Manukumar H M, Chandrasekhar B, Rakesh K P, Ananda A P, Nandhini M, Lalitha P, Sumathi S, Qin Hua-Li, Umesha S
Department of Studies in Biotechnology , University of Mysore , Manasagangotri , Mysuru-570006 , Karnataka , India . Email:
Department of Pharmaceutical Engineering , School of Chemistry , Chemical Engineering and Life Science , Wuhan University of Technology , 205 Luoshi Road , Wuhan , 430073 , PR China.
Medchemcomm. 2017 Oct 31;8(12):2181-2194. doi: 10.1039/c7md00486a. eCollection 2017 Dec 1.
is a commonly found pathogen that can cause food-spoilage and life threatening infections. However, the potential molecular effects of natural active thymol molecules and chitosan silver nanoparticles (C@AgNPs) in bacteria remain unclear. This gap in the literature has prompted us to study the effects of thymol loaded chitosan silver nanoparticles (T-C@AgNPs) against biofilm associated proteins in methicillin-resistant (Bap-MRSA) 090 and also their toxicity, anti-cancer activity, and validation of their molecular docking. The results showed excellent antibacterial activity of T-C@AgNPs against Bap-MRSA 090, having a minimum inhibitory concentration of 100 μg mL and a 10.08 ± 0.06 mm zone of inhibition (ZOI). The cyclic voltammogram (CV) analysis clearly showed pore forming of T-C@AgNPs at 300 μg mL concentration, and evidence of the interruption of the electron transport chain was clearly seen. The 200 μg mL concentration exhibited a 52.60 ± 0.25% anti-biofilm property by T-C@AgNPs against Bap-MRSA 090. The T-C@AgNPs showed no toxicity to peripheral blood mononuclear cells (PBMC) (IC = 221 ± 0.71 μg mL) compared to the control, and anti-cancer activity against human triple negative breast cancer cell line (MDA-MB-231) (IC 110 ± 1.0 μg mL) compared to the standard drug Doxorubicin (IC = 19 ± 1.0). The excellent properties of T-C@AgNPs were validated by molecular docking studies and showed best match scoring to target proteins compared to standards. These excellent properties of T-C@AgNPs highlight for the first time its pharmacology and potential in medicinal drug development applications for future research.
是一种常见的病原体,可导致食物变质和危及生命的感染。然而,天然活性百里香酚分子和壳聚糖银纳米颗粒(C@AgNPs)在细菌中的潜在分子效应仍不清楚。文献中的这一空白促使我们研究负载百里香酚的壳聚糖银纳米颗粒(T-C@AgNPs)对耐甲氧西林(Bap-MRSA)090中生物膜相关蛋白的影响,以及它们的毒性、抗癌活性和分子对接的验证。结果表明,T-C@AgNPs对Bap-MRSA 090具有优异的抗菌活性,最低抑菌浓度为100μg/mL,抑菌圈直径为10.08±0.06mm。循环伏安图(CV)分析清楚地表明,在300μg/mL浓度下T-C@AgNPs形成了孔,并且清楚地看到了电子传递链中断的证据。200μg/mL浓度的T-C@AgNPs对Bap-MRSA 090表现出52.60±0.25%的抗生物膜特性。与对照相比,T-C@AgNPs对外周血单核细胞(PBMC)无毒性(IC = 221±0.71μg/mL),与标准药物阿霉素(IC = 19±1.0)相比,对人三阴性乳腺癌细胞系(MDA-MB-231)具有抗癌活性(IC 110±1.0μg/mL)。通过分子对接研究验证了T-C@AgNPs的优异特性,与标准相比,其与靶蛋白的匹配得分最佳。T-C@AgNPs的这些优异特性首次突出了其药理学特性以及在未来药物开发应用中的潜力,以供未来研究。