Bulletin of Botanical Research ›› 2026, Vol. 46 ›› Issue (4): 677-687.doi: 10.7525/j.issn.1673-5102.2026.04.009
• Original Paper • Previous Articles Next Articles
Wosen LI, Rui ZHAI, Qing ZHAO, Jinfeng ZHAO, Dekai MENG, Yanjie CHEN, Shuang LI, Chenguang ZHOU(
)
Received:2026-03-03
Online:2026-07-20
Published:2026-07-22
Contact:
Chenguang ZHOU
E-mail:zhouchenguang@nefu.edu.cn
CLC Number:
Wosen LI, Rui ZHAI, Qing ZHAO, Jinfeng ZHAO, Dekai MENG, Yanjie CHEN, Shuang LI, Chenguang ZHOU. The Role of the Poplar C2H2 Zinc Finger Transcription Factor PtrZAT11 in Wood Formation[J]. Bulletin of Botanical Research, 2026, 46(4): 677-687.
Table 1
Primer sequences information
引物用途 Usage of primers | 引物名称 Primer name | 引物序列(5′→3′) Primer sequences(5′→3′) |
|---|---|---|
PtrZAT11基因克隆 Cloning of PtrZAT11 gene | PtrZAT11-F | ATGAAGAGAGGTCTGCACGA |
| PtrZAT11-R | CTAAAAGAAACAATTGACCATAG | |
PtrZAT11基因表达模式检测 Detection of PtrZAT11 gene expression patterns | RT-18S-F | CGAAGACGATCAGATACCGTCCTA |
| RT-18S-R | TTTCTCATAAGGTGCTGGCGGAGT | |
| RT-PtrZAT11-F | GCAATAGGCAATTCCCATCG | |
| RT-PtrZAT11-R | TCTTCACGACAGGAACTGCT | |
亚细胞定位载体构建 Construction of subcellular localization vector | pUC19-PtrZAT11-F | CTAGTCTAGAATGAAGAGAGGTCTGCACG |
| pUC19-PtrZAT11-R | CTAGCTCGAGAAAGAAACAATTGACCATAGGA | |
双突变体载体构建 Construction of double mutant vector | gRNA-PtrZAT11-F | GATTGAGAGATTGATAGCATAACCA |
| gRNA-PtrZAT11-R | AAACTGGTTATGCTATCAATCTCTC | |
转基因鉴定 Transgenic identification | M13-F | GTAAAACGACGGCCAG |
基因编辑鉴定 Identification of gene editing | CRISPR-PtrZAT11-F | CGTATCCATCAAGTACAAGGG |
| CRISPR-PtrZAT11-R | GGCTTTGCTGGCGATTGAGT | |
| CRISPR-PtrZAT11h-F | CCATCGAGTCAAGGGCACAA | |
| CRISPR-PtrZAT11h-R | AGCACTCGTGTGTTTTAGGC |
Fig.1
Expression pattern analysis of PtrZAT11 in xylem of different stem internodes of P. trichocarpaThe numbers 1 to 8 on the horizontal axis represented stem internodes 1 to 8 from the apex to the base of P. trichocarpa. Error bars indicated the standard error(SE) calculated from three biological replicates; different lowercase letters indicated significant differences(P<0.05) determined by one-way analysis of variance(ANOVA) followed by multiple comparison tests.
Fig.2
Expression pattern analysis of PtrZAT11 in various tissues of P. trichocarpaError bars indicated the standard error(SE) calculated from three biological replicates; different lowercase letters indicated significant differences(P<0.05) determined by one-way analysis of variance(ANOVA) followed by multiple comparison tests.
Fig.4
Phylogenetic and sequence analysis of PtrZAT11A.Bootstrap support values(%) were indicated at each branch node, with Arabidopsis thaliana AtZAT11 included as a reference sequence in the analysis; B. Red shading indicated completely identical amino acid residues; red letters within blue boxes indicated amino acids with similar physicochemical properties; the bold black line below the sequence indicated the zinc finger domain.
Fig.5
PCR identification of transgenic plantsM. DNA marker DL1000;1. Negative control using ddH2O as template;2.Negative control using genomic DNA from wild-type P. trichocarpa leaves as template;3.Positive control using the pEgP237-PtrZAT11 plasmid as template;4-8.Samples using genomic DNA from leaves of resistant plants as template.
Fig.7
Observation and analysis of growth phenotypes in double mutant plants of PtrZAT11 and its homologous geneA. Growth phenotype of three-month-old wild-type(WT) P. trichocarpa and PtrZAT11 double mutant plants(ptrzat11 ptrzat11h-L9); B. Growth phenotype of four-month-old WT and ptrzat11 ptrzat11h-L9 plants; C-G. Statistical analysis of plant height(C), number of stem nodes(D), ground diameter(E), internode length(F), and internode diameter(G) in WT and ptrzat11 ptrzat11h-L9 plants at three and four months of age. Error bars represented the standard error calculated from three biological replicates; asterisks indicated the results of Student’s t-test; **P<0.01, ***P<0.001.
Fig.8
Observation and analysis of stem phenotypes in double mutant plants of PtrZAT11 and its homologous geneA. Paraffin sections of different stem internodes from four-month-old wild-type(WT) P. trichocarpa and PtrZAT11 double mutant plants(ptrzat11 ptrzat11h-L9);B-F. Statistical analysis of the proportion of cell area to stem cross-sectional area in the 12th stem node (B), xylem width in the 12th internode(C), the number of fiber cells per unit area (D), the number of vessel cells per unit area (E), and the average area of individual vessel cells(F) in WT and ptrzat11 ptrzat11h-L9 plants. Error bars represented the standard error calculated from three biological replicates; asterisks indicated the results of Student’s t-test; **P<0.01,***P<0.001.
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