参考文献/References:
[1]中国科学院植物研究所.中国高等植物图鉴(第2册)[M].北京:科学出版社,1972:984.
[2]王献溥,李俊清,张家勋.珙桐的生物生态学特性和栽培技术[J]. 广西植物,1995,15(4):347-353.
[3]李雪萍,何正权,陈发菊,等. 濒危植物珙桐ISSR-PCR反应体系的建立[J]. 江苏农业科学,2007(2):162-165.
[4]荣 熔,陈蕤坤,田金华, 等. 珙桐愈伤组织ISSR-PCR体系的建立[J]. 林业科技,2015,40(4):1-5.
[5]张玉晶,李牡丹,石 旭, 等. 珙桐基因组DNA的提取及ISSR-PCR体系的优化[J]. 山地农业生物学报,2011,30(3):211-214.
[6]徐刚标,禹玉婷,申响保. 湘鄂西地区珙桐天然群体遗传结构的研究[J]. 中南林业科技大学学报,2007,27(6):5-9.
[7]李雪萍,李在留,贺春玲, 等. 珙桐遗传多样性的AFLP分析[J]. 园艺学报,2012,39(5):992-998.
[8]张玉梅,徐刚标,申响保, 等. 珙桐天然种群遗传多样性的ISSR标记分析[J]. 林业科学,2012,48(8):62-67.
[9]李雪萍,郑 雪,朱文琰, 等. 濒危植物珙桐遗传多样性与遗传结构的ISSR分析[J]. 广东农业科学,2012,39(6):121-123.
[10]FRANKHAM R, BALLOU J D, BRISCOE D A. Introduction to conservation genetics[M]. Cambridge: Cambridge University Press, 2002: 96-112.
[11]晏慧君,黄兴奇,程在全. cDNA文库构建策略及其分析研究进展[J]. 云南农业大学学报,2006,21(1):1-6.
[12]徐刚标,房学爽,叶翠层. 利用SMART技术构建珙桐叶片全长cDNA文库[J]. 中南林业科技大学学报,2008,28(6):40-45.
[13]齐 刚,苏智先,李劲涛, 等. 休眠期珙桐种子cDNA文库构建及EST分析[J]. 林业科学,2009,45(10):69-73.
[14]LI M, DONG X J, PENG J Q, et al. De novo transcriptome sequencing and gene expression analysis reveal potential mechanisms of seed abortion in dove tree (Davidia involucrata Baill.)[J]. BMC Plant Biology, 2016(16):82-102.
[15]熊亚丽,曹福祥,刘志明, 等. 珙桐种子败育相关基因CesA的克隆及表达分析[J]. 植物生理学报,2016(10):1481-1490.
[16]戴鹏辉,任 锐,曹福祥, 等. 珙桐MYB转录因子DiMYB1基因的克隆及表达分析[J]. 植物生理学报,2016(8):1255-1262.
[17]刘 美,苏智先,齐 刚, 等. 珙桐热休克蛋白序列分析及功能预测[J]. 光谱实验室,2011,28(1):36-40.
[18]季红春,苏智先,杨 军, 等. 珙桐中一个与低温相关基因的克隆及其表达研究(英文)[J]. 云南植物研究,2010,32(2):151-157.
[19]YU T, LYU J, LI J, et al. The complete chloroplast genome of the dove tree Davidia involucrata (Nyssaceae), a relict species endemic to China[J]. Conservation Genetics Resources, 2016,8(3):263-266.
[20]任 锐,戴鹏辉,曹福祥, 等. 珙桐CAC基因的克隆及其作为内参基因的评价[J]. 生物技术通报,2017,33(4):119-129.
[21]任 锐,戴鹏辉,李 萌, 等. 珙桐实时定量PCR内参基因的筛选及稳定性评价[J]. 植物生理学报,2016(10):1565-1575.
[22]MAGBANUA Z V, ARICK M 2nd, BUZA T, et al. Transcriptomic dissection of the rice-Burkholderia glumae interaction[J]. BMC Genomics, 2014, 15 (1): 755-767.
[23]XU R, ZHANG S, HUANG J, et al. Genome-wide comparative in silico analysis of the RNA Helicase Gene Family in Zea mays and Glycine max: A comparison with Arabidopsis and Oryza sativa[J]. Plos One, 2013, 8(11): e78982.
[24]BHARGAVA A, CLABAUGH I, TO J P, et al. Identification of cytokinin-responsive genes using microarray meta-analysis and RNA-Seq in Arabidopsis thaliana[J]. Plant Physiology, 2013, 162(1): 272-294.
[25]LORAINE A E, McCORMICK S, ESTRADA A, et al. RNA-seq of Arabidopsis pollen uncovers novel transcription and alternative splicing[J]. Plant Physiology, 2013, 162(2): 1092-1109.
[26]KAKUMANU A, AMBAVARAM M M, KLUMAS C, et al. Effects of drought on gene expression in maize reproductive and leaf meristem tissue revealed by RNA-Seq[J]. Plant Physiology, 2012, 160(2): 846-867.
[27]Liu X, Xu X, Li B, et al. RNA-seq transcriptome analysis of maize inbred carrying nicosulfuron-tolerant and nicosulfuron-susceptible alleles[J]. International Journal of Molecular Sciences, 2015, 16 (3):5975-5989.
[28]CHEN J, QUAN M, ZHANG D. Genome-wide identification of novel long non-coding RNAs in Populus tomentosa tension wood, opposite wood and normal wood xylem by RNA-seq [J]. Planta, 2015, 241(1): 125-143.
[29]ZHANG W, CHU Y, DING C, et al. Transcriptome sequencing of transgenic poplar (Populus × euramericana “Guariento”) expressing multiple resistance genes[J]. BMC Genetics, 2014, 15 (S1): S7.
[30]余阿梅,苏智先,胡进耀,等.珙桐愈伤组织诱导和继代培养中的褐化研究[J].绵阳师范学院学报,2008,27(8):70-74.