| Literature DB >> 27965691 |
Peiyong Xin1, Jijun Yan2, Bingbing Li1, Shuang Fang1, Jinshi Fan3, Hailong Tian4, Yong Shi4, Weisheng Tian4, Cunyu Yan1, Jinfang Chu1.
Abstract
The exploration and identification of newEntities:
Keywords: UPLC-MS; biosynthetic intermediates; brassinosteroids; discovery; identification; rice; screening
Year: 2016 PMID: 27965691 PMCID: PMC5127834 DOI: 10.3389/fpls.2016.01786
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Figure 1Chemical structures of representative BRs and derivatization with DMAPBA. (A) Chemical structures of representative BRs. Using 24-epiBL as example, all BRs are featured with a four-ring skeletal structure (marked as A, B, C, and D ring) connected with a side chain. The structural variances in B ring and side chain determine the BRs type and all the carbon atoms are numbered in sequence. C27, C28, and C29 BRs are grouped according to the carbon number of different substituent groups on the C24 site. (B) Representative derivatization reaction formula of 24-epiBL with DMAPBA.
Figure 2High-resolution MS/MS spectra of DMAPBA-derivatized representative BRs. All spectra were obtained on Synapt G2 QTof-MS with a resolution of 20,000. The spectra were combined with 10 MS/MS full scans. The Y-axis represents the relative abundances of ions in %. The magnified regions were marked as “x3” or “x5” colored in red.
Characteristic product ions and their relative abundances in high-resolution MS/MS of DMAPBA-derivatized representative BRs.
| Precursor ion | 610.4279 | 594.4328 | 624.4434 | 580.4541 |
| 50.3% | 28.3% | 17.3% | 26.4% | |
| A ring structure-related ions | 592.4173 | 576.4223 | 606.4296 | 562.4445 |
| 13.1% | 45.1% | 9.8% | 7.9% | |
| 574.4049 | 558.4126 | 588.4233 | 544.4290 | |
| 1.5% | 9.9% | 1.2% | 0.7% | |
| B ring structure-related ions | 424.3383 | 424.3420 | 438.3550 | |
| 2.4% | 0.9% | 2.6% | ||
| 438.3535 | 452.3712 | |||
| 4.7% | 2.1% | |||
| D ring structure-related ions | 301.2213 | 301.2217 | 315.2356 | 301.2223 |
| 0.6% | 4.3% | 1.1% | 8.9% | |
| 302.2303 | 302.2256 | 316.2444 | 302.2268 | |
| 0.5% | 1.1% | 1.2% | 2.4% | |
| 315.2374 | 315.2349 | 329.2432 | 315.2401 | |
| 0.5% | 2.3% | 0.7% | 1.4% | |
| 316.2411 | 316.2419 | 316.2437 | ||
| 0.4% | 1.3% | 1.0% | ||
| Side chain structure-related ions | 176.0885 | 176.0886 | 176.0878 | 176.0881 |
| 21.6% | 100% | 42.5% | 100% | |
| 190.1038 | 190.1038 | 190.1039 | 190.1042 | |
| 100% | 67.6% | 100% | 34.5% | |
| 204.1194 | 204.1197 | 204.1192 | 204.1190 | |
| 11.7% | 17.5% | 7.8% | 10.6% | |
| 218.1355 | 218.1356 | 218.1350 | 218.1342 | |
| 9.8% | 7.3% | 19.6% | 3.8% | |
| 232.1436 | 232.1483 | 232.1503 | 232.1505 | |
| 0.5% | 1.6% | 16.7% | 2.2% | |
| 246.1664 | 246.1663 | 246.1697 | 246.1665 | |
| 4.5% | 9.5% | 0.8% | 8.8% | |
| 260.1823 | 260.1827 | 260.1818 | 260.1822 | |
| 12.1% | 9.7% | 7.8% | 2.7% | |
| 274.1976 | 274.1972 | 274.1970 | 274.1965 | |
| 0.5% | 0.7% | 12.1% | 0.6% | |
| 288.2142 | 288.2131 | 288.2119 | 288.2160 | |
| 3.9% | 2.1% | 0.6% | 0.8% | |
| 302.2301 | ||||
| 2.8% |
Figure 3UPLC-MS-based screening workflow for discovering potential BRs from plant tissues. DDA refers to data dependent acquisition.
Figure 4MRM-dependent EPI analysis of potential BRs from plant tissues. (A) Overlapped MRM chromatograms of potential BRs; (B–G), Representative MRM-dependent EPI spectra of candidate BR compounds 2, 7, 9, 11, 12, and 13. The Y-axis represents the relative abundances of ions in CPS.
Figure 5MS survey-dependent HR MS/MS analysis of BR candidates from plant tissues. (A) Extracted ion chromatograms (EICs) of potential BRs; (B–E), Representative MS survey-dependent HR MS/MS spectra of candidate compounds 7, 12, 9, and 11. The Y-axis represents relative abundances of ions in %.
Summarized information of 14 BR candidates.
| 1 | 594.4330 | 594.4315 | C36H56BNO5 | C28H48O5 | Isomer of CS | 5.38 | 15.94 | 3, n.d., 4, n.d. |
| −2.5 | 5.33 | 41.57 | ||||||
| 2* | 594.4330 | 594.4333 | C36H56BNO5 | C28H48O5 | CS | 5.76 | 21.05 | 25, 39, 18, 4 |
| 0.5 | 5.70 | 39.24 | ||||||
| 3* | 578.4381 | 578.4396 | C36H56BNO4 | C28H48O4 | TE | 8.53 | 25.09 | n.d., 4, 3, n.d. |
| 2.6 | 8.47 | 35.56 | ||||||
| 4* | 578.4381 | 578.4376 | C36H56BNO4 | C28H48O4 | TY | 9.88 | 21.48 | 111, 158, 103, 27 |
| −0.9 | 9.80 | 36.11 | ||||||
| 5 | 580.4537 | 580.4545 | C36H58BNO4 | C28H50O4 | Isomer of 6-deoxo-CS | 11.14 | 21.1 | n.d., 7, 6, n.d. |
| 1.4 | 10.97 | 32.61 | ||||||
| 6 | 592.4537 | 592.4529 | C37H58BNO4 | C29H50O4 | 28-homoTY | 11.83 | 23.23 | n.d., n.d., 6, 7 |
| −1.4 | 11.66 | 35.42 | ||||||
| 7 | 580.4537 | 580.4540 | C36H58BNO4 | C28H50O4 | 6-deoxo-CS | 12.92 | 25.21 | 48, 40, 38, 8 |
| 0.5 | 12.74 | 37.07 | ||||||
| 8 | 578.4381 | 578.4387 | C36H56BNO4 | C28H48O4 | Isomer of TY and TE | 13.49 | 22.18 | 12, 24, 11, 116 |
| 1.0 | 13.42 | 34.10 | ||||||
| 9 | 550.4432 | 550.4432 | C35H56BNO3 | C27H48O3 | 6-deoxo-28-norTY/TE | 16.90 | 22.07 | 7, 6, n.d., n.d. |
| 0.0 | 16.66 | 37.28 | ||||||
| 10 | 564.4588 | 564.4601 | C36H58BNO3 | C28H50O3 | 6-deoxo-TE | 16.87 | 20.40 | 3, 4, 6, n.d. |
| 2.3 | 16.64 | 29.57 | ||||||
| 11 | 562.4432 | 562.4432 | C36H56BNO3 | C28H48O3 | 6-deoxo-DT | 17.76 | 20.98 | 7, 8, 4, n.d. |
| 0.0 | 17.51 | 37.22 | ||||||
| 12 | 564.4588 | 564.4598 | C36H58BNO3 | C28H50O3 | 6-deoxo-TY | 18.52 | 20.99 | 74, 127, 112, 23 |
| 1.8 | 18.27 | 35.83 | ||||||
| 13* | 578.4745 | 578.4752 | C37H60BNO3 | C29H52O3 | 6-deoxo-28-homoTY | 20.14 | 21.52 | 3, 3, 19, 13 |
| 1.2 | 19.70 | 36.15 | ||||||
| 14 | 592.4537 | 592.4537 | C37H58BNO4 | C29H50O4 | Isomer of 28-homoTY | 20.64 | 19.79 | n.d., n.d., n.d., n.d. |
| 0.0 | 20.38 | 39.81 |
The relative mass errors in ppm are calculated via [(m/zmeasured – m/ztheoretical)/m/ztheoretical]. RT refers to retention time and n.d. refers to not detectable. The two values of every compound in the column of RT stand for the retention times on UPLC-QTrap-MS (upper) and UPLC-QTof-MS (lower) respectively. The two values of the isotopic pattern represent relative abundances of 10B12C-BRs and 11B13C-BRs to 11B12C-BRs, respectively. Compounds marked with “*” were identified, while others were not identified.
Figure 6Identification of endogenous CS in plant tissues with reference standard. (A) EIC of endogenous CS and CS reference standard; (B) Isotopic pattern of endogenous CS and CS reference standard; (C) High-resolution MS/MS spectrum of CS reference and endogenous CS.
Comparison of chromatographic, MS, and MS/MS properties between endogenous BR candidates and authentic standards.
| R | 5.70 | 5.70 | 9.80 | 9.80 | 19.67 | 19.67 |
| Isotopic pattern of [M+H]+ | 593.4350 (22.9%) | 593.4361 (21.0%) | 577.4402 (23.0%) | 577.4396 (21.5%) | 577.4771 (23.1%) | 577.4781 (22.4%) |
| 594.4323 (100%) | 594.4333 (100%) | 578.4371 (100%) | 578.4376 (100%) | 578.4742 (100%) | 578.4752 (100%) | |
| 595.4352 (37.3%) | 595.4344 (39.2%) | 579.4404 (37.1%) | 579.4396 (36.1%) | 579.4771 (38.7%) | 579.4786 (36.0%) | |
| Characteristic fragment ions (m/z) and relative abundance (%) | 122.0980 (19.9%) | 122.0978 (16.9%) | 122.0970 (20.0%) | 122.0965 (20.9%) | 134.0863 (17.7%) | 134.0850 (19.0%) |
Figure 7Identification of endogenous 6-deoxo-28-homoTY in plant tissues with synthetic standard. (A) EICs of endogenous compound 13 and synthesized 6-deoxo-28-homoTY; (B) Isotopic pattern of endogenous compound 13 and synthesized 6-deoxo-28-homoTY; (C) High-resolution MS/MS spectra of endogenous compound 13 and synthesized 6-deoxo-28-homoTY.
Figure 8Stereochemical structure of 6-deoxo-28-homoTY and its location in the BRs biosynthetic network. This depiction shows only the important C22, 23-diol BRs intermediates in the network. The red-colored structure is 6-deoxo-28-homoTY, first discovered and identified in plants. The purple-colored compounds are also found and identified in rice using the described screening method; however, these have been reported before. The blue-colored compounds are found using this method but not identified.
Figure 9The quantitative levels of 14 BR candidates in rice BR mutants and their wild types. Nip (A), Shio (B), and TC65 (C) are wild type plants for M107 (A), d2-2 (B), and d61-2 (C) mutants, respectively. Samples were analyzed with three technical replicates from sample preparation to LC-MS/MS analysis. The compound abundances in plants were evaluated by the ratio of the integrated peak area of these compounds to that of the spiked D-labeled internal standards (S/SIS). The endogenous levels were quantified using two ion channels [M+H]+ > 190.1 and [M+H]+ > 176.1. Error bars represent the SD.