Department of Chemistry, National Institute of Technology (NIT) , Rourkela, Odisha, India.
Department of Bioinformatics, Central University of South Bihar , Patna, India.
J Phys Chem B. 2017 Feb 23;121(7):1475-1484. doi: 10.1021/acs.jpcb.6b10991. Epub 2017 Feb 13.
A comparative study of binding interaction between Safranin O (SO) and Neutral Red (NR) with lysozyme (Lyz) has been reported using several spectroscopic methods along with computational approaches. Steady-state fluorescence measurements revealed static quenching as the major quenching mechanism in Lyz-SO and Lyz-NR interaction, which is further supported by time-resolved fluorescence and UV-vis measurements. Additionally, binding and thermodynamic parameters of these interactions are calculated from temperature dependent fluorescence data. Moreover, conformational changes of protein upon binding with SO and NR are provided by synchronous and circular dichroism (CD) measurements. Molecular docking study provided the exact binding location of SO and NR in lysozyme. Along with this study, molecular dynamics simulation is carried out to measure the stability of Lyz, Lyz-SO, and Lyz-NR complex. The present study revealed the strong binding affinity of dyes with lysozyme, and this study would be helpful toward medical and environmental science.
已经使用多种光谱方法和计算方法报告了藏红 O(SO)和中性红(NR)与溶菌酶(Lyz)之间结合相互作用的比较研究。稳态荧光测量表明,在 Lyz-SO 和 Lyz-NR 相互作用中,静态猝灭是主要的猝灭机制,这进一步得到了时间分辨荧光和紫外-可见测量的支持。此外,这些相互作用的结合和热力学参数是根据温度依赖的荧光数据计算的。此外,通过同步和圆二色性(CD)测量提供了蛋白质与 SO 和 NR 结合时的构象变化。分子对接研究提供了 SO 和 NR 在溶菌酶中的精确结合位置。结合这项研究,进行了分子动力学模拟以测量 Lyz、Lyz-SO 和 Lyz-NR 复合物的稳定性。本研究揭示了染料与溶菌酶的强结合亲和力,这项研究将有助于医学和环境科学。