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Species-specific antimicrobial activity of essential oils and enhancement by encapsulation in mesoporous silica nanoparticles

机译:介孔二氧化硅纳米颗粒中的封装含有精油的特异性抗微生物活性和增强

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摘要

Essential oils are volatile plant compounds that are biologically active and play an important role in natural plant protection. There are currently 3000 essential oils known, of which over 300 are commercially important for a variety of industries. In fact, the essential oil global market has been estimated to reach 13.94 billion USD with a demand of over 370,000 tons by 2024. These compounds have a wide variety of applications in agriculture, food and beverage, cosmetics, medicine, amongst other industries. A promising application of essential oils is as antimicrobials to target the vast number of diseases affecting crops. However, their volatile nature limits their effective use as free agents. To overcome this, we have investigated the use of mesoporous silica nanoparticles to protect essential oils from evaporation and degradation and to enhance their antimicrobial activity against bacterial phytopathogens. Silica nanoparticles were used due to their potential to be produced at an industrial scale and their biocompatibility. As a proof of concept, we evaluated 41 essential oils against bacterial phytopathogen Pseudomonas syringae pv. pisi, causative agent of pea bacterial blight. Additionally, we compared the effect of such essential oils against Pectobacterium carotovorum subsp. carotovorum and Pseudomonas fluorescens. Two of the most effective antimicrobials, cinnamon (Cinnamomum zeylanicum) and mustard (Brassica nigra) oils, were able to inhibit bacterial growth after 24 h at a concentration as low as 0.016% (v/v). Besides efficacy, the species-specificity of essential oils was demonstrated with & 67% of oils tested displaying specificity towards pathogenic P. syringae pv. pisi over non-pathogenic Pseudomonas fluorescens. Furthermore, the encapsulation of essential oils into mesoporous silica nanoparticles (MSNPs) as a means of extending and improving their antimicrobial effect was found to enable a 10-fold increase in potency compared to the free essential oil. Cinnamaldehyde immobilised onto MSNPs proved to be the most effective antimicrobial, eliminating & 99.8%, & 99.9%, and & 95% bacterial growth of P. fluorescens, P. syringae pv. pisi and P. carotovorum subsp. carotovorum, respectively. This system has the potential to be used to treat and prevent bacterial infections in crops and to enable a more controlled and effective exploitation of volatile compounds as antimicrobials.
机译:精油是挥发性植物化合物,其在生物学上活跃,并在天然植物保护中发挥重要作用。目前已知3000种精油,其中300多于各种行业是商业上重要的。事实上,估计精油全球市场达到了139.4亿美元,需求超过370,000吨,2024年。这些化合物在农业,食品和饮料,化妆品,医学,医学中有各种各样的应用。有希望的精油应用是靶向影响作物的大量疾病的抗微生物剂。然而,它们的挥发性性质限制了它们作为游离药剂的有效用途。为了克服这一点,我们研究了使用介孔二氧化硅纳米颗粒以保护精油免受蒸发和降解,并增强其对细菌植物病变的抗微生物活性。使用硅酰纳米粒子由于它们的潜力以工业规模和生物相容性产生。作为概念证明,我们评估了41个对细菌植物病原体假单胞菌的精油Syringae PV。 PISI,豌豆细菌枯萎病的致病剂。此外,我们将这种精油与Carotovorum Subsp凋亡的影响进行了比较。 Carotovorum和假单胞菌荧光。两种最有效的抗微生物剂,肉桂(肉桂瘤)和芥末(Brassica nigra)油,能够在24小时后抑制细菌生长,低至0.016%(v / v)。除了功效外,&amp的精油物种特异性还具有& 67%的油测试朝向致病性P.Syringae PV显示特异性。 PISI在非致病假单胞菌上荧光。此外,发现,作为延伸和改善其抗微生物效果的介孔二氧化硅纳米粒子(MSNP)的封装将精油封装成延伸和改善其抗微生物效果。与游离精油相比,效力增加10倍。将肉桂醛固定在MSNP上被证明是最有效的抗微生物,消除& 99.8%,& 99.9%,和& 95%P.荧光的细菌生长,P.Syringae PV。 PISI和P.Carotovorum子公司。 Carotovorum分别。该系统具有用于治疗和预防作物中的细菌感染的可能性,并使得能够更加控制和有效地利用挥发性化合物作为抗微生物。

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