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Phosphate-dependent modulation of antibacterial strategy: a redox state-controlled toxicity of cerium oxide nanoparticles

机译:抗菌策略的磷酸盐依赖性调节:氧化铈纳米颗粒的氧化还原状态控制毒性

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摘要

Specific reactivity of cerium oxide nanoparticles with phosphate ions was used to design a novel antibacterial system. The redox sensitivity of cerium oxide nanoparticles (CeNPs) was used to irreversibly scavenge phosphate ions from the microbial growth media resulting in nutrient starvation in microbes. Cerium oxide nanoparticles surface was engineered with different ratios of (cerium oxidation states and the effect of surface oxidation states was evaluated on the antibacterial activity. The nutrient depletion-based antibacterial activity is demonstrated selectively by CeNPs with higher ratio on the surface. The surface chemistry of is altered in the presence of phosphate, resulting in the irreversible formation of surface cerium phosphates leading to the loss of its intrinsic superoxide dismutase (SOD) activity. It is hypothesized that nutrient starvation by leads to oxidative stress in microbes which is not neutralized by the altered surface chemistry of CeNPs with high ratio. On the contrary, CeNPs with higher ratio did not show any reactivity towards phosphate, thus depicted no antibacterial activity, confirming the hypothesis that surface chemistry, rather than size or morphology-dependent toxicity is the main reason for the observed antibacterial activity of CeNPs.
机译:用磷酸盐离子的氧化铈纳米粒子的比反应性用于设计一种新型抗菌系统。氧化铈纳米粒子(CENP)的氧化还原敏感性用于不可逆地清除微生物生长培养基中的磷酸盐离子,导致微生物中的营养饥饿。氧化铈纳米颗粒表面以不同的比例(氧化态氧化态,对抗菌活性进行评估的不同比例。基于抗菌活性评估了营养耗尽的抗菌活性。CENPS在表面上具有较高比率的CENPS选择性地证明了基于营养耗尽的抗菌活性。表面化学在存在磷酸盐存在下改变,导致表面磷酸铈的不可逆形成,导致其固有的超氧化物歧化酶(SOD)活性的丧失。它被假设,营养饥饿通过导致氧化胁迫在未被中和的微生物中的氧化应激。 Cenps的改变的表面化学高比例。相反,具有较高比例的CENP没有显示出对磷酸盐的任何反应性,因此证实了表面化学的假设,而不是尺寸或形态学依赖性毒性是主要的观察到CENPS抗菌活性的原因。

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