Acta Horticulturae Sinica ›› 2023, Vol. 50 ›› Issue (3): 596-606.doi: 10.16420/j.issn.0513-353x.2021-1250
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XUE Yuqian1,2,*, LIU Zhiyong2,*, SUN Kairong2, ZHANG Xiuxin2, LÜ Yingmin1,**(), XUE Jingqi2,**()
Received:
2022-11-25
Revised:
2023-01-13
Online:
2023-03-25
Published:
2023-04-03
Contact:
**(E-mail:xuejingqi@caas.cn,luyingmin@bjfu.edu.cn)
CLC Number:
XUE Yuqian, LIU Zhiyong, SUN Kairong, ZHANG Xiuxin, LÜ Yingmin, XUE Jingqi. The Mechanism of Sugar Signal Involved in Regulating Re-flowering of Tree Peony Under Forcing Culture[J]. Acta Horticulturae Sinica, 2023, 50(3): 596-606.
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URL: https://www.ahs.ac.cn/EN/10.16420/j.issn.0513-353x.2021-1250
基因名称 Gene name | 引物名称 Primer name | 引物序列(5′-3′) Sequence | 产物长度/bp Length of product |
---|---|---|---|
PsTPS1 | qRTTPS1 | F:CTCTCGACTTCCATGCCTTA;R:CTGTGATGTTCCAAGGGTTC | 207 |
PsSnRK1 | qRTSnRK1 | F:CACGAAGGAATGGCGAATA;R:CAAGGAAGGCAGCACAAAG | 211 |
PsHXK1 | qRTHXK1 | F:ATAAGAAAAGCCGTGGTAGAGC;R:AGTGTTCATACAAGCCACCATC | 166 |
Actin | qRTActin | F:GAGAGATTCCGTTGCCCAG;R:TCCTTGCTCATTCTGTCTGC | 191 |
Table 1 Primers sequences of sugar signaling-related genes for expression analysis
基因名称 Gene name | 引物名称 Primer name | 引物序列(5′-3′) Sequence | 产物长度/bp Length of product |
---|---|---|---|
PsTPS1 | qRTTPS1 | F:CTCTCGACTTCCATGCCTTA;R:CTGTGATGTTCCAAGGGTTC | 207 |
PsSnRK1 | qRTSnRK1 | F:CACGAAGGAATGGCGAATA;R:CAAGGAAGGCAGCACAAAG | 211 |
PsHXK1 | qRTHXK1 | F:ATAAGAAAAGCCGTGGTAGAGC;R:AGTGTTCATACAAGCCACCATC | 166 |
Actin | qRTActin | F:GAGAGATTCCGTTGCCCAG;R:TCCTTGCTCATTCTGTCTGC | 191 |
处理 Treatment | 气孔开度/μm Stomatal aperture | 气孔密度/(No · mm-2) Stomatal density | 气孔长度/μm Stomatal length | 气孔宽度/μm Stomatal width | 气孔面积/μm2 Stomatal area |
---|---|---|---|---|---|
对照Control | 0.27 ± 0.21 c | 251.85 ± 26.91 a | 28.68 ± 2.81 a | 23.58 ± 1.96 b | 501.44 ± 31.66 c |
剥叶Partial defoliation | 0.55 ± 0.20 b | 237.04 ± 36.29 a | 28.96 ± 1.95 a | 24.92 ± 1.31 a | 559.46 ± 23.42 b |
赤霉素GA | 0.98 ± 0.47 a | 181.49 ± 21.85 b | 28.80 ± 2.20 a | 25.69 ± 2.11 a | 593.61 ± 26.55 a |
Table 2 Characteristics of leaf stomata of tree peony‘Luoyang Hong’under partial defoliation and GA treatment on the 15th day
处理 Treatment | 气孔开度/μm Stomatal aperture | 气孔密度/(No · mm-2) Stomatal density | 气孔长度/μm Stomatal length | 气孔宽度/μm Stomatal width | 气孔面积/μm2 Stomatal area |
---|---|---|---|---|---|
对照Control | 0.27 ± 0.21 c | 251.85 ± 26.91 a | 28.68 ± 2.81 a | 23.58 ± 1.96 b | 501.44 ± 31.66 c |
剥叶Partial defoliation | 0.55 ± 0.20 b | 237.04 ± 36.29 a | 28.96 ± 1.95 a | 24.92 ± 1.31 a | 559.46 ± 23.42 b |
赤霉素GA | 0.98 ± 0.47 a | 181.49 ± 21.85 b | 28.80 ± 2.20 a | 25.69 ± 2.11 a | 593.61 ± 26.55 a |
Fig. 3 The change of sucrose,glucose,fructose and T6P content at‘Luoyang Hong’tree peony under forcing culture Different letters indicate significant differences at P < 0.05 level,n = 3.
Fig. 4 Phylogenetic analysis of TPS1(A),SnRK1(B)and HXK1(C)amino acid in various plants The scale in represent the difference of every TPS1,SnRK1 and HXK1 amino acid from different plants.
Fig. 5 Effect of defoliation and GA treatment on the expression of PsTPS1,PsSnRK1,and PsHXK1 in leaves of tree peony‘Luoyang Hong’ The different lowercase letters indicated a significant difference among different treatment in expression of gene(Duncan’s test at P < 0.05 after analysis of variance;data are shown as mean ± SD,n = 3).
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