Soberón José R, Sgariglia Melina A, Dip Maderuelo María R, Andina María L, Sampietro Diego A, Vattuone Marta A
Laboratorio de Biología de Agentes Bioactivos y Fitopatógenos (LABIFITO), Facultad de Bioquímica, Química y Farmacia, Universidad Nacional de Tucumán, Ayacucho 471, T4000INI San Miguel de Tucumán, Tucumán, Argentina; Universidad Nacional de Tucumán, Ayacucho 491, T4000INI San Miguel de Tucumán, Tucumán, Argentina; Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Av. Rivadavia 1917, C1033AAJ Ciudad Autónoma de Buenos Aires, Argentina.
Laboratorio de Biología de Agentes Bioactivos y Fitopatógenos (LABIFITO), Facultad de Bioquímica, Química y Farmacia, Universidad Nacional de Tucumán, Ayacucho 471, T4000INI San Miguel de Tucumán, Tucumán, Argentina; Universidad Nacional de Tucumán, Ayacucho 491, T4000INI San Miguel de Tucumán, Tucumán, Argentina; Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Av. Rivadavia 1917, C1033AAJ Ciudad Autónoma de Buenos Aires, Argentina.
J Biosci Bioeng. 2014 Nov;118(5):599-605. doi: 10.1016/j.jbiosc.2014.04.018. Epub 2014 Jun 2.
Six plant extracts prepared from Ligaria cuneifolia and Jodina rhombifolia were screened for their potential antimicrobial activities against phytopathogens and clinically standard reference bacterial strains. Bioautography and broth microdilution methods were used to study samples antibacterial activities against 7 bacterial strains. The minimum inhibitory concentrations (MICs) and minimum bactericidal concentrations (MBCs) of samples were attained. An antibacterial activity guided isolation and identification of active compounds was carried out for L. cuneifolia methanolic extract (LCME). Both methanolic and aqueous extracts from L. cuneifolia showed inhibitory activities against phytopathogenic bacteria, with MICs ranging from 2.5 to 156 μg mL(-1) for LCME and 5 mg mL(-1) for the aqueous extract. None of the three J. rhombifolia extracts showed significant antibacterial activities against phytopathogenic strains (MIC > 5 mg mL(-1)), except for the aqueous extracts against Pseudomonas syringae (MIC = 312 μg mL(-1)). Only LCME showed bactericidal activities against phytopathogenic strains (MBCs = 78 μg mL(-1)). The LCME exhibited significant inhibitory activity against reference clinical strains: Escherichia coli (MIC = 156 μg mL(-1)) and Staphylococcus aureus (MIC = 78 μg mL(-1), MBC = 312 μg mL(-1)). LCME active compounds were identified as flavonol mono and diglycosides, and gallic acid. The antibacterial activity of purified compounds was also evaluated. A synergistic effect against S. aureus was found between gallic acid and a quercetin glycoside. Hence, anti-phytopathogenic bacteria potential compounds isolated from L. cuneifolia could be used as an effective source against bacterial diseases in plants.
对从楔叶利加草(Ligaria cuneifolia)和菱形约迪纳草(Jodina rhombifolia)中制备的六种植物提取物进行了筛选,以研究其对植物病原体和临床标准参考细菌菌株的潜在抗菌活性。采用生物自显影法和肉汤微量稀释法研究了样品对7种细菌菌株的抗菌活性。测定了样品的最低抑菌浓度(MIC)和最低杀菌浓度(MBC)。对楔叶利加草甲醇提取物(LCME)进行了抗菌活性导向的活性化合物分离和鉴定。楔叶利加草的甲醇提取物和水提取物均对植物病原菌具有抑制活性,LCME的MIC范围为2.5至156μg mL⁻¹,水提取物的MIC为5mg mL⁻¹。三种菱形约迪纳草提取物中,除水提取物对丁香假单胞菌(Pseudomonas syringae)有抗菌活性(MIC = 312μg mL⁻¹)外,其余对植物病原菌均无显著抗菌活性(MIC > 5mg mL⁻¹)。只有LCME对植物病原菌具有杀菌活性(MBC = 78μg mL⁻¹)。LCME对参考临床菌株表现出显著的抑制活性:大肠杆菌(MIC = 156μg mL⁻¹)和金黄色葡萄球菌(MIC = 78μg mL⁻¹,MBC = 312μg mL⁻¹)。LCME的活性化合物被鉴定为黄酮醇单糖苷和二糖苷以及没食子酸。还评估了纯化化合物的抗菌活性。发现没食子酸和一种槲皮素糖苷对金黄色葡萄球菌有协同作用。因此,从楔叶利加草中分离出的抗植物病原菌潜在化合物可作为防治植物细菌病害的有效来源。