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A novel covalent approach to bio-conjugate silver coated single walled carbon nanotubes with antimicrobial peptide

机译:一种新型的共价方法与抗菌肽生物共轭镀银的单壁碳纳米管

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Due to increasing antibiotic resistance, the use of silver coated single walled carbon nanotubes (SWCNTs-Ag) and antimicrobial peptides (APs) is becoming popular due to their antimicrobial properties against a wide range of pathogens. However, stability against various conditions and toxicity in human cells are some of the major drawbacks of APs and SWCNTs-Ag, respectively. Therefore, we hypothesized that APs-functionalized SWCNTs-Ag could act synergistically. Various covalent functionalization protocols described previously involve harsh treatment of carbon nanotubes for carboxylation (first step in covalent functionalization) and the non-covalently functionalized SWCNTs are not satisfactory. The present study is the first report wherein SWCNTs-Ag were first carboxylated using Tri sodium citrate (TSC) at 37 °C and then subsequently functionalized covalently with an effective antimicrobial peptide from Therapeutic Inc., TP359 (FSWCNTs-Ag). SWCNTs-Ag were also non covalently functionalized with TP359 by simple mixing (SWCNTs-Ag-M) and both, the FSWCNTs-Ag (covalent) and SWCNTs-Ag-M (non-covalent), were characterized by Fourier transform infrared spectroscopy (FT-IR), Ultraviolet visualization (UV–VIS) and transmission electron microscopy (TEM). Further the antibacterial activity of both and TP359 were investigated against two gram positive (Staphylococcus aureus and Streptococcus pyogenes) and two gram negative (Salmonella enterica serovar Typhimurium and Escherichia coli) pathogens and the cellular toxicity of TP359 and FSWCNTs-Ag was compared with plain SWCNTs-Ag using murine macrophages and lung carcinoma cells. FT-IR analysis revealed that treatment with TSC successfully resulted in carboxylation of SWCNTs-Ag and the peptide was indeed attached to the SWCNTs-Ag evidenced by TEM images. More importantly, the present study results further showed that the minimum inhibitory concentration (MIC) of FSWCNTs-Ag were much lower (~7.8–3.9 µg/ml with IC50: ~4–5 µg/ml) compared to SWCNTs-Ag-M and plain SWCNTs-Ag (both 62.6 µg/ml, IC50: ~31–35 µg/ml), suggesting that the covalent conjugation of TP359 with SWCNTs-Ag was very effective on their counterparts. Additionally, FSWCNTs-Ag are non-toxic to the eukaryotic cells at their MIC concentrations (5–2.5 µg/ml) compared to SWCNTs-Ag (62.5 µg/ml). In conclusion, we demonstrated that covalent functionalization of SWCNTs-Ag and TP359 exhibited an additive antibacterial activity. This study described a novel approach to prepare SWCNT-Ag bio-conjugates without loss of antimicrobial activity and reduced toxicity, and this strategy will aid in the development of novel and biologically important nanomaterials.
机译:由于增加的抗生素抗性,涂银的单壁碳纳米管(SWCNTs-Ag)和抗菌肽(APs)由于对多种病原体具有抗菌特性而变得越来越流行。但是,针对各种条件的稳定性和对人体细胞的毒性分别是AP和SWCNTs-Ag的一些主要缺点。因此,我们假设APs功能化的SWCNTs-Ag可以协同作用。先前描述的各种共价官能化方案涉及对碳纳米管进行苛刻的羧化处理(共价官能化的第一步),非共价官能化的SWCNT并不令人满意。本研究是第一个报告,其中首先在37°C下使用柠檬酸三钠(TSC)将SWCNTs-Ag羧化,然后用Therapeutic Inc.的有效抗菌肽TP359(FSWCNTs-Ag)共价官能化。 SWCNTs-Ag也可以通过简单混合(SWCNTs-Ag-M)与TP359进行非共价官能化,并且FSWCNTs-Ag(共价)和SWCNTs-Ag-M(非共价)都通过傅立叶变换红外光谱进行表征( FT-IR),紫外线可视化(UV-VIS)和透射电子显微镜(TEM)。进一步研究了TP359和TP359对两种革兰氏阳性(金黄色葡萄球菌和化脓性链球菌)和两种革兰氏阴性(肠炎沙门氏菌鼠伤寒沙门氏菌和大肠杆菌)病原菌的抗菌活性,并将TP359和FSWCNTs-Ag与普通SWCNTs的细胞毒性进行了比较。 -Ag使用鼠巨噬细胞和肺癌细胞。 FT-IR分析表明,TSC处理成功导致SWCNTs-Ag羧化,而肽确实附着在TEM图像证明的SWCNTs-Ag上。更重要的是,本研究结果进一步表明,与SWCNTs-Ag-M相比,FSWCNTs-Ag的最低抑菌浓度(MIC)更低(〜7.8–3.9 µg / ml,IC50:〜4–5 µg / ml)。和普通SWCNTs-Ag(均为62.6 µg / ml,IC50:〜31–35 µg / ml),这表明TP359与SWCNTs-Ag的共价结合对它们的配对物非常有效。此外,与SWCNTs-Ag(62.5 µg / ml)相比,FSWCNTs-Ag在其MIC浓度(5-2.5 µg / ml)下对真核细胞无毒。总之,我们证明了SWCNTs-Ag和TP359的共价官能化表现出加和的抗菌活性。这项研究描述了一种制备SWCNT-Ag生物共轭物的新方法,同时又不损失其抗微生物活性和降低的毒性,并且该策略将有助于新型和生物学上重要的纳米材料的开发。

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