School of Biological Engineering, Dalian Polytechnic University, Dalian 116034, China.
School of Food and Biological Engineering, Qiqihar University, Qiqihar 160006, China.
Int J Biol Macromol. 2020 Dec 1;164:986-993. doi: 10.1016/j.ijbiomac.2020.07.164. Epub 2020 Jul 18.
The extensive use of chemical pesticides in agricultural production has caused great damage to the soil and ecological environment. Citral, a monoterpene aldehyde, has been shown to inhibit the growth of a variety of pathogenic fungi by affecting mitochondrial structure. However, the high volatility and chemical instability of citral may restrict its applications in the agricultural industries. In this study, a concise and facile method for the preparation of modified copolymer chitosan/carboxymethyl cellulose (CS/CMC) hydrogels microspheres loaded with citral was developed to increase and stabilize the bioavailability of this natural bioactive substance. Polyelectrolyte composite scaffold hydrogel microspheres were synthesized by polycationic chitosan (CS) and polyanionic carboxymethyl (CMC). Citral was embedded into the microspheres by coupling the carbonyl group of citral with the amino group of CS to form a Schiff base structure. The effects of three parameters including CS/CMC weight ratio, concentration of CMC and citral on the loading ratio were investigated and optimal loading of 68% was achieved based on single-factor experiments. X-ray diffraction (XRD), Fourier transform infrared (FT-IR) spectroscopy and scanning electron microscopy (SEM) were employed to confirm and characterize the structure and surface morphology of the microspheres. Both the XRD and FTIR spectra indicated that the microspheres contain -C=N- covalent bonds between CS and citral. The hydrogel microspheres with incorporated citral exhibited effective and improved in vitro antibacterial effects against E. coli, S. aureus and B. subtilis than non-loaded CS microspheres. Moreover, CS/CMC-citral-MPs showed a good antifungal effect in vivo in reducing disease incidence caused by the plant pathogenic fungus Botrytis cinerea in Solanum lycopersicum. Different from the previous applications of CS and citral in the preservation of picked fruits, citral was embedded into CS/CMC microspheres to achieve improved plant protection against Botrytis cinerea. The microspheres are a promising green antimicrobial agent against plant pathogens in crop protection and other fields.
在农业生产中大量使用化学农药对土壤和生态环境造成了极大的破坏。柠檬醛是一种单萜醛,已被证明通过影响线粒体结构来抑制多种致病真菌的生长。然而,柠檬醛的高挥发性和化学不稳定性可能会限制其在农业领域的应用。在本研究中,开发了一种简便的方法来制备负载柠檬醛的改性共聚壳聚糖/羧甲基纤维素(CS/CMC)水凝胶微球,以增加和稳定这种天然生物活性物质的生物利用度。通过带正电荷的壳聚糖(CS)和带负电荷的羧甲基纤维素(CMC)合成聚电解质复合支架水凝胶微球。通过将柠檬醛的羰基与 CS 的氨基缩合,形成席夫碱结构,将柠檬醛嵌入微球中。考察了 CS/CMC 质量比、CMC 浓度和柠檬醛浓度三个参数对载药量的影响,基于单因素实验得到了最佳载药量为 68%。X 射线衍射(XRD)、傅里叶变换红外(FT-IR)光谱和扫描电子显微镜(SEM)用于证实和表征微球的结构和表面形貌。XRD 和 FTIR 图谱均表明微球中含有 CS 和柠檬醛之间的-C=N-共价键。负载柠檬醛的水凝胶微球对大肠杆菌、金黄色葡萄球菌和枯草芽孢杆菌的体外抗菌效果明显优于未负载 CS 的微球。此外,CS/CMC-柠檬醛-MPs 在体内对植物病原菌灰葡萄孢引起的病害有很好的防治效果,可降低病害发生率。与 CS 和柠檬醛在采后水果保鲜中的应用不同,本研究将柠檬醛嵌入 CS/CMC 微球中,以提高对灰葡萄孢的植物保护作用。该微球有望成为防治作物病原菌的绿色抗菌剂,在作物保护和其他领域具有广阔的应用前景。