Molecular Biology Unit, Institute of Medical Sciences, Banaras Hindu University, Varanasi, 221005, UP, India.
Eur Biophys J. 2010 Nov;39(12):1581-8. doi: 10.1007/s00249-010-0615-x. Epub 2010 Jun 13.
The effect of deglycosylation on the physiological and functional organization of milin was studied under different denaturizing conditions. Trifluoromethanesulfonic acid mediated deglycosylation resulted in insoluble milin, which was found to be soluble only in 1.5 M GuHCl with native-like folded structure. Kinetic stability, proteolytic activity, and dimeric association were lost in deglycosylated milin. Urea-induced unfolding revealed two inactive, highly stable equilibrium intermediates at pH 7.0 and pH 2.0. These intermediates were stable between 5.5-6.5 and 5.0-6.0 M total chaotropes (urea + 1.5 M GuHCl) at pH 7.0 and pH 2.0, respectively. GuHCl-induced unfolding was cooperative and noncoincidental with a broad transition range (2.0-5.0 M) at pH 7.0 and pH 2.0. Equilibrium unfolding of deglycosylated milin by urea and GuHCl substantiates the involvement of various inactive monomeric intermediates. This study provides a way to understand the role of glycosylation in the unfolding mechanism, stability, and functional activity of the serine protease milin.
研究了在不同变性条件下去糖基化对米林生理和功能结构的影响。三氟甲磺酸介导的去糖基化导致米林不溶,只有在具有天然折叠结构的 1.5 M GuHCl 中才是可溶的。去糖基化的米林中丧失了动力学稳定性、蛋白水解活性和二聚体缔合。尿素诱导的展开在 pH 7.0 和 pH 2.0 下揭示了两个无活性的、高度稳定的平衡中间体。这些中间体在 pH 7.0 和 pH 2.0 下分别在 5.5-6.5 和 5.0-6.0 M 总离液剂(尿素+1.5 M GuHCl)之间稳定。GuHCl 诱导的展开是协同的,与宽过渡范围(2.0-5.0 M)不重合,在 pH 7.0 和 pH 2.0 下都是如此。尿素和 GuHCl 对去糖基化米林的平衡展开证实了各种无活性单体中间体的参与。本研究为理解糖基化在丝氨酸蛋白酶米林的展开机制、稳定性和功能活性中的作用提供了一种方法。