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Protein seeding of gold nanoparticles and mechanism of glycation sensing

机译:金纳米粒子的蛋白质接种和糖基化传感机制

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The plasmon resonance of gold nanoparticles (GNPs) synthesized on a protein template senses formation of advanced glycosylated end products (AGEs).A graded alteration of plasmon resonance (both the peak and intensity are affected) is observed as the glycation progresses.Transmission electron microscopy shows significant shift of the size distribution of GNPs in presence of glycation.The higher plasmon resonance is thus caused by increased formation of GNPs,which in turn is attributed to a larger number of smaller particles.To study the binding of the protein with the GNP,infrared (IR) spectroscopy and circular dichroism (CD) studies were undertaken.Whereas the CD studies confirmed the emergence of beta-structure and loss of alpha-helix,the IR data indicated glycation-induced alterations in the amide I region.The proposed sensor for formation of AGEs thus apparently operates by direct or indirect conjugation with amino groups.Incidentally,glycation and AGE formation are responsible for a number of diabetes-related clinical conditions,and the present approach could be adopted for use for a simple colorimetric assay for the AGEs.
机译:在蛋白质模板上合成的金纳米颗粒(GNP)的等离振子共振感应高级糖基化终产物(AGEs)的形成,随着糖基化的进行,观察到等离振子共振的梯度变化(峰和强度都会受到影响)。在糖基化的情况下显示GNP的大小分布发生明显变化。因此,较高的等离振子共振是由GNP形成的增加引起的,这又归因于大量较小的颗粒。研究蛋白质与GNP的结合,红外(IR)光谱和圆二色性(CD)研究。尽管CD研究证实了β结构的出现和α-螺旋的丢失,但IR数据表明糖基化诱导了酰胺I区的改变。因此,形成AGE的传感器显然是通过直接或间接与氨基结合而起作用的。顺便说一下,糖基化和AGE的形成是导致许多糖尿病相关的临床疾病,本方法可用于AGEs的简单比色测定。

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