Comprehensive Chemical Profiling in the Ethanol Extract of Pluchea indica Aerial Parts by Liquid Chromatography/Mass Spectrometry Analysis of Its Silica Gel Column Chromatography Fractions
Abstract
:1. Introduction
2. Experimental
2.1. Materials
2.2. Sample Preparation
2.2.1. Preparation of Standard Solutions
2.2.2. Preparation of P. indica 70% EtOH Extract Test Solutions
2.2.3. Preparation of Silica Gel Fractionation of 95% EtOH Eluate of P. indica Test Solutions
2.3. UHPLC
2.4. ESI-Q-Orbitrap MS and Automatic Components Extraction
3. Results and Discussion
3.1. Superiority of OC-MS than Directly LC-MS in the Chemical Composition Profiling of P. indica 70% EtOH Extract
3.1.1. Increasing of the Peak Capacity by OC-MS Determination
3.1.2. Increasing of the Detection Sensitivity by OC-MS Determination
3.2. Structural Elucidation of Compounds from Silica Gel Fractionation of 95% EtOH Eluate of P. indica by OC-MS
3.2.1. Structural Elucidation of Quinic Acids and Their Derivatives
Structural Elucidation of Mono-acyl Substituted Quinic Acids and Their Derivatives
Structural Elucidation of Multi-acyl Substituted Quinic Acids and Their Derivatives
3.2.2. Structural Elucidation of Phenolic Acids
3.2.3. Structural Elucidation of Thiophenes
3.2.4. Structural Elucidation of Other Compounds
4. Conclusion
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
Abbreviations
Acronym | Full name |
CHCl3 | Chloroform |
CQA | Caffeoylquinic acid |
CQE | Ethyl caffeoylquinic acid |
CQM | Methyl caffeoylquinic acid |
CoQA | Coumaroyl quinic acid |
CFQM | Methyl caffeoyl-ferulyl-quinate |
CCFQA | Dicaffeoyl-ferulyl-quinic acid |
CCCFQA | Tricaffeoyl-ferulyl-quinic acid |
CCFFQA | Dicaffeoyl-diferulyl-quinic acid |
diCQA | Dicaffeoylquinic acid |
diCQE | Ethyl diCaffeoylquinic acid |
diCQM | Methyl dicaffeoylquinic acid |
EtOH | Ethanol |
FQA | Feruloyl quinic acid |
FEMA | Flavor and Extract Manufacturers Association |
GRAS | Generally recognized as safe |
LC-MS/MS | Liquid chromatograph-mass/mass spectrometry |
MeOH | Methanol |
OC-MS | Orthogonal chromatography-mass spectrometry |
PI | P. indica 70% EtOH extract |
PIEs | Silica gel fractionation of 95% EtOH eluate of P. indica |
TQA | 3,4,5-Trihydroxycinnamoyl quinic acid |
triCQA | Tricaffeoylquinic acid |
triCQE | Ethyl tricaffeoyl quinate |
triCQM | Methyl tricaffeoylquinic acid |
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Sample Availability: Samples of the compounds 1, 2, 4, 5–7, 10–14, 16, 19, 23, 29, 31–35, 37–40, 42–45, 47, 51–57, 59, 61, 65, 66, 68, 71, 73–77, 81, 83, 85, 86, 89, 91, 93, 94, 99–102, 105, 107, 109, 111–114 are available from the authors. |
No. | tR (min) | Compound | Formula | Adduct Ions | Theoretic | Measure | Diff (ppm) | Identification Fragment Ions (m/z) (Intensity) |
---|---|---|---|---|---|---|---|---|
1 | 3.17 | 3,4-Dihydroxy benzoic acid * | C7H6O4 | [M − H]− | 153.01933 | 153.01914 | −1.24 | 109.02793 (100) |
2 | 3.51 | Adenosine * | C10H13N5O4 | [M − H]− | 266.08948 | 266.08969 | 0.79 | 134.04578 (100) |
3 | 4.26 | 5-TQA | C16H18O10 | [M − H]− | 369.08272 | 369.08298 | 0.70 | 195.02939(16), 191.05483 (100), 133.02803 (82) |
4 | 4.97 | 5-CQA * | C16H18O9 | [M − H]− | 353.08781 | 353.08826 | 1.27 | 191.05497 (100), 179.03378 (54), 135.04367 (62) |
5 | 5.27 | 2,3-Dihydroxy-1-(4-hydroxy-3-methoxyphenyl)-propan-1-one * | C10H12O5 | [M − H]− | 211.06120 | 211.06069 | −2.41 | 181.04950 (100), 163.03879 (88) |
6 | 5.28 | p-Hydroxybenzoic acid * | C7H6O3 | [M − H]− | 137.02442 | 137.02309 | −0.23 | 93.03307 (100) |
7 | 5.54 | 3,4-Dihydroxybenzaldehyde * | C7H6O3 | [M − H]− | 137.02442 | 137.02413 | −2.12 | 109.02798 (14) |
8 | 6.69 | Methyl 3,4-dihydroxybenzoate | C8H8O4 | [M − H]− | 167.03498 | 167.03418 | −4.79 | 152.01022 (100), 108.02016 (2) |
9 | 7.39 | 3-TQA | C16H18O10 | [M − H]− | 369.08272 | 369.08316 | −1.19 | 195.02869 (60), 133.02803 (100) |
10 | 8.13 | 3,4-Dihydroxy-5-methoxybenzaldehyde * | C8H8O4 | [M − H]− | 167.03498 | 167.03424 | −4.43 | 152.01013 (100), 124.01488 (3) |
11 | 8.20 | 3-CQA * | C16H18O9 | [M − H]− | 353.08781 | 353.08820 | 1.10 | 191.05495 (100), 179.03383 (1), 135.04362 (1) |
12 | 8.41 | 3-Methoxy-4-hydroxybenzoic acid * | C8H8O4 | [M − H]− | 167.03498 | 167.03430 | −4.07 | 152.01022 (100), 123.04363 (8), 108.02016 (21) |
13 | 9.30 | Esculetin * | C9H6O4 | [M − H]− | 177.01933 | 177.01863 | −3.95 | 141.8685 (72), 133.02802 (100) |
14 | 9.41 | Caffiec acid * | C9H8O4 | [M − H]− | 179.03498 | 179.03427 | −3.97 | 135.04359 (100) |
15 | 10.26 | 4-TQA | C16H18O10 | [M − H]− | 369.08272 | 369.08322 | 1.35 | 195.02857 (11), 173.04421 (100) |
16 | 10.69 | 4-CQA * | C16H18O9 | [M − H]− | 353.08781 | 353.08762 | −0.54 | 191.05493 (49), 179.03373 (66), 173.04429 (100), 135.04366 (72) |
17 | 12.03 | 2-Hydroxybenzoic acid or 3-Hydroxybenzoic acid | C7H6O3 | [M − H]− | 137.02442 | 137.02413 | −2.12 | 93.03311 (100) |
18 | 14.27 | 3-CoQA | C16H18O8 | [M − H]− | 337.09289 | 337.09384 | 2.82 | 191.05482 (100), 163.03868 (9) |
19 | 17.63 | Vanillin * | C8H8O3 | [M − H]− | 151.04007 | 151.03996 | −0.73 | 136.01509 (100), 109.02799 (7) |
20 | 18.44 | 4-CoQA | C16H18O8 | [M − H]− | 337.09289 | 337.09351 | 1.84 | 173.04419 (100), 163.03868 (19) |
21 | 19.61 | 5-FQA | C17H20O9 | [M − H]− | 367.10346 | 367.10382 | 0.98 | 193.04926 (1), 161.02310 (100) |
22 | 19.94 | 3-FQA | C17H20O9 | [M − H]− | 367.10346 | 367.10373 | 0.74 | 193.04933 (7), 191.05495 (100) |
23 | 20.82 | Syringicaldehyde * | C9H10O4 | [M − H]− | 181.05063 | 181.05087 | 1.59 | 166.02563 (100), 151.00235 (86) |
24 | 21.24 | 4-FQA | C17H20O9 | [M − H]− | 367.10346 | 367.10376 | 0.82 | 193.04939 (17), 173.04428 (100) |
25 | 21.28 | Monosulfonyl substituted flavone | C15H10O10S | [M − H]− | 380.99219 | 380.99155 | 1.68 | 301.03424 (100), 178.99715 (2), 151.00209 (10) |
26 | 21.73 | Monosulfonyl substituted flavone | C15H10O10S | [M − H]− | 380.99219 | 380.99167 | −1.36 | 301.03586 (100), 178.99789 (25), 151.00278 (65) |
27 | 21.80 | Disulfonyl substituted flavone | C15H10O13S2 | [M − H]− | 460.94900 | 460.94988 | 1.91 | 380.99248 (75), 301.03577 (100), 178.99805 (19), 151.00278 (40), 96.95886 (18) |
28 | 22.29 | 5-CQM | C17H20O9 | [M − H]− | 367.10346 | 367.10373 | 0.74 | 179.03380 (7), 173.04451 (1), 161.02313 (100), 133.02809 (28) |
29 | 23.12 | 3-CQM * | C17H20O9 | [M − H]− | 367.10346 | 367.10379 | 0.90 | 179.03371 (55), 161.02318 (26), 135.04358 (100) |
30 | 23.73 | Monosulfonyl substituted flavone | C15H10O10S | [M − H]− | 380.99219 | 380.99255 | 0.94 | 301.03479 (100), 178.99739 (21), 151.00240 (53) |
31 | 24.73 | Quercetin-3-O-β-d-galactopyranoside * | C21H20O12 | [M + H]+ | 463.08820 | 463.08654 | −3.58 | 300.02689 (100), 271.02435 (51), 255.02951 (23), 243.02861 (10) |
32 | 25.48 | Quercetin-3-O-β-d-glucopyranoside * | C21H20O12 | [M + H]+ | 463.08820 | 463.08749 | −1.53 | 300.03 (100), 271.02424 (71), 255.02955 (31), 243.02860 (13) |
33 | 26.49 | (+)-Isolariciresinol * | C20H24O6 | [M − H]− | 359.15001 | 359.14966 | −0.97 | ND |
34 | 26.87 | trans-Ferulic acid * | C10H10O4 | [M − H]− | 193.05063 | 193.05017 | −2.38 | 161.02310 (28), 133.02797 (19) |
35 | 27.11 | 1,4-DiCQA * | C25H24O12 | [M − H]− | 515.11950 | 515.11865 | −1.65 | 353.08719 (60), 191.05486 (46), 179.03369 (69), 173.04434 (100), 135.04370 (77) |
36 | 27.63 | Kaempferol-O-galactopyranoside | C21H20O11 | [M − H]− | 447.09328 | 447.09430 | 2.28 | 284.03174 (84), 255.02882 (100), 227.03365 (82) |
37 | 27.99 | 1,5-DiCQA * | C25H24O12 | [M − H]− | 515.11950 | 515.12067 | 2.27 | 353.08688 (17), 191.05472 (100), 179.03371 (5), 161.02297 (5), 135.04356 (6) |
38 | 28.22 | 1,3-DiCQA * | C25H24O12 | [M − H]− | 515.11950 | 515.11871 | −1.53 | 353.08694 (12), 191.05495 (100), 179.03365 (4), 161.02303 (5), 135.04370 (6) |
39 | 28.68 | 4,5-DiCQA * | C25H24O12 | [M − H]− | 515.11950 | 515.12006 | 1.09 | 353.08713 (59), 191.05493 (53), 179.03375 (84), 173.04420 (100), 161.02312 (37), 155.03355 (14), 135.04362 (85) |
40 | 28.89 | 3,5-DiCQA * | C25H24O12 | [M − H]− | 515.11950 | 515.11888 | −1.20 | 353.08697 (57), 191.05480 (100), 179.03369 (51), 173.04446 (5), 135.04363 (54) |
41 | 29.23 | Monosulfonyl substituted methoxyflavone | C16H12O10S | [M − H]− | 395.00784 | 395.00778 | −0.15 | 315.05048 (100), 300.02689 (41), 271.02438 (26), 255.02913 (13), 243.02908 (6) |
42 | 29.63 | Kaempferol 3-O-β-d-glucopyranoside * | C21H20O11 | [M − H]− | 447.09328 | 447.09423 | 2.12 | 284.03159 (79), 255.02875 (100), 227.03368 (87) |
43 | 30.39 | Cynaroside * | C21H20O11 | [M − H]− | 447.09328 | 447.09406 | 1.74 | ND |
44 | 31.20 | 5,7,3',4'-Tetrahydroxy-3-methoxy flavonol-3'-O-β-d-glucopyranoside * | C22H22O12 | [M − H]− | 477.10385 | 477.10520 | 2.83 | ND |
45 | 33.94 | 3,4-DiCQA * | C25H24O12 | [M − H]− | 515.11950 | 515.12002 | 1.01 | 353.08701 (71), 191.05498 (37), 179.03368 (64), 173.04430 (100), 135.04367 (62) |
46 | 36.21 | 1-C-5-F-QA or 1-F-5-C-QA | C26H26O12 | [M − H]− | 529.13515 | 529.13550 | 0.66 | 367.10258 (21), 353.08741 (22), 349.09223 (20), 335.07694 (25), 193.04936 (93), 179.03373 (66), 173.04420 (83), 161.02299 (42), 155.03351 (39), 135.04369 (68), 134.03582 (100) |
47 | 36.63 | 1,3,5-TriCQA * | C34H30O15 | [M − H]− | 677.15119 | 677.15155 | 0.53 | 515.11898 (5), 497.10879 (10), 353.08703 (50), 335.07655 (13), 191.05478 (100), 179.03362 (70), 173.04419 (11), 161.02305 (23), 135.04358 (64) |
48 | 37.15 | 1-C-3-FQA | C26H26O12 | [M − H]− | 529.13515 | 529.13581 | 1.25 | 367.10327 (43), 191.05527 (100), 173.04451 (54), 161.02300 (12), 134.03579 (18) |
49 | 37.30 | 3-F-5-CQA | C26H26O12 | [M − H]− | 529.13515 | 529.13574 | 1.12 | 367.10309 (42), 193.04980 (100), 173.04443 (21), 134.03607 (81) |
50 | 37.49 | 1,4-DiCQM | C26H26O12 | [M − H]− | 529.13515 | 529.13416 | −1.87 | 367.10264 (24), 353.08711 (29), 191.05522 (100), 179.03364 (38), 161.02306 (40), 135.04353 (50) |
51 | 37.77 | 4,5-DiCQM * | C26H26O12 | [M − H]− | 529.13515 | 529.13501 | −0.26 | 367.10242 (15), 179.03372 (4), 161.02308 (100), 133.02805 (28) |
52 | 37.91 | Ethyl caffeate * | C11H12O4 | [M − H]− | 207.06628 | 207.06556 | −3.48 | 179.03377 (27), 159.85886 (41), 135.04372 (44), 127.86897 (35), 103.91862 (14) |
53 | 38.22 | 1,3,4-TriCQA * | C34H30O15 | [M − H]− | 677.15119 | 677.15070 | −0.72 | 515.11847 (34), 497.10794 (18), 353.08694 (19), 335.07701 (10), 191.05501 (46), 179.03377 (100), 173.04422 (83), 161.02305 (78), 135.04367 (83) |
54 | 38.32 | Quercetin * | C15H10O7 | [M − H]− | 301.03538 | 301.03571 | 1.10 | 272.02643 (6), 178.99734 (24), 151.00224 (70), 121.02786 (19), 107.01236 (19) |
55 | 38.39 | 3,5-DiCQM * | C26H26O12 | [M − H]− | 529.13515 | 529.13519 | 0.08 | 367.10275 (22), 179.03320 (31), 161.02304 (100), 135.04358 (45) |
56 | 38.45 | Triethyl citrate * | C12H20O7 | [M − H]− | 275.11362 | 275.11278 | −3.05 | ND |
57 | 38.49 | Luteolin * | C15H10O6 | [M − H]− | 285.04046 | 285.04114 | 2.39 | 151.00223 (10), 133.02827 (32) |
58 | 38.79 | CFQM-1 | C27H28O12 | [M − H]− | 543.15080 | 543.14954 | −2.32 | 367.10281 (13), 349.09195 (75), 193.04941 (75), 173.04420 (95), 161.02319 (9), 155.03357 (42), 134.03580 (100) |
59 | 39.04 | (–)-(7S,7'S,8R,8'R)-4,4'-Dihydroxy-3,3',5,5'-pentamethoxy-7,9':7',9-diepoxylignane * | C22H26O8 | [M − H]− | 415.15748 | 415.15757 | 0.22 | ND |
60 | 39.39 | CFQM-2 | C27H28O12 | [M − H]− | 543.15080 | 543.15009 | −1.31 | 367.10251 (25), 349.09210 (18), 193.04941 (100), 161.02301 (49), 134.03583 (18) |
61 | 39.49 | 3,4-DiCQM * | C26H26O12 | [M − H]− | 529.13515 | 529.13562 | 0.89 | 367.10202 (17), 179.03372 (69), 161.02311 (63), 135.04359 (100) |
62 | 39.59 | 1,5-DiCQE/4,5-DiCQE | C27H28O12 | [M − H]− | 543.15080 | 543.15125 | 0.83 | 381.11993 (12), 161.02313 (100), 133.02809 (28) |
63 | 39.85 | 1,4,5-TriCQA | C34H30O15 | [M − H]− | 677.15119 | 677.15173 | 0.80 | 515.11743 (15), 353.08701 (55), 191.05486 (43), 179.03371 (89), 173.04424 (100), 161.02301 (33), 135.043 64(80) |
64 | 39.89 | Methyl 9-hydroxynonanoate * | C10H20O3 | [M − H]− | 187.13397 | 187.13403 | 0.32 | 141.12700 (100) |
65 | 40.13 | 3,4,5-TriCQA * | C34H30O15 | [M − H]− | 677.15119 | 677.15179 | 0.89 | 515.11885 (22), 353.08701 (33), 191.05479 (61), 179.03371 (96), 173.04419 (100), 161.02303 (43), 135.04364 (84) |
66 | 40.13 | 3,5-DiCQE * | C27H28O12 | [M − H]− | 543.15080 | 543.15094 | 0.26 | 381.11856 (20), 179.03387 (33), 161.02316 (100), 133.02808 (32) |
67 | 40.33 | CFQM-3 | C27H28O12 | [M − H]− | 543.15080 | 543.15118 | 0.70 | 367.10272 (23), 349.09177 (33), 193.04958 (34), 179.03358 (60), 173.04431 (17), 161.02312 (80), 135.04375 (100), 134.03601 (39), 133.02805 (26) |
68 | 40.34 | 5,6,4'-Trihydroxy-3,7-dimethoxyflavone * | C17H14O7 | [M − H]− | 329.06667 | 329.06669 | 0.06 | 314.04276 (100), 299.01917 (94), 271.02429 (33), 243.02908 (13) |
69 | 40.84 | CFQM-4 | C27H28O12 | [M − H]− | 543.15080 | 543.15088 | 0.15 | 193.04944 (13), 161.02306 (100), 134.03596 (20), 133.02803 (34) |
70 | 41.10 | TriMethoxyflavone | C18H16O8 | [M − H]− | 359.07724 | 359.07785 | 1.70 | 344.05280 (97), 329.02954 (100), 314.00613 (7), 301.03461 (12), 286.01123 (27), 258.01624 (16) |
71 | 41.24 | Kaempferol * | C15H10O6 | [M−H]− | 285.04046 | 285.03998 | −1.68 | 151.00218 (2) |
72 | 41.39 | CFQM-5 | C27H28O12 | [M−H]− | 543.15080 | 543.15106 | 0.48 | 349.09198 (52), 193.04942 (70), 179.03371 (23), 161.02310 (100), 135.04375 (40), 134.03590 (91), 133.02800 (26) |
73 | 41.61 | 3,4-DiCQE * | C27H28O12 | [M − H]− | 543.15080 | 543.15094 | 0.26 | 381.11804 (16), 161.02304 (75), 179.03371 (68), 135.04361 (100) |
74 | 41.68 | threo-2,3-Bis(4-hydroxy-3-methoxyphenyl)-3-ethoxypropan-1-ol * | C19H24O6 | [M − H]− | 347.15001 | 347.14891 | −3.17 | 161.02312 (9), 135.04370 (16) |
75 | 41.91 | 9,12,13-Trihydroxyoctadeca-10(E),15(Z)-dienoic acid * | C18H32O5 | [M − H]− | 327.21770 | 327.21742 | −0.86 | 229.14348 (16), 211.13269 (27), 171.10144 (23) |
76 | 41.98 | 1,3,4,5-TetraCQA * | C43H36O18 | [M − H]− | 839.18289 | 839.18365 | 0.91 | 659.13635 (6), 515.11799 (20), 353.08657 (10), 335.07645 (8), 191.05495 (41), 179.03377 (100), 173.04430 (73), 161.02301 (61), 135.04375 (91) |
77 | 42.08 | Isorhamnetin * | C16H12O7 | [M − H]− | 315.05103 | 315.05127 | 0.76 | 300.02676 (88), 271.02344 (6), 164.01016 (7), 151.00218 (22) |
78 | 42.10 | CFQM-6 | C27H28O12 | [M − H]− | 543.15080 | 543.15131 | 0.94 | 349.09146 (16), 193.04938 (50), 161.02304 (100), 135.04370 (20), 134.03587 (77), 133.02797 (34) |
79 | 42.10 | 1,3,4-CCFQA | C35H32O15 | [M − H]− | 691.16684 | 691.16785 | 1.46 | 529.13403 (10), 367.10284 (20), 349.09241 (9), 193.04938 (100), 179.03378 (73), 161.02312 (58), 135.04370 (44), 133.02805 (84) |
80 | 42.32 | 1,3,4-TriCQM | C35H32O15 | [M − H]− | 691.16684 | 691.16760 | 1.10 | 529.1361 (17), 515.11920 (22), 353.08786 (42), 367.10275 (10), 335.07806 (8), 191.05534 (77), 179.03372 (89), 173.04465 (100), 161.02309 (47), 155.03362 (17), 135.04393 (85) |
81 | 42.55 | erythro-2,3-Bis(4-hydroxy-3-methoxyphenyl)-3-ethoxypropan-1-ol * | C19H24O6 | [M − H]− | 347.15001 | 347.14891 | −3.17 | 179.03271 (81), 135.04364 (100) |
82 | 42.61 | 1,4,5-CCFQA | C35H32O15 | [M − H]− | 691.16684 | 691.16772 | 1.27 | 529.13336 (25), 367.10263 (25), 335.07651 (5), 193.04953 (16), 179.03380 (20), 173.04433 (100), 161.02312 (22), 155.03381 (11), 135.04378 (21), 133.02805 (15) |
83 | 43.13 | Pinellic acid * | C18H34O5 | [M − H]− | 329.23335 | 329.23300 | −1.06 | 229.14352 (8), 211.13301 (17), 171.10135 (32) |
84 | 43.58 | Trihydroxy-dimethoxyflavone | C17H14O7 | [M − H]− | 329.06667 | 329.06705 | 1.15 | ND |
85 | 43.87 | Caryolane-1,9β-diol * | C15H26O2 | [M − H2O + H]+ | 221.18999 | 221.18954 | −2.03 | ND |
86 | 44.19 | Chrysosplenol C * | C18H16O8 | [M − H]− | 359.07724 | 359.07773 | 1.36 | 344.05292 (94), 329.02963 (100), 286.01129 (71) |
87 | 44.30 | Centaureidin * | C18H16O8 | [M − H]− | 359.07724 | 359.07791 | 1.87 | 344.05289 (89), 329.02954 (89), 344.05289 (89), 329.02954 (89), 314.00644 (40), 301.03482 (17), 286.01126 (97) |
88 | 44.40 | CCCFQA-1 | C44H38O18 | [M − H]− | 853.19854 | 853.19971 | 1.37 | 645.15802 (10), 529.13397 (78), 335.07648 (15), 193.04938 (94), 179.03372 (86), 173.04422 (75), 161.02307 (100), 155.03362 (34), 135.04372 (94) |
89 | 44.46 | CCFFQA-1 | C45H40O18 | [M − H]− | 867.21419 | 867.21277 | −1.64 | 193.04977 (5), 161.02315 (100), 135.04369 (11), 133.02803 (47) |
90 | 44.77 | CCCFQA-2 | C44H38O18 | [M − H]− | 853.19854 | 853.19946 | 1.08 | 645.16498 (3), 529.13361 (29), 367.10287 (9), 193.04933 (20), 179.03880 (21), 173.04419 (100), 161.02298 (27), 135.04361 (26) |
91 | 44.93 | 3,4,5-TriCQM * | C35H32O15 | [M − H]− | 691.16684 | 691.16754 | 1.01 | 179.03409 (29), 161.02346 (100), 135.04391 (45), 133.02799 (31) |
92 | 45.68 | 1,3,4,5-TetraCQE | C45H40O18 | [M − H]− | 867.21419 | 867.21356 | −0.73 | 355.08116 (26), 179.03372 (23), 161.02294 (100), 135.04371 (47), 133.02806 (43) |
93 | 45.88 | Fraxinellone * | C14H16O3 | [M + H]+ | 233.11722 | 233.11784 | 2.66 | 215.10712 (100), 187.11209 (92) |
94 | 46.07 | valenc-1(10)-ene-8,11-diol * | C15H26O2 | [M − H2O + H]+ | 221.18999 | 221.18974 | −1.13 | 203.17982 (100), 161.13272 (21), 147.11707 (45), 133.10150 (30), 119.08596 (81), 109.10172 (35), 107.08604 (35), 95.08617 (56) |
95 | 46.39 | Trihydroxy-dimethoxyflavone | C17H14O7 | [M − H]− | 329.06667 | 329.06699 | 0.97 | ND |
96 | 46.12 | CCFFQA-2 | C45H40O18 | [M − H]− | 867.21419 | 867.21252 | −1.93 | 161.02298 (44), 135.04358 (17), 133.02797 (15) |
97 | 46.55 | 3''-Ethoxyl-(3''R)-pluthiophenol | C15H14O2S | [M + H]+ | 259.07873 | 259.07944 | 2.74 | 213.03680 (100), 199.02121 (55), 185.04228 (53), 173.00558 (78) |
98 | 46.57 | 3,4,5-TriCQE | C36H34O15 | [M − H]− | 705.18249 | 705.18292 | 0.61 | 543.15044 (8), 367.10269 (2), 349.09255 (4), 179.03368 (47), 161.02313 (100), 135.04359 (80) |
99 | 46.82 | (3''R)-pluthiophenol * | C13H10O2S | [M + H]+ | 231.04743 | 231.04755 | 0.52 | 213.04740 (36), 200.02346 (17), 199.02358 (53) |
100 | 46.89 | Clovane-2α,9β-diol * | C15H26O2 | [M − H2O + H]+ | 221.18999 | 221.19037 | 1.72 | 203.17920 (100), 161.13242 (11), 147.11676 (33), 121.10132 (20), 109.10140 (31), 107.08585 (31), 95.08591 (58) |
101 | 47.08 | Casticin * | C19H18O8 | [M − H]− | 373.09289 | 373.09366 | 2.06 | 358.06879 (77), 343.04517 (100), 328.02164 (18), 312.99838 (13), 300.02676 (33), 285.00342 (34), 257.00858 (33) |
102 | 47.17 | (8R,9R)-Isocaryolane-8,9-diol * | C15H26O2 | [M − H2O + H]+ | 221.18999 | 221.18962 | −1.67 | ND |
103 | 47.53 | Sesquiterpene | C15H26O2 | [M − H2O + H]+ | 221.18999 | 221.18941 | −2.62 | ND |
104 | 47.62 | 3''-Ethoxyl-(3''R)-pluthiophenol-4''-acetate | C17H16O3S | [M + H]+ | 301.08929 | 301.08945 | 0.53 | ND |
105 | 47.96 | (3''R)-Pluthiophenol-4''-acetate * | C15H12O3S | [M + H]+ | 273.05799 | 273.05813 | 0.51 | 231.04753 (40), 213.03694 (76), 184.03423 (100) |
106 | 48.73 | (3''S)-pluthiophenol | C13H10O2S | [M + H]+ | 231.04743 | 231.04758 | 0.65 | ND |
107 | 49.42 | 3''-Ethoxyl-(3''S)-pluthiophenol * | C15H14O2S | [M + H]+ | 259.07873 | 259.07918 | 1.74 | 213.03680 (100), 199.02121 (42), 185.04228 (43), 173.00558 (73) |
108 | 49.62 | Sesquiterpene | C15H26O2 | [M − H2O + H]+ | 221.18999 | 221.18947 | −2.35 | ND |
109 | 53.00 | Dibutylphthalate * | C16H22O4 | [M − H]− | 277.15899 | 277.15901 | 0.07 | ND |
110 | 53.13 | (3''S)-Pluthiophenol-4''-acetate | C15H12O3S | [M + H]+ | 273.05799 | 273.05838 | 1.43 | 231.04761 (40), 213.03699 (75), 184.03421 (100) |
111 | 53.28 | 3''-Ethoxyl-(3''S)-pluthiophenol-4''-acetate * | C17H16O3S | [M + H]+ | 301.08929 | 301.08917 | −0.40 | 213.03697 (100), 185.04243 (45), 184.03429 (48), 173.00571 (8) |
112 | 54.98 | trans-Coniferyl aldehyde * | C10H10O3 | [M + H]+ | 179.07027 | 179.07063 | 2.01 | ND |
113 | 55.18 | (+)-9'-isovaleryllariciresinol * | C25H32O7 | [M − H]− | 443.20753 | 443.20905 | 3.43 | ND |
114 | 55.94 | Stigmasterol * | C29H48O | [M − H]− | 411.36324 | 411.36307 | −0.41 | ND |
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Ruan, J.; Yan, J.; Zheng, D.; Sun, F.; Wang, J.; Han, L.; Zhang, Y.; Wang, T. Comprehensive Chemical Profiling in the Ethanol Extract of Pluchea indica Aerial Parts by Liquid Chromatography/Mass Spectrometry Analysis of Its Silica Gel Column Chromatography Fractions. Molecules 2019, 24, 2784. https://doi.org/10.3390/molecules24152784
Ruan J, Yan J, Zheng D, Sun F, Wang J, Han L, Zhang Y, Wang T. Comprehensive Chemical Profiling in the Ethanol Extract of Pluchea indica Aerial Parts by Liquid Chromatography/Mass Spectrometry Analysis of Its Silica Gel Column Chromatography Fractions. Molecules. 2019; 24(15):2784. https://doi.org/10.3390/molecules24152784
Chicago/Turabian StyleRuan, Jingya, Jiejing Yan, Dandan Zheng, Fan Sun, Jianli Wang, Lifeng Han, Yi Zhang, and Tao Wang. 2019. "Comprehensive Chemical Profiling in the Ethanol Extract of Pluchea indica Aerial Parts by Liquid Chromatography/Mass Spectrometry Analysis of Its Silica Gel Column Chromatography Fractions" Molecules 24, no. 15: 2784. https://doi.org/10.3390/molecules24152784
APA StyleRuan, J., Yan, J., Zheng, D., Sun, F., Wang, J., Han, L., Zhang, Y., & Wang, T. (2019). Comprehensive Chemical Profiling in the Ethanol Extract of Pluchea indica Aerial Parts by Liquid Chromatography/Mass Spectrometry Analysis of Its Silica Gel Column Chromatography Fractions. Molecules, 24(15), 2784. https://doi.org/10.3390/molecules24152784