[1] 王紫阳, 徐建华, 李火根, 等.中山杉优良无性系302, 118, 405扦插生根能力比较[J].浙江农林大学学报, 2015, 32(4):648-654.

WANG Ziyang, XU Jianhua, LI Huogen, et al. Rooting capabilities for Taxodium 'Zhongshanshan' 302, 118, and 405[J]. J Zhejiang A & F Univ, 2015, 32(4):648-654.
[2] 白磊, 李荣生, 尹光天, 等.米老排扦插生根因子及优化[J].浙江农林大学学报, 2016, 33(3):543-550.

BAI Lei, LI Rongsheng, YIN Guangtian, et al. Rooting factors and optimization for propagation of Mytilaria laosensis cuttings[J]. J Zhejiang A & F Univ, 2016, 33(3):543-550.
[3] 董宁光, 齐建勋, 陈永浩, 等.沙藏埋枝处理对促进平欧杂种榛绿枝扦插生根的机制分析[J].果树学报, 2016, 33(12):1510-1516.

DONG Ningguang, QI Jianxun, CHEN Yonghao, et al. Physiological and biochemical basis of hazelnut rhizogenesis promoted by embedded stock etiolation[J]. J Fruit Sci, 2016, 33(12):1510-1516.
[4] SWAMY S L, PURI S, SINGH A K. Effect of auxins (IBA and NAA) and season on rooting of juvenile and mature hardwood cuttings of Robinia pseudoacacia and Grewia optiva[J]. New For, 2002, 23(2):143-157.
[5] NEGISHI N, NAKAHAMA K, URATA N, et al. Hormone level analysis on adventitious root formation in Eucalyptus globules[J]. New For, 2014, 45(4):577-587.
[6] 吴文浩, 曹凡, 刘壮壮, 等. NAA对薄壳山核桃扦插生根过程中内源激素含量变化的影响[J].南京林业大学学报(自然科学版), 2016, 40(5):191-196.

WU Wenhao, CAO Fan, LIU Zhuangzhuang, et al. Effects of NAA treatment on the endogenous hormone changes in cuttings of Carya illinoinensis during rooting[J]. J Nanjing For Univ Nat Sci Ed, 2016, 40(5):191-196.
[7] 裴东.核桃等树种不定根发生及其无性繁殖[M].北京:中国环境科学出版社, 2009.
[8] 宋晓波. 复幼提高核桃不定根发生能力的多基因作用机制[D]. 北京: 北京林业大学, 2016.

SONG Xiaobo. Role of Multi-genes during Rooting Promoting by Rejuvenation in the Adventitious Rooting of Walnut[D]. Beijing:Beijing Forestry University, 2016.
[9] 叶宝兴, 毕建杰, 孙印石.植物组织与细胞研究方法[M].北京:化学工业出版社, 2011.
[10] 贾鹏禹, 曾明飞, 冯乃杰, 等.在线固相萃取-高效液相色谱-串联质谱法同时检测大豆不同部位的4种植物激素[J].分析化学, 2014, 42(12):1743-1749.

JIA Pengyu, ZENG Mingfei, FENG Naijie, et al. An automated dual-gradient liquid chromatography MS/MS method for simultaneous determination of four kinds of plants hormones in different parts of soya beans and its application to a real analysis[J]. Chin J Analyt Chem, 2014, 42(12):1743-1749.
[11] HENRIQUE A, CAMPINHOS E N, ONO E O, et al. Effect of plant growth regulators in the rooting of Pinus cuttings[J]. Braz Arch Biol Technol, 2006, 49(2):189-196.
[12] OUYANG Fangqun, WANG Junhui, LI Yue. Effects of cutting size and exogenous hormone treatment on rooting of shoot cuttings in Norway spruce[Picea abies, (L.) Karst.] [J]. New For, 2015, 46(1):91-105.
[13] NORDSTRÖM A C, ELIASSON L. Levels of endogenous indole-3-acetic acid and indole-3-acetylaspartic acid during adventitious root formation in pea cuttings[J]. Physiol Plant, 1991, 82(4):599-605.
[14] WOLTERS H, JÜRGENS G. Survival of the flexible:hormonal growth control and adaptation in plant development[J]. Nat Rev Genet, 2009, 10(5):305-317.
[15] SAINI S, SHARMA I, KAUR N, et al. Auxin:a master regulator in plant root development[J]. Plant Cell Rep, 2013, 32(6):741-757.
[16] PACURAR D I, PERRONE I, BELLINI C. Auxin is a central player in the hormone cross-talks that control adventitious rooting[J]. Physiol Plant, 2014, 151(1):83-96.
[17] de ALMEIDA M R, de BASTIANI D, GAETA M L, et al. Comparative transcriptional analysis provides new insights into the molecular basis of adventitious rooting recalcitrance in Eucalyptus[J]. Plant Sci, 2015, 239(7):155-165.
[18] STEFFENS B, WANG J X, SAUTER M. Interactions between ethylene, gibberellin and abscisic acid regulate emergence and growth rate of adventitious roots in deepwater rice[J]. Planta, 2006, 223(3):604-612.
[19] DAVIES P J. The plant hormones:their nature, occurrence, and functions[G]//DAVIES P J. Plant Hormones.[s.l.]:Springer Netherlands, 2010:1-12.
[20] BUSOV V, MEILAN R, PEARCE D W, et al. Transgenic modification of gai or rgl1 causes dwarfing and alters gibberellins, root growth, and metabolite profiles in Populus[J]. Planta, 2006, 224(2):288-299.
[21] MAURIAT M, PETTERLE A, BELLINI C, et al. Gibberellins inhibit adventitious rooting in hybrid aspen and Arabidopsis by affecting auxin transport[J]. Plant J Cell Mol Biol, 2014, 78(3):372-384.
[22] LAPLAZE L, BENKOVA E, CASIMIRO I, et al. Cytokinins act directly on lateral root founder cells to inhibit root initiation[J]. Plant Cell, 2007, 19(12):3889-3900.
[23] MARHAVÝ P, DUCLERCQ J, WELLER B, et al. Cytokinin controls polarity of PIN1-dependent auxin transport during lateral root organogenesis[J]. Curr Biol, 2014, 24(9):1031-1037.