| Literature DB >> 30787347 |
Bo Deng1, Yuanyuan Li1, Dandan Xu1, Qingqing Ye1, Guihua Liu2.
Abstract
Cyclocarya paliurus has traditionally been used in medicines and nutraceutical foods. The aims of this study were to determine whetherEntities:
Year: 2019 PMID: 30787347 PMCID: PMC6382939 DOI: 10.1038/s41598-019-38837-8
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Correlation between flavonoid and amino acid synthesis in Cyclocarya paliurus. The solid and dotted lines indicate primary and secondary metabolism, respectively. PAL, phenylalanine ammonia lyase; C4H, cinnamate 4-hydroxylase; CHS, chalcone synthase; FHT, flavanone 3-hydroxylase.
Figure 2Effects of nitrogen treatments on total chlorophyll contents (A) and the photosynthetic rates (B) of Cyclocarya paliurus seedlings. ‘fm’ represents fresh matter. Different letters indicate significant differences among nitrogen treatments in the same category according to Duncan’s test (p < 0.05). N1, N2, N3, N4 and N5 represent the concentrations of NH4NO3 were 0, 0.19, 0.63, 1.13 and 2.00 mM, respectively.
Variations in the carbon, nitrogen and carbon-to-nitrogen ratio (C/N) in the roots, stalks and leaves of Cyclocarya paliurus seedlings under five different nitrogen fertilization treatments.
| Treatment | Root (%)a | Stalk (%) | Leaf (%) | ||||||
|---|---|---|---|---|---|---|---|---|---|
| nitrogen | carbon | C/N | nitrogen | carbon | C/N | nitrogen | carbon | C/N | |
| N1 | 1.11a | 42.31a | 38.14c | 0.62a | 41.90a | 68.05d | 2.09a | 42.48b | 20.42c |
| N2 | 1.54ab | 41.63a | 27.28b | 0.87ab | 41.89a | 48.33c | 2.78b | 43.24b | 15.59b |
| N3 | 1.81bc | 41.28a | 23.36ab | 1.07b | 42.06a | 40.58bc | 2.72b | 42.39b | 15.59b |
| N4 | 2.17c | 39.31a | 18.16a | 1.39c | 41.55a | 30.20a | 2.85b | 42.57b | 14.95b |
| N5 | 2.11c | 41.04a | 19.91a | 1.38c | 42.22a | 30.97ab | 3.23c | 39.22a | 12.19a |
aDifferent lowercase letters within a column indicate significant differences among nitrogen treatments in the same category according to Duncan’s test (p < 0.05). N1, N2, N3, N4 and N5 represent the concentrations of NH4NO3 were 0, 0.19, 0.63, 1.13 and 2.00 mM, respectively.
Figure 3Effects of nitrogen treatments on free amino acid (A) and starch (B) level in leaves measured at 8 h into a photoperiod in Cyclocarya paliurus seedlings. ‘dm’ represents dry matter. Different letters indicate significant differences among nitrogen treatments in the same category according to Duncan’s test (p < 0.05). N1, N2, N3, N4 and N5 represent the concentrations of NH4NO3 were 0, 0.19, 0.63, 1.13 and 2.00 mM, respectively.
Figure 4Effects of nitrogen treatments on the total flavonoid contents of different organs in Cyclocarya paliurus seedlings. Values within each graph followed by the different letters indicate significant differences among nitrogen treatments (lower case) and organs (upper case) (n = 3) according to Duncan’s test (p < 0.05). N1, N2, N3, N4 and N5 represent the concentrations of NH4NO3 were 0, 0.19, 0.63, 1.13 and 2.00 mM, respectively.
Effects of nitrogen availability on the flavonoid contents of different organs in Cyclocarya paliurus seedlings.
| Treatment | Individual flavonoid contents (mg/g)a | ||||||||
|---|---|---|---|---|---|---|---|---|---|
| quercetin | isoquercitrin | kaempferol | |||||||
| root | stalk | leaf | root | stalk | leaf | root | stalk | leaf | |
| N1 | 0.03dA | 0.06 dB | 0.12aC | 0.06dA | 0.12 dB | 0.50bC | 0.06dA | 0.13 dB | 0.23aC |
| N2 | 0.02cA | 0.04cB | 0.15bC | 0.04cA | 0.09cA | 0.63cB | 0.04cA | 0.11cB | 0.58cC |
| N3 | 0.02bA | 0.03bA | 0.18cB | 0.04cA | 0.07bA | 0.74 dB | 0.04bcA | 0.08bA | 0.76 dB |
| N4 | 0.01 aA | 0.02 aA | 0.15bB | 0.03bA | 0.04 aA | 0.55bB | 0.03abA | 0.06 aA | 0.46bB |
| N5 | 0.01 aA | 0.02 aA | 0.11aB | 0.02 aA | 0.04aB | 0.41aC | 0.03 aA | 0.05aB | 0.19aC |
aDifferent letters indicate significant differences among nitrogen treatments (lower case, within column) and organs (upper case, within row) (n = 3) for the same category according to Duncan’s test (p < 0.05). N1, N2, N3, N4 and N5 represent the concentrations of NH4NO3 were 0, 0.19, 0.63, 1.13 and 2.00 mM, respectively.
Figure 5Correlations between the total carbon level and the contents of total flavonoid (A), quercetin (B), isoquercitrin (C), and kaempferol (D) in leaves of Cyclocarya paliurus after 15 d of five different N-level fertilization treatments. Correlations between the starch content and the contents of total flavonoid, quercetin, isoquercitrin, and kaempferol were marked (E–H), respectively.
Enzyme activities of PAL, CHS and FHT in leaves of Cyclocarya paliurus.
| Treatment | Enzyme activity (OD450/g/min)a | ||
|---|---|---|---|
| PAL | CHS | FHT | |
| N1 | 40.5c | 40.3ab | 179.2b |
| N2 | 45.2d | 39.0ab | 219.5c |
| N3 | 25.4ab | 33.2a | 372.3d |
| N4 | 25.6ab | 42.8c | 206.1b |
| N5 | 22.7a | 51.6c | 108.8a |
aDifferent lowercase letters within a column indicate significant differences among nitrogen treatments in the same category according to Duncan’s test (p < 0.05). PAL, phenylalanine ammonia-lyase; CHS, chalcone synthase; FHT, flavonoid 3′-hydoxylase. N1, N2, N3, N4 and N5 represent the concentrations of NH4NO3 were 0, 0.19, 0.63, 1.13 and 2.00 mM, respectively.