (Citrus aurantium L.) plants expressing the coat protein gene of citrus tristeza virus. Plant Cell Rep. 16, 745–753.

    Article  CAS  Google Scholar 

  • Hearn, C.J. (1984) Development of seedless orange and grapefruit cultivars through seed irradiation. J. Am. Soc. Hort. Sci. 109, 270–273.

    Google Scholar 

  • Hearn, C.J. (1985) Citrus scion improvement program. Fruits Var. J. 39, 34–37.

    Google Scholar 

  • Hearn, C.J. 1987. “The Fallglo Citrus Hybrid in Florida.” Proc. Fla. State Hort. Soc. 100, 119–121.

    Google Scholar 

  • Hensz, R.A. (1977) Mutation breeding and the development of the ‘Star Ruby’ grapefruit. Proc. Intl. Soc. Citriculture 2, 582–585.

    Google Scholar 

  • Herrero, R., Asins, M.J., Carbonell, E.A. and Navarro, L. (1996) Genetic diversity in the orange subfamily Aurantioideae. I. Intraspecies and intragenus genetic variability. Theor. Appl. Genet. 92,599–609.

    Article  CAS  Google Scholar 

  • Hidaka, T. (1984) Induction of plants from anthers of Trovita orange (Citrus sinensis Osbeck). J. Japan Soc. Hort. Sci. 53, 1–5.

    Article  Google Scholar 

  • Hidaka, T. and Omura, M. (1989) Origin and development of embryoids from microspores in anther culture of citrus. Japan. J. Breed. 39, 169–178.

    Google Scholar 

  • Hidaka, T., Yamada, Y. and Shichijo, T. (1979) In vitro differentiation of haploid plants by anther culture in Poncirus trifoliata (L.) Raf. Japan. J. Breed. 29, 248–254.

    Google Scholar 

  • Hidaka, T., Yamada, Y. and Shichijo, T. (1982) Plantlet formation from anthers of Citrus aurantium. Proc. Intl. Soc. Citriculture 1, 153–155.

    Google Scholar 

  • Hodgson, R.W. (1967) Horticultural varieties of citrus. In: H.J. Webber and L.D. Batchelor (Eds.), The citrus industry, Vol 1. University of California, Berkeley, California, pp. 431–591.

    Google Scholar 

  • Huang, T., Peng, S.-L., Dong, G.-F., Zhang, L.-Y. and Li, G.-G. (2002) Plant regeneration from leaf-derived callus in Citrus grandis (pummelo): effects of auxins in callus induction medium. Plant Cell Tiss. Org. Cult. 69, 141–146.

    Article  Google Scholar 

  • Iwamasa, M., Ueno, I. and Nishiura, M. (1970) Location of zygotic embryo in polyembryonic citrus seed. Bull. Hort. Res. Sta. Japan, ser B, No. 10.

    Google Scholar 

  • Jia, Y., del Rio, H.S., Robbins, A.L. and Louzada, E.S. (2004) Cloning and sequence analysis of a low temperature-induced gene from trifoliate orange with unusual pre-mRNA processing. Plant Cell Rep. 23, 159–166.

    Article  PubMed  CAS  Google Scholar 

  • Karasawa, K. (1971) On the occurrence of haploid seedlings in Citrus natsudaidai Hayata. Bull. Sakushingakuin Junior College for Women 1, 1–2.

    Google Scholar 

  • Kayim, M. and Koc, N.K. (2006) The effects of some carbohydrates on growth and somatic embryogenesis in citrus callus culture. Sci. Hort. 109, 29–34.

    Article  CAS  Google Scholar 

  • Kayim, M., Ceccardi, T.L., Berretta, M.J.G., Barthe, G.A. and Derrick, K.S. (2004) Introduction of a citrus blight-associated gene into Carrizo citrange [Citrus sinensis (L.) Osb. x Poncirus trifoliata (L.) Raf.] by Agrobacterium-mediated transformation. Plant Cell Rep. 23, 377–385.

    Article  PubMed  CAS  Google Scholar 

  • Khalaf, A.A., Moore, G.A. and Gmitter, F.G., Jr. (2007) Microarray expression profiling of Nagami Kumquat in response to canker. Acta Hort., 738, 221–227.

    CAS  Google Scholar 

  • Kijas, J.M., Fowler, J.C. and Thomas, M.R. (1995) An evaluation of sequence tagged microsatellite site markers for genetic analysis within Citrus and related species. Genome 38, 349–55.

    Article  PubMed  CAS  Google Scholar 

  • Kobayashi, A.K., Bespalhok, J.C., Pereira, L.F.P. and Vieira, L.G.E. (2003) Plant regeneration of sweet orange (Citrus sinensis) from thin sections of mature stem segments. Plant Cell, Tiss. Org. Cult. 74, 99–102.

    Article  CAS  Google Scholar 

  • Koc, N.K., Can, C. and Cinar, A. (1992) Effects of some culture media on somatic embryo- genesis and rooting in ovular callus of “Shamouti” orange (Citrus sinensis Osb.). Tree J. Agri. Forests 16, 140–147.

    Google Scholar 

  • Kochba, J. and Spiegel-Roy, P. (1973) Effects of culture media on embryoid formation from ovular callus of ‘Shamouti’ orange C. sinensis. Z Pflanzenzuecht. 69, 156–162.

    Google Scholar 

  • Kochba, J., Ben-Hayyim, G., Spigel-Roy, P., Neumann, H. and Saad, S. (1982) Selection of stable salt-tolerant cell lines and embryos in C. sinensis and C. aurantium. Z. Pflanzenphysiol. 106, 111–118.

    CAS  Google Scholar 

  • Kotsias, D. and Roussos, P.A. (2001) An investigation on the effect of different plant growth regulating compounds in in vitro shoot tip and node culture of lemon seedlings. Sci. Hort. 89, 115–128.

    Article  CAS  Google Scholar 

  • Lee, L.S. (1988) Citrus polyploidy - origin and potential for cultivar improvement. Austr. J. Agr. Res. 39, 735–747.

    Article  Google Scholar 

  • Ling, P., Duncan, L.W., Deng, Z., Dunn, D., Xu, X., Huang, S. and Gmitter, F.G., Jr. (2000) Inheritance of citrus nematode resistance and its linkage with molecular markers. Theor. Appl. Genet. 101, 1010–1017.

    Article  Google Scholar 

  • Liou, P.C., Gmitter, F.G., Jr. and Moore, G.A. (1996) Characterization of the Citrus genome through analysis of restriction fragment length polymorphisms. Theor. Appl. Genet. 92, 425–435.

    Article  CAS  Google Scholar 

  • Lovatt, C.J., Zheng, Y. and Kaje, K.D. (1988) Demonstartion of a change in nitrogen metabolism influencing flower initiation in citrus. Isr. J. Bot. 37, 181–188.

    Google Scholar 

  • Maheshwari, P. and Rangaswamy, N.S. (1958) Polyembryony and in vitro culture of embryos of Citrus and Mangifera. Indian J. Hort. 15, 275–282.

    Google Scholar 

  • Manner, H.I., Buker, R.S., Smith, V.E. and Elevitch, C.R. (2006) Citrus species (citrus), ver. 2.1. In: C.R. Elevitch (Ed.), Specific profiles for pacific island agroforestry (www.traditionaltree.org). Permanent Agriculture Resources, Hawaii, pp. 1–35.

  • Miller, J.E., Martiz, J.G.J., Froneman, I.J. and Koekemoer, P.J.J. (2003) Potential citrus cultivars in south Africa’s scion and rootstock development pipeline. Proc. Intl. Soc. Citriculture 62–65.

    Google Scholar 

  • Moore, G.A. (1986) In vitro propagation of Citrus rootstocks. HortSci. 21, 300–301.

    CAS  Google Scholar 

  • Moore, G.A. (2001) Oranges and lemons: clues to the taxonomy of Citrus from molecular markers. Trends Genet.17(9), 536–540.

    Google Scholar 

  • Moriguchi, T., Kita, M., Hisada, S., Endo-Inagaki, T. and Omura, M. (1998) Characterization of gene repertoires at mature stage of citrus fruits through random sequencing and analysis of redundant metallothionein-like genes expressed during fruit development. Gene 211, 221–227.

    Article  PubMed  CAS  Google Scholar 

  • Nadel, B. and Spiegel-Roy, P. (1987) Selection of Citrus limon cell culture variants resistant to the Mal secco toxin. Plant Sci. 53, 177–182.

    Article  CAS  Google Scholar 

  • Nageswara Rao, M., Soneji, J.R., Chen, C., Huang, S. and Gmitter, F.G., Jr. (2008) Characterization of zygotic and nucellar seedlings from sour orange-like citrus rootstock candidates using RAPD and EST-SSR markers. Tree Genet. Genom. 4, 113–124.

    Article  Google Scholar 

  • Navarro, L., Ortiz, J.M. and Juarez, J. (1985) Aberrant citrus plants obtained by somatic embryogenesis of nucelli cultured in vitro. HortSci. 20, 214–215.

    Google Scholar 

  • Navarro, L., Olivares-Fuster, O., Juarez, J., Aleza, P., Pina, J.A., Ballester-Olmos, J.F., Cervera, M., Fagoaga, C., Duran-Vila, N. and Pena, L. (2004) Applications of biotechnology to citrus improvement in Spain. Acta Hort. 632, 221–234.

    CAS  Google Scholar 

  • Nicolosi, E., Deng, Z.N., Gentile, A., La Malfa, S., Continella, G. and Tribulato, E. (2000) Citrus phylogeny and genetic origin of important species as investigated by molecular markers. Theor. Appl. Genet. 100, 1155–1166.

    Article  CAS  Google Scholar 

  • Nicotra, A. (2001) Mandarin-like Hybrids of Recent interest for Fresh Consumption. Problems and Ways of Control. Proc. China/FAO citrus symposium, Beijing, pp. 15–24.

    Google Scholar 

  • Nito, N. and Iwamasa, M. (1990) In vitro plantlet formation from juice vesicle callus of Satsuma (Citrus unshiu Marc.). Plant Cell Tiss. Org. Cult. 20, 137–140.

    Article  Google Scholar 

  • Normah, M.N., Hamidah, S. and F.D. Ghani. (1997) Micropropagation of Citrus halimii – an endangered species of South-east Asia. Plant Cell Tiss. Org. Cult. 50, 225–227.

    Article  Google Scholar 

  • Ohgawara, T., Kobayashi, S., Ohgawnara, E., Uchimaya, H. and Ishii, S. (1985) Somatic hybrid plants obtained by protoplast fusion between Citrus sinensis and Poncirus trifoliata. Theor. Appl. Genet. 71, 1–4.

    Article  Google Scholar 

  • Ollitrault, P., Allent, V. and Luro, F. (1996) Production of haploid plants and embryogenic calli of clementine (Citrus reticulata Blanco) after in situ parthenogenesis induced by irradiated pollen. Proc. Intl. Soc. Citriculture 913–917.

    Google Scholar 

  • Ollitrault, P., Vanel, F., Froelicher, Y. and Dambier, D. (2000) Creation of triploid Citrus hybrids by electrofusion of haploid and diploid protoplasts. Acta Hort. 535, 191–198.

    Google Scholar 

  • Omar, A.A. and Grosser, J.W. (2007) Protoplast co-transformation and regeneration of transgenic ‘Hamlin’ sweet orange plants containing a cDNA Xa21 Xanthomonas resistance gene and GFP. Acta Hort., 738, 235–243.

    CAS  Google Scholar 

  • Omura, M., Hidaka, T., 1992. Shoot tip culture of Citrus. I. Longetivity of cultured shoots. Bull. Fruit Tree Res. Station 22, 37–47.

    Google Scholar 

  • Pena, L., Martin-Trillo, M., Juarez, J., Pina, J.A., Navarro, L. and Martinez-Zapater, J.M. (2001) Constitutive expression of Arabidopsis LEAFY and APETALA1 genes in citrus reduces their generation time. Nature Biotech. 19, 263–267.

    Article  CAS  Google Scholar 

  • Rangan, T.S., Murashige, T. and Bitters, W.P. (1969) In vitro studies of zygotic and nucellar embryogenesis in citrus. In: H.D. Chapman (Ed.), Proc 1st intl citrus symp, Vol. 1. University of California, Riverside, pp. 225–229.

    Google Scholar 

  • Recupero, G.R. and Tribulato, E. (2003) Recent development of citrus scions and rootstocks in Italy. Proc. Intl. Soc. Citriculture pp. 66–68.

    Google Scholar 

  • Recupero, G.R., de Simone, M., Natoli, A., Marsan, P.A., Russo, M.P. and Marocco, A. (2000) Development of molecular maps for rootstock breeding in Citrus. Acta Hort. 535, 33–35.

    CAS  Google Scholar 

  • Roose, M.L and Williams, T.E. (2003) Citrus scion breeding in California. Proc. Intl. Soc. Citriculture, pp. 34–36.

    Google Scholar 

  • Roose, M.L. and Williams, T. E. (2006a) Tango Mandarin: A new seedless mid-late season irradiated selection of W. Murcott (Afourer) mandarin developed by the University of California Citrus Breeding Program. www.plantbiology.ucr.edu/documents/files_of_Roose/Tango%20Information%20Sheet-6-26-2006.pdf.

  • Roose, M.L. and Williams, T.E. (2006b) www.citrusvariety.ucr.edu/citrus/mandarins.html#Shasta

  • Roose, M.L., Williams, T.E., Cameron, J.W. and Soost, R.K. (2000) ‘Gold Nugget’ mandarin, seedless, late maturing hybrid. Hort. Sci. 35, 1176–1178.

    Google Scholar 

  • Russo, F., Donini, B. and Starrantino, A. (1981) Mutagenesis applied for citrus improvement. Proc. Intl. Soc. Citriculture 1, 68–70.

    Google Scholar 

  • Russo, G., Recupero, S. and Recupero, R. (2003) The development of citrus triploid hybrids. Proc. Intl. Soc. Citriculture 1, 98–99.

    Google Scholar 

  • Russo, G., Recupero, S., Puglisi, A. and Recupero, G.R. (2004) New triploid citrus hybrids by Italian genetic improvement. Rivista di Frutticoltur e di Ortofloricoltura 66(3), 14–18.

    Google Scholar 

  • Sauer, J.D. (1993) Historical Geography of Crop Plants - A Select Roster. CRC Press, Boca Raton, Florida.

    Google Scholar 

  • Sauton, A., Moura, A. and Lutz, A. (1982) Plant regeneration from citrus root meristems. J. Hort. Sci. 57, 227–231.

    Google Scholar 

  • Schneider, H. (1968) The anatomy of citrus. In: H.J. Webber and L.D. Batchelor (Eds.), The citrus industry, Vol 1. University of California, Berkeley, California, pp. 1–85.

    Google Scholar 

  • Scora, R.W. (1975) On the history and origin of Citrus. Bull. Torrey Bot. Club 102, 369–375.

    Article  Google Scholar 

  • Scora, R.W. (1988) Biochemistry, taxonomy and evolution of modern cultivated Citrus. Proc. Intl. Soc. Citriculture 1, 227–289.

    Google Scholar 

  • Shamel, A.D. (1943) Bud variation and bud selection. In: H.J. Webber and L.D. Batchelor (Eds.), The citrus industry, Vol 1. University of California, Berkeley, California, pp. 915–952.

    Google Scholar 

  • Shimada, T., Hirabayashi, T., Endo, T., Fujii, H., Kita, M. and Omura, M. (2005) Isolation and characterization of the somatic embryogenesis receptor-like kinase gene homologue (CitSERK1) from Citrus unshiu Marc. Sci. Hort. 103, 233–238.

    Article  CAS  Google Scholar 

  • Soneji, J.R., Nageswara Rao, M., Chen, C. and Gmitter, F.G., Jr. (2007a) Regeneration from transverse thin cell layers of mature stem segments of citrus. In: Plant & animal genomes XV conference, Jan.13–17, San Diego, California, USA.

    Google Scholar 

  • Soneji, J.R., Chen, C., Nageswara Rao, M., Huang, S., Choi, Y.A. and Gmitter, F.G., Jr. (2007b) Agrobacterium-mediated transformation of citrus using two binary vectors. Acta Hort. 738, 261–264.

    Google Scholar 

  • Soost, R.K. and Cameron, J.W. (1975) Citrus. In: J. Janick and J.N. Moore (Eds.), Advances in fruit breeding. Purdue University Press, West Lafayette, pp. 507–540.

    Google Scholar 

  • Soost, R.K. and Roose, M.L. (1996) Citrus. In: J. Janick and J.N. Moore (Eds.), Fruit breeding, Vol. I: Tree and Tropical Fruits. John Wiley and Sons Inc., New York, Chichester, Brisbane, Toronto, Singapore, pp. 257–323.

    Google Scholar 

  • Soost, R.K. and William, T.E. (1980) Identification of nucellar and zygotic seedlings of Citrus with leaf isozymes. HortScience 15, 728–729.

    Google Scholar 

  • Spiegel-Roy, P. and Ben-Hayyim, G. (1985) Selection and breeding for salinity tolerance in vitro. Plant Soil 89, 243–252.

    Article  CAS  Google Scholar 

  • Spiegel-Roy, P. and Goldschmidt, E.E. (1996) Biology of citrus. Cambridge University Press, Cambridge.

    Book  Google Scholar 

  • Spiegel-Roy, P. and Vardi, A. (1989) Induced mutations in Citrus. Proc 6th Intl Congress, Tokyo: SABRAO, pp. 773–776.

    Google Scholar 

  • Spiegel-Roy, P., Vardi, A. and Elhanati, A. (1985) Seedless induced mutant in lemon (Citrus limon). Mutation Breed. Newslett. 26, 1–2.

    Google Scholar 

  • Spiegel-Roy, P., Vardi, A. and Elhanati, A. (1990) Seedless induced mutant in highly seeded lemon (Citrus limon). Mutation Breed. Newslett. 36, 11.

    Google Scholar 

  • Starrantino, A. and Recupero, G. (1982) Citrus hybrids obtained in vitro from 2x females by 4x males. Proc. Intl. Soc. Citriculture 1, 31–32.

    Google Scholar 

  • Starrantino, A. and Russo, R. (1980) Seedlings from undeveloped ovules of ripe fruits of polyembryonic citrus cultivars. HortSci. 15, 296–297.

    Google Scholar 

  • Starrantino, A., Russo, F. and Martelli, S. (1990) Initial observations on a nucellar population of ‘Navelate’ sweet orange obtained in vitro. Acta Hort. 300, 385–388.

    Google Scholar 

  • Swingle, W.T. and Reece, P.C. (1967) The botany of citrus and its wild relatives. In: W. Reuther, H.J. Webber and L.D. Batchelor (Eds.), The citrus industry, Vol 1 (rev). University of California Press, Berkley, California, pp. 190–430.

    Google Scholar 

  • Sykes, S.R. (1987) Rootstock breeding in Australia: Past and present. In: R.R. Walker (Ed.), Proc. Citrus breeding workshop, CSIRO, Australia, pp.87–92.

    Google Scholar 

  • Tanaka, T. (1954) Species Problem in Citrus. Japanese Society for the Promotion of Science, Japan.

    Google Scholar 

  • Tanaka, T. (1977) Fundamental discussion of Citrus classification. Stud. Citrologia 14, 1–6.

    Google Scholar 

  • Tomaz, M.L., Mendes, B.M.J., Filho, F., Demeatrio, C., Jansakul, N. and Rodriguez, A. (2001) Somatic embryogenesis in citrus spp.: carbohydrate stimulation and histodifferentiation. In Vitro Cell. Dev. Biol. 37, 446–452.

    CAS  Google Scholar 

  • Toxopeus, H.J. (1936) Die Zuchtung von Unterlagen fur Citrus sinensis Osb. immune gegen Phytophthora parasitica, die Ursache der “gum-disease” in Java. Zuchter 8, 1–10.

    Google Scholar 

  • Vardi, A., Spiegel-Roy, P. and Galun, E. (1982) Plant regeneration from citrus protoplasts: variability in methodological requirements among cultivars and species. Theor. Appl. Genet. 62, 171–176.

    Article  Google Scholar 

  • Wakana, A and Uemoto, S. (1987) Adventive embryogenesis in citrus. I. The occurrence of adventive embryos without pollination or fertilization. Amer. J. Bot. 74(4), 517–530.

    Article  Google Scholar 

  • Webber, H.J. (1967) History and development of the citrus industry. In: W. Reuther, H.J. Webber and L.D. Batchelor (Eds.), The citrus industry, Vol 1 (rev). Univ. of California Press, Berkley, California, pp 1–39.

    Google Scholar 

  • Wong, W.S., Li, G.G., Ning, W., Xu, Z.F., Hsiao, W.L., Zhang, L.Y. and Li, N. (2001) Repression of chilling-induced ACC accumulation in transgenic citrus by over-production of antisense 1-aminocyclopropane-1-carboxylate synthase RNA. Plant Sci. 161, 969–977.

    Article  CAS  Google Scholar 

  • Xiang, C. and Roose, M.L. (1988) Frequency and characteristics of nucellar and zygotic seedlings in 12 citrus rootstocks. Sci. Hort. 37, 47–59.

    Article  Google Scholar 

  • Yang, L., Xu, C.-J., Hu, G.-B. and Chen, K.-S. (2006) Direct shoot organogenesis and plant regeneration in Fortunella crassifolia. Biologia Plant. 50(4), 729–732.

    Article  CAS  Google Scholar 

  • Yen, C.R. (1987) Assimilate portioning and enzymes of organic acid metabolism in fruits of calamondin and low acid grapefruit. Ph.D thesis, University of Florida.

    Google Scholar 

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Gmitter, F.G., Soneji, J.R., Rao, M.N. (2009). Citrus Breeding. In: Breeding Plantation Tree Crops: Temperate Species. Springer, New York, NY. https://doi.org/10.1007/978-0-387-71203-1_4

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