| [1] |
Torres AM. 1963. Taxonomy of zinnia. Brittonia 15:1−25 doi: 10.2307/2805035 |
| [2] |
Stimart D, Boyle T. 2007. Zinnia. In Flower Breeding and Genetics, ed. Anderson NO. Dordrecht: Springer Netherlands. pp. 337–57. doi: 10.1007/978-1-4020-4428-1_12 |
| [3] |
Beeks RM. 1954. The herbaceous zinnias: History, cytology, development of cultivars. Thesis. Claremont Colleges, US |
| [4] |
McVaugh R. 1984. Flora Novo-Galiciana: a descriptive account of the vascular plants of Western Mexico. Ann Arbor: University of Michigan Press |
| [5] |
Parsons JJ. 1992. Southern blooms: Latin America and the world of flowers. Queen's Quarterly 99:542 |
| [6] |
Thamayanthi D, Sharavanan PS. 2012. Phytoaccmulation of cadmium polluted soil using Zinnia plants (Zinnia elegans L.). International Journal of Current Science 2:311−15 |
| [7] |
Ozawa S, Ikeura H, Kaimi E, Tamaki M. 2015. Selection of the Most Effective Cultivar of Genus Zinnia Flowers for Phytoremediation of Oil-contaminated Soil. International Journal of Plant & Soil Science 4:61−71 |
| [8] |
Ehsan N, Nawaz R, Ahmad S, Arshad M, Umair M, et al. 2016. Remediation of heavy metal-contaminated soil by ornamental plant Zinnia (Zinnia elegance L.). Asian Journal of Chemistry 28:1338−42 doi: 10.14233/ajchem.2016.19701 |
| [9] |
Panda A, Patra DK, Acharya S, Pradhan C, Patra HK. 2020. Assessment of the phytoremediation potential of Zinnia elegans L. plant species for hexavalent chromium through pot experiment. Environmental Technology & Innovation 20:101042 doi: 10.1016/j.eti.2020.101042 |
| [10] |
Gomaa AAR, Samy MN, Abdelmohsen UR, Krischke M, Mueller MJ, et al. 2020. Metabolomic profiling and anti-infective potential of Zinnia elegans and Gazania rigens (Family Asteraceae). Natural Product Research 34:2612−15 doi: 10.1080/14786419.2018.1544975 |
| [11] |
Burlec AF, Pecio Ł, Mircea C, Cioanca O, Corciovă A, et al. 2019. Chemical profile and antioxidant activity of Zinnia elegans Jacq. fractions. Molecules 24:2934 doi: 10.3390/molecules24162934 |
| [12] |
Samy MN, Gomaa AAR, Attia EZ, Ibrahim MAA, Desoukey SY, et al. 2022. Flavonoids of Zinnia elegans: chemical profile and in vitro antioxidant and in silico anti-COVID-19 activities. South African Journal of Botany 147:576−85 doi: 10.1016/j.sajb.2022.02.024 |
| [13] |
Ozturk M, Sagdollina NR, Ibrayeva MM. 2023. Component composition and biological activity of essential oil of plant Zinnia elegans. International Journal of Biology and Chemistry 16:90−96 doi: 10.26577/IJBCh2023v16i2a9 |
| [14] |
Robinson BL, Greenman JM. 1896. A revision of the genus Zinnia. Proceedings of the American Academy of Arts and Sciences 32:14−20 doi: 10.2307/20020652 |
| [15] |
Fisher J. 1982. The origins of garden plants. London: Constable. 376 pp |
| [16] |
Metcalf HN, Sharma JN. 1971. Germ plasm resources of the genus Zinnia L. Economic Botany 25:169−81 doi: 10.1007/BF02860077 |
| [17] |
Chittenden F, Synge PM, Nicholson G. 1951. Dictionary of gardening. UK: The Royal Horticultural Society. xvi, 2316 pp. |
| [18] |
de Candolle AP, de Candolle A. 1836. Prodromus systematis naturalis regni vegetabilis, sive, Enumeratio contracta ordinum generum specierumque plantarum huc usque cognitarium, juxta methodi naturalis, normas digesta. Parisii: Sumptibus Sociorum Treuttel et Würtz. doi: 10.5962/bhl.title.286 |
| [19] |
Gray A. 1850. Plantæ Wrightianæ Texano-neo-mexicanæ. US: Smithsonian Institution. 310 pp |
| [20] |
Hemsley WB. 1881. In Biologia Centrali-Americana. London: Published for the editors by R. H. Porter and Dulau & co. Volume 2. 153 pp |
| [21] |
Olorode O, Torres AM. 1970. Artificial hybridization of the genera zinnia (Sect. Mendezia) and tragoceras (Compositae-Zinninae). Brittonia 22:359−69 doi: 10.2307/2805682 |
| [22] |
Grissell E. 2020. A History of Zinnias. US: Purdue University Press |
| [23] |
Torres AM. 1963. Revision of Tragoceras (Compositae). Brittonia 15:290−302 doi: 10.2307/2805378 |
| [24] |
Olorode O. 1970. The evolutionary implications of interspecific hybridization among four species of Zinnia sect. Mendezia (Compositae). Brittonia 22:207−16 doi: 10.1007/BF02805538 |
| [25] |
Terry-Lewandowski VM, Bauchan GR, Stimart DP. 1984. Cytology and breeding behavior of interspecific hybrids and induced amphiploids of Zinnia elegans and Zinnia angustifolia. Canadian Journal of Genetics and Cytology 26:40−45 doi: 10.1139/g84-007 |
| [26] |
Keil DJ, Luckow MA, Pinkava DJ. 1988. Chromosome studies in Asteraceae from the United States, Mexico, the West Indies, and South America. American Journal of Botany 75:652−68 doi: 10.1002/j.1537-2197.1988.tb13488.x |
| [27] |
Gu Y. 2015. Cut Flower production and economic analysis, polyploidy induction in two zinnia cultivars, zinnia pollination mechanisms, and DNA content of zinnia species. Thesis. North Carolina State University, US |
| [28] |
Torres AM. 1964. Revision of Sanvitalia (Compositae-Heliantheae). Brittonia 16:417−33 doi: 10.2307/2805309 |
| [29] |
Torres AM. 1965. The chromosome races of Zinnia juniperifolia. American Journal of Botany 52:760−65 doi: 10.1002/j.1537-2197.1965.tb07245.x |
| [30] |
Katz MW, Torres AM. 1965. Numerical analyses of Cespitose Zinnias. Brittonia 17:335−49 doi: 10.2307/2805026 |
| [31] |
Anantasaran J, Schröder MB, Eimert K, Kanchanapoom K. 2007. Cytogenetic characterization of Zinnia species and cultivars. Floriculture and Ornamental Biotechnology 1:125−30 |
| [32] |
Turner BL. 2012. Taxonomy and distribution of the Zinnia acerosa (Asteraceae) complex. Pytoneuron 19:1−8 |
| [33] |
The Chromosome Counts Database. 2024. CCDB, version web/CCDB_1.66 Database. Retrieved June 21, 2024, from https://taux.evolseq.net/CCDB_web/search/ |
| [34] |
Rice A, Glick L, Abadi S, Einhorn M, Kopelman NM, et al. 2015. The Chromosome Counts Database (CCDB) – a community resource of plant chromosome numbers. New Phytologist 206:19−26 doi: 10.1111/nph.13191 |
| [35] |
Qian J, Lai W, Jiang L, Fu J, Zhang C. 2020. Effect of pigment distribution on the petal coloration in Zinnia elegans 'Dreamland'. Proc. Advances in Ornamental Horticulture of China, Haikou, 2020. China: Chinese Horticultural Society. pp. 148−52 |
| [36] |
Boyle TH, Stimart DP. 1988. Inheritance of ray floret color in Zinnia angustifolia HBK and Z. elegans Jacq. Journal of Heredity 79:289−93 doi: 10.1093/oxfordjournals.jhered.a110511 |
| [37] |
Tian L. 2023. Selection of dwarf inbreed lines and study on genetic law of main ornamental traits of Zinnia elegans. Thesis. Huazhong Agricultural University, China |
| [38] |
Boyle TH, Stimart DP. 1989. Effect of Zinnia angustifolia HBK genotype on morphology and flowering of Z. angustifolia × Z. elegans Jacq. hybrids. Euphytica 44:73−79 doi: 10.1007/BF00022602 |
| [39] |
Boyle TH, Stimart DP. 1989. Anatomical and biochemical factors determining ray floret color of Zinnia angustifolia, Z. elegans, and their interspecific hybrids. Journal of the American Society for Horticultural Science 114:499−505 doi: 10.21273/JASHS.114.3.499 |
| [40] |
Qing HS, Qian JY, Chen JH, Jiang LL, Fu JX, et al. 2022. Carotenoid analysis and functional characterization of lycopene cyclases in Zinnia elegans L. Industrial Crops and Products 188:115724 doi: 10.1016/j.indcrop.2022.115724 |
| [41] |
Qing H, Liu X, Chen J, Li L, Qian J, et al. 2024. Carotenoid cleavage dioxygenase catalyzes carotenoid degradation and regulates carotenoid accumulation and petal coloration in Zinnia elegans. Ornamental Plant Research 4:e005 doi: 10.48130/opr-0024-0003 |
| [42] |
Qian J, Lai W, Jiang L, Zhan H, Zhai M, et al. 2021. Association between differential gene expression and anthocyanin biosynthesis underlying the diverse array of petal colors in Zinnia elegans. Scientia Horticulturae 277:109809 doi: 10.1016/j.scienta.2020.109809 |
| [43] |
Qian J, Jiang L, Qing H, Chen J, Wan Z, et al. 2022. ZeMYB9 regulates cyanidin synthesis by activating the expression of flavonoid 3'-hydroxylase gene in Zinnia elegans. Frontiers in Plant Science 13:981086 doi: 10.3389/fpls.2022.981086 |
| [44] |
Jiang L, Chen J, Qian J, Xu M, Qing H, et al. 2024. The R2R3-MYB transcription factor ZeMYB32 negatively regulates anthocyanin biosynthesis in Zinnia elegans. Plant Molecular Biology 114:48 doi: 10.1007/s11103-024-01441-0 |
| [45] |
Gotoh K. 1954. Inhentance of Doubleness in Zinnia elegans L. Japanese Journal of Breeding 4:37−40 |
| [46] |
Miyajima D, Nakayama M. 1994. Analysis of Zinnia capitulum composition. Journal of the American Society for Horticultural Science 119:683−86 doi: 10.21273/JASHS.119.4.683 |
| [47] |
Miyajima D. 1998. Improvement of ornamental value by seed selection in double-flowered zinnias. HortScience 33:696−98 doi: 10.21273/HORTSCI.33.4.696 |
| [48] |
Li J. 2019. Analysis of petal transcription and gene mapping of tubular ray flower in Zinnia elegans. Thesis. Huazhong Agricultural University, China |
| [49] |
Berti F, Fambrini M, Turi M, Bertini D, Pugliesi C. 2005. Mutations of corolla symmetry affect carpel and stamen development in Helianthus annuus. Canadian Journal of Botany 83:1065−72 doi: 10.1139/b05-047 |
| [50] |
Chapman MA, Tang S, Draeger D, Nambeesan S, Shaffer H, et al. 2012. Genetic analysis of floral symmetry in Van Gogh's Sunflowers reveals independent recruitment of CYCLOIDEA genes in the Asteraceae. PLoS Genetics 8:e1002628 doi: 10.1371/journal.pgen.1002628 |
| [51] |
Jones JJ, Strider DL. 1979. Susceptibility of Zinnia cultivars to bacterial leaf spot caused by Xanthmonas nigromaculans f. sp. zinniae. In Plant Disease Reporter. Department of Agriculture, Science and Education Administration, Federal Research. Volume 63. 449 pp |
| [52] |
Gombert L, Windham M, Hamilton S. 2001. Evaluation of disease resistance among 57 cultivars of zinnia. HortTechnology 11:71−74 doi: 10.21273/HORTTECH.11.1.71 |
| [53] |
Terry-Lewandowski VM. 1983. Multiple resistance in induced amphiploids of Zinnia elegans and Z. angustifolia to three major pathogens. Plant Disease 67:1387−89 doi: 10.1094/PD-67-1387 |
| [54] |
Boyle TH, Wick RL. 1996. Responses of Zinnia angustifolia × Z. violacea backcross hybrids to three pathogens. HortScience 31:851−54 doi: 10.21273/HORTSCI.31.5.851 |
| [55] |
Niu G, Wang M, Rodriguez D, Zhang D. 2012. Response of zinnia plants to saline water irrigation. HortScience 47:793−97 doi: 10.21273/HORTSCI.47.6.793 |
| [56] |
Carter CT, Grieve CM. 2010. Growth and nutrition of two cultivars of Zinnia elegans under saline conditions. HortScience 45:1058−63 doi: 10.21273/HORTSCI.45.7.1058 |
| [57] |
Mohammadi M, Nezamdoost D, Khosravi Far F, Zulfiqar F, Eghlima G, Aghamir F. 2024. Exogenous putrescine application imparts salt stress-induced oxidative stress tolerance via regulating antioxidant activity, potassium uptake, and abscisic acid to gibberellin ratio in Zinnia flowers. BMC Plant Biology 24:865 doi: 10.1186/s12870-024-05560-0 |
| [58] |
Toscano S, Romano D. 2021. Morphological, physiological, and biochemical responses of Zinnia to drought stress. Horticulturae 7:362 doi: 10.3390/horticulturae7100362 |
| [59] |
Roberts BR, Wolverton C. 2018. Transpiration and drought stress recovery of three zinnia cultivars. Journal of Environmental Horticulture 36:108−13 doi: 10.24266/0738-2898-36.3.108 |
| [60] |
Carlson AS, Dole JM. 2013. Postharvest water quality affects vase life of cut Dendranthema, Dianthus, Helianthus, and Zinnia. Scientia Horticulturae 164:277−86 doi: 10.1016/j.scienta.2013.09.024 |
| [61] |
Stimart DP, Brown DJ. 1982. Regulation of postharvest flower senescence in Zinnia elegans Jacq. Scientia Horticulturae 17:391−96 doi: 10.1016/0304-4238(82)90121-2 |
| [62] |
Kalinowski J, Moody E, Dole JM. 2022. Improving hydration and vase life of cut Zinnia. Scientia Horticulturae 293:110661 doi: 10.1016/j.scienta.2021.110661 |
| [63] |
Boyle TH, Stimart DP. 1986. Self-incompatibility and interspecific incompatibility: relationships in intra- and interspecific crosses of Zinnia elegans Jacq. and Z. angustifolia HBK (Compositae). Theoretical and Applied Genetics 73:305−15 doi: 10.1007/BF00289290 |
| [64] |
Samaha RR. 1989. Self-incompatibility of Zinnia angustifolia HBK (Compositae). Thesis. University of Massachusetts Amherst, US |
| [65] |
Torres AM. 1964. Hybridization Studies in Perennial Zinnias. American Journal of Botany 51:567−73 doi: 10.1002/j.1537-2197.1964.tb06672.x |
| [66] |
Bala M, Rehana S, Singh MP. 2023. Self-incompatibility: a targeted, unexplored pre-fertilization barrier in flower crops of Asteraceae. Journal of Plant Research 136:587−612 doi: 10.1007/s10265-023-01480-6 |
| [67] |
Lou XY, Hu QS, Bao MZ, Ye YM. 2010. Analysis of combining ability of two-types of male sterile and four restorer lines of Zinnia elegans. Euphytica 174:91−103 doi: 10.1007/s10681-010-0143-x |
| [68] |
Lou X, Lu T, Li M, Pang R, Ye Y, et al. 2011. Combining ability among male sterile two-type and restorer lines of Zinnia elegans and implications for the breeding of this ornamental species. Scientia Horticulturae 129:862−68 doi: 10.1016/j.scienta.2011.05.025 |
| [69] |
Cowen RKD, Ewart LC. 1990. Inheritance of a male sterile apetalous inflorescence in Zinnia elegans. Acta Horticulturae 272:37−40 doi: 10.17660/ActaHortic.1990.272.4 |
| [70] |
Rao MK, Devi KU, Arundhati A. 1990. Applications of genic male sterility in plant breeding. Plant Breeding 105:1−25 doi: 10.1111/j.1439-0523.1990.tb00447.x |
| [71] |
Ye Y, Hu Q, Chen T, Bao M. 2008. Male sterile lines of Zinnia elegans and their cytological observations. Agricultural Sciences in China 7:423−31 doi: 10.1016/S1671-2927(08)60085-1 |
| [72] |
Rogers RB, Smith MAL, Cowen RKD. 1991. In vitro production of male sterile Zinnia elegans. Euphytica 61:217−23 doi: 10.1007/BF00039661 |
| [73] |
van Huylenbroeck J, Eeckhaut T, Leus L, van Laere K, Dhooghe E. 2020. Bridging the gap: tools for interspecific and intergeneric hybridization in ornamentals. Acta Horticulturae 1283:161−68 doi: 10.17660/ActaHortic.2020.1283.22 |
| [74] |
Katche E, Quezada-Martinez D, Katche EI, Vasquez-Teuber P, Mason AS. 2019. Interspecific hybridization for Brassica crop improvement. Crop Breeding, Genetics and Genomics 1:e190007 doi: 10.20900/cbgg20190007 |
| [75] |
Ramalingam RS, Rangasamy SRS, Raman VS. 1971. The cytology of an interspecific hybrid in Zinnia. Cytologia 36:522−28 doi: 10.1508/cytologia.36.522 |
| [76] |
Boyle TH, Stimart DP. 1982. Interspecific hybrids of Zinnia elegans Jacq. and Z. angustifolia HBK: embryology, morphology and powdery mildew resistance. Euphytica 31:857−67 doi: 10.1007/BF00039226 |
| [77] |
Shahin SS, Campbell WF, Pollard LH, Hamson AR. 1971. Interspecific hybrids of Zinnia peruviana and Z. elegans through embryo culture. Journal of the American Society for Horticultural Science 96:365−67 doi: 10.21273/JASHS.96.3.365 |
| [78] |
Linderman SD, Ewart LC. 1990. Interspecific hybridization in Zinnia: morphology, cytology, pollen examination, and powdery mildew resistance. Acta Horticulturae 272:41−46 doi: 10.17660/ActaHortic.1990.272.5 |
| [79] |
Boyle TH, Stimart DP, Bauchan GR. 1987. Influence of Zinnia angustifolia HBK genotype on embryonic and vegetative development of Z. angustifolia x Z. elegans Jacq. interspecific hybrids. Theoretical and Applied Genetics 73:716−23 doi: 10.1007/BF00260782 |
| [80] |
Johnson EL. 1936. The relation of X-ray dosage to degree of injury in Nepophila and Zinnia. American Journal of Botany 23:414−18 doi: 10.1002/j.1537-2197.1936.tb09003.x |
| [81] |
Swarup V, Raghava SPS. 1974. Induced mutation for resistance to leaf-curl virus and its inheritance in garden zinnia. Indian Journal of Genetics and Plant Breeding 34:1 |
| [82] |
Venkatachalam P, Jayabalan N. 1992. Analysis of leaf proteins in gamma ray induced mutants of Zinnia. Crop Improvement 19:97−99 |
| [83] |
Venkatachalam P, Jayabalan N. 1997. Effect of gamma rays on some qualitative and quantitative characters in Zinnia elegans Jacq. Indian Journal of Genetics and Plant Breeding 57:255−61 |
| [84] |
Venkatachalam P, Jayabalan N. 1993. Gamma irradiation induced chlorophyll mutations in Zinnia elegans Jacq. The Journal of Indian Botanical Society 72:179−80 |
| [85] |
Li D, Dong Y, Geng J, Cao T, Tian A, et al. 2015. Mutagenic effect of Zinnia elegans Jacq. induced by fast neutron. Northern Horiculture 2015:58−62 |
| [86] |
Pallavi B, Nivas SK, D'Souza L, Ganapathi TR, Hegde S. 2018. Gamma rays induced variations in seed germination, growth and phenotypic characteristics of Zinnia elegans var. Dreamland. Advances in Horticultural Science 31:267−73 doi: 10.13128/ahs-20289 |
| [87] |
Stieve SM, Stimart DP, Yandell BS. 1992. Heritable tissue culture induced variation in Zinnia marylandica. Euphytica 64:81−89 doi: 10.1007/BF00023541 |
| [88] |
Cao T, Wang G, Chen K. 2014. Research on tissue culture technique of Zinnia elegans. Journal of Jilin Forestry Science and Technology 43:7−8,59 doi: 10.3969/j.issn.1005-7129.2014.02.003 |
| [89] |
Liu L, Wang G. 2009. Tissue cultivation and establishment of asexual line of Zinnia linearis. Journal of Liaoning Normal University (Natural Science Edition) 32:239−42 doi: 10.3969/j.issn.1000-1735.2009.02.031 |
| [90] |
Stieve SM, Stimart DP. 1996. Somaclonal Variation in Zinnia. In Somaclonal Variation in Crop Improvement II, ed. Bajaj YPS. Berlin, Heidelberg: Springer. Volume 36. pp. 346–55. doi: 10.1007/978-3-642-61081-3_24 |
| [91] |
Cook RC. 1938. A tetraploid zinnia. Journal of Heredity 29:187−88 doi: 10.1093/oxfordjournals.jhered.a104493 |
| [92] |
Gupta PK, Koak R. 1976. Induced Autotetraploidy in Zinnia elegans Jacq. Cytologia 41:187−91 doi: 10.1508/cytologia.41.187 |
| [93] |
Chen T. 2009. Inducement of polyploidy and primary study of male sterility in Zinnia elegans. Thesis. Huazhong Agricultural University, China |
| [94] |
Li X, Zhang L, Wei X, Datta T, Wei F, et al. 2024. Polyploidization: a biological force that enhances stress resistance. International Journal of Molecular Sciences 25:1957 doi: 10.3390/ijms25041957 |
| [95] |
Hasan N, Choudhary S, Naaz N, Sharma N, Laskar RA. 2021. Recent advancements in molecular marker-assisted selection and applications in plant breeding programmes. Journal of Genetic Engineering and Biotechnology 19:128 doi: 10.1186/s43141-021-00231-1 |
| [96] |
Hu M, Qin M, Li J, Ye Y. 2017. EST-SSR resource analysis of Zinnia and primer screening for the identification of its male sterile two-type lines. Acta Agriculturae Universitatis Jiangxiensis 39:976−82 doi: 10.13836/j.jjau.2017125 |
| [97] |
Gultom T, Purwantoro A, Sulistyaningsih E, Nasrullah. 2012. Estimating of rapd marker associated to color gene in Zinnia elegans Jacq. ARPN Journal of Agricultural and Biological Science 7:958−61 |
| [98] |
Ye YM, Zhang JW, Ning GG, Bao MZ. 2008. A comparative analysis of the genetic diversity between inbred lines of Zinnia elegans using morphological traits and RAPD and ISSR markers. Scientia Horticulturae 118:1−7 doi: 10.1016/j.scienta.2008.05.025 |
| [99] |
Yang YZ, Xie L, Gao Q, Nie ZY, Zhang DL, et al. 2024. A potyvirus provides an efficient viral vector for gene expression and functional studies in Asteraceae plants. Plant Physiology 196:842−55 doi: 10.1093/plphys/kiae356 |