| Literature DB >> 36014030 |
Yinan Wang1, Di Yang1, Yuhui Bi1, Zhiguo Yu1,2.
Abstract
Pyricularia oryzae causes rice blast, the major destructive disease in nearly all rice fields. In order to obtain highly active compounds against P. oryzae, four new 20-membered macrolides named venturicidins G-J (1-4) were isolated from the culture broth of Streptomyces sp. SN5452 along with two known ones, venturicidins A (5) and B (6). Their structures were determined by the cumulative analyses of nuclear magnetic resonance (NMR) spectroscopy and high-resolution electrospray ionization mass spectrometry (HRESIMS) data. All isolated compounds were evaluated for their antifungal activity against P. oryzae. Interestingly, these compounds exhibited obvious inhibition to mycelial growth and conidial germination of P. oryzae. Remarkably, the EC50 values of venturicidins A (5), B (6), and I (3) against mycelial growth were 0.11, 0.15 and 0.35 µg/mL, and their EC50 values of conidial germination were 0.27, 0.39 and 1.14 µg/mL, respectively. The analysis of structure-activity relationships (SARs) revealed that the methylated positions might be involved in the antifungal activity of venturicidins. These results indicate that the venturicidins are prospective candidates for novel fungicides that can be applied in controlling rice blast.Entities:
Keywords: Pyricularia oryzae; Streptomyces; antifungal activity; macrolides; venturicidins
Year: 2022 PMID: 36014030 PMCID: PMC9416504 DOI: 10.3390/microorganisms10081612
Source DB: PubMed Journal: Microorganisms ISSN: 2076-2607
1H (600 MHz) NMR Data of Compounds 1–4 in d6-DMSO a.
| Position | ||||
|---|---|---|---|---|
| 1 | 2 | 3 | 4 | |
| 2 α | 2.74, d (15.6) | 2.57, q (7.8) | 2.76, d (16.2) | 2.57, q (7.8) |
| 2 β | 2.51, overlap | 2.56, d (16.2) | ||
| 2-CH3 | 1.12, overlap | 1.13, d (7.2) | ||
| 3-OH | 5.49, s | 4.93, s | 5.50, overlap | 4.93, s |
| 4 α | 2.16, d (17.4) | 2.08, m | 2.18, m | 2.07, m |
| 4 β | 1.92, m | 2.00, m | 1.97, m | 2.03, m |
| 5 | 5.45, m | 5.46, m | 5.45, m | 5.46, m |
| 6-CH3 | 1.41, s | 1.41, s | 1.41, s | 1.41, s |
| 7 | 4.33, brs | 4.30, brs | 4.35, brs | 4.30, brs |
| 8-CH3 | 1.37, s | 1.36, s | 1.37, s | 1.36, s |
| 9 | 5.38, m | 5.24, t (7.2) | 5.50, overlap | 5.41, dd (10.2, 4.2) |
| 10 α | 2.01, m | 2.08, m | 2.11, m | 2.07, m |
| 10 β | 1.92, m | 1.79, m | 1.79, m | 1.79, m |
| 11 α | 1.56, m | 1.27, m | 1.31, m | 1.46, m |
| 11 β | 1.23, m | 1.12, overlap | 1.23, m | 1.22, m |
| 12 α | 1.47, m | 1.56, m | 1.53, m | 1.56, m |
| 12 β | 1.23, m | 1.27, m | 1.44, m | 1.32, m |
| 13 | 3.78, m | 3.89, dd (12.6, 7.2) | 4.02, m | 3.92, m |
| 14 | 5.30, dd (15.6, 8.4) | 5.40, dd (10.2, 4.2) | 5.28 m | 5.25, m |
| 15 | 5.15, dd (15.6, 9.0) | 5.24, t (7.2) | 5.40, m | 5.25, m |
| 16 α | 1.92, m | 2.00, m | 2.04, m | 2.07, m |
| 16 β | 1.97, m | |||
| 16-CH3 | 0.93, d (6.6) | 0.90, overlap | 0.91, d (6.6) | |
| 17 α | 1.29, m | 1.27, m | 1.31, m | 1.22, m |
| 17 β | 0.90, overlap | 0.90, overlap | 0.89, overlap | 0.89, overlap |
| 18 α | 1.47, m | 1.69, m | 1.74, m | 1.70, m |
| 18 β | 1.29, m | |||
| 18-CH3 | 0.77, d (6.6) | 0.82, d (7.2) | 0.77, d (6.6) | |
| 19 | 4.72, m | 4.54, dd (6.6, 4.8) | 4.64, m | 4.54, m |
| 20 | 1.71, m | 1.79, m | 1.69, m | 1.79, m |
| 20-CH3 | 0.80, d (6.6) | 0.79, d (6.6) | 0.81, d (7.2) | 0.79, d (6.6) |
| 21 α | 1.29, m | 1.27, m | 1.23, m | 1.32, m |
| 21 β | 0.98, m | 0.95, m | 0.84, d (7.2) | 0.95, m |
| 22 | 1.56, m | 1.56, m | 1.53, m | 1.56, m |
| 22-CH3 | 0.71, d (6.6) | 0.72, d (6.6) | 0.69, d (6.6) | 0.72, d (6.6) |
| 23 | 3.42, m | 3.40, m | 3.41, m | 3.40, m |
| 23-OH | 4.88, brs | 5.05, brs | 5.04, brs | |
| 24 | 2.62, m | 2.62, m | 2.61, m | 2.62, m |
| 24-CH3 | 0.85, d (6.6) | 0.85, d (7.2) | 0.84, d (7.2) | 0.85, d (7.2) |
| 26 α | 2.51, overlap | 2.53, m | 2.49, m | 2.53, m |
| 26 β | 2.01, m | 2.00, m | 1.97, m | 2.03, m |
| 27 | 0.90, overlap | 0.90, overlap | 0.89, overlap | 0.89, overlap |
| 1′ | 4.41, dd (9.6, 1.8) | 4.47, dd (9.6, 1.8) | 4.58, m | 4.54, m |
| 2′ α | 1.92, m | 1.89, m | 2.04, m | 2.03, m |
| 2′ β | 1.29, m | 1.27, m | 1.31, m | 1.22, m |
| 3′ | 4.47, m | 3.40, m | 4.49, m | 4.47, m |
| 3′-OH | 4.88, brs | |||
| 3′-CONH2 | 6.44, brs | 6.48, brs | ||
| 4′ | 2.68, m | 2.68, m | 2.91, m | 2.91, m |
| 4′-OH | 4.56, brs | |||
| 5′ | 3.01, m | 3.03, m | 3.19, m | 3.14, m |
| 5′-CH3 | 1.10, d (6.0) | 1.12, overlap | 1.15, d (6.0) | 1.15, d (6.0) |
a Assignments were based on COSY, HSQC and gHMBC experiments. NMR: nuclear magnetic resonance); DMSO: dimethyl sulfoxide; COSY: correlation spectroscopy; HSQC. heteronuclear singular quantum correlation); gHMBC: gradient heteronuclear multiple bond correlation.
13C (150 MHz) NMR Data of Compounds 1–4 in d6-DMSO.
| Position | ||||
|---|---|---|---|---|
| 1 | 2 | 3 | 4 | |
| 1 | 171.7, s | 176.0, s | 171.9, s | 176.0, s |
| 2 | 44.0, t | 47.6, d | 43.6, t | 47.6, d |
| 2-CH3 | 13.0, q | 13.0, q | ||
| 3 | 93.5, s | 95.7, s | 93.4, s | 95.7, s |
| 4 | 34.4, t | 32.7, t | 34.6, t | 32.7, t |
| 5 | 117.5, d | 117.5, d | 117.5, d | 117.4, d |
| 6 | 131.7, s | 131.9, s | 131.8, s | 131.9, s |
| 6-CH3 | 18.8, q | 18.9, q | 18.9, q | 18.9, q |
| 7 | 79.2, d | 79.0, d | 79.1, d | 79.0, d |
| 8 | 134.3, s | 133.5, s | 134.0, s | 133.6, s |
| 8-CH3 | 11.1, q | 10.7, q | 10.8, q | 10.7, q |
| 9 | 129.3, d | 129.7, d | 129.1, d | 129.0, d |
| 10 | 26.7, t | 27.2, t | 26.7, t | 27.1, t |
| 11 | 25.3, t | 25.7, t | 24.7, t | 25.7, t |
| 12 | 29.0, t | 33.9, t | 32.9, t | 33.8, t |
| 13 | 81.3, d | 80.0, d | 78.4, d | 80.2, d |
| 14 | 131.8, d | 129.0, d | 131.1, d | 129.6, d |
| 15 | 135.7, d | 138.3, d | 137.4, d | 138.5, d |
| 16 | 37.2, d | 36.4, d | 30.4, t | 36.4, d |
| 16-CH3 | 21.1, q | 21.6, q | 21.6, q | |
| 17 | 32.8, t | 40.4, t | 34.3, t | 40.4, t |
| 18 | 29.0, t | 32.7, d | 33.9, d | 32.7, d |
| 18-CH3 | 16.5, q | 12.6, q | 16.5, q | |
| 19 | 78.3, d | 82.2, d | 80.9, d | 82.2, d |
| 20 | 31.9, d | 31.2, d | 31.5, d | 31.2, d |
| 20-CH3 | 16.0, q | 16.2, q | 15.5, q | 16.2, q |
| 21 | 34.6, t | 35.0, t | 36.8, t | 35.0, t |
| 22 | 31.2, d | 31.3, d | 31.3, d | 31.3, d |
| 22-CH3 | 11.1, q | 11.0, q | 10.9, q | 10.9, q |
| 23 | 76.0, d | 76.3, d | 76.3, d | 76.3, d |
| 24 | 49.0, d | 49.1, d | 48.9, d | 49.1, d |
| 24-CH3 | 13.4, q | 13.4, q | 13.4, q | 13.4, q |
| 25 | 214.4, s | 214.4, s | 214.5, s | 214.4, s |
| 26 | 35.2, t | 35.2, t | 35.3, t | 35.2, t |
| 27 | 7.4, q | 7.4, q | 7.4, q | 7.4, q |
| 1′ | 98.7, d | 97.5, d | 96.7, d | 97.0, d |
| 2′ | 40.0, t | 40.0, t | 37.5, t | 37.5, t |
| 3′ | 70.5, d | 70.5, d | 72.6, d | 72.7, d |
| 3′-CONH2 | 156.4, s | 156.4, s | ||
| 4′ | 76.9, d | 76.9, d | 73.5, d | 73.5, d |
| 5′ | 71.5, d | 71.5, d | 71.7, d | 71.7, d |
| 5′-CH3 | 18.1, q | 18.1, q | 18.0, q | 18.0, q |
Figure 1Structures of compounds 1–6.
Figure 22D NMR correlations of compounds 1–4. 2D NMR: two-dimensional nuclear magnetic resonance.
Half maximal effective concentration (EC50) values of Compounds 1–6 on P. oryzae a.
| Compound | Mycelial Growth Inhibition EC50, µg/mL (±SD) | Conidial Germination Inhibition EC50, µg/mL (±SD) |
|---|---|---|
| venturicidin G, | 1.78 ± 0.09 | 24.95 ± 1.63 |
| venturicidin H, | 1.43 ± 0.02 | 5.55 ± 0.12 |
| venturicidin I, | 0.35 ± 0.03 | 1.14 ± 0.03 |
| venturicidin J, | 1.40 ± 0.09 | 4.49 ± 0.28 |
| venturicidin A, | 0.11 ± 0.00 | 0.27 ± 0.02 |
| venturicidin B, | 0.15 ± 0.01 | 0.39 ± 0.01 |
| Carbendazim b | 0.30 ± 0.01 | 3.99 ± 0.08 |
a Data shown are the mean of three independent experiments and presented as mean ± standard deviation (SD). b Positive control.
Figure 3Effect of venturicidin I, 3, venturicidin A, 5, and venturicidin B, 6 on mycelial growth of P. oryzae.