| Literature DB >> 22911712 |
Allison M Heskes1, Jason Q D Goodger, Sammi Tsegay, Tim Quach, Spencer J Williams, Ian E Woodrow.
Abstract
We report the widespread occurrence of structurally diverse oleuropeyl glucose esters, including the new diester eucaglobulin B, localized specifically to the essential oil secretory cavities of myrtaceous species. Clear taxonomic patterns in the composition of cavity extracts within the genus Eucalyptus are shown with species from subgenus Symphyomyrtus dominated by oleuropeyl glucose esters and species from subgenus Eucalyptus dominated instead by the flavanone, pinocembrin. We also examined the intra-species occurrence of oleuropeyl glucose esters by quantifying the abundant constituents cuniloside B and froggattiside A in trees from two populations of Eucalyptus polybractea R.T. Baker. All trees contained both compounds, which were positively correlated with total essential oil concentration. This apparent ubiquity of oleuropeyl glucose esters at both intra- and inter-specific levels in Eucalyptus is indicative of important physiological or ecological functions. The significance of their prevalence and the sequestration of these esters and also pinocembrin to the extracellular domain of secretory cavities is discussed in light of their potential biological activities and our findings that they are spatially segregated to the exterior of cavity lumina. The localization of oleuropeyl glucose esters to a specific and isolatable tissue type has the potential to aid in future elucidation of function and biosynthesis.Entities:
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Year: 2012 PMID: 22911712 PMCID: PMC3401227 DOI: 10.1371/journal.pone.0040856
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Structures of non-volatile compounds localized to the foliar secretory cavities of Eucalyptus species and Melaleuca armillaris.
(a) Oleuropeyl glucose esters and the flavanone, pinocembrin (10) and (b), key HMBC correlations used in the structural elucidation of eucaglobulin B (8).
Eucalyptus and Melaleuca species surveyed for the presence of non-volatile compounds in the lumen of foliar secretory cavities‡.
| Species # | Species | Subgenus | Section | Series | Authority |
| 1 |
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| A.W.Howitt |
| 2 |
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| L.A.S.Johnson & Blaxell |
| 3 |
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| Sieber ex Spreng. |
| 4 |
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| L.A.S.Johnson & Blaxell | |
| 5 |
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| F.Muell. |
| 6 |
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| Blakely |
| 7 |
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| C.A.Gardner |
| 8 |
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| Hook |
| 9 |
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| Hook |
| 10 |
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| D.J.Carr & S.G.M.Carr |
| 11 |
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| L.A.S.Johnson & K.D.Hill |
| 12 |
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| F.Muell. |
| 13 |
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| Brooker |
| 14 |
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| Luehm. |
| 15 |
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| Sm. |
| 16 |
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| L.A.S.Johnson |
| 17 |
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| Labill. |
| 18 |
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| Sims |
| 19 |
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| Maiden |
| 20 |
| (Sol. ex Gaertn.) Sm. |
Eucalyptus taxonomic classification is according to [45].
Oleuropeyl glucose esters and a flavanone found in secretory cavity extracts of Eucalyptus species and Melaleuca armillaris.
| Rt (min) | Observed ESI-LC-FTMS parent ions | Formula | Observed MS | Compound name | Species # (see |
| 5.25 |
| C23H30O12 | 329.1594 (100); 311.1488 (80); 481.1703 (24);293.1383 (13); 463.1597 (12) | eucaglobulin ( | 7,16–19 |
| 5.61 |
| C26H40O11 | 511.2536 (100); 493.2430 (45); 329.1594 (35);347.1700 (21); 311.1490 (19); 475.2321 (14) | unknown 1 | 6,11,20 |
| 6.75 |
| C25H34O12 | 329.1593 (100); 311.1488 (98); 509.2018 (29) | eucalmaidin C ( | 7–9,14 |
| 6.77 |
| C26H40O11 | 511.2535 (100); 329.1594 (59); 493.2430 (29);311.1488 (14); 347.1699 (13) | unknown 2 | 6,7,11,19,20 |
| 7.20 |
| C26H40O10 | 329.1593 (100); 311.1488 (81); 495.2583 (36);477.2479 (14); 347.1699 (13) | cuniloside B ( | 1–20 |
| 7.77 |
| C25H34O12 | 311.1488 (100); 509.2015 (53);491.1909 (39); 329.1595 (21);347.1490 (7); 275.1278 (6);293.1383 (6); 167.1066 (6) | eucaglobulin B ( | 7–9 |
| 8.00 |
| C31H34O13 | 287.0550 (100); 311.1490 (92) | resinoside A ( | 11,16,17 |
| 8.06 |
| C26H32O11 | 503.1904 (100); 311.1492 (1) | cypellocarpin C ( | 2,5–13,15–19 |
| 8.23 |
| C24H40O11 | 193.0495 (100); 311.1488 (86) | unknown 3 | 5,7–9,13–15 |
| 8.39 |
| C26H40O10 | 329.1593 (100); 311.1488 (71);495.2583 (42); 347.1699 (41);477.2479 (31); 459.2378 (7) | froggattiside A ( | 2,3,6–14,16–20 |
| 9.27 |
| C31H52O10 | 329.1594 (100); 549.3417 (82);311.1487 (32); 347.1699 (21);567.3525 (19);531.3312 (11) | unknown 4 | 7–9,13,16 |
| 9.37 |
| C26H32O11 | 503.1904 (100); 485.1809 (2);467.1702 (1); 311.1492 (1) | unknown 5 | 2–4,7,9,10,12,13,17–19 |
| 9.56 |
| C27H38O11 | 521.2378 (100); 311.1489 (23);539.2488 (14); 503.2272 (11);329.1595 (5) | unknown 6 | 9,11,17,19 |
| 9.66 |
| C24H40O11 | 487.2535 (100); 469.2431 (43);311.1489 (31); 451.2325 (16);321.1542 (4) | unknown 7 | 7–9,13 |
| 10.79 |
| C31H52O10 | 549.3419 (100); 531.3314 (95);329.1594 (77); 567.3527 (58);311.1489 (35); 347.1698 (9) | unknown 8 | 7–9 |
| 13.27 |
| C28H40O11 | 535.2537 (100); 517.2427 (28);311.1487 (24) | unknown 9 | 7–9,11,16,17,19 |
| 17.06 |
| C15H12O4 | 213.0551 (100); 151.0032 (97);187.0761 (48); 211.0760 (35);169.0655 (30); 183.0813 (21) | pinocembrin ( | 1–4 |
Spectral data consistent with all three compounds.
Identification by comparison with authentic standards or NMR analyses.
Figure 2MS2 fragmentation of oleuropeyl glucose esters resulting in diagnostic C16 fragments.
Figure 3Relationship between total oil (mg g−1 DW) and non-volatiles (combined cuniloside B (1) and froggattiside A (2); mg g−1 DW) for two populations of E. polybractea (closed circles population A; open circles population B).
Linear regressions were significant with equations of non-volatiles = 2.44+0.15×total oil for Population A (solid line; r 2 = 0.80; F = 96.23, P = 0.00) and non-volatile = 2.40+0.14×total oil for Population B (dashed line; r 2 = 0.73; F = 70.99, P = 0.00).
Figure 4Fluorescence lifetime images of enzymatically isolated eucalypt secretory cavities showing localization of the lumen non-volatile component.
Eucalypt species: E. polybractea (A), E. froggattii (B) and E. spathulata (C). Pseudocolour mapping represents mean fluorescence lifetime. Secretory cells (SC); non-volatile component (NVC); essential oil (EO). Scale bar represents 50 µm.