[1] |
YE Zhenghua, ZHONG Ruiqin. Molecular control of wood formation in trees [J]. Journal of Experimental Botany, 2015, 66(14): 4119 − 4131. |
[2] |
WANG Dian, CHEN Yan, LI Wei, et al. Vascular cambium: the source of wood formation [J/OL]. Frontiers in Plant Science, 2021, 12: 700928[2023-08-15]. doi: 10.3389/fpls.2021.700928. |
[3] |
曹慧. DELLA、ARK2与WOX4的蛋白互作介导赤霉素调控杨树形成层活性的分子机制探究[D]. 重庆: 西南大学, 2022.
CHAO Hui. The Molecular Mechanism of Gibberellin Regulating Cambial Activity Mediated by Protein Interaction of DELLA, ARK2 and WOX4 in Poplar [D]. Chongqing: Southwest University, 2022. |
[4] |
韩潇. 不同生长速率欧美杨形成层基因表达分析及杨树BELL基因功能研究[D]. 北京: 北京林业大学, 2017.
HAN Xiao. Analysis of Gene Expression Profiles of Cambium of Different-stem-growth-rate Popilus euramericama Genotypes and Characterization of Populus BELL Gene [D]. Beijing: Beijing Forestry University, 2017. |
[5] |
LUCAS W J, GROOVER A, LICHTENBERGER R, et al. The plant vascular system: evolution, development and functions [J]. Journal of Integrative Plant Biology, 2013, 55(4): 294 − 388. |
[6] |
AGUSTI J, BLAZQUEZ M A. Plant vascular development: mechanisms and environmental regulation [J]. Cellular and Molecular Life Sciences, 2020, 77(19): 3711 − 3728. |
[7] |
SMET W, de RYBEL B. Genetic and hormonal control of vascular tissue proliferation [J]. Current Opinion in Plant Biology, 2016, 29: 50 − 56. |
[8] |
葛颜锐, 赵冉, 徐静, 等. 植物维管形成层发育及其调控的研究进展[J]. 生物技术通报, 2023, 39(3): 13 − 25.
GE Yanrui, ZHAO Ran, XU Jing, et al. Advances in the development and regulation of vascular cambium [J]. Biotechnology Bulletin, 2023, 39(3): 13 − 25. |
[9] |
郑佳. 杨树维管形成层发的基因表达调控[D]. 南京: 南京林业大学, 2012.
ZHENG Jia. Genomic Scale Transcriptome and Expression Analysis of Vascular Cambium in Poplar [D]. Nanjing: Nanjing Forestry University, 2012. |
[10] |
SMETANA O, MAKILA R, LYU M, et al. High levels of auxin signaling define the stem-cell organizer of the vascular cambium [J]. Nature, 2019, 565(7740): 485 − 489. |
[11] |
李学琴. 樟树维管形成层的活动规律及次生木质部发育过程的研究[D]. 武汉: 华中农业大学, 2011.
LI Xueqin. Studies on Activity Rhythm of Vascular Cambium and Development Process of Secondary Xylem in Cinnamomum camphora (L. ) Presl. [D]. Wuhan: Huazhong Agriculural University, 2011. |
[12] |
FISCHER U, KUCUKOGLU M, HELARIUTTA Y, et al. The dynamics of cambial stem cell activity [J]. Annual Review of Plant Biology, 2019, 70: 293 − 319. |
[13] |
NIEMINEN K, BLOMSTER T, HELARIUTTA Y, et al. Vascular cambium development [J/OL]. The Arabidopsis Book, 2015(13): e0177[2023-08-15]. doi: 10.1199/tab.0177. |
[14] |
MIZRACHI E, MYBURG A A. Systems genetics of wood formation [J]. Current Opinion in Plant Biology, 2016, 30: 94 − 100. |
[15] |
ZHANG Jing, ELO A, HELARIUTTA Y. Arabidopsis as a model for wood formation [J]. Current Opinion in Biotechnology, 2011, 22(2): 293 − 299. |
[16] |
MIYASHIMA S, SEBASTIAN J, LEE J Y, et al. Stem cell function during plant vascular development [J]. The EMBO Journal, 2013, 32(2): 178 − 193. |
[17] |
JOHNSSON C, FISCHER U. Cambial stem cells and their niche [J]. Plant Science, 2016, 252: 239 − 245. |
[18] |
SHI Dongbo, LEBOVKA I, LÓPEZ-SALMERÓN V, et al. Bifacial cambium stem cells generate xylem and phloem during radial plant growth [J/OL]. Development, 2019, 146: dev171355[2023-07-15]. doi: 10.1242/dev.171355. |
[19] |
苏会丽. 赤霉素与生长素协同调控毛白杨维管形成层分裂活性的分子机理[D]. 重庆: 西南大学, 2020.
SU Huili. Molecular Mechanism of Gibberellin and Auxin Synergistic Regulating Vascular Cambial Activity in Populus tomentosa [D]. Chongqing: Southwest University, 2020. |
[20] |
BOSSINGER G, SPOKEVICIUS A V. Sector analysis reveals patterns of cambium differentiation in poplar stems [J]. Journal of Experimental Botany, 2018, 69(18): 4339 − 4348. |
[21] |
DU Juan, WANG Yichen, CHEN Wenfan, et al. High-resolution anatomical and spatial transcriptome analyses reveal two types of meristematic cell pools within the secondary vascular tissue of poplar stem [J]. Molecular Plant, 2023, 16(5): 809 − 828. |
[22] |
NGUYEN T T T, BAE E K, TRAN T N A, et al. Exploring the seasonal dynamics and molecular mechanism of wood formation in gymnosperm trees [J/OL]. International Journal of Molecular Sciences, 2023, 24(10): 8624[2023-07-15]. doi: 10.3390/ijms24108624. |
[23] |
NILSSON J, KARLBERG A, ANTTI H, et al. Dissecting the molecular basis of the regulation of wood formation by auxin in hybrid aspen [J]. The Plant Cell, 2008, 20(4): 843 − 855. |
[24] |
BJÖRKLUND S, ANTTI H, UDDESTRAND I, et al. Cross-talk between gibberellin and auxin in development of Populus wood: gibberellin stimulates polar auxin transport and has a common transcriptome with auxin [J]. The Plant Journal, 2007, 52(3): 499 − 511. |
[25] |
AGUSTI J, HEROLD S, SCHWARZ M, et al. Strigolactone signaling is required for auxin-dependent stimulation of secondary growth in plants [J]. Proceedings of the National Academy of Sciences of the United States of America, 2011, 108(50): 20242 − 20247. |
[26] |
HUANG Jianguo, GUO Xiali, ROSSI S, et al. Intra-annual wood formation of subtropical Chinese red pine shows better growth in dry season than wet season [J]. Tree Physiology, 2018, 38(8): 1225 − 1236. |
[27] |
GUO Xiali, HUANG Jianguo, BUTTÒ V, et al. Auxin concentration and xylem production of Pinus massoniana in a subtropical forest in south China [J]. Tree Physiology, 2022, 42(2): 317 − 324. |
[28] |
BRACKMANN K, QI Jiyan, GEBERT M, et al. Spatial specificity of auxin responses coordinates wood formation [J/OL]. Nature Communications, 2018, 9: 875[2023-07-15]. doi: 10.1038/s41467-018-03256-2. |
[29] |
QIU Zongbo, WAN Lichuan, CHEN Tong, et al. The regulation of cambial activity in Chinese fir (Cunninghamia lanceolata) involves extensive transcriptome remodeling [J]. New Phytologist, 2013, 199(3): 708 − 719. |
[30] |
XU Changzheng, SHEN Yun, HE Fu, et al. Auxin-mediated Aux/IAA-ARF-HB signaling cascade regulates secondary xylem development in Populus [J]. New Phytologist, 2019, 222(2): 752 − 767. |
[31] |
MÄKILÄ R, WYBOUW B, SMETANA O, et al. Gibberellins promote polar auxin transport to regulate stem cell fate decisions in cambium [J]. Nature Plants, 2023, 9(4): 631 − 644. |
[32] |
ISRAELSSON M, SUNDBERG B, MORITZ T. Tissue-specific localization of gibberellins and expression of gibberellin-biosynthetic and signaling genes in wood-forming tissues in aspen [J]. The Plant Journal, 2005, 44(3): 494 − 504. |
[33] |
PARK E J, KIM H T, CHOI Y I, et al. Overexpression of gibberellin 20-oxidase1 from Pinus densiflora results in enhanced wood formation with gelatinous fiber development in a transgenic hybrid poplar [J]. Tree Physiology, 2015, 35: 1264 − 1277. |
[34] |
MAURIAT M, MORITZ T. Analyses of GA20ox- and GID1-over-expressing aspen suggest that gibberellins play two distinct roles in wood formation [J]. The Plant Journal, 2009, 58(6): 989 − 1003. |
[35] |
MATSUMOTO-KITANO M, KUSUMOTO T, TARKOWSKI P, et al. Cytokinins are central regulators of cambial activity [J]. Proceedings of the National Academy of Sciences of the United States of America, 2008, 105(50): 20027 − 20031. |
[36] |
SUNDELL D, STREET N R, KUMAR M, et al. AspWood: high-spatial-resolution transcriptome profiles reveal uncharacterized modularity of wood formation in Populus tremula [J]. The Plant Cell, 2017, 29(7): 1585 − 1604. |
[37] |
OHASHI-ITO K, SAEGUSA M, IWAMOTO K, et al. A bHLH complex activates vascular cell division via cytokinin action in root apical meristem [J]. Current Biology, 2014, 24(17): 2053 − 2058. |
[38] |
NIEMINEN K, IMMANEN J, LAXELL M, et al. Cytokinin signaling regulates cambial development in poplar [J]. Proceedings of the National Academy of Sciences of the United States of America, 2008, 105(50): 20032 − 20037. |
[39] |
LOVE J, BJÖRKLUND S, VAHALA J, et al. Ethylene is an endogenous stimulator of cell division in the cambial meristem of Populus [J]. Proceedings of the National Academy of Sciences of the United States of America, 2009, 106(14): 5984 − 5989. |
[40] |
ETCHELLS J P, PROVOST C M, TURNER S R. Plant vascular cell division is maintained by an interaction between PXY and ethylene signalling [J/OL]. PLoS Genetics, 2012, 8(11): e1002997[2023-07-15]. doi: 10.1371/journal.pgen.1002997. |
[41] |
DU Juan, GERTTULA S, LI Zehua, et al. Brassinosteroid regulation of wood formation in poplar [J]. New Phytologist, 2020, 225(4): 1516 − 1530. |
[42] |
JIN Yanli, YU Chunyan, JIANG Chunmei, et al. PtiCYP85A3, a BR C-6 oxidase gene, plays a critical role in brassinosteroid-mediated tension wood formation in poplar [J/OL]. Frontiers in Plant Science, 2020, 11: 468[2023-07-15]. doi: 10.3389/fpls. 2020.00468. |
[43] |
KUCUKOGLU M, NILSSON O. CLE peptide signaling in plants: the power of moving around [J]. Physiologia Plantarum, 2015, 155(1): 74 − 87. |
[44] |
KUCUKOGLU M, NILSSON J, ZHENG Bo, et al. WUSCHEL-RELATED HOMEOBOX4 (WOX4)-like genes regulate cambial cell division activity and secondary growth in Populus trees [J]. New Phytologist, 2017, 215(2): 642 − 657. |
[45] |
ZHANG Jing, ESWARAN G, ALONSO-SERRA J, et al. Transcriptional regulatory framework for vascular cambium development in Arabidopsis roots [J]. Nature Plants, 2019, 5(10): 1033 − 1042. |
[46] |
ETCHELLS J P, PROVOST C M, MISHRA L, et al. WOX4 and WOX14 act downstream of the PXY receptor kinase to regulate plant vascular proliferation independently of any role in vascular organisation [J]. Development, 2013, 140(10): 2224 − 2234. |
[47] |
JI Jiabing, STRABLE J, SHIMIZU R, et al. WOX4 promotes procambial development [J]. Plant Physiology, 2010, 152(3): 1346 − 1356. |
[48] |
BUSH M, SETHI V, SABLOWSKI R. A phloem-expressed PECTATE LYASE-LIKE gene promotes cambium and xylem development [J/OL]. Frontiers in Plant Science, 2022, 13: 888201[2023-07-15]. doi: 10.3389/fpls.2022.888201. |
[49] |
ZHANG Jing, NIEMINEN K, SERRA J A, et al. The formation of wood and its control [J]. Current Opinion in Plant Biology, 2014, 17: 56 − 63. |
[50] |
DU Juan, MANSFIELD S D, GROOVER A T. The Populus homeobox gene ARBORKNOX2 regulates cell differentiation during secondary growth [J]. The Plant Journal, 2009, 60(6): 1000 − 1014. |
[51] |
杨紫薇. 线粒体定位的RFL30蛋白调控杨树形成层和次生木质部发育的分子机制研究[D]. 重庆: 西南大学, 2022.
YANG Ziwei. PtoRFL30, a Mitochondrion-localized Protein, Regulates Secondary Vascular Development of Stem in Poplar [D]. Chongqing: Southwest University, 2022. |
[52] |
胡建. 杨树ARF7蛋白整合生长素与赤霉素通路调控形成层活性的分子机制[D]. 重庆: 西南大学, 2022.
HU Jian. Molecular Mechanism of ARF7 Protein Integrates Auxin and Gibberellin Signaling to Regulate Cambium Activity in Poplar [D]. Chongqing: Southwest University, 2022. |
[53] |
TANG Xianfeng, WANG Congpeng, CHAI Guohua, et al. Ubiquitinated DA1 negatively regulates vascular cambium activity through modulating the stability of WOX4 in Populus [J]. The Plant Cell, 2022, 34(9): 3364 − 3382. |
[54] |
KIM M H, BAE E K, LEE H, et al. Current understanding of the genetics and molecular mechanisms regulating wood formation in plants [J/OL]. Genes, 2022, 13(7):1181[2023-07-15]. doi: 10.3390/genes13071181. |
[55] |
OHTANI M, NISHIKUBO N, XU Bo, et al. A NAC domain protein family contributing to the regulation of wood formation in poplar [J]. The Plant Journal, 2011, 67(3): 499 − 512. |
[56] |
TAKATA N, AWANO T, NAKATA M T, et al. Populus NST/SND orthologs are key regulators of secondary cell wall formation in wood fibers, phloem fibers and xylem ray parenchyma cells [J]. Tree Physiology, 2019, 39(4): 514 − 525. |
[57] |
YANG Y, YOO C G, ROTTMANN W, et al. PdWND3A, a wood-associated NAC domain-containing protein, affects lignin biosynthesis and composition in Populus [J/OL]. BMC Plant Biology, 2019, 19: 486[2023-07-15]. doi: 10.1186/s12870-019-2111-5. |
[58] |
XIE Zhi, GUI Jinshan, ZHONG Yu, et al. Screening genome-editing knockouts reveals the receptor-like kinase ASX role in regulations of secondary xylem development in Populus [J]. New Phytologist, 2023, 238(5): 1972 − 1985. |
[59] |
ZHU Yingying, SONG Dongliang, XU Peng, et al. A HD-ZIP Ⅲ gene, PtrHB4, is required for interfascicular cambium development in Populus [J]. Plant Biotechnology Journal, 2018, 16(3): 808 − 817. |
[60] |
ZHU Yingying, SONG Dongliang, SUN Jiayan, et al. PtrHB7, a class Ⅲ HD-Zip gene, plays a critical role in regulation of vascular cambium differentiation in Populus [J]. Molecular Plant, 2013, 6(4): 1331 − 1343. |
[61] |
DU Juan, MIURA E, ROBISCHON M, et al. The Populus class Ⅲ HD ZIP transcription factor POPCORONA affects cell differentiation during secondary growth of woody stems [J/OL]. PLoS One, 2011, 6(2): e17458[2023-07-15]. doi: 10.1371/journal.pone.0017458. |
[62] |
ZHENG Shuai, HE Jiajia, LIN Zengshun, et al. Two MADS-box genes regulate vascular cambium activity and secondary growth by modulating auxin homeostasis in Populus [J/OL]. Plant Communications, 2021, 2(5): 100134[2023-07-15]. doi: 10.1016/j.xplc.2020.100134. |
[63] |
DAI Xiufang, ZHAI Rui, LIN Jiaojiao, et al. Cell-type-specific PtrWOX4a and PtrVCS2 form a regulatory nexus with a histone modification system for stem cambium development in Populus trichocarpa [J]. Nature Plants, 2023, 9(1): 96 − 111. |
[64] |
RANDALL R S, MIYASHIMA S, BLOMSTER T, et al. AINTEGUMENTA and the D-type cyclin CYCD3;1 regulate root secondary growth and respond to cytokinins [J]. Biology Open, 2015, 4(10): 1229 − 1236. |
[65] |
XIAO Ruixue, ZHANG Chong, GUO Xiaorui, et al. MYB transcription factors and its regulation in secondary cell wall formation and lignin biosynthesis during xylem development [J/OL]. International Journal of Molecular Sciences, 2021, 22(7): 3560[2023-07-15]. doi: 10.3390/ijms.22073560. |
[66] |
HU Hailiang, GUO Zhenhao, YANG Junjie, et al. Transcriptome and microRNA sequencing identified miRNAs and target genes in different developmental stages of the vascular cambium in Cryptomeria fortunei Hooibrenk [J/OL]. Frontiers in Plant Science, 2021, 12: 751771[2023-07-15]. doi: 10.3389/fpls.2021.751771. |
[67] |
WANG Lijun, LU Wanxiang, RAN Lingyu, et al. R2R3-MYB transcription factor MYB6 promotes anthocyanin and proanthocyanidin biosynthesis but inhibits secondary cell wall formation in Populus tomentosa [J]. The Plant Journal, 2019, 99(4): 733 − 751. |
[68] |
LEBOVKA I, MELE B H, LIU Xiaomin, et al. Computational modeling of cambium activity provides a regulatory framework for simulating radial plant growth [J/OL]. eLife, 2023, 12: e66627[2023-07-15]. doi: 10.7554/eLife.66627. |