[1] |
国家药典委员会. 中华人民共和国药典 (一部)[M]. 北京: 中国医药科技出版社, 2020: 243 − 244.
National Pharmacopoeia Board. Chinese Pharmacopoeia (Volume Ⅰ)[M]. Beijing: China Medical Science Press, 2020: 243 − 244. |
[2] |
LIU C, SRIVIDYA N, PARRISH A N, et al. Morphology of glandular trichomes of Japanese catnip (Schizonepeta tenuifolia Briquet) and developmental dynamics of their secretary activity [J]. Phytochemistry, 2018, 150: 23 − 30. |
[3] |
樊佳新, 王帅, 孟宪生, 等. HPLC法测定不同产地荆芥中6种黄酮类成分[J]. 中草药, 2017, 48(11): 2292 − 2295.
FAN Jiaxin, WANG Shuai, MENG Xiansheng, et al. Determination of six flavonoids in Schizonepeta tenuifolia from different areas by HPLC [J]. Chinese Traditional and Herbal Drugs, 2017, 48(11): 2292 − 2295. |
[4] |
FEDERICO DA, PABLO A M, CARLOS A D, et al. The true story of the HD-Zip family [J]. Trends in Plant Science, 2007, 12(9): 419 − 426. |
[5] |
李媛. 大麦HD-Zip基因家族分析及功能研究[D]. 西宁: 青海大学, 2020.
LI Yuan. Analysis and Functional Study of HD-Zip Gene Family in Barley [D]. Xining: Qinghai University, 2020. |
[6] |
SESSA G, CARABELLUI M, POSSENTI M, et al. Multiple links between HD-Zip proteins and hormone networks[J/OL]. International Journal of Molecular Sciences, 2018, 19(12): 4047[2022-05-04]. doi: 10.3390/ijms19124047. |
[7] |
MIYUKI N, HIROSHI K, MITSUTOMO A, et al. Characterization of the class Ⅳ homeodomain-leucine zipper gene family in Arabidopsis [J]. Plant Physiology, 2006, 141(4): 1363 − 1375. |
[8] |
BRANDT R, CABEDO M, XIE Y, et al. Homeodomain leucine-zipper proteins and their role in synchronizing growth and development with the environment [J]. Journal of Integrative Plant Biology, 2014, 56(6): 518 − 526. |
[9] |
LI Yuxia, YANG Zongran, ZHANG Yuanyuan, et al. The roles of HD-ZIP proteins in plant a biotic stress tolerance[J/OL]. Frontiers in Plant Science, 2022, 13: 1027071[2022-05-04]. doi: 10.3389/fpls.2022.1027071. |
[10] |
YUE Hong, SHU Duntao, WANG Meng, et al. Genome-wide identification and expression analysis of the HD-Zip gene family in wheat (Triticum aestivum L. )[J/OL]. Genes, 2018, 9(2): 70[2022-05-02]. doi: 10.3390/genes9020070. |
[11] |
CHEN Chengjie, CHEN Hao, ZHANG Yi, et al. TBtools: an integrative toolkit developed for interactive analyses of big biological data [J]. Molecular Plant, 2020, 13(8): 1194 − 1202. |
[12] |
MA Gang, ZELMAN A K, APICELLA P V, et al. Genome-wide identification and expression analysis of homeodomain leucine zipper subfamily Ⅳ(HD-Zip Ⅳ) gene family in Cannabis sativa L. [J/OL]. Plants. 2022, 11(10): 1307[2022-05-02]. doi: 10.3390/plants11101307. |
[13] |
ZHAO Yang, ZHOU Yuqing, JIANG Haiyan, et al. Systematic analysis of sequences and expression patterns of drought-responsive members of the HD-Zip gene family in maize[J/OL]. PLoS One, 2011, 6(12): e28488[2022-05-02]. doi: 10.1371/journal.pone.0028488. |
[14] |
WANG Zhong, WANG Shanshan, XIAO Yansong, et al. Functional characterization of a HD-Zip Ⅳ transcription factor NtHDG2 in regulating flavonols biosynthesis in Nicotiana tabacum [J]. Plant Physiology and Biochemistry, 2020, 146: 259 − 268. |
[15] |
WAN Li, DONG Jieya, CAO Minxuan, et al. Genome-wide identification and characterization of HD-Zip genes in potato [J]. Genes, 2019, 697: 103 − 117. |
[16] |
SCHRICK K, NGUYEN D, KARLOWSKI W M, et al. START lipid/sterol-binding domains are amplified in plants and are predominantly associated with homeodomain transcription factors[J/OL]. Genome Biology, 2004, 5: R41[2022-05-02]. doi: 10.1186/gb-2004-5-6-r41. |
[17] |
MUKHERIEE K, BURGLIN TR, MEKHLA, a novel domain with similarity to PAS domains, is fused to plant homeodomain-leucine zipper Ⅲ proteins[J]. Plant Physiology, 2006, 140(4): 1142 − 1150. |
[18] |
GUO Qing, JIANG Jiahui, YAO Wenjing, et al. Genome-wide analysis of poplar HD-Zip family and over-expression of PsnHDZ63 confers salt tolerance in transgenic Populus simonii × P. nigra[J/OL]. Plant Science, 2021, 311: 111021[2022-11-21]. doi: 10.1016/j.plantsci.2021.111021. |
[19] |
邵晨冰, 黄志楠, 白雪滢, 等. 辣椒HD-Zip基因家族鉴定、系统进化及表达分析[J]. 中国农业科学, 2020, 53(5): 1004 − 1017.
SHAO Chenbing, HUANG Zhinan, BAI Xueying, et al. Identification, systematic evolution and expression analysis of HD-Zip gene family in Capsicum annuum [J]. Scientia Agricultura Sinica, 2020, 53(5): 1004 − 1017. |
[20] |
NAOKO K, HITOMI O, YOSHIBUMI K, et al. Mutations in epidermis-specific HD-Zip Ⅳ genes affect floral organ identity in Arabidopsis thaliana [J]. The Plant Journal, 2013, 75(3): 430 − 440. |
[21] |
CHALVIN C, DRE VENSK S, DRON M, et al. Genetic control of glandular trichome development [J]. Trends in Plant Science, 2020, 25(5): 477 − 487. |
[22] |
YAN Tingxiang, CHEN M, SHEN Q, et al. HOMEODOMAIN PROTEIN 1 is required for jasmonate-mediated glandular trichome initiation in Artemisia annua [J]. New Phytologist, 2017, 213(3): 1145 − 1155. |
[23] |
HULSKAMP M, MISRA S, JURGENS G. Genetic dissection of trichome cell development in Arabidopsis [J]. Cell, 1994, 76(3): 555 − 566. |
[24] |
蒋征, 王红, 吴啟南, 等. 荆芥穗药材腺鳞内含物定性及3种主要萜类的定量研究[J]. 中药材, 2016, 39(1): 31 − 36.
JIANG Zheng, WANG Hong, WU Qi’nan, et al. Qualitative and quantitative analysis of major constituents of gland products in peltate glandular trichomes of Schizonepetae Spica [J]. Journal of Chinese Medicinal Materials, 2016, 39(1): 31 − 36. |
[25] |
ZHOU Peina, DANG Jingjie, SHI Zunrui, et al. Identification and characterization of a novel gene involved in glandular trichome development in Nepeta tenuifolia[J/OL]. Frontiers in Plant Science, 2022, 13: 936244[2022-05-02]. doi: 10.3389/fpls.2022.936244. |