School of Pure and Applied Physics, Mahatma Gandhi University, Kottayam, Kerala 686560, India.
Inter University Centre for Bioscience, Department of Biotechnology and Microbiology, Kannur University, Thalassery Campus, Thalassery 670661, Kerala, India.
Int J Biol Macromol. 2019 Jul 15;133:214-225. doi: 10.1016/j.ijbiomac.2019.04.100. Epub 2019 Apr 13.
Glycan recognition is the most attractive defining feature of lectins, and also they exhibit specific phytochemical interactions at distinct sites without interfering the glycocode recognition capability. These additional sites may be viewed as potential drug carrying sites that could be exploited for targeted drug delivery. The pharmacological effects of quercetin (QN) have already been studied. However, its molecular mechanism of interactions with lectin has not yet been addressed. The extending novelty provokes us to unravel the binding profile of QN with Spatholobus parviflorus lectin (SPL) using a combination series of biophysical and computational approaches. The UV absorption studies revealed an intense SPL-QN complex formation, indicating a hyperchromic effect. The fluorescence spectroscopic analysis using sugar-free SPL and sugar saturated SPL (ssSPL) revealed that QN binding significantly quenched the intrinsic fluorescence of SPL. The thermodynamic parameters maintained uniformity with the binding stoichiometry (n = 4) of both SPL and ssSPL, hence it may be assumed that the sugar binding onto the SPL would not have been influenced with QN binding. The molecular docking analysis also maintained consistency with the in vitro results. It could be concluded from SPL-QN interactions without altering unique carbohydrate specificities, leave SPL unrestricted for other molecular recognition events.
糖基识别是凝集素最具吸引力的定义特征,它们还在不同部位表现出特定的植物化学相互作用,而不会干扰糖基识别能力。这些额外的部位可以被视为潜在的药物载体部位,可以用于靶向药物传递。槲皮素 (QN) 的药理学作用已经得到了研究。然而,其与凝集素相互作用的分子机制尚未得到解决。这种延伸的新颖性促使我们使用一系列生物物理和计算方法来揭示 QN 与鸡血藤凝集素 (SPL) 的结合模式。紫外吸收研究表明 SPL-QN 复合物的形成非常强烈,表明有增色效应。使用无糖 SPL 和糖饱和 SPL (ssSPL) 的荧光光谱分析表明,QN 结合显著猝灭了 SPL 的本征荧光。热力学参数与 SPL 和 ssSPL 的结合计量学 (n = 4) 保持一致,因此可以假设 QN 结合不会影响 SPL 上的糖结合。分子对接分析也与体外结果保持一致。可以得出结论,SPL-QN 相互作用不会改变独特的碳水化合物特异性,使 SPL 不受其他分子识别事件的限制。