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Protein Sensing Device with Multi-Recognition Ability Composed of Self-Organized Glycopeptide Bundle

机译:具有多识别能力的蛋白质传感装置由自组织糖肽束组成

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We designed and synthesized amphiphilic glycopeptides with glucose or galactose at the C-terminals. We observed the protein-induced structural changes of the amphiphilic glycopeptide assembly in the lipid bilayer membrane using transmission electron microscopy (TEM) and Fourier transform infrared reflection-absorption spectra (FTIR-RAS) measurements. The glycopeptides re-arranged to form a bundle that acted as an ion channel due to the interaction among the target protein and the terminal sugar groups of the glycopeptides. The bundle in the lipid bilayer membrane was fixed on a gold-deposited quartz crystal microbalance (QCM) electrode by the membrane fusion method. The protein-induced re-arrangement of the terminal sugar groups formed a binding site that acted as a receptor, and the re-binding of the target protein to the binding site induced the closing of the channel. We monitored the detection of target proteins by the changes of the electrochemical properties of the membrane. The response current of the membrane induced by the target protein recognition was expressed by an equivalent circuit consisting of resistors and capacitors when a triangular voltage was applied. We used peanut lectin (PNA) and concanavalin A (ConA) as target proteins. The sensing membrane induced by PNA shows the specific response to PNA, and the ConA-induced membrane responded selectively to ConA. Furthermore, PNA-induced sensing membranes showed relatively low recognition ability for lectin from Ricinus Agglutinin (RCA120) and mushroom lectin (ABA), which have galactose binding sites. The protein-induced self-organization formed the spatial arrangement of the sugar chains specific to the binding site of the target protein. These findings demonstrate the possibility of fabricating a sensing device with multi-recognition ability that can recognize proteins even if the structure is unknown, by the protein-induced self-organization process.
机译:我们在C末端的葡萄糖或半乳糖设计和合成两亲糖肽。我们使用透射电子显微镜(TEM)和傅里叶变换红外反射吸收光谱(FTIR-RAS)测量,观察蛋白质诱导的脂质双层膜组件的结构变化在脂质双层膜中。由于靶蛋白质和糖肽的末端糖基团之间的相互作用,糖肽重新布置成形成作为离子通道的束。通过膜融合方法将脂质双层膜中的束固定在金沉积的石英晶体微稳定(QCM)电极上。蛋白质诱导的末端糖基的重新布置形成了用作受体的结合位点,并将靶蛋白与结合位点的重结合引起通道的关闭。我们通过膜的电化学性质的变化监测了靶蛋白的检测。由目标蛋白识别诱导的膜的响应电流由当施加三角电压时由电阻器和电容器组成的等效电路表示。我们使用花生凝集素(PNA)和康乃馨A(Cona)作为靶蛋白。 PNA诱导的传感膜显示对PNA的特异性反应,并且Cona诱导的膜选择性地对Cona进行响应。此外,PNA诱导的感测膜显示来自蓖麻素(RCA120)和蘑菇凝集素(ABA)的凝集素的相对低的识别能力,该凝集素(RCA120)和具有半乳糖结合位点的蘑菇凝集素(ABA)。蛋白质诱导的自身组织形成了特异于靶蛋白的结合位点的糖链的空间排列。这些发现表明,通过蛋白质诱导的自组织过程,即使结构未知,也可以制造具有多识别能力的传感能力的可能性。

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