Biophysics Department, Faculty of Science, Cairo University, Giza, Egypt.
Department of laser application in metrology photochemistry and agriculture, National institute of laser Enhanced science NILES Cairo University Egypt, Giza, Egypt.
Electromagn Biol Med. 2023 Jul 3;42(3):99-113. doi: 10.1080/15368378.2023.2208610. Epub 2023 May 8.
is the cause of many infectious and inflammatory diseases and a lot of studies aim to discover alternative ways for infection control and treatment rather than antibiotics. This work attempts to reduce bacterial activity and growth characteristics of using nanoparticles (iron oxide nanoparticles and silver nanoparticles) and extremely low frequency electric fields (ELF-EF). Bacterial suspensions of were used to prepare the samples, which were evenly divided into groups. Control group, 10 groups were exposed to ELF-EF in the frequency range (0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, and 1 Hz), iron oxide NPs treated group, iron oxide NPs exposed to 0.8 Hz treated group, silver NPs treated group and the last group was treated with silver NPs and 0.8 Hz. Antibiotic sensitivity testing, dielectric relaxation, and biofilm development for the living microbe were used to evaluate morphological and molecular alterations. Results showed that combination of nanoparticles with ELF-EF at 0.8 Hz enhanced the bacterial inhibition efficiency, which may be due to structural changes. These were supported by the dielectric measurement results which indicated the differences in the dielectric increment and electrical conductivity for the treated samples compared with control samples. This was also confirmed by biofilm formation measurements obtained. We may conclude that the exposure of bacteria to ELF-EF and NPs affected its cellular activity and structure. This technique is nondestructive, safe and fast and could be considered as a mean to reduce the use of antibiotics.
是许多传染性和炎症性疾病的原因,许多研究旨在寻找替代抗生素的感染控制和治疗方法。本工作试图通过使用纳米粒子(氧化铁纳米粒子和银纳米粒子)和极低频电场(ELF-EF)来降低细菌的活性和生长特性。使用 细菌悬浮液来制备样品,将其均匀分为几组。对照组,10 组暴露在频率范围为(0.1、0.2、0.3、0.4、0.5、0.6、0.7、0.8、0.9 和 1 Hz)的 ELF-EF 下,氧化铁 NPs 处理组,暴露于 0.8 Hz 的氧化铁 NPs 处理组,银 NPs 处理组和最后一组用银 NPs 和 0.8 Hz 处理。抗生素敏感性测试、介电弛豫和活菌生物膜形成用于评估形态和分子变化。结果表明,纳米粒子与 0.8 Hz 的 ELF-EF 结合增强了细菌抑制效率,这可能是由于结构变化所致。介电测量结果支持了这一点,结果表明与对照样品相比,处理样品的介电增量和电导率存在差异。生物膜形成测量也证实了这一点。我们可以得出结论,将 细菌暴露于 ELF-EF 和 NPs 会影响其细胞活性和结构。该技术是非破坏性、安全且快速的,可被视为减少抗生素使用的一种手段。