| Literature DB >> 31849999 |
Riru Zheng1,2, Zhenyin Zhu1,2, Yanli Wang1,2, Shiyang Hu1,2, Wan Xi1,2, Wei Xiao1,2, Xiaolu Qu1,2, Linlin Zhong1,2, Qiang Fu1,2, Caiyun Wang1,2.
Abstract
The monoterpenes linalool and its oxides are the key aroma-active compounds in Osmanthus fragrans Lour. flowers. The glycosides of these monoterpenes accumulate throughout flowering, leading to considerable storage of potential aroma constituents that account for the majority of non-volatile aroma compounds. However, the UDP-glycosyltransferase (UGT) responsible for the glycosylation of linalool and its oxides has not been clarified. Four candidate OfUGTs (UGT85A82, UGT85A83, UGT85AF3, and UGT85A84) with high homology to the known terpenoid UGTs were screened by transcriptome sequencing. Over-expression of the candidate OfUGTs in tobacco showed that UGT85A84 glycosylated linalool oxides in planta. Since the transcript levels of UGT85A84 were positively correlated with glycoside accumulation, the recombinant UGT85A84 protein was subjected to reactions with aglycones and sugar donors. Two formate adducts were exclusively detected in UDP-Glc with linalool and linalool oxide reactions by liquid chromatography-mass spectrometry (LC-MS), indicating that UDP-Glc was the specific sugar donor. The kinetic parameters demonstrated that UGT85A84 glycosylated both linalool and lianlool oxides in vitro. Further analysis demonstrated that the transcription levels of MEP pathway genes might play an important role in mediating terpenoid glycosylation. Our findings unraveled the mechanism underlying the glycosylation of essential aroma compounds in flowers. This study will facilitate the application of potential aroma contributors in future industries.Entities:
Keywords: Osmanthus fragrans Lour.; UDP-glycosyltransferase; aroma; glycosylation; linalool; linalool oxide
Year: 2019 PMID: 31849999 PMCID: PMC6902048 DOI: 10.3389/fpls.2019.01376
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Figure 1Phylogenetic analysis of the four candidate terpenoid OfUGTs with other plant terpenoid UGTs. The phylogenetic tree was constructed according to the Maximum Likelihood method by MEGA 6.1 software.
Figure 2The transcript levels of genes involved in glycosylation of linalool and its oxides during the blossoming stages in Osmanthus fragrans flowers according to transcriptome sequencing. (A) The biosynthesis pathways of linalool and its oxides glycosides. (B) The expression heatmap of MEP pathway genes. The up- and down-regulated genes were demonstrated by red and blue bars, respectively.
Figure 3Developmental expression of the four candidate terpenoid OfUGTs during the blossoming stages in Osmanthus fragrans flowers. The relative expression of the unigenes was calculated by the 2-ΔΔCt method. Data are presented as mean ± standard error of the mean (SEM) (n = 3). Different letters indicate significant difference as determined by one-way ANOVA followed by LSD t-test (P 0.05).
Figure 4Expression of the four candidate terpenoid OfUGTs during the full blossoming stage over a circadian period. Quantitative real time (qRT)-PCR analysis was performed to determine the relative expression. Data are presented as mean ± standard error of the mean (SEM) (n = 3). Different marks indicate significant difference as determined by one-way ANOVA followed by LSD t-test (*P 0.05, **P 0.01, ***P 0.001).
The correlation between transcript levels of the four candidate terpenoid OfUGTs and the contents of volatile, free, and glycosylated aroma compounds.
| Genes | Volatile linalool and its oxides | Free linalool and its oxides | Glycosylated linalool and its oxides |
|---|---|---|---|
|
| -0.35 | -0.59 | -0.24 |
|
| -0.07 | 0.19 | 0.23 |
|
| 0.55 | 0.59 | -0.14 |
|
| -0.07 | 0.31 | 0.70 |
1The relative coefficients were analyzed by the Pearson of SPSS according the circadian transcript levels and aroma compounds during the full blossoming stage of O. fragrans flowers.
Figure 5Functional characterization of the four candidate terpenoid OfUGTs in Nicotiana benthamiana leaves. The N. benthamiana leaves were infiltrated with a control construct (S1300-GUS) or S1300-OfUGTs in the presence of linalool and its oxides. Purified glycosides were treated with β-glucosidase and the volatiles released were extracted into a solvent for gas chromatography-mass spectrometry (GC-MS) analysis. The glycoside contents were qualified and compared between aglycone-injected plants without transgene (CK) and aglycone injected together with transgenic plants (S1300, OfUGTs). Data are presented as mean ± standard error of the mean (SEM) (n = 3). Different letters indicate significant difference as determined by one-way ANOVA followed by LSD t-test (P 0.05).
Figure 6Liquid chromatograph-mass spectrometry (LC-MS) analysis of UGT85A84 reaction products. LC-ESI-MS (Extracted Ion Chromatogram) base peak plots in negative mode for (A) linalool + UDP-Glc, (B) linalool oxide + UDP-Glc. The full scan and MS2 data identified two exclusive formate adducts only in the UDP-Glc reactions. No products were detected in the UDP-Xyl and UDP-Rha reactions. Results from a 16 h incubation were presented.
Figure 7Determination of kinetic parameters of UGT85A84 in linalool + UDP-Glc and linalool oxide + UDP-Glc reactions by the hyperbolic Michaelis-Menten saturation curve. (A) UDP-Glc (0.5mM) + linalool (5 µM to 50 mM). (B) UDP-Glc (0.5mM) + linalool oxide (5 µM to 5 mM). (C) linalool (0.5mM) + UDP-Glc (25 µM to 10 mM). (D) linalool oxide (0.5mM) + UDP-Glc (25 µM to 10 mM). The apparent Km and Vmax values for each sugar acceptor and the sugar donor were determined by Michaelis-Menten fitting in OriginPro 9.1 software.
Kinetic properties of purified recombinant UGT85A84 enzyme.
| Substrate |
|
|
|
|---|---|---|---|
| linalool | 135.712.48 | 0.09 | 718 |
| linalool oxide | 202.361.63 | 2.12 | 10494 |
| UDP-Glc (linalool) | 138.3613.38 | 0.09 | 666 |
| UDP-Glc (linalool oxide) | 248.195.77 | 2.33 | 9396 |
1The kinetic parameters of UGT85A84 towards lianlool and linalool oxide as substrates were obtained from substrate concentrations ranging from 25μM to 10 mM with a fixed UDP-Glc concentration of 0.5 mM. The kinetic parameters of UGT85A84 towards UDP-Glc were obtained from substrate concentrations ranging from 25μM to 10 mM with a fixed linalool or linalool oxide concentration of 0.5 mM, respectively. Data are presented as meanstandard error (SEM) (n = 3).