[1] 朱玉雪, 张敏涛, 刘莹, 等. 4种早花大花组铁线莲的耐热性综合评价[J]. 上海交通大学学报(农业科学版), 2017, 35(1): 58 − 65, 71.

ZHU Yuxue, ZHANG Mintao, LIU Ying, et al. Comprehensive evaluation of heat-tolerance of 4 cultivars of early large-flowered group Clematis [J]. Journal of Shanghai Jiaotong University (Agricultural Science), 2017, 35(1): 58 − 65, 71.
[2] 亚里坤·努尔, 买买提江·吐尔逊, 吐尔逊古丽·托乎提. 铁线莲属植物资源及其研究与应用价值分析[J]. 中国林副特产, 2012(1): 89 − 91.

Yalikun Nuer, Maimaitijang Tuerxun, Tuerxungul Tuhti. Clematis L. resources research and applied analysis [J]. Forest By-Product and Speciality in China, 2012(1): 89 − 91.
[3] 王文采, 李良千. 铁线莲属一新分类系统[J]. 植物分类学报, 2005, 43(5): 431 − 488.

WANG Wencai, LI Liangqian. A new system of classification on the genus Clematis (Ranunculaceae) [J]. Acta Phytotaxonomica Sinica, 2005, 43(5): 431 − 488.
[4] 中国科学院中国植物志编辑委员会. 中国植物志(第28卷: 毛茛科)[M]. 北京: 科学出版社, 1980.

Editorial Board of Flora of China Chinese Academy of Sciences. Flora of China (Vol. 28: Ranunculaceae) [M]. Beijing: Science Press, 1980.
[5] 刘志高, 邵伟丽, 申亚梅, 等. 铁线莲品种耐热性分析及评价指标筛选[J]. 核农学报, 2020, 34(1): 203 − 213.

LIU Zhigao, SHAO Weili, SHEN Yamei, et al. Evaluation of heat tolerance and screening the index for the assessment of heat tolerance in cultivars of Clematis [J]. Journal of Nuclear Agricultural Science, 2020, 34(1): 203 − 213.
[6] 高露璐, 李林芳, 马育珠, 等. 铁线莲品种群的花期观赏性状分析[J]. 园艺学报, 2017, 44(5): 921 − 932.

GAO Lulu, LI Linfang, MA Yuzhu, et al. Analysis of florescence characteristics on Clematis cultivars group [J]. Acta Horticulturae Sinica, 2017, 44(5): 921 − 932.
[7]

SHEN Ping, GAO Suping, CHEN Xi, et al. Genetic analysis of main flower characteristics in the F generation derived from intraspecific hybridization between Plumbago auriculata and Plumbago auriculata f. alba [J/OL]. Scientia Horticulturae, 2020, 274: 109652[2022-03-01]. doi: 10.1016/j.scienta.2020.109652.
[8] 乔谦, 王雪, 王江勇, 等. 铁线莲杂交与花期观赏[J]. 山东林业科技, 2020, 50(1): 35 − 40.

QIAO Qian, WANG Xue, WANG Jiangyong, et al. Artificial hybridization and flowering period of Clematis [J]. Shandong Forestry Science and Technology, 2020, 50(1): 35 − 40.
[9] 孙瑞琦. 铁线莲杂交育种及遗传转化初步研究[D]. 福州: 福建农林大学, 2019.

SUN Ruiqi. A Preliminary Study on Crossbreeding and Genetic Transformation of Clematis[D]. Fuzhou: Fujian Agriculture and Forestry University, 2019.
[10] 余伟军. 铁线莲遗传多样性、杂交育种及离体快繁研究[D]. 福州: 福建农林大学, 2017.

YU Weijun. Studies on Genetic Diversity, Hybridization and in vitro Rapid Propagation of Clematis[D]. Fuzhou: Fujian Agriculture and Forestry University, 2017.
[11] 中国农业科学院蔬菜花卉研究所, 北京天地秀色园林科技有限公司. 植物新品种特异性、一致性和稳定性的测试指南 铁线莲属: NY/T 2583—2014[S]. 北京: 中华人民共和国农业部种子管理局, 2014.

Beijing Tiandi Xiusei Garden Technology Co. LTD, The Institute of Vegetables and Flowers, Chinese Academy of Agricultural Sciences. Guidelines for the Conduct of Tests for Distinctness, Uniformity and Stability: Clematics (Clematics L. ): NY/T 2583−2014[S]. Beijing: Seed Administration Bureau of the Ministry of Agriculture of the People’s Republic of China, 2014.
[12] 周利君, 于超, 常笑, 等. 月季F1代群体表型性状变异分析[J]. 植物研究, 2019, 39(1): 131 − 138.

ZHOU Lijun, YU Chao, CHANG Xiao, et al. Variation analysis of phenotypic traits in F1 population of Rosa spp. [J]. Plant Research, 2019, 39(1): 131 − 138.
[13] 李娟娟, 陈洪伟, 王红利, 等. 一串红若干观赏性状在F1的遗传表现[J]. 华北农学报, 2014, 29(6): 113 − 120.

LI Juanjuan, CHEN Hongwei, WANG Hongli, et al. Genetic performance of several traits in F1 hybrids of different cross combinations in Salvia splendens [J]. Acta Agriculturae Boreali-Sinica, 2014, 29(6): 113 − 120.
[14] 王东雪, 毕雯珺, 江泽鹏, 等. 油茶F1代苗期叶表型性状遗传多样性研究[J]. 西北林学院学报, 2019, 34(1): 113 − 118.

WANG Dongxue, BI Wenjun, JIANG Zepeng, et al. Genetic diversity of leaf phenotypic traits in F1 progeny of Camellia oleifera [J]. Journal of Northwest Forestry College, 2019, 34(1): 113 − 118.
[15] 董虹妤, 刘青华, 周志春, 等. 马尾松子代生长杂种优势与亲本配合力、遗传距离的相关性[J]. 林业科学, 2017, 53(2): 65 − 75.

DONG Hongyu, LIU Qinghua, ZHOU Zhichun, et al. Correlation between heterosis in the growth of progeny and combining ability and genetic distance of the parents for Pinus massoniana [J]. Scientia Silvae Sinicae, 2017, 53(2): 65 − 75.
[16] 张琳, 郭丽丽, 郭大龙, 等. 牡丹杂交F1代性状分离规律及混合遗传分析[J]. 南京林业大学学报(自然科学版), 2018, 42(6): 55 − 64.

ZHANG Lin, GUO Lili, GUO Dalong, et al. Separation analysis and mixed genetic analysis of phenotypic traits in F1 progenies of tree peony [J]. Journal of Nanjing Forestry University (Natural Science Edition), 2018, 42(6): 55 − 64.
[17] 王秀刚, 胡翠平, 杨涛, 等. 百合品种粉美与多安娜杂交F1代主要性状遗传分析[J]. 作物杂志, 2012(4): 90 − 94.

WANG Xiugang, HU Cuiping, YANG Tao, et al. Genetic analysis of main characters of F1 generation from hybridization of Dark beauty and Pollyanna [J]. Crops, 2012(4): 90 − 94.
[18] 郭宁, 杨树华, 葛维亚, 等. 新疆天山山脉地区疏花蔷薇天然居群表型多样性分析[J]. 园艺学报, 2011, 38(3): 495 − 502.

GUO Ning, YANG Shuhua, GE Weiya, et al. Phenotypic diversity of natural populations of Rosa laxa Retz. in Tianshan Moutains of Xinjiang [J]. Acta Horticulturae Sinica, 2011, 38(3): 495 − 502.
[19]

SABA H, MUHAMMAD A J, UMER H, et al. Phenotypic characterization and RT-qPCR analysis of flower development in F-1 transgenics of Chrysanthemum×grandiflorum[J/OL]. Plants, 2021, 10(8): 1681[2022-03-04]. doi: 10.3390/plants10081681.
[20] 杨云燕, 温超, 王珂永, 等. 切花菊杂交F1代若干性状的遗传分析[J]. 中国农业大学学报, 2015, 20(5): 179 − 187.

YANG Yunyan, WEN Chao, WANG Keyong, et al. Heredity analysis of several characters in F1 hybrid generation of cut-flower chrysanthemums [J]. Journal of China Agricultural University, 2015, 20(5): 179 − 187.
[21] 马绍宇, 李世峰, 钱兴, 等. 高山杜鹃品种‘罗伯茨’×大白杜鹃杂交F1代主要观赏性状的遗传分析[C] //张启翔. 中国观赏园艺研究进展. 北京: 中国林业出版社, 2017: 208 − 211.

MA Shaoyu, LI Shifeng, QIAN Xing, et al. Heredity analysis of main ornamental characters in F1 hybrid generation of Rhododendron ‘Lord Roberts’× R. decorum[C]// ZHANG Qixiang. Advance in Ornamental Horticulture of China. Beijing: China Forestry Publishing House, 2017: 208 − 211.
[22] 周熠玮, 许国宇, 王琴, 等. ‘白姜花’ב金姜花’杂交F1代花色遗传分析及其相关SSR分子标记开发[J]. 园艺学报, 2021, 48(10): 1921 − 1933.

ZHOU Yiwei, XU Guoyu, WANG Qin, et al. Genetic analysis and development of associated SSR markers of the flower color in F1 population of Hedychium coronarium ‘COR01’בH. Jin’ [J]. Acta Horticulturae Sinica, 2021, 48(10): 1921 − 1933.
[23]

INAMURA T, NAKAZAWA M, ISHIBE M, et al. Production and characterization of intersectional hybrids between Tricyrtis sect. Brachycyrtis and sect. Hirtae via ovule culture [J]. Plant Biotechnology, 2019, 36(3): 175 − 180.
[24]

AROS D, SUAZO M, RIVAS C, et al. Molecular and morphological characterization of new interspecific hybrids of alstroemeria originated from A. caryophylleae scented lines[J/OL]. Euphytica, 2019, 215(5): 93[2022-03-05]. doi: 10.1007/s10681-019-2415-4.