Department of Bacteriology, Faculty of Medical Sciences, Tarbiat Modares University, Tehran, Iran.
Department of Biostatistics, Faculty of Medical Sciences, Tarbiat Modares University, Tehran, Iran.
BMC Microbiol. 2024 Jul 12;24(1):257. doi: 10.1186/s12866-024-03400-7.
The increase in the resistance of bacterial strains to antibiotics has led to research into the bactericidal potential of non-antibiotic compounds. This study aimed to evaluate in vitro antibacterial/ antibiofilm properties of nisin and selenium encapsulated in thiolated chitosan nanoparticles (N/Se@TCsNPs) against prevalent enteric pathogens including standard isolates of Vibrio (V.) cholerae O1 El Tor ATCC 14,035, Campylobacter (C.) jejuni ATCC 29,428, Salmonella (S.) enterica subsp. enterica ATCC 19,430, Shigella (S.) dysenteriae PTCC 1188, Escherichia (E.) coli O157:H7 ATCC 25,922, Listeria (L.) monocytogenes ATCC 19,115, and Staphylococcus (S.) aureus ATCC 29,733.
The synthesis and comprehensive analysis of N/Se@TCsNPs have been completed. Antibacterial and antibiofilm capabilities of N/Se@TCsNPs were evaluated through broth microdilution and crystal violet assays. Furthermore, the study included examining the cytotoxic effects on Caco-2 cells and exploring the immunomodulatory effects of N/Se@TCsNPs. This included assessing the levels of both pro-inflammatory (IL-6 and TNFα) and anti-inflammatory (IL-10 and TGFβ) cytokines and determining the gene expression of TLR2 and TLR4.
The N/Se@TCsNPs showed an average diameter of 136.26 ± 43.17 nm and a zeta potential of 0.27 ± 0.07 mV. FTIR spectroscopy validated the structural features of N/Se@TCsNPs. Scanning electron microscopy (SEM) images confirmed their spherical shape and uniform distribution. Thermogravimetric Analysis (TGA)/Differential Scanning Calorimetry (DSC) tests demonstrated the thermal stability of N/Se@TCsNPs, showing minimal weight loss of 0.03%±0.06 up to 80 °C. The prepared N/Se@TCsNPs showed a thiol content of 512.66 ± 7.33 µmol/g (p < 0.05), an encapsulation efficiency (EE) of 69.83%±0.04 (p ≤ 0.001), and a drug release rate of 74.32%±3.45 at pH = 7.2 (p ≤ 0.004). The synthesized nanostructure demonstrated potent antibacterial activity against various isolates, with effective concentrations ranging from 1.5 ± 0.08 to 25 ± 4.04 mg/mL. The ability of N/Se@TCsNPs to reduce bacterial adhesion and internalization in Caco-2 cells underscored their antibiofilm properties (p ≤ 0.0001). Immunological studies indicated that treatment with N/Se@TCsNPs led to decreased levels of inflammatory cytokines IL-6 (14.33 ± 2.33 pg/mL) and TNFα (25 ± 0.5 pg/mL) (p ≤ 0.0001), alongside increased levels of anti-inflammatory cytokines IL-10 (46.00 ± 0.57 pg/mL) and TGFβ (42.58 ± 2.10 pg/mL) in infected Caco-2 cells (p ≤ 0.0001). Moreover, N/Se@TCsNPs significantly reduced the expression of TLR2 (0.22 ± 0.09) and TLR4 (0.16 ± 0.05) (p < 0.0001).
In conclusion, N/Se@TCsNPs exhibited significant antibacterial/antibiofilm/anti-attachment/immunomodulatory effectiveness against selected Gram-positive and Gram-negative enteric pathogens. However, additional ex-vivo and in-vivo investigations are needed to fully assess the performance of nanostructured N/Se@TCsNPs.
细菌菌株对抗生素的耐药性增加,促使人们研究非抗生素化合物的杀菌潜力。本研究旨在评估纳他霉素和硒封装在巯基化壳聚糖纳米粒子(N/Se@TCsNPs)中的体外抗菌/抗生物膜特性,针对包括标准霍乱弧菌(V.)霍乱 El Tor ATCC 14,035、空肠弯曲菌(C.)空肠弯曲菌 ATCC 29,428、沙门氏菌(S.)肠亚种。肠内毒素 ATCC 19,430、志贺氏菌(S.)痢疾杆菌 PTCC 1188、大肠杆菌(E.)O157:H7 ATCC 25,922、李斯特菌(L.)单核细胞增生李斯特菌 ATCC 19,115 和金黄色葡萄球菌(S.)金黄色葡萄球菌 ATCC 29,733 等常见肠病原体。
已完成 N/Se@TCsNPs 的合成和综合分析。通过肉汤微量稀释和结晶紫测定评估 N/Se@TCsNPs 的抗菌和抗生物膜能力。此外,该研究还包括检查对 Caco-2 细胞的细胞毒性作用,并探索 N/Se@TCsNPs 的免疫调节作用。这包括评估促炎细胞因子(IL-6 和 TNFα)和抗炎细胞因子(IL-10 和 TGFβ)的水平,并确定 TLR2 和 TLR4 的基因表达。
N/Se@TCsNPs 的平均直径为 136.26±43.17nm,zeta 电位为 0.27±0.07mV。傅里叶变换红外光谱(FTIR)光谱验证了 N/Se@TCsNPs 的结构特征。扫描电子显微镜(SEM)图像证实了它们的球形形状和均匀分布。热重分析(TGA)/差示扫描量热法(DSC)测试表明 N/Se@TCsNPs 的热稳定性,在 80°C 下仅显示最小的 0.03%±0.06 重量损失。制备的 N/Se@TCsNPs 表现出 512.66±7.33μmol/g 的巯基含量(p<0.05)、69.83%±0.04 的包封效率(EE)(p≤0.001)和 74.32%±3.45 的药物释放率在 pH=7.2 时(p≤0.004)。合成的纳米结构对各种分离株表现出强大的抗菌活性,有效浓度范围为 1.5±0.08 至 25±4.04mg/mL。N/Se@TCsNPs 降低 Caco-2 细胞中细菌粘附和内化的能力突出了其抗生物膜特性(p≤0.0001)。免疫学研究表明,用 N/Se@TCsNPs 处理会导致感染的 Caco-2 细胞中促炎细胞因子 IL-6(14.33±2.33pg/mL)和 TNFα(25±0.5pg/mL)水平降低(p≤0.0001),同时抗炎细胞因子 IL-10(46.00±0.57pg/mL)和 TGFβ(42.58±2.10pg/mL)水平升高(p≤0.0001)。此外,N/Se@TCsNPs 显著降低 TLR2(0.22±0.09)和 TLR4(0.16±0.05)的表达(p<0.0001)。
总之,N/Se@TCsNPs 对选定的革兰氏阳性和革兰氏阴性肠病原体表现出显著的抗菌/抗生物膜/抗附着/免疫调节作用。然而,需要进一步的体外和体内研究来全面评估纳米结构 N/Se@TCsNPs 的性能。