Literature DB >> 33811571

Design and synthesis of small molecular 2-aminobenzoxazoles as potential antifungal agents against phytopathogenic fungi.

Lingling Fan1, Zhongfu Luo1, Changfei Yang1, Bing Guo1, Jing Miao1, Yang Chen2, Lei Tang3, Yong Li4.   

Abstract

In order to discover novel antifungal agents, three series of simple 2-aminobenzoxazole derivatives were designed, synthesized and evaluated for their antifungal activities against eight phytopathogenic fungi. The in vitro antifungal results showed that most of the target compounds exhibited excellent and broad-spectrum antifungal activities to all the tested fungi. Particularly, the six compounds 3a, 3b, 3c, 3e, 3m and 3v displayed the most potent antifungal activity, with EC50 value of 1.48-16.6 µg/mL, which were much superior to the positive control hymexazol. The in vivo study further confirmed that compounds 3a, 3c, 3e and 3m displayed good preventative effect against Botrytis cinerea at the concentration of 100 µg/mL. The structure-activity relationships research provides significant reference for the further structural optimization of 2-aminobenzoxazole as potential fungicides. Forty-four 2-aminobenzoxazole derivatives were designed and synthesized as agricultural antifungal agents, the in vitro and in vivo antifungal experiments showed that compounds 3a, 3b, 3c, 3e, 3m and 3v exhibited excellent and broad-spectrum antifungal activities compare with the commercial fungicide hymexazol.
© 2021. The Author(s), under exclusive licence to Springer Nature Switzerland AG.

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Keywords:  2-Aminobenzoxazole derivatives; Antifungal activity; Pathogenic fungi; Structure–activity relationships

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Year:  2021        PMID: 33811571      PMCID: PMC8019306          DOI: 10.1007/s11030-021-10213-7

Source DB:  PubMed          Journal:  Mol Divers        ISSN: 1381-1991            Impact factor:   3.364


Introduction

Phytopathogenic fungi can seriously interrupt the normal growth of crops, fruits and vegetables, which not only lead to serious economic losses of agriculture worldwide, but also some species can produce mycotoxins that are harmful to human and animal health. In the past decades, many fungicides that target different pathogens and diseases have been used to improve agricultural production and ensure food security, but some fungicides have been restricted due to toxic residues, disease resurgence and pathogen resistance [1]. Therefore, it is necessary to develop novel antifungal agents with low toxicity and high efficiency to control agricultural diseases. Benzoxazole, an important class of heterocyclic scaffolds, exhibits broad biological activities in the fields of medicinal and agricultural, including antiproliferative [2], anticancer [3, 4], anti-HIV [5], antimicrobial [6-9], antiviral [10], herbicidal [11] and antifungal activity [12]. As shown in Fig. 1, some reported drugs containing benzoxazole skeleton were listed. For example, benoxaprofen and flunoxaprofen are non-steroidal anti-inflammatory drugs (NSAIDs), reportedly useful in the treatment of rheumatoid arthritis, myositis, synovitis and osteoarthritis [13, 14]. Calcimycin, an antibiotic and divalent cation ionophore, is a structural unique benzoxazole polyether produced by Streptomyces chartreusis NRRL3882 [15]. Oxazosulfyl, a novel benzoxazole insecticide containing ethyl sulfonyl pyridine fragment, was developed by Sumitomo Chemical Co., Ltd. Thus, benzoxazole is a magical and useful chemical group, which is worthy of being studied further.
Fig. 1

Chemical structures of containing benzoxazole skeleton

Chemical structures of containing benzoxazole skeleton To the best of our knowledge, 2-aminobenzoxazole as an important intermediate for the synthesis of antitumor drugs has rarely reported the antifungal activity against plant pathogenic fungi. In continuation of our program aimed at the discovery and development of novel antifungal candidates [16-21], herein we design and synthesize three series of 2-aminobenzoxazole derivatives and evaluated their antifungal activities against eight phytopathogenic fungi.

Results and discussion

Chemistry

As shown in Scheme 1, firstly, 2-nitrophenols were reduced by SnCl2·2H2O to afford 2-aminophenol derivatives (1a–c) [22], which were further cyclized with cyanogen bromide (BrCN) in methanol to give the key intermediates 5-substituted 2-aminobenzoxazoles (2a–d). Then, C-5-alkyl-substituted 2-aminobenzoxazole derivatives (3a–y) were smoothly obtained by Suzuki cross-coupling reaction. Meanwhile, amides (4a–j) and sulfonamides (5a–i) derivatives were conveniently prepared by acylation reaction. The structures of all the target compounds were characterized by M. p., 1H NMR, 13C NMR and HRMS.
Scheme 1

General synthetic rout of target compounds

General synthetic rout of target compounds

Antifungal activity

According to the mycelium linear growth rate method [19], all the target compounds (2a–d, 3a–y, 4a–j and 5a–i) were screened in vitro for their antifungal activities at 50 μg/mL against eight phytopathogenic fungi [e.g., Fusarium sulphureum (FS), Thanatephorus cucumeris (TC), Fusarium oxysporum (FO), Fusarium graminearum (FG), Botrytis cinerea (BC), Valsa mali (VM), Sclerotiua sclerotiorum (SS) and Alternaria solani (AS)]. Hymexazol, a commercial agricultural fungicide, was used as the positive control. As depicted in Table 1, most of the target compounds displayed good-to-excellent inhibitory effects on the growth of the tested phytopathogenic fungi at 50 μg/mL. Generally, these compounds can be divided into three groups according to the average inhibition rates. Compounds 3a–e, 3h, 3m, 3u and 3v showed the highest activity with average inhibition rates of 80.7–97.5%, compounds 2b, 2c, 3f, 3i, 3k, 3p, 3q, 3t, 3x, 4h and 5e exhibited moderate activity with average inhibition rates of 46.1–70.2%, and the other compounds displayed weak activity against the tested fungi. For FS strain, it was worth mentioning that thirty compounds exhibited more pronounced antifungal activity (> 52.2%) than the positive control hymexazol (50.4%); particularly, the inhibition rates of compounds 3a, 3b, 3d, 3e and 3v reached 100% at the concentration of 50 μg/mL. For TC strain, seven compounds 3a, 3b, 3c, 3e, 3h, 3m and 3v showed considerable antifungal activity with inhibition rates over 97.8%, which were much better than that of hymexazol (89.7%). Furthermore, compounds 3a–3f, 3m and 3v were found to exhibit higher antifungal activity against FO and FG strains than hymexazol, and compounds 2b, 2c, 3a–3e, 3h, 3m and 3u possessed significant antifungal activity against BC, SS and AS (53.4–100%) in comparison with hymexazol (42.9–88.6%). To our delight, almost all the target compounds displayed better antifungal activity against VM than hymexazol (10.1%). In general, compounds 3a, 3b, 3c, 3e and 3m presented more promising antifungal activity against a broad spectrum of phytopathogenic fungi than the commercial agricultural fungicide hymexazol.
Table 1

Antifungal activities of the target compounds against phytopathogenic fungi at 50 μg/mL

CompoundsAverage inhibition rate ± SD (%) (n = 3)a
NoRR1FSTCFOFGBCVMSSAS
2aHH45.1 ± 1.35.0 ± 0.337.5 ± 1.128.8 ± 1.511.4 ± 2.341.0 ± 2.434.4 ± 3.120.5 ± 0.8
2bClH57.3 ± 1.487.5 ± 1.042.4 ± 2.357.6 ± 1.791.3 ± 0.166.9 ± 0.891.8 ± 0.146.4 ± 2.3
2cBrH74.8 ± 1.491.9 ± 1.845.1 ± 0.353.4 ± 1.495.6 ± 2.363.1 ± 3.184.3 ± 0.353.4 ± 1.9
2dNO2H24.4 ± 0.57.1 ± 1.116.8 ± 3.85.1 ± 0.421.8 ± 1.115.3 ± 1.213.8 ± 0.92.4 ± 3.4
3aPhH100 ± 0.3100 ± 0.1100 ± 0.570.5 ± 2.7100 ± 0.193.7 ± 1.2100 ± 0.8100 ± 0.2
3b2-FC6H4H100 ± 0.7100 ± 0.298.4 ± 0.783.8 ± 0.4100 ± 0.4100 ± 0.577.6 ± 3.881.0 ± 2.4
3c4-FC6H4H99.8 ± 2.5100 ± 0.1100 ± 2.699.5 ± 0.8100 ± 0.582.8 ± 0.999.8 ± 0.998.4 ± 2.7
3d2-ClC6H4H100 ± 1.263.2 ± 3.589.9 ± 1.362.3 ± 0.997.8 ± 0.195.9 ± 1.571.0 ± 2.4100 ± 0.2
3e3-ClC6H4H100 ± 0.4100 ± 0.396.6 ± 3.186.9 ± 4.3100 ± 0.3100 ± 0.699.5 ± 0.987.3 ± 3.7
3f4-ClC6H4H87.0 ± 2.249.4 ± 4.457.3 ± 0.570.4 ± 2.483.3 ± 1.375.8 ± 1.564.2 ± 1.338.9 ± 0.5
3g2,3-diClC6H3H15.1 ± 1.229.4 ± 2.948.8 ± 2.339.2 ± 3.744.6 ± 1.332.8 ± 2.429.0 ± 3.815.1 ± 3.6
3h3-CF3C6H4H81.0 ± 1.5100 ± 0.469.9 ± 0.743.9 ± 3.587.8 ± 1.390.7 ± 0.991.1 ± 0.981.0 ± 2.4
3i4-OCF3C6H4H85.5 ± 1.514.1 ± 1.152.1 ± 0.970.4 ± 2.838.6 ± 3.973.7 ± 0.836.1 ± 4.334.1 ± 3.6
3j4-OHC6H4H36.5 ± 4.025.9 ± 0.843.4 ± 0.710.8 ± 1.351.1 ± 2.057.1 ± 1.760.1 ± 0.936.5 ± 0.9
3k4-OCH3C6H4H79.7 ± 2.522.4 ± 2.954.7 ± 1.544.6 ± 2.262.1 ± 3.579.0 ± 0.450.3 ± 2.549.2 ± 2.7
3l4-CH3C6H4H20.6 ± 3.516.7 ± 2.73.9 ± 1.33.5 ± 1.852.3 ± 3.121.2 ± 1.532.2 ± 2.520.6 ± 2.7
3m3,5-diCH3C6H3H93.4 ± 0.2100 ± 0.268.1 ± 0.177.3 ± 2.797.7 ± 0.590.2 ± 1.796.5 ± 0.278.3 ± 2.7
3n4-EtC6H4H52.2 ± 2.210.3 ± 2.96.8 ± 3.910.3 ± 1.614.4 ± 3.229.5 ± 0.811.5 ± 2.89.5 ± 4.8
3o4-NH2C6H4H7.1 ± 2.47.9 ± 0.825.2 ± 1.814.0 ± 0.623.1 ± 2.436.1 ± 0.425.7 ± 1.97.1 ± 2.4
3p3-NO2C6H4H76.1 ± 2.286.5 ± 3.852.1 ± 3.432.9 ± 2.276.5 ± 1.349.0 ± 2.366.1 ± 2.589.7 ± 0.6
3q4-CNC6H4H76.1 ± 2.365.4 ± 3.221.8 ± 1.341.8 ± 2.951.5 ± 4.753.5 ± 2.335.0 ± 2.523.8 ± 0.8
3r2-CHOC6H4H10.3 ± 4.09.2 ± 0.451.6 ± 1.821.6 ± 2.733.7 ± 4.041.2 ± 2.948.6 ± 4.110.3 ± 2.7
3s3-CHO-4-FC6H3H59.4 ± 3.310.9 ± 4.017.1 ± 1.96.1 ± 2.928.0 ± 1.321.0 ± 0.425.1 ± 3.44.8 ± 1.8
3t2-F-4-OCH3C6H3H88.4 ± 1.319.2 ± 0.955.6 ± 3.934.3 ± 2.256.8 ± 2.365.9 ± 0.872.1 ± 1.639.7 ± 1.4
3u3-furylH96.0 ± 1.780.8 ± 1.989.6 ± 0.7100 ± 0.4100 ± 0.299.5 ± 0.998.9 ± 1.9100 ± 0.1
3v3-thienylH100 ± 0.297.8 ± 0.594.3 ± 4.746.8 ± 1.080.7 ± 1.387.6 ± 0.960.9 ± 2.9100 ± 0.1
3w3-pyridylH14.3 ± 4.029.8 ± 3.327.1 ± 1.328.7 ± 2.733.0 ± 3.034.8 ± 1.336.1 ± 1.714.3 ± 4.1
3x4-(2-Cl-pyridyl)-H79.7 ± 4.569.2 ± 0.733.3 ± 2.540.4 ± 4.387.1 ± 3.050.0 ± 1.588.0 ± 3.238.1 ± 2.4
3y2-benzothienylH6.3 ± 3.10.9 ± 1.53.1 ± 1.36.4 ± 1.038.6 ± 0.411.6 ± 0.912.0 ± 4.16.3 ± 2.7
4aHCH3OCO20.7 ± 1.509.8 ± 1.5008.1 ± 0.207.3 ± 0.7
4bCln-penylCO1.6 ± 2.811.3 ± 0.23.0 ± 2.34.7 ± 0.819.7 ± 1.56.4 ± 0.35.7 ± 1.229.2 ± 0.2
4cCl2-OEtC6H4CO8.1 ± 1.217.3 ± 0.49.1 ± 1.34.2 ± 1.47.7 ± 2.613.3 ± 0.920.2 ± 1.127.8 ± 2.1
4dCl3-OCF3C6H4CO18.7 ± 1.129.9 ± 0.19.8 ± 1.328.6 ± 0.864.5 ± 3.444.4 ± 0.420.6 ± 3.326.4 ± 2.4
4eClCH3OCO68.3 ± 3.408.2 ± 2.33.8 ± 0.63.8 ± 1.38.9 ± 1.203.7 ± 1.7
4fBrn-penylCO13.8 ± 2.20.8 ± 0.72.3 ± 2.327.3 ± 1.02.1 ± 0.703.5 ± 1.810.6 ± 2.5
4gBr2-OEtC6H4CO43.1 ± 1.65.0 ± 0.44.5 ± 0.225.3 ± 1.64.5 ± 1.45.1 ± 3.22.0 ± 1.812.1 ± 2.6
4hNO24-NO2C6H4CO51.2 ± 0.275.4 ± 3.444.6 ± 1.535.6 ± 1.484.2 ± 0.945.2 ± 4.743.4 ± 1.923.2 ± 2.5
4iNO2CH3CO62.8 ± 1.61.2 ± 1.76.5 ± 1.606.8 ± 2.113.7 ± 1.33.9 ± 1.90
4jNO2PhCH2CO71.3 ± 2.686.5 ± 1.139.1 ± 1.537.8 ± 1.854.1 ± 1.142.7 ± 1.23.9 ± 0.625.6 ± 1.7
5aHPhSO271.5 ± 2.9016.7 ± 2.629.8 ± 2.355.3 ± 3.722.1 ± 0.939.6 ± 1.819.7 ± 0.6
5bH4-OCH3C6H4SO274.0 ± 1.65.0 ± 0.530.3 ± 3.545.5 ± 0.268.2 ± 1.546.7 ± 3.646.9 ± 0.222.7 ± 4.5
5cH3,5-diClC6H3SO251.2 ± 2.55.0 ± 0.316.7 ± 1.323.2 ± 1.775.0 ± 3.913.8 ± 0.853.1 ± 3.47.6 ± 2.5
5dClPhSO226.0 ± 0.95.0 ± 1.36.8 ± 0.10.9 ± 1.356.1 ± 1.28.7 ± 0.942.7 ± 0.99.1 ± 4.5
5eBrn-BtSO267.5 ± 1.620.4 ± 0.747.7 ± 2.337.9 ± 1.686.4 ± 0.525.6 ± 3.972.9 ± 0.924.2 ± 2.6
5fBrPhSO277.2 ± 1.45.0 ± 1.028.0 ± 1.337.9 ± 0.373.5 ± 3.514.4 ± 2.447.9 ± 1.827.3 ± 0.3
5gBr4-CH3C6H4SO220.3 ± 0.717.5 ± 1.318.2 ± 0.36.6 ± 1.471.2 ± 1.320.5 ± 3.977.1 ± 1.625.8 ± 1.4
5hBr4-OCH3C6H4SO268.3 ± 3.733.3 ± 2.539.4 ± 1.326.3 ± 0.368.2 ± 3.917.9 ± 3.965.6 ± 1.131.8 ± 1.7
5iBr3,5-diFC6H3SO212.2 ± 3.74.0 ± 0.213.8 ± 3.56.0 ± 1.363.6 ± 1.713.8 ± 1.153.1 ± 1.413.6 ± 1.7
Hymexazol50.4 ± 1.389.7 ± 0.553.5 ± 0.964.2 ± 1.088.6 ± 0.110.1 ± 1.570.2 ± 1.342.9 ± 0.6

aValues are the mean ± SE of three replicates

Antifungal activities of the target compounds against phytopathogenic fungi at 50 μg/mL aValues are the mean ± SE of three replicates Moreover, some interesting results of structure–activity relationships (SARs) were found as follows (Fig. 2): (1) Introduction of chlorine and bromine atoms is very beneficial to enhance the antifungal activity (2b and 2c vs. 2a and 2d). (2) Amino group is very essential for the antifungal activity, acylation and sulfonylation which can obviously decrease the activity against some tested fungi. (3) Compared with the intermediate compound 2c, selection of suitable aryl groups replacing bromine atom can significantly improve the antifungal effects, such as the inhibition rates of compounds 3a (Ph), 3b (2-FC6H4), 3c (4-FC6H4), 3d (2-ClC6H4), 3e (3-ClC6H4), 3m (3,5-diCH3C6H3), 3u (3-furyl) and 3v (3-thienyl) against most of strains were over 90%. (4) It is noteworthy that introduction of electron-withdrawing groups (such as F, Cl, CF3, NO2 and CN) at the 5-position on phenyl ring of compound 3a could result in more potent compounds than electron-donating groups (such as OH, CH3, Et, NH2) excepted for compounds 3g and 3m (3b–3f, 3h, 3p and 3q vs. 3j, 3l, 3n and 3o). (5) The number and position of chlorine atom also have some influence on the antifungal activity. For instance, mono-chloro compounds (3d, 3e and 3f) exhibited much better antifungal activity than the corresponding bis-chloro compound (3g), and the effect of chlorine atom position on antifungal activity was meta-(3e) > ortho-(3d) > para-(3f). (6) The target compounds bearing furan (3u) and thiophene (3v) ring at the 5-position of compound 2a displayed better inhibition effects than those bearing a pyridine (3w), 2-chloropyridine (3x) and benzothiophene ring (3y). The aforementioned result demonstrates that the antifungal effect can be dramatically influenced by the substituents group on the NH2 and 5-position of 2-aminobenzoxazole.
Fig. 2

Structure–activity relationship of the target compounds

Structure–activity relationship of the target compounds To further evaluate the inhibitory of the most promising synthesized compounds, the median effective concentrations (EC50) values of compounds 3a–e, 3h, 3m, 3u and 3v against eight phytopathogenic fungi were tested. As shown in Table 2, it was noticed that the nine compounds exhibited impressive antifungal effects against FS, FO, VM, SS and AS, which were better than that of hymexazol. For example, compounds 3a, 3b and 3m exhibited the best anti-FS effects in vitro, with the EC50 values as low as 3.96 μg/mL, 4.47 μg/mL and 4.10 μg/mL, respectively; compounds 3a–e, 3m and 3v exhibited 5.1–12.6 folds more potent activities than hymexazol against FO strain; five compounds 3a, 3c, 3e, 3h and 3m exhibited remarkable antifungal activity against SS strains in vitro, with the corresponding EC50 values of 6.50 μg/mL, 2.82 μg/mL, 1.48 μg/mL, 5.00 μg/mL and 3.82 μg/mL, much superior to hymexazol (25.12 μg/mL). Furthermore, all the target compounds (except 3d and 3u) possessed higher antifungal effects than hymexazol against TC and BC strains. Regarding FG strains, compounds 3a (EC50 = 9.68 μg/mL) and 3b (EC50 = 6.91 μg/mL) are identified with excellent antifungal competence, compounds 3m, 3u, 3v, 3c and 3e displayed moderate activity (EC50 = 12.16–16.60 μg/mL), and compound 3d with the EC50 value of 27.8 μg/mL, which was comparable with that of hymexazol (32.36 μg/mL). This result suggested that the tested fungal displayed high susceptibility to the nine compounds. Meanwhile, the effects of compound 3d on the growth of FS and FO strains at different concentrations are shown in Fig. 3. It’s obviously that the antifungal efficiency significantly depended on the drug concentrations.
Table 2

EC50 values of some selected compounds against eight phytopathogenic fungi

CompoundsEC50 ± SD values (μg/mL)a
FSTCFOFGBCVMSSAS
3a3.96 ± 0.25.08 ± 0.24.36 ± 0.49.68 ± 1.12.40 ± 0.55.56 ± 0.26.50 ± 0.73.50 ± 0.2
3b4.47 ± 0.19.07 ± 1.23.35 ± 0.56.91 ± 0.95.18 ± 0.87.07 ± 0.315.95 ± 0.55.60 ± 0.1
3c10.69 ± 0.36.49 ± 0.53.13 ± 0.212.16 ± 2.11.81 ± 0.23.97 ± 0.12.82 ± 0.24.43 ± 0.3
3d5.60 ± 0.127.23 ± 0.47.40 ± 0.827.8 ± 1.96.91 ± 0.35.75 ± 1.113.20 ± 1.16.15 ± 0.6
3e5.77 ± 0.210.60 ± 0.77.67 ± 0.216.60 ± 1.41.69 ± 0.84.19 ± 0.21.48 ± 0.36.10 ± 0.9
3h12.65 ± 0.44.69 ± 0.515.27 ± 1.0 > 505.17 ± 0.74.99 ± 0.15.00 ± 1.011.22 ± 1.2
3m4.10 ± 0.32.23 ± 0.37.41 ± 0.114.02 ± 0.21.89 ± 1.45.95 ± 0.23.82 ± 0.712.02 ± 1.3
3u7.83 ± 0.119.95 ± 1.428.10 ± 0.713.18 ± 2.16.42 ± 0.56.98 ± 0.215.82 ± 0.64.71 ± 0.6
3v5.60 ± 0.111.10 ± 1.17.41 ± 0.314.09 ± 0.43.85 ± 0.14.78 ± 1.213.81 ± 0.54.10 ± 0.2
Hymexazol43.8 ± 0.617.78 ± 2.139.40 ± 1.132.36 ± 2.06.30 ± 0.2 > 5025.12 ± 0.548.98 ± 2.1

a50% Effective concentration: concentration of compound that inhibits the fungi growth

Fig. 3

Effects of compound 3d on the growth of FS and FO at different concentrations (CK: blank control group)

EC50 values of some selected compounds against eight phytopathogenic fungi a50% Effective concentration: concentration of compound that inhibits the fungi growth Effects of compound 3d on the growth of FS and FO at different concentrations (CK: blank control group) The morphological changing of Fusarium solani (FS) and Alternaria solani (AS) was then viewed under the light microscope. From Fig. 4, it can be seen that the FS control group mycelium had an eel shape, smooth surface, uniform size and much-branched, but the compound 3a treatment group mycelium appeared invagination, shriveling and few-branched (FS-CK vs. FS-3a). Meanwhile, the AS mycelium of treatment with compound 3a could produce more less oval-shaped spores than that of control group (AS-CK vs. AS-3a). This phenomenon indicated that these compounds might exert antifungal effect by significantly inhibiting the growth and differentiation of fungal.
Fig. 4

The effects of compound 3a on the growth of FS and AS at 25 μg/mL (FS-CK and AS-CK represented the normal mycelium morphology of FS and AS, and FS-3a and AS-3a represented the mycelium morphology of FS and AS after treatment with compound 3a)

The effects of compound 3a on the growth of FS and AS at 25 μg/mL (FS-CK and AS-CK represented the normal mycelium morphology of FS and AS, and FS-3a and AS-3a represented the mycelium morphology of FS and AS after treatment with compound 3a) Finally, the in vivo antifungal effects of the promising compounds were conducted against Botrytis cinerea on tomato at 100 μg/mL. As shown in Fig. 5, compounds 3a, 3c, 3e and 3m exhibited much better preventative effect than hymexazol (23.1%), with the corresponding preventative rates of 46.7%, 48.3%, 55.1% and 53.3%. The results verified that 2-aminobenzoxazole derivatives could be used as a lead compounds for the discovery of novel agrichemicals.
Fig. 5

In vivo antifungal activity of compounds against Botrytis cinerea

In vivo antifungal activity of compounds against Botrytis cinerea

Molecular docking studies

Studies in the literature have reported that lipid transfer protein Sec14p (Saccharomyces cerevisiae) might be a potential target of inducing fungicidal activity by benzoxazole derivatives [12]. In an effort to elucidate the hypothesis that our compounds acted on sec14p, molecular docking of compounds 3a, 3b, 3d, 3h, 3m and 3u into the homology model according to the binding site of benzoxazoles on reported lipid binding pocket of Sec14p was performed, respectively. As shown in Fig. 6, the six-test compounds shared very similar binding modes with the literature reported. Benzoxazole ring was oriented pi-pi stacked interaction with Tyr 151 and pi-alkyl interaction with Arg208. The substituted phenyl ring made pi-pi stacked, pi-donor hydrogen bond and pi-alkyl interactions with Phe212 and Thr175 and Met209, respectively. This result suggested that the tested compounds were compatible with the active site of sec14p.
Fig. 6

The binding models of the test compounds into the lipid binding pocket of Sec14p from S. cerevisiae. a Overlay of the six test compounds into the active site of Sec14p: 3a (gray), 3b (blue), 3d (orange), 3h (light blue), 3m (peach) and 3u (yellow)

The binding models of the test compounds into the lipid binding pocket of Sec14p from S. cerevisiae. a Overlay of the six test compounds into the active site of Sec14p: 3a (gray), 3b (blue), 3d (orange), 3h (light blue), 3m (peach) and 3u (yellow)

Conclusion

In summary, three series of simple 2-aminobenzoxazole derivatives were synthesized and firstly evaluated for their antifungal activities. To our delight, most of the target compounds demonstrated moderate-to-excellent antifungal activities in vitro; particularly, compounds 3a, 3b, 3c, 3e, 3m and 3v presented more promising and comprehensive antifungal capacity against the corresponding phytopathogenic fungi than the commercialized fungicide hymexazol, with the EC50 values of 2.40–9.68 μg/mL, 3.35–15.95 μg/mL, 1.81–10.69 μg/mL, 1.48–16.6 μg/mL, 1.89–14.02 μg/mL and 3.85–14.09 μg/mL, respectively. Moreover, the in vivo experiments against Botrytis cinerea on tomato bioassay also demonstrated that compounds 3a, 3c, 3e and 3m had much better preventative effect than that of hymexazol. Thus, these compounds can be used as potential agricultural fungicides to protect many crops, vegetable and fruit. In addition, the SARs demonstrated that introduction of appropriate substituents on the 5-position of 2-aminobenzoxazole would lead to more potent derivatives. This study will lay a significant foundation for further preparation and application of 2-aminobenzoxazole derivatives as potential small molecular agrochemicals.

Experimental

All reagents and solvents were of reagent grade or purified according to standard methods before use. Thin-layer chromatography (TLC) and preparative thin-layer chromatography (PTLC) were used with silica gel 60 GF254 (Qingdao Haiyang Chemical Co., Ltd., China). Melting points were determined by XY-4 melting point meter (Beijing Taike Instrument Co., Ltd., China). Proton nuclear magnetic resonance spectra (1H NMR) and carbon-13 nuclear magnetic resonance spectra (13C NMR) were recorded on Bruker Avance NEO 600/400 MHz and 150/100 MHz instruments, respectively, using TMS as the internal standard and CDCl3 or DMSO-d6 as the solvent. High-resolution mass spectra (HR-MS) were carried out with APEX II Bruker 4.7TAS instrument.

Synthesis of compounds 1a–c [22]

A solution of Stannous chloride dihydrate (SnCl2·2H2O, 40 g, 177.3 mmol) and HCl (80 mL) in methanol (150 mL) was cooled to 0 °C, and 2-nitrophenol derivatives (36.7 mmoL) was added. The mixture was stirred for 4.5 h at room temperature. Afterwards, the solution was diluted with ethyl acetate (30 mL) and neutralized with NaHCO3 solution (to PH = 7). Subsequently, the solution was filtered to remove the white solid precipitated, then the organic phase was separated, and the water phase was extracted with ethyl acetate (50 mL × 3). Finally, the resulting organic phases was washed with brine, dried over anhydrous Na2SO4 and evaporated under reduced pressure. The crude material was then purified by silica gel column chromatography to give the compounds 1a–c in 85–90% yield as a white or fawn solid. 1a: ESI–MS (m/z): 110.05 (M + H)+; 1b: ESI–MS (m/z): 144.02 (M + H)+; 1c: ESI–MS (m/z): 187.94 (M + H)+.

Synthesis of compounds 2a–d

Cyanogen bromide (35.9 mmol) was added to a solution of 2-aminophenol derivatives (26.5 mmol) in 25 mL methanol, and the mixture was reacted for 6 h at the 35 °C. Subsequently, the organic solvent was removed and the resulting residue was diluted with cold water, and the pH was adjusted to 8–9 with aqueous NaHCO3 and then extracted with EtOAc (3 × 50 mL). Finally, the resulting organic phases were washed with brine (30 mL), dried over anhydrous Na2SO4 and evaporated under reduced pressure. The crude material was then purified by silica gel column chromatography to give the compound 2a–d.

2-Aminobenzoxazole (2a)

Yield: 88.0%; brown solid; m.p. 121–122 °C; 1H NMR (400 MHz, DMSO-d6) δ: 9.56 (s, 2H), 7.36 (d, 2H, J = 8.0 Hz), 7.16 (t, 2H, J = 8.0 Hz). ESI–MS (m/z): 135.05 (M + H)+.

2-Amino-5-chlorobenzoxazole (2b)

Yield: 85.2%; white solid; m.p. 159–161 °C; 1H NMR (400 MHz, DMSO-d6) δ: 7.61 (s, 2H), 7.34 (d, 1H, J = 8.4 Hz), 7.23 (d, 1H, J = 2.2 Hz), 6.97 (dd, 1H, J = 8.4, 2.2 Hz). ESI–MS (m/z): 169.01 (M + H)+.

2-Amino-5-bromobenzoxazole (2c)

Yield: 75.3%; brown solid; m.p. 175–177 °C; 1H NMR (400 MHz, DMSO-d6) δ: 7.59 (s, 1H), 7.34 (s, 1H), 7.29 (d, 1H, J = 7.6 Hz), 7.10 (d, 1H, J = 7.6 Hz); ESI–MS (m/z): 212.90 (M + H)+.

5-Nitrobenao[d]oxazol-2-amine (2d)

Yield: 89.3%; yellow solid; m.p. 275–277 °C; 1H NMR (400 MHz, DMSO-d6) δ: 8.02 (s, 2H), 7.92 (m, 2H), 7.53 (d, 1H, J = 8.4 Hz); ESI–MS (m/z): 180.02 (M + H)+.

The general procedures for synthesis of compounds 3a–y

In a 25-mL round-bottom flask containing dioxane/H2O (V:V = 5:1) (3 mL), K2CO3 (110 mg, 0.752 mmol), 2-amino-5-bromobenzoxazole (2c, 83 mg, 0.376 mmol), substituted boronic acid (0.41 mmol) and Pd(PPh3)4 (14 mg, 0.01 mmol) were added and reacted at 80 °C under N2. When the reaction was complete (TLC control), the organic solvent was removed. The crude material was then purified by silica gel column chromatography to give desired products 3a–y. The data of compounds 3a–y can be found in the Supporting information.

The general procedures for synthesis of compounds 4a–j and 5a–i

In a 25-mL round-bottom flask containing pyridine (1 mL), 2-aminobenzoxazole derivatives (0.5 mmol) and substituted acyl chloride/sulfonyl chloride (0.55 mmol) were added and reacted at 20 °C (4a and 4e) or 115 °C under N2. The reaction progress was checked by TLC analysis. When the reaction was complete, the mixture was poured into the water and adjusted to the pH = 3–4 by 6 N HCl. Then, the mixture was extracted with EtOAc (3 × 20 mL), and the combined organic phase was dried over anhydrous sodium sulfate (Na2SO4), concentrated in vacuo and purified by silica gel column chromatography to afford compounds 4a–j and 5a–i. The data of compounds 4a–j and 5a–i can be found in the Supporting information.

Antifungal assay

Antifungal activities assay in vitro: three series of benzoxazole derivatives were screened in vitro for their antifungal activities against eight phytopathogenic fungi by the mycelial growth inhibitory rate method according to previously reported approaches [19]. Eight phytopathogenic fungi such as Fusarium sulphureum (FS), Thanatephorus cucumeris (TC), Fusarium oxysporum (FO), Fusarium graminearum (FG), Botrytis cinerea (BC), Valsa mali (VM), Alternaria alternata (AA) and Alternaria solani (AS) were used for the assays. Potato dextrose agar (PDA) medium was prepared in the flasks and sterilized. All target compounds were dissolved in acetone before mixing with PDA, and the concentration of test compounds in the medium was fixed at 50 μg/mL. Subsequently, 50% effective concentration (EC50) values of some selected compounds were further calculated. The medium was then poured into sterilized Petri dishes. All types of fungi were incubated in PDA at 28 ± 1 °C for 5 days to get new mycelium for the antifungal assays, and a mycelia disk of approximately 4 mm diameter cut from culture medium was picked up with a sterilized inoculation needle and inoculated in the center of the PDA Petri dishes. The inoculated Petri dishes were incubated at 28 ± 1 °C for 4 days. Acetone without any compounds mixed with PDA was served as a control, while hymexazol, a commercial agricultural fungicide, was used as positive controls. For each treatment, three replicates were conducted. The radial growths of the fungal colonies were measured, and the data were statistically analyzed. The inhibitory effects of the test compounds on these fungi in vitro were calculated by the formula: Inhibition rate (%) = (C − T) × 100/(C − 4 mm), where C represents the diameter of fungi growth on untreated PDA, and T represents the diameter of fungi on treated PDA. Finally, the linear regressions of inhibition rates (%) versus seven concentrations of some selected compounds and hymexazol were obtained, and the EC50 values were calculated. The therapeutic effect of the test compounds on B. cinerea in vivo was calculated by the formula: Therapeutic effect (%) = (C − T) × 100/(C − 4 mm), where C represents the diameter of B. cinerea growth on CK, and T represents the diameter of B. cinerea on treated group [23]. Statistical analysis was processed by the SPSS 21.0 (SPSS Inc., Chicago, USA) software. The crystal structure the lipid transfer protein sec14p from Saccharomyces cerevisiae was provided from the Brookhaven protein data bank (PDB 6F0E; http://www.rcsb.org/pdb). Docking studies were performed by using SYBYL-X 2.0 software. Geometric and energy optimization of these compounds was conducted with Gasteiger–Huckel charges in the Tripos force field and an energy convergence gradient of 0.005 kcal/mol and a maximum of 10,000 iterations. The receptor–ligand interactions on 2D diagram was calculated by using Discovery Studio visualizer v21.1. The analysis of docking poses was carried out by molecular graphics system PYMOL v2.2.1 (DeLano Scientific LLC, USA).

Supporting Information

Spectral images of 1H-NMR, 13C-NMR and HRMS are provided in the Supporting Information Section. Below is the link to the electronic supplementary material. Supplementary file 1 (DOCX 22212 KB)
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