Ni-Hong Lu,
Jie Li,
Yong-Rui Yang,
Hong-Lu Liu and
Ying-Rong Du*
Department of Respiratory Medicine, The Third People's Hospital of Kunming, Yunnan, 650041, People's Republic of China. E-mail: 602157606@qq.com
First published on 17th November 2021
Eleven new 9,19-cycloartane triterpenes (1–9, 11–12) and one undescribed lanostane-type aglycone (10) were identified from the aerial parts of Cimicifuga yunnanensis. The new structures were elucidated by analysis of spectroscopic data. Compounds 3–5, 7–9, and 11, without obvious cytotoxicity at 50 μM, were evaluated for inhibiting the mRNA expressions of atherosclerosis-related factors of CD147 (extracellular matrix metalloproteinase inducer, EMMPRIN), matrix metalloproteinase 2 (MMP-2) and MMP-9 in phorbol-12-myristate-13-acetate (PMA) induced Human monocytic THP-1 cells by using a quantitative real-time PCR method (q-PCR). Among them, aglycones 7 and 8 showed potent activities, whereas all tested glycosides were inactive. Compounds 7 and 8 suppressed the mRNA expression of CD147 in a dose-dependent manner, with an IC50 value of 3.38 ± 0.27 μM and 8.25 ± 0.33 μM, respectively. Besides, 7 dose-related down-regulated the mRNA expression of MMP-2, and MMP-9, having an IC50 value of 6.32 ± 0.31 μM and 11.57 ± 0.23 μM, respectively. Meanwhile, 8 at 10 μM reduced the mRNA expression of MMP-2 and MMP-9 by 35% and 25%, respectively. Significantly, the migration ability of the induced THP-1 cells was potently and dose-dependently inhibited by 7, with an IC50 value of 5.87 ± 0.27 μM.
Plants of Cimicifuga genus (C. racemosa, C. foetida, and C. simplex) are famous herb medicines in Europe, the United States, and East Asia.12,13 These herbs mainly contain 9,19-cycloartane triterpenes (CTs) with diverse bioactivities, such as cytotoxicity,14,15 anti-angiogenic,16 anti-inflammatory,17,18 and neuro-protective.19,20 Recently, we identified two CTs, yunnanterpene G (YG) and 12β-hydroxycimiacerol (HC), with anti-atherosclerosis potentials by potently suppressing the mRNA expressions of CD147 and MMPs.21,22 As a part of our successive program to explore bioactive CTs from Cimicifuga spp, nine unreported CTs glycosides (1–6, 9, and 11–12) and two new aglycones (7 and 8), together with one undescribed lanostane-type triterpene (10) were identified from the aerial parts of C. yunnanensis (Fig. 1), an indigenous species distributed in the southwest region of China.16 Significantly, the q-PCR experiments showed that aglycones 7 and 8 dose-dependently attenuated the mRNA expression of CD147, with an IC50 value of 3.38 ± 0.27 μM and 8.25 ± 0.33 μM, respectively, in PMA-induced THP-1 cells. Of note, the CD147 mRNA inhibitory effect of 7 at 10 μM is more potent than that of YG (positive control). While, 8 has comparable activity as YG at this concentration. Moreover, 7 dose-dependently down-regulated the mRNA expression of MMP-2, and MMP-9 and suppressed the migration ability of the induced THP-1 cells, having an IC50 value of 6.32 ± 0.31 μM, 11.57 ± 0.23 μM, and 5.87 ± 0.27 μM, respectively. Conversely, all tested glycosides (3–5, 9 and 11) were inactive at 10 μM. Described herein are the isolation, structure elucidation, and biological activities of compounds 1–12.
Position | 1a | 2a | 3b | 4b | 5b | 6b | 7b | 8a | 9b | 10a | 11b | 12a |
---|---|---|---|---|---|---|---|---|---|---|---|---|
a Recorded at 500 MHz in pyridine-d5.b Recorded at 600 MHz in pyridine-d5.c Signals overlapped. | ||||||||||||
1 | 1.57 m | 1.54 m | 1.53 m | 1.50 m | 1.55 m | 1.46 m | 1.81 m | 1.55m | 2.77 m | 1.72 m | 1.61 m | 1.64 m |
1.16 m | 1.11 m | 1.08 m | 1.10 m | 1.12 m | 1.12c | 1.53c | 1.21 m | 1.71 m | 1.26 m | 1.21c | 1.28c | |
2 | 2.30 m | 2.24 m | 2.37 m | 2.33 m | 2.27 m | 2.27 m | 2.70 ddd (27.8, 13.9, 6.2) | 2.00 m | 2.46 m | 1.92 m (2H) | 2.37 m | 2.35 m |
1.90 m | 1.85 m | 1.90 m | 1.89 m | 1.81a | 1.89 m | 2.24 m | 1.90 m | 2.11 m | 1.95 m | 2.23c | ||
3 | 3.45 dd (11.7, 4.2) | 3.39 m | 3.47 dd (11.5,4.1) | 3.48 dd (11.7, 4.2) | 3.43 dd (11.7, 4.2) | 3.45 dd (11.5, 3.9) | 3.55 m | 3.59 dd (11.4, 3.9) | 3.48 m | 3.46 dd (11.5, 3.9) | 3.48 m | |
4 | ||||||||||||
5 | 1.19 m | 1.11 m | 1.27c | 1.24 m | 1.18 m | 1.19 m | 1.53c | 1.30 dd (12.6, 4.1) | 1.36c | 1.21c | 1.25a | 1.24 m |
6 | 1.82 m | 1.73 m | 2.50 m | 1.46 m | 1.81c | 1.97 m | 1.83 m | 1.56 m | 1.92 m | 1.76 m | 1.89 m | 1.77 m |
1.54 m | 1.44c | 1.05 m | 0.71 m | 1.54 m | 1.61c | 1.75 m | 0.75 m | 1.76 m | 1.55 m | 1.00c | 1.44 m | |
7 | 5.15c | 5.08c | 1.57 m | 1.25 m | 5.13 d (7.2) | 6.73 brd (6.3) | 6.75 d (7.1) | 1.57 m | 5.21 brd (6.3) | 2.66 m | 5.25 brd (5.8) | 5.31 d (6.1) |
0.73 dd (25.0,12.5) | 0.94 m | 1.03 m | 2.46 m | |||||||||
8 | 2.00 dd (12.5,4.0) | 1.55 m | ||||||||||
9 | ||||||||||||
10 | ||||||||||||
11 | 2.96 dd (16.1, 9.1) | 2.91 dd (15.7, 9.3) | 2.97 dd (16.2, 9.4) | 2.66 dd (15.9, 9.4) | 2.93 dd (16.0, 9.3) | 2.91 dd (16.2, 8.9) | 2.82 dd (15.3, 8.6) | 1.98 m | 4.60 brd (6.6) | 2.08 m | 2.06 m | 2.09 m |
1.27 m | 1.23c | 1.16 d (15.3) | 1.16 m | 1.25 m | 1.36 m | 1.57c | 1.10c | 2.02 m | 1.55 m | 1.14 m | ||
12 | 5.23 d (8.5) | 5.20 d (8.4) | 5.74 d (7.8) | 5.34 dd (9.3, 4.0) | 5.23 d (8.9) | 5.49 d (8.5) | 4.53 d (8.5) | 1.59 m (2H) | 2.85 dd (13.6, 9.5) | 1.73 m | 1.92 m | 1.85 m (2H) |
2.08 m | 1.26 m | 1.76 m | ||||||||||
13 | ||||||||||||
14 | ||||||||||||
15 | 2.16 m | 2.09 m (2H) | 1.97 m | 2.17c | 1.94 m | 2.56 m | 9.82 s | 5.88 s | ||||
2.03 m | 1.88 m | 2.05 dd (13.6, 5.9) | 1.66 m | 2.27 d (7.2) | ||||||||
16 | 4.63 dd (14.1, 7.4) | 4.31c | 4.23 m | 4.89 m | 5.01 dd (16.2, 7.9) | 4.54 d (8.7) | ||||||
17 | 1.79 m | 1.76 m | 2.10 m | 1.81c | 2.38 d (7.0) | 2.47 d (7.4) | 1.61 m | 2.25 d (4.8) | 1.50c | 2.72 d (4.4) | 2.35 m | |
18 | 1.41 s | 1.46 s | 1.67 | 1.35 s | 1.42 s | 1.00 s | 1.64 s | 1.24 s | 1.26 s | 0.92 s | 1.54 s | 1.22 s |
19 | 1.07c | 0.99c | 0.58 d (4.0) | 0.59 d (3.7) | 1.02c | 1.07c | 1.32c | 0.51 d (3.9) | 2.01 d (3.4) | 1.07 s | 0.89 d (3.8) | 0.97c |
0.57 d (3.9) | 0.47 brs | 0.26 d (4.0) | 0.20 d (4.1) | 0.52 d (3.8) | 0.57 d (4.0) | 0.92 d (4.3) | 0.24 d (4.1) | 1.02 d (3.4) | 0.49 d (3.8) | 0.50 d (3.9) | ||
20 | 1.82 m | 2.22 m | 3.37 dd (13.8,7.0) | 2.48 m | 1.95 m | 2.02 m | 1.58c | 2.31 m | 2.17 m | 1.68 m | 2.29 m | 2.59 m |
21 | 0.95 d (6.0) | 0.98 d (6.2) | 1.61 d (6.9) | 1.15 d (7.2) | 0.99 brd (4.0) | 1.11 d (6.2) | 1.53 d (6.2) | 1.26 d (6.4) | 0.90 d (5.9) | 0.91 d (6.9) | 1.00c | 1.06 d (6.6) |
22 | 2.19 m | 1.55 m | 2.71 2H m | 5.22 d (3.2) | 2.85 brd (11.7) | 2.53 d (13.0) | 2.61 d (12.8) | 3.94 d (10.7) | 2.51 m | 2.29 m | 2.09 dd (13.5, 6.9) | 3.57 dd (15.0, 3.2) |
1.65 m | 1.42 m | 1.58 m | 1.68 d (15.5) | 1.72 m | 2.43 m | 1.05 m | 1.89 m | 2.74 dd (18.0, 8.2) | ||||
23 | 4.64 m | 4.64 brd (10.4) | 4.71 brd (9.9) | 4.80 d (9.0) | 5.13 brd (11.5) | |||||||
24 | 3.73 s | 3.66 s | 3.64 s | 4.35 brs | 3.78 brs | 3.59 brs | 3.59 brs | 4.22 s | 4.51 s | 3.82 s | 3.74 d (4.6) | 3.72 s |
25 | ||||||||||||
26 | 3.97 d (10.0) | 4.03 d (10.0) | 1.60 s | 1.63 s | 1.84 s | 1.58 s | 1.59c | 1.81 s | 1.50 s | 1.66 s | 1.33 s | |
3.91 d (10.0) | 3.60 d (10.0) | |||||||||||
27 | 1.47 s | 1.46 s | 1.67 s | 1.68 s | 1.78 s | 1.59 s | 1.61c | 1.72 s | 1.52 s | 1.71 s | 1.33 s | |
28 | 1.07 s | 1.02 s | 1.31 s | 0.88 s | 1.05 s | 1.54 s | 1.60c | 0.87 s | 1.60 s | 1.29 s | 1.59 s | 1.29 s |
29 | 0.99 s | 0.93 s | 1.27 s | 1.01 s | 0.99c | 1.29 s | 1.11 s | 1.09 s | 1.38 s | 1.08 s | 1.25 s | 1.02 s |
30 | 1.32 s | 1.26 s | 0.97 s | 1.32 s | 1.29 s | 1.50 s | 1.02 s | 1.24 s | 1.12 s | 1.21 s | 0.99 s | 1.30 s |
1′ | 4.79 d (7.2) | 4.74 d (7.1) | 4.79 d (7.0) | 4.81 d (7.1) | 4.76 d (7.2) | 4.76 d (7.1) | 4.82 d (7.0) | 4.77 d (7.0) | 4.78 d (7.2) | |||
2′ | 4.49 m | 4.44 t (7.8) | 4.47 m | 4.49 t (8.8) | 4.45 t (8.0) | 4.45 t (8.0) | 4.47 m | 4.45 t (5.9) | 4.47 m | |||
3′ | 4.19 m | 4.14 brd (7.3) | 4.16 dd (8.8, 3.0) | 4.19 dd (9.0, 3.4) | 4.14 dd (8.8, 3.2) | 4.15 dd (8.8,3.1) | 4.17 dd (8.7,3.0) | 4.17 brd (8.7) | 4.16 dd (8.9, 3.2) | |||
4′ | 4.34 brs | 4.30 brs | 4.31 m | 4.34 brs | 4.30 brs | 4.31 m | 4.32 m | 4.33 m | 4.32 brs | |||
5′ | 4.32 m | 4.29c | 4.28 m | 4.32 m | 4.29 brd (10.9) | 4.28 m | 4.28 m | 4.30 m | 4.30 m | |||
3.80 m | 3.76 d (11.2) | 3.79 d (10.6) | 3.82 m | 3.77 brd (9.6) | 3.79 m | 3.79 m | 3.80 brd (10.8) | 3.79 m | ||||
12-OCOCH3 | 2.22 s | 2.17 s | 2.28 s | 2.14 s | 2.16 s | 2.24 s | ||||||
15-OCOCH3 | 3.36 s | 2.23 s |
Position | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 |
---|---|---|---|---|---|---|---|---|---|---|---|---|
a 13C Recorded at 150 MHz in pyridine-d5. | ||||||||||||
1 | 30.6 t | 30.2 t | 32.1 t | 32.4 t | 30.3 t | 30.1 t | 31.8 t | 32.8 t | 27.3 t | 36.5 t | 31.0 t | 30.2 t |
2 | 29.9 t | 29.5 t | 29.8 t | 30.3 t | 29.4 t | 29.3 t | 36.7 t | 31.7 t | 29.7 t | 29.2 t | 29.3 t | 29.4 t |
3 | 88.3 d | 87.9 d | 87.9 d | 87.9 d | 87.9 d | 87.7 d | 214.6 s | 78.3 d | 88.3 d | 78.5 d | 87.7 d | 88.1 d |
4 | 40.8 s | 40.4 s | 41.1 s | 41.7 s | 40.4 s | 40.2 s | 48.7 s | 41.5 s | 40.6 s | 39.9 s | 40.2 s | 40.4 s |
5 | 42.8 d | 42.4 d | 46.8 d | 47.5 d | 42.5 d | 41.4 d | 43.1 d | 47.8 d | 44.0 d | 51.3 d | 40.4 d | 42.5 d |
6 | 22.2 t | 21.8 t | 25.6 t | 20.8 t | 21.9 t | 21.5 t | 21.7 t | 21.7 t | 21.9 t | 19.1 t | 22.2 t | 21.9 t |
7 | 114.5 d | 114.1 d | 20.4 t | 26.1 t | 114.0 d | 117.2 d | 116.7 d | 27.2 t | 113.6 d | 28.5 t | 122.0 d | 115.2 d |
8 | 148.2 s | 147.7 s | 40.6 d | 47.1 d | 147.9 s | 140.3 s | 141.3 s | 48.1 d | 147.4 s | 134.9 s | 140.2 s | 146.1 s |
9 | 21.7 s | 21.2 s | 19.9 s | 20.9 s | 21.3 s | 21.2 s | 29.8 s | 20.1 s | 27.3 s | 136.0 s | 18.8 s | 21.4 s |
10 | 28.7 s | 28.2 s | 26.8 s | 27.6 s | 28.3 s | 28.3 s | 22.6 s | 26.7 s | 29.0 s | 38.0 s | 28.4 s | 28.7 s |
11 | 36.9 t | 36.6 t | 36.8 t | 36.9 t | 36.7 t | 35.6 t | 39.2 t | 26.9 t | 63.3 d | 21.2 t | 24.6 t | 24.9 t |
12 | 77.1 d | 76.8 d | 71.0 d | 77.4 d | 76.9 d | 76.1 d | 71.3 d | 33.9 t | 48.8 t | 32.8 t | 30.8 t | 33.3 t |
13 | 48.5 s | 48.1 s | 49.4 s | 49.4 s | 48.1 s | 43.6 s | 45.1 s | 45.7 s | 46.2 s | 41.6 s | 42.9 s | 41.4 s |
14 | 51.1 s | 50.5 s | 54.5 s | 48.3 s | 50.7 s | 54.6 s | 57.8 s | 47.3 s | 50.7 s | 49.5 s | 59.3 s | 48.5 s |
15 | 42.9 t | 43.0 t | 207.3 s | 46.2 t | 42.7 t | 211.6 s | 212.2 s | 43.8 t | 48.4 t | 76.3 d | 200.3 d | 81.6 d |
16 | 73.5 d | 74.5 d | 148.6 s | 75.2 d | 71.8 d | 95.9 s | 96.1 s | 72.8 d | 81.9 s | 112.7 s | 173.7 s | 214.0 s |
17 | 57.2 d | 56.6 d | 151.0 s | 52.8 d | 57.4 d | 55.6 d | 56.9 d | 52.8 d | 63.5 d | 58.7 d | 55.3 d | 58.9 d |
18 | 14.3 q | 14.2 q | 25.7 q | 13.6 q | 14.9 q | 13.9 q | 15.1 q | 21.2 q | 21.0 q | 18.2 q | 21.9 q | 21.7 q |
19 | 29.1 t | 28.8 t | 31.3 t | 30.3 t | 28.8 t | 28.0 t | 27.6 t | 30.9 t | 18.5 t | 19.6 q | 28.5 t | 27.9 t |
20 | 26.2 d | 23.1 d | 28.0 d | 25.1 d | 25.9 d | 25.4 d | 26.1 d | 35.2 d | 25.7 d | 24.9 d | 27.9 d | 27.9 d |
21 | 22.1 q | 21.4 q | 17.3 q | 26.1 q | 21.2 q | 23.4 q | 23.7 q | 17.9 q | 20.5 q | 20.5 d | 24.7 q | 20.8 q |
22 | 37.1 t | 37.2 t | 40.7 t | 106.2 d | 42.1 t | 32.4 t | 32.5 t | 87.4 d | 44.7 t | 38.6 t | 36.2 t | 46.5 t |
23 | 106.4 s | 105.9 s | 68.3 d | 154.2 s | 102.5 s | 75.7 d | 76.1 d | 106.5 s | 211.2 s | 72.5 d | 78.0 d | 205.5 s |
24 | 63.6 d | 62.3 d | 78.7 d | 79.9 d | 77.5 d | 78.7 d | 78.5 d | 83.7 d | 82.3 d | 90.7 d | 79.7 d | 65.8 d |
25 | 63.7 s | 62.5 s | 73.6 s | 73.5 s | 75.1 s | 72.6 s | 72.8 s | 84.0 s | 71.4 s | 72.2 s | 60.8 s | |
26 | 69.2 t | 68.1 t | 27.7 q | 27.9 q | 29.4 q | 26.1 q | 28.5 q | 28.2 q | 27.6 q | 25.8 q | 24.6 q | |
27 | 15.2 q | 14.8 q | 27.1 q | 26.4 q | 28.9 q | 28.5 q | 26.2 q | 25.4 q | 25.8 q | 29.0 q | 18.4 q | |
28 | 27.2 q | 26.9 q | 23.6 q | 21.3 q | 26.8 q | 24.2 q | 24.2 q | 20.2 q | 28.0 q | 18.3 q | 18.6 q | 19.5 q |
29 | 14.6 q | 14.3 q | 25.5 q | 15.7 q | 14.2 q | 25.4 q | 22.3 q | 14.9 q | 25.8 q | 16.9 q | 25.3 q | 14.2 q |
30 | 26.2 q | 25.8 q | 15.2 q | 26.3 q | 25.7 q | 15.7 q | 19.8 q | 26.2 q | 14.4 q | 29.0 q | 13.7 q | 25.8 q |
1′ | 108.0 d | 107.3 d | 107.4 d | 108.1 d | 107.3 d | 107.4 d | 107.4 d | 107.3 d | 107.4 d | |||
2′ | 73.5 d | 72.9 d | 72.9 d | 73.4 d | 72.9 d | 72.8 d | 72.8 d | 72.8 d | 72.9 d | |||
3′ | 75.2 d | 74.6 d | 74.6 d | 75.1 d | 74.6 d | 74.5 d | 74.5 d | 74.5 d | 74.7 d | |||
4′ | 70.2 d | 69.4 d | 69.5 d | 70.1 d | 69.5 d | 69.5 d | 69.5 d | 69.4 d | 69.5 d | |||
5′ | 67.5 t | 66.6 t | 66.8 t | 67.4 t | 66.7 t | 66.8 d | 66.8 t | 66.7 t | 66.8 t | |||
12-OOCH3 | 171.2 s | 170.8 s | 170.8 s | 171.2 s | 170.6 s | 170.7 s | ||||||
12-OCOH3 | 21.4 q | 21.6 q | 21.4 q | 21.7 q | 21.6 q | 21.2 q | ||||||
15-OOCH3 | 170.2 s | |||||||||||
15-OCOH3 | 20.9 q |
The 1H–1H COSY (Fig. 2) spin system of –CH2CHCHCH(CH3)CH2– (for C-15 to C-17, C-20 to C-22), together with the diagnostic ketal signal at δC 106.4 (C-23, s), as well as the pair of geminal signals for CH2-26 at δH 3.91 and 3.97 (each 1H, d, J = 10.0 Hz), indicated that 1 was a acteol-type CTs.12,23 HMBC couplings from H-16 (δH 4.63), H-22 (δH 1.65 and 2.19) to C-23 (δC 106.4), H-22 (δH 1.65 and 2.19) to C-24 (δC 63.6), and H-26 (δH 3.91 and 3.97) and H-24 (δH 3.73) to C-23 (δC 109.5) and C-25 (δC 83.4), further supported this deduction. The location of sugar unit at C-3 was inferred from HMBC correlation between the anomeric proton at δH 4.85 (1H, d, J = 8.6 Hz) and the methine signal at δC 88.5 (C-3). In addition, the sugar was determined as L-arabinose by comparing its TLC and specific rotation with a standard after acid hydrolysis. Structurally, 1 resembles to 26-deoxyactein,23 with main differences as that an acetoxy group substituted at C-12 and the presence of a double bond at C-7 and C-8. These elucidations were confirmed by HMBC association from H-12 (δH 5.23) to the ester carbonyl group (δC 171.1), and the 1H–1H COSY correlation of the olefinic proton resonance (δH 5.15) and H-6 (δH 1.54 and 1.82).
In the ROESY spectrum (Fig. 2), cross-peaks of H-3 with H-5 (biogenetically α-oriented), H-16 and H-17 with CH3-28 (biogenetically α-oriented), and H-20 with CH3-18 (biogenetically β-oriented) were observed, which helped to establish the relative configuration of the core structure of 1. Moreover, the characteristic ROESY correlations of H-21/H-24 and H-24/CH3-27 further decided the configuration of ring F and G, as well as the ternary epoxy ring and ring G as shown (Fig. 2). Intensive analysis of 1 D and 2D NMR spectra demonstrated that compound 2 had the same core structure as that of 1, with the major differences being at C-24, C-25 and C26. Diagnostically, the ROESY correlation of H-21/H-24 was absence in 2, instead, the association of H-22α/H-24 was observed. Thus, the configuration of ring F and G of 2 was determined as same to 23-epi-26-deoxyactein (Fig. 2).23 Finally, the structure of 1 and 2 were determined as 7(8)-en-acteol-3-O-α-L-arabinopyranoside and 7(8)-en-23-epi-acteol-3-O-α-L-arabinopyranoside, respectively.
Compound 3, white powder, had molecular formula C37H58O12 based on the HRTOF-ESIMS at m/z 717.3823 [M + Na + H2O]+ (calcd 717.3826). The 1H NMR spectrum (Table 1) showed characteristic cyclopropane methylene signals at δH 0.26 (1H, d, J = 4.0 Hz) and 0.58 (1H, d, J = 4.0 Hz), and an anomeric proton at δH 4.79 (1H, d, J = 7.2 Hz). The 13C NMR spectrum (Table 2) indicated that 3 had resonances corresponding to an ester carbonyl group at δC 171.1 (s), and an α,β-unsaturated ketone unit at δC 207.3 (C-15, s), 148.6 (C-16, s) and 151.0 (C-17, s). Aforementioned data indicated that 3 was a CTs glycoside. The sugar unite was determined as L-arabinose by the same way as that of 1. The NMR data of aglycone part of 3 resembled that of 24-O-acetyl-16(17)-en-hydroshengmanol-3-O-β-D-xylopyranoside,20 except that the acetoxy group was changed to C-12 and the OH-16 was replaced by a carbonyl group. HMBC correlations of H-12 (δH 5.74) with the ester carbonyl group (δC 170.8), and CH3-28 (δH 1.31) with the carbonyl carbon (δC 207.3) further confirmed these elucidations. ROESY cross-peaks of H-3/H5, H-12/CH3-28, and H-20/CH3-18 in 3 suggested the α-orientation of H-3, H-12, and CH3-21. The β-orientation of H-24 was deduced by the ROESY correlation of H-24/H-20. In addition, identical to isodahurinyl-type molecules, H-24 of 3 was a singlet in 1H NMR spectrum, suggesting S configuration of C-24 (the coupling constant of H-24 and H-23 of dahurinyl-type compounds, with R configuration of C-24, is around 6–9 Hz).15 Therefore, the structure of 3 was determined as 12β-acetoxy-16(17)-en-isodahurinyl-3-O-α-L-arabinopyranoside.
Compound 4 possessed the molecular formula of C37H58O10 based on the HREIMS at m/z 662.4058 [M]+ (calcd 662.4030). The NMR spectroscopic data for 4 resembled those of (16S,20S,24R)-12β-acetoxy-16,23-epoxy-24,25-dihydroxy-3β-(β-D-xylopyranosyloxy)-9,19-cyclolanost-22(23)-ene (AC),24 with major differences in sugar unit. In addition, the sugar moiety was attached to C-3 and determined as L-arabinose by the same way as that of 1. A α-orientation of H-3, H-12, H-16, H-17, and CH3-21 were determined by ROESY couplings of H-3 with H-5, H-12, H-16, and H-17 with CH3-28, and H-20 with H-17, respectively. Whereas, a β-orientation of H-8 was deduced by the correlation of H-8/CH3-18. In addition, identical to that of AC (16S,20S,24R)-12β-acetoxy-16,23-epoxy-24,25-dihydroxy-3β-(β-D-xylopyranosylo-xy)-9,19-cyclolanost-22(23)-ene, the characteristic ROESY association of CH3-18/CH3-26 was observed in 4, indicating it shares the same configuration at C-24 as R in AC (As shown in Fig S100,† when configuration of C-24 is S, it is impossible to see the cross-peak of CH3-18/CH3-26). Thus, the structure of 4 was determined as 12β-acetoxy-22(23)-en-15-deoxy-isodahurinyl-3-O-α-L-arabinopyranoside.
Compound 5 was purified as white powder, with the molecular formula C37H58O11, given by the HREIMS ([M]+ m/z 678.3990, calcd 678.3979). The IR spectrum showed the presence of hydroxyl (3431 cm−1), carbonyl (1730 cm−1) and olefinic (1629 cm−1) groups. The NMR data of aglycone part for 5 (Tables 1 and 2) were similar to those of actaeaepoxide-3-O-α-D-xylopyranoside.25 The main differences were that a methine (C-22) at δC 86.6 was absent, instead, there's another methylene (δC 42.1), and the upfield shifts of C-23, C-24, and C-25 by 3.1 ppm, 5.4 ppm and 8.6 ppm, respectively. These changes could be explained as that, in 5, a methylene replaced a methine at C-22, and two hydroxy groups instead of the ternary epoxy ring at C-23 and C-24. These deductions were further confirmed by the HMBC coupling of H-20 (δH 4.81)/C-22 (δC 42.1). The sugar unit was connected to C-3 and identified as L-arabinose using same approaches as those of 1. In addition, the orientations of core structure and the configuration of C-24 of 5 were determined on the basis of the ROESY associations as those of 4. Therefore, the structure of 5 was determined as 12β-acetoxy-23,24-dihydroxy-7(8)-en-15-deoxy-isodahurinyl-3-O-α-L-arabinopyranoside.
On the basis of the HRTOF-ESIMS peak at m/z 715.3666 [M + Na]+ (calcd 715.3670), the molecular formula of 6 was determined as C37H56O12. 1H NMR resonances due to a downfield shifted cyclopropane methylene at δH 0.57 (1H, d, J = 4.0 Hz) and 1.07 (1H, overlapped), an olefinic proton at δH 6.73 (brd, J = 6.3 Hz), an acetyl methyl group at δH 2.24, a secondary methyl signal at δH 1.11 (d, J = 6.2 Hz), six singlet methyl groups at δH 1.00–1.59, as well as an anomeric proton at δH 4.76 (1H, d, J = 7.1 Hz) were observed (Table 1), indicating 6 is a CTs glycoside with an acetoxy group and a double bond. The sugar unit was connected to C-3 and deduced as L-arabinose by using same approaches as those of 1. Comparison of NMR data of 6 and hydroxyshengmanol-7(8)-en-15-one-3-O-β-D-xylopyranoside26 revealed the aglycone part of the two compounds were identical, except for an acetoxy group substituted at C-12 in 6, which further supported by the HMBC correlation of H-12 (δH 5.49) and the ester carbonyl group (δC 170.7). A α-orientation of the substituents at C-3, and C-12 were determined by ROESY correlations of H-3/H-5 and H-12/CH3-28. Whereas, correlations of H-20/CH3-18 and H-23/H-20 indicated the β-orientation of H-23. The stereochemistry of C-24 was elucidated as S by comparison of coupling constant of H-24 with known compounds (S, J ≤ 2 Hz; R, J ≈ 6).15,26 The molecular formula C30H44O7 of 7 was deduce from its HRTOF-ESIMS at m/z 539.2988 [M + Na]+ (calcd 539.2985). The spectroscopic features of 7 were identical to 6 except for a carbonyl group and a hydroxy group at C-3 and C-12, respectively. HMBC correlation of CH3-29 (δH 1.11) with the carbonyl carbon (δC 214.6) and the upfield shift of C-12 by 4.8 ppm further confirmed these elucidations. Same orientations of H-8, H-12, H-17, and H-23, as well as the configuration of C-24 between 7 and 6 were determined on the basis of the ROESY associations and comparison of coupling constant of H-24 with known compounds. Thus, the structure of 6 and 7 were determined as 12β-acetoxy-7(8)-en-15-one-hydroxyshengmanol-3-O-α-L-arabinopyranoside and 12β-hydroxy-7(8)-en-3,15-dione-hydroxyshengmanol, respectively.
The molecular composition of compound 8, C30H48O5, was established by HREIMS ([M]+ m/z 488.3499, calcd 488.3502), indicating 7 degrees of unsaturation. The 30 carbon signals of 8 were similar to the aglycone resonances of actaeaepoxide-3-O-β-D-xylopyranoside.25 The main differences were that no double bond at C-7 and C-8, and the absence of an acetoxy group at C-12 in 8. Moreover, 1H–1H COSY correlations of H-6 (each 1H, δH 0.75 and 1.56) with H-7 (each 1H, δH 1.03 and 1.57), H-11 (each 1H, δH 1.10 and 1.98) with H-12 (2H, δH 1.59) confirmed these deductions. The orientations of H-16, H-17, and H-22 were assigned as α by analysis of ROESY spectrum. Besides, the characteristic ROESY correlation of H-22/H-24 further suggested the configuration between ring E and the ternary epoxy ring as shown (Fig S100†). Therefore, the structure of 8 was determined as actaeaepol.
The molecular formula of compound 9 was determined as C32H48O9 from HRTOF-ESIMS at m/z 599.3188 [M + Na]+ (calcd 599.3196). In the 1H NMR spectrum (Table 1), signals due to an extremely downfield shifted cyclopropane methylene at δH 1.02 (1H, d, J = 3.4 Hz) and 2.01 (1H, d, J = 3.9 Hz), an anomeric proton at δH 4.82 (d, J = 7.0 Hz), an olefinic hydrogen atom at δH 5.21 (brd, J = 6.3 Hz), four tertiary methyl groups at δH 1.12–1.60, and a secondary methyl signal at δH 0.90 (d, J = 5.9 Hz), were observed. The 1H–1H COSY spectrum indicated that 9 had part structure of –CHCH(CH3)CH2– (for C-17, C-20 to C-22). Aforementioned data together with HMBC associations of H-22 (2H, δH 2.43 and 2.51) with the carbonyl carbon (δC 211.2) and the oxygenated carbon at δC 82.3 (C-24, d), and H-17 (δH 2.25) with the oxygenated carbon at δC 81.9 (C-16, s) and C-24, exhibited that 9 was a foetidonol-type CTs glycoside. The sugar unit was connected to C-3 and identified as L-arabinose using same ways as those of 1. Compound 9 had a similar structure as that of foetidonol-3-O-β-D-xylopyranoside,27 except for a double bond at C-7 and C-8, and a hydroxy group at C-11. The 1H–1H COSY coupling of H-6 and the olefinic proton at δH 5.21, and the HMBC correlation of H-11 (δH 4.60) and C-9, as well as the molecule weight further confirmed these elucidations. Therefore, the structure of 9 was determined as 11β-hydroxy-7(8)-en-foetidonol-3-O-α-L-arabinopyranoside.
The HREIMS of 10 exhibited a molecular ion at m/z 488.3508 [M]+ (calcd 488.3502) for the molecular formula of C30H48NO5. The 1D NMR spectroscopic data (Table 1) of 10 showed seven tertiary methyl groups at δH 0.92–1.52, and a secondary methyl signal at δH 0.91 (d, J = 6.9 Hz). These data indicated that 10 possessed one more tertiary methyl group in the skeleton than a usual CTs. In 13C NMR spectrum, a pair of tetrasubstituted olefinic carbons at δC 134.9 (C-8, s) and 136.0 (C-9, s), and the characteristic ketal signal for C-16 of cimigenol-type CTs at δC 112.7 (s) were observed. HMBC associations of H-7/C-8 (δC 134.9, s), H-11/C-9 (δC 136.0, s), H-1/CH3-19 (δC 19.6, q), and CH3-19/C-9 and C-10, located the double bond at C-8 and C-9, and the CH3-19 at C-10, respectively. The rest of NMR resonances of 10 were identical to those of cimigenol.28 Therefore, the structure of 10 was determined as 19β-methyl-8(9)-en-cimigenol.
Compound 11 gave a pseudo-molecular ion at m/z 657.3613 [M + Na]+ (calcd 657.3615) in the positive ion HRTOF-ESIMS, corresponding to the molecular formula C35H54NaO10, which is 2 Da less than that of 15,16-seco-14-formyl-16-oxo-hydroshengmanol-3-O-α-L-arabinopyranoside.14 When its spectroscopic data (Table 1 and 2) were compared with 15,16-seco-14-formyl-16-oxo-hydroshengmanol-3-O-α-L-arabinopyranoside, the resonances of a methylene and a methine were absent in 11, showing instead a pair of double bond at C-7 and C-8. The 1H–1H COSY coupling of H-6 and the olefinic proton at δH 5.25 further supported this deduction. Therefore, the structure of 11 was determined as 15,16-seco-14-formyl-16-oxo-7(8)-en-hydroshengmanol-3-O-α-L-arabinopyranoside.
Compound 12 was assigned a molecular formula C37H54O10 from its HREIMS at m/z 658.3707 [M]+ (calcd 658.3717). The spectroscopic features of 12 resembled to those of 15,23-O-diacetyl-7(8)-en-shengmanol-3-O-α-L-arabinopyranoside29 except for the substituent group at C-23. For 12, the oxygenated methine of C-23 (δC 72.3, d) was absent, showing instead a carbonyl carbon at δC 205.5. This difference was due to a carbonyl group at C-23 in 12, which confirmed by the HMBC correlations of H-22 and H-24 with carbonyl signal at δC 205.5. The sugar unit and the relative configuration of 12 were elucidated by the same ways as those of aforementioned compounds. Therefore, the structure of 12 was determined as 15α-acetoxy-23-oxo-7(8)-en-cimicidanol-3-O-α-L-arabinopyranoside.
Natural products (NPs) are important resources of active molecules for modern drug development.33 Previously, two undescribed CTs (YG and HC) from C. foetida, with notable inhibitions on CD147 and MMPs mRNA expression, were identified. Successive investigations on the aerial parts of C. yunnanensis led to characterize eleven new CTs, including nine glycosides (1–6, 9, and 11–12) and two aglycones (7 and 8), along with one undescribed lanostane-type triterpene (10). Compounds 7 and 8, two aglycones, showed noticeable inhibitory effects on the mRNA expression of CD147 and MMPs, as well as migration ability of the induced THP-1 cells. By contrast, all tested glycosides were inactive. It is worth noting that 7 is the most potent molecule among these four active CTs. Given the critical roles of CD147 and MMPs in stabilizing atherosclerotic plaques, 7 may have a promising effect in retarding the development of the vulnerability of the plaque, deserve to conduct more sophisticated animal studies in future.
In summary, our studies show that CTs, specially aglycones, are potential resources of anti-atherosclerosis bioactive agents and deserve further extensive exploration.
After reverse transcription, cDNA was used to carry out real-time quantitative RT-PCR on ProFlex™ PCR system by SYBR Premix Ex Taq (Takara). The final volume of TR-PCR reaction is 25 μL, containing 12.5 μL SYBR green master mix, 1 μL cDNA, 0.5 μL each forward and reverse primer, and 10.5 μL nuclease-free water. For information of primers see Table S1.† Thermal cycling conditions for all genes were as follows: template pre-denaturation (10 min at 95 °C), denaturation (15 seconds at 95 °C), annealing and extension (30 seconds at 60 °C) for 40 cycles. Internal reference is GAPDH mRNA, and fold changes of mRNA expression for each target relative to GAPDH were calculated by the 2−ΔΔCt method. Expression of mRNA is determined as the change in mRNA copy numbers relative to negative control cells (undifferentiated THP-1 cells). All the experiments were carried out in triplicate.
CD147 | Extracellular matrix metalloproteinase inducer, EMMPRIN |
MMP-2 | Matrix metalloproteinase 2 |
MMP-9 | Matrix metalloproteinase 9 |
PMA | Phorbol-12-myristate-13-acetate |
q-PCR | Quantitative real-time PCR method |
CVDs | Cardiovascular diseases |
AMI | Acute myocardial infarction |
UA | Unstable angina pectoris |
CTs | 9,19-Cycloartane triterpenes |
YG | Yunnanterpene |
HC | 12β-Hydroxycimiacerol |
NPs | Natural products |
Footnote |
† Electronic supplementary information (ESI) available: HREIMS, HRESIMS, IR, 1D and 2D NMR spectra for compounds 1–12. See DOI: 10.1039/d1ra07828c |
This journal is © The Royal Society of Chemistry 2021 |