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[G3.0聚酰胺-胺树枝状大分子与牛血清白蛋白相互作用的荧光研究]

[Fluorescence study on the interactions between G3.0 PAMAM dendrimers and bovine serum albumin].

作者信息

He Hua, Li Shan-Shan, Lu Jin-Rong, Gu Yan, Chuong Pham-Huy

机构信息

Division of Analytical Chemistry, China Pharmaceutical University, Nanjing 210009, China.

出版信息

Guang Pu Xue Yu Guang Pu Fen Xi. 2009 Oct;29(10):2782-6.

Abstract

The interaction between amine terminated G3.0 PAMAM dendrimers and bovine serum albumin (BSA) under physiological condition was studied by fluorescence spectroscopy. Our experiments demonstrated that the fluorescence intensity of BSA decreased after the addition of G3.0 PAMAM dendrimers and the quenching mechanism was suggested as static quenching according to the Stern-Volmer equation The binding constant of G3.0 PAMAM dendrimers with BSA was calculated to be 1.067 +/- 0.025 L x mmol(-1). At the same time, synchronous fluorescence and red edge excitation shift (REES) were adopted to review the conformational changes of BSA influenced by G3.0 PAMAM dendrimers, which provides important significance for clinical medication And the results indicated that G3.0 PAMAM dendrimers can change the conformation of BSA. Furthermore, this article also examined the influence of pH and ionic strength on the interactions, from which we can conclude that electrostatic interaction played major roles in the binding process. In conclusion, the fluorescence method is a highly sensitive and convenient way to study intermolecular interaction. Further investigation in this field will provide more important information for understanding the pharmacological effects and toxicities of drugs in human body.

摘要

采用荧光光谱法研究了胺基封端的G3.0聚酰胺-胺(PAMAM)树枝状大分子与牛血清白蛋白(BSA)在生理条件下的相互作用。我们的实验表明,加入G3.0 PAMAM树枝状大分子后,BSA的荧光强度降低,根据斯特恩-沃尔默方程,猝灭机制被认为是静态猝灭。计算得出G3.0 PAMAM树枝状大分子与BSA的结合常数为1.067±0.025 L×mmol⁻¹。同时,采用同步荧光和红边激发位移(REES)来考察G3.0 PAMAM树枝状大分子对BSA构象变化的影响,这对临床用药具有重要意义,结果表明G3.0 PAMAM树枝状大分子可以改变BSA的构象。此外,本文还研究了pH值和离子强度对相互作用的影响,由此可以得出静电相互作用在结合过程中起主要作用。总之,荧光法是研究分子间相互作用的一种高度灵敏且便捷的方法。该领域的进一步研究将为理解药物在人体中的药理作用和毒性提供更重要的信息。

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