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Electrodeposited functionally graded coating inhibits Gram-positive and Gram-negative bacteria by a lipid peroxidation mediated membrane damage mechanism

机译:通过脂质过氧化介导的膜损伤机制抑制电沉积的功能梯度涂层抑制革兰氏阳性和革兰氏阴性细菌

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The current work deals with a time-dependent study to track the antibacterial action of electrodeposited Cu, Cu-SiC functionally graded coating (FGC) against Escherichia coli NCIM 2931 (Gram-negative) and Bacillus subtilis NCIM 2063 (Gram-positive). After 24 h of incubation, the Cu, Cu-SiC FGC causes 7 Escherichia coli NCIM 2931 and 10 Bacillus subtilis NCIM 2063 log reduction of planktonic cells. The outer membrane permeabilization experiment proves that the intake of excessive Cu ions leads to the damage of bacterial cell membrane followed by lipid degradation. The thiobarbituric acid reactive substances assay reveals that Cu ions released from the surface of Cu, Cu-SiC FGC triggers the oxidative degeneration of phospholipids (most abundant constituent of bacterial cell membrane). This was further cross-verified using atomic absorption spectroscopy. From 0 to 24 h, the bacterial morphology is characterized using transmission electron microscope and scanning electron microscope which shows the cytoplasmic leakage and cell death. The Cu, Cu-SiC FGC also exhibits hydrophobic surface (contact angle of 144) which prevents the bacterial adherence to the surface and thus, inhibits them to penetrate into its bulk. The observed results of antibacterial and anti-adhesion properties of Cu, Cu-SiC FGC are compared with single-layered metallic Cu and Cu-SiC nanocomposite coatings. Hence, the electrodeposited Cu, Cu-SiC FGC has the potential to serve as an inexpensive touch surface alternative for the healthcare industries.
机译:目前的工作涉及时间依赖性研究,以跟踪电沉积Cu,Cu-SiC功能梯度涂层(FGC)对大肠杆菌NCIM 2931(革兰氏阴性)和枯草芽孢杆菌NCIM 2063(革兰氏阳性)的抗菌作用。孵育24小时后,Cu,Cu-SiC FGC导致7个大肠杆菌NCIM 2931和10枯草芽孢杆菌NCIM 2063降低浮鳞细胞的降低。外膜透化实验证明,过量Cu离子的摄入导致细菌细胞膜的损伤,然后是脂质降解。硫碱尿酸反应性物质测定揭示了从Cu的表面释放的Cu离子,Cu-SiC FGC触发磷脂的氧化退化(细菌细胞膜的最丰富的组成)。通过原子吸收光谱进一步交叉验证。从0到24小时,使用透射电子显微镜和扫描电子显微镜表征细菌形态,其显示细胞质渗漏和细胞死亡。 Cu,Cu-SiC FGC还表现出疏水表面(接触角为144),这防止了对表面的细菌粘附,因此抑制它们渗透到其体积中。将所观察到的Cu,Cu-SiC FGC的抗菌和抗粘附性能与单层金属Cu和Cu-SiC纳米复合涂料进行比较。因此,电沉积的Cu,Cu-SiC FGC具有潜在的是医疗行业的廉价触摸表面替代品。

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