Lidija Izrael Živković, Nico Hüttmann, Vanessa Susevski, Ana Medić, Vladimir Beškoski, Maxim V Berezovski, Zoran Minić, Ljiljana Živković, Ivanka Karadžić
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引用次数: 0
摘要
纳米粒的商业使用和传播的增加引起了人们对其对生物体影响的风险的关注。虽然铜绿假单胞菌可能在自然界中无处不在,但它主要存在于与人类活动密切相关的地方。铜绿假单胞菌(P. aeruginosa san ai)被用作模型生物,以便更深入地了解细菌生物分子与这种有趣的纳米材料之间的相互作用。采用综合蛋白质组学方法,结合呼吸变化和靶向/特异性次级代谢物的产生分析,研究了铜绿假单胞菌对纳米孢子虫的反应。定量蛋白质组学发现,与氧化还原稳态、氨基酸生物合成和脂质分解代谢相关的蛋白质被上调。来自细胞外结构的蛋白质被下调,包括负责多肽、糖、氨基酸和多胺的转运蛋白,以及toll - pal系统中至关重要的TolB蛋白,这是形成外膜层结构所必需的。根据氧化还原稳态蛋白的改变,发现了一个关键的氧化还原穿梭体pyocyanin的数量增加,以及负责铁稳态的铁载体pyoverdine的上调。胞外分子,如pyocyanin, pyoverdine,胞外多糖,脂肪酶和碱性蛋白酶的产生,在P. aeruginosa san ai暴露于纳米细菌显著增加。总的来说,亚致死浓度的纳米粒诱导了铜绿假单胞菌的代谢变化,并引起细胞外毒力因子的分泌增加,揭示了这种纳米材料对微生物重要功能的强大影响。
A comprehensive proteomics analysis of the response of Pseudomonas aeruginosa to nanoceria cytotoxicity.
The increased commercial use and spread of nanoceria raises concerns about the risks associated with its effects on living organisms. Although Pseudomonas aeruginosa may be ubiquitous in nature, it is largely found in locations closely linked with human activity. P. aeruginosa san ai was used as a model organism for a deeper understanding of the interaction between biomolecules of the bacteria with this intriguing nanomaterial. A comprehensive proteomics approach along with analysis of altered respiration and production of targeted/specific secondary metabolites was conducted to study the response of P. aeruginosa san ai to nanoceria. Quantitative proteomics found that proteins associated with redox homeostasis, biosynthesis of amino acids, and lipid catabolism were upregulated. Proteins from outer cellular structures were downregulated, including transporters responsible for peptides, sugars, amino acids and polyamines, and the crucial TolB protein of the Tol-Pal system, required for the structural formation of the outer membrane layer. In accordance with the altered redox homeostasis proteins, an increased amount of pyocyanin, a key redox shuttle, and the upregulation of the siderophore, pyoverdine, responsible for iron homeostasis, were found. Production of extracellular molecules, e.g. pyocyanin, pyoverdine, exopolysaccharides, lipase, and alkaline protease, was significantly increased in P. aeruginosa san ai exposed to nanoceria. Overall, nanoceria at sublethal concentrations induces profound metabolic changes in P. aeruginosa san ai and provokes increased secretion of extracellular virulence factors, revealing the powerful influence this nanomaterial has on the vital functions of the microorganism.
期刊介绍:
Nanotoxicology invites contributions addressing research relating to the potential for human and environmental exposure, hazard and risk associated with the use and development of nano-structured materials. In this context, the term nano-structured materials has a broad definition, including ‘materials with at least one dimension in the nanometer size range’. These nanomaterials range from nanoparticles and nanomedicines, to nano-surfaces of larger materials and composite materials. The range of nanomaterials in use and under development is extremely diverse, so this journal includes a range of materials generated for purposeful delivery into the body (food, medicines, diagnostics and prosthetics), to consumer products (e.g. paints, cosmetics, electronics and clothing), and particles designed for environmental applications (e.g. remediation). It is the nano-size range if these materials which unifies them and defines the scope of Nanotoxicology .
While the term ‘toxicology’ indicates risk, the journal Nanotoxicology also aims to encompass studies that enhance safety during the production, use and disposal of nanomaterials. Well-controlled studies demonstrating a lack of exposure, hazard or risk associated with nanomaterials, or studies aiming to improve biocompatibility are welcomed and encouraged, as such studies will lead to an advancement of nanotechnology. Furthermore, many nanoparticles are developed with the intention to improve human health (e.g. antimicrobial agents), and again, such articles are encouraged. In order to promote quality, Nanotoxicology will prioritise publications that have demonstrated characterisation of the nanomaterials investigated.