Morphological, microstructural and lignin-related responses of herbaceous peony stem to shading

2021 ◽  
pp. 110734
Author(s):  
Yuhan Tang ◽  
Wenbo Shi ◽  
Xing Xia ◽  
Daqiu Zhao ◽  
Yanqing Wu ◽  
...  
Keyword(s):  
PROTOPLASMA ◽  
2018 ◽  
Vol 255 (4) ◽  
pp. 1001-1013 ◽  
Author(s):  
Daqiu Zhao ◽  
Menglin Cheng ◽  
Wenhui Tang ◽  
Ding Liu ◽  
Siyu Zhou ◽  
...  

2021 ◽  
Vol 22 (16) ◽  
pp. 8382
Author(s):  
Runlong Zhang ◽  
Xiaobin Wang ◽  
Xiaohua Shi ◽  
Lingmei Shao ◽  
Tong Xu ◽  
...  

The introduction of herbaceous peony (Paeonia lactiflora Pall.) in low-latitude areas is of great significance to expand the landscape application of this world-famous ornamental. With the hazards of climate warming, warm winters occurs frequently, which makes many excellent northern herbaceous peony cultivars unable to meet their chilling requirements (CR) and leads to their poor growth and flowering in southern China. Exploring the endodormancy release mechanism of underground buds is crucial for improving low-CR cultivar screening and breeding. A systematic study was conducted on P. lactiflora ‘Meiju’, a screened cultivar with a typical low-CR trait introduced from northern China, at the morphological, physiological and molecular levels. The CR value of ‘Meiju’ was further verified as 677.5 CUs based on the UT model and morphological observation. As a kind of signal transducer, reactive oxygen species (ROS) released a signal to enter dormancy, which led to corresponding changes in carbohydrate and hormone metabolism in buds, thus promoting underground buds to acquire strong cold resistance and enter endodormancy. The expression of important genes related to ABA metabolism, such as NCED3, PP2C, CBF4 and ABF2, reached peaks at the critical stage of endodormancy release (9 January) and then decreased rapidly; the expression of the GA2ox8 gene related to GA synthesis increased significantly in the early stage of endodormancy release and decreased rapidly after the release of ecodormancy (23 January). Cytological observation showed that the period when the sugar and starch contents decreased and the ABA/GA ratio decreased was when ‘Meiju’ bud endodormancy was released. This study reveals the endodormancy regulation mechanism of ‘Meiju’ buds with the low-CR trait, which lays a theoretical foundation for breeding new herbaceous peony cultivars with the low-CR trait.


2006 ◽  
pp. 59-66
Author(s):  
Y. Jacob ◽  
S. Mastrantuono ◽  
F. Ferrero

Heart ◽  
2012 ◽  
Vol 98 (Suppl 2) ◽  
pp. E289.1-E289
Author(s):  
XJ Hou ◽  
YL zhu ◽  
XJ Hou

2018 ◽  
Vol 143 (4) ◽  
pp. 248-258 ◽  
Author(s):  
Chaowei Song ◽  
Qi Wang ◽  
Jaime A. Teixeira da Silva ◽  
Xiaonan Yu

Thirty herbaceous peony (section Paeonia of the genus Paeonia) cultivars were divided into four groups (no fragrance, light fragrance, medium fragrance, or intense fragrance) based on their sensory evaluation scores. Using dynamic headspace sampling (DHS) and automatic thermal desorption–gas chromatography/mass spectrometry (ATD-GC/MS), 130 volatile organic components were detected in these 30 cultivars and a total of 72 compounds were identified as scent components. The main compounds were phenylethyl alcohol, β-caryophyllene, linalool, (R)-citronellol, and nerol. Selecting α-pinene as the standard, the volatile components of these cultivars were quantitatively analyzed. By combining the sensory evaluation scores and the results of quantitative analysis, we found that ‘Going Bananas’, ‘Cream Delight’, ‘Zhu Sha Pan’, ‘Qiao Ling’, ‘Duchess de Nemours’, and ‘Yang Fei Chu Yu’ displayed an intense fragrance and, thus, had relatively high commercial value for the flower fragrance industry. ‘Red Magic’, ‘Joker’, ‘Fairy Princess’, ‘Lovely Rose’, ‘Carina’, and ‘Etched Salmon’ were excluded from the hierarchical cluster of aromatic compounds and the analysis of fragrance patterns because of the low amount of fragrance they released and poor sensory evaluation results. Based on a cluster analysis, assessment of the major aromatic compounds, and the results of sensory evaluation, the remaining 24 cultivars were divided into five fragrance patterns for the first time: woody scent [cluster I (major fragrance β-caryophyllene)], fruity scent [cluster II (phenylethyl alcohol)], lily scent [cluster III (linalool)], rose scent {cluster IV [(R)-citronellol]}, and an orange blossom scent [cluster V (nerol)].


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