Interdisciplinary Centre of Modern Technologies, Nicolaus Copernicus University in Toruń, 4 Wileńska St., 87-100 Toruń, Poland.
Department of Environmental Chemistry and Bioanalytics, Faculty of Chemistry, Nicolaus Copernicus University in Toruń, 7 Gagarina St., 87-100 Toruń, Poland.
Int J Mol Sci. 2021 Apr 29;22(9):4696. doi: 10.3390/ijms22094696.
Considering the advent of antibiotic resistance, the study of bacterial metabolic behavior stimulated by novel antimicrobial agents becomes a relevant tool to elucidate involved adaptive pathways. Profiling of volatile metabolites was performed to monitor alterations of bacterial metabolism induced by biosynthesized silver nanoparticles (bio-AgNPs). , , and were isolated from pressure ulcers, and their cultures were prepared in the presence/absence of bio-AgNPs at 12.5, 25 and 50 µg mL. Headspace solid phase microextraction associated to gas chromatography-mass spectrometry was the employed analytical platform. At the lower concentration level, the agent promoted positive modulation of products of fermentation routes and bioactive volatiles, indicating an attempt of bacteria to adapt to an ongoing suppression of cellular respiration. Augmented response of aldehydes and other possible products of lipid oxidative cleavage was noticed for increasing levels of bio-AgNPs. The greatest concentration of agent caused a reduction of 44 to 80% in the variety of compounds found in the control samples. Pathway analysis indicated overall inhibition of amino acids and fatty acids routes. The present assessment may provide a deeper understanding of molecular mechanisms of bio-AgNPs and how the metabolic response of bacteria is untangled.
考虑到抗生素耐药性的出现,研究新型抗菌剂刺激的细菌代谢行为成为阐明相关适应途径的相关工具。本研究采用挥发性代谢产物分析来监测生物合成银纳米粒子(bio-AgNPs)诱导的细菌代谢变化。从压疮中分离出 、 、 和 ,并在 presence/absence 下于 12.5、25 和 50 µg mL 浓度下培养生物合成银纳米粒子。采用顶空固相微萃取与气相色谱-质谱联用作为分析平台。在较低浓度水平下,该试剂促进了发酵途径和生物活性挥发物产物的正向调节,表明细菌试图适应持续抑制细胞呼吸。随着生物合成银纳米粒子浓度的增加,注意到醛和其他可能的脂质氧化裂解产物的增强反应。最大浓度的试剂导致对照样品中发现的化合物种类减少了 44%至 80%。途径分析表明氨基酸和脂肪酸途径受到全面抑制。本评估可能提供对生物银纳米粒子的分子机制以及细菌代谢反应如何变得复杂的更深入理解。