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核苷酸修饰的金纳米粒子作为核苷酸结合蛋白的探针。

Nucleotide-decorated AuNPs as probes for nucleotide-binding proteins.

机构信息

Division of Biophysics, Faculty of Physics, University of Warsaw, Ludwika Pasteura 5, 02-093, Warsaw, Poland.

Centre of New Technologies, University of Warsaw, Stefana Banacha 2c, 02-097, Warsaw, Poland.

出版信息

Sci Rep. 2021 Aug 3;11(1):15741. doi: 10.1038/s41598-021-94983-y.

Abstract

Gold nanoparticles (AuNPs) decorated with biologically relevant molecules have variety of applications in optical sensing of bioanalytes. Coating AuNPs with small nucleotides produces particles with high stability in water, but functionality-compatible strategies are needed to uncover the full potential of this type of conjugates. Here, we demonstrate that lipoic acid-modified dinucleotides can be used to modify AuNPs surfaces in a controllable manner to produce conjugates that are stable in aqueous buffers and biological mixtures and capable of interacting with nucleotide-binding proteins. Using this strategy we obtained AuNPs decorated with 7-methylguanosine mRNA 5' cap analogs and showed that they bind cap-specific protein, eIF4E. AuNPs decorated with non-functional dinucleotides also interacted with eIF4E, albeit with lower affinity, suggesting that eIF4E binding to cap-decorated AuNPs is partially mediated by unspecific ionic interactions. This issue was overcome by applying lipoic-acid-Tris conjugate as a charge-neutral diluting molecule. Tris-Lipo-diluted cap-AuNPs conjugates interacted with eIF4E in fully specific manner, enabling design of functional tools. To demonstrate the potential of these conjugates in protein sensing, we designed a two-component eIF4E sensing system consisting of cap-AuNP and 4E-BP1-AuNP conjugates, wherein 4E-BP1 is a short peptide derived from 4E-BP protein that specifically binds eIF4E at a site different to that of the 5' cap. This system facilitated controlled aggregation, in which eIF4E plays the role of the agent that crosslinks two types of AuNP, thereby inducing a naked-eye visible absorbance redshift. The reported AuNPs-nucleotide conjugation method based on lipoic acid affinity for gold, can be harnessed to obtain other types of nucleotide-functionalized AuNPs, thereby paving the way to studying other nucleotide-binding proteins.

摘要

金纳米粒子(AuNPs)表面修饰有生物相关分子,在生物分析物的光学传感方面具有广泛的应用。在 AuNPs 表面包覆小核苷酸可以产生在水中高度稳定的粒子,但需要功能兼容的策略来充分挖掘这种类型的缀合物的潜力。在这里,我们证明了可以使用巯基乙酸修饰的二核苷酸来可控地修饰 AuNPs 表面,以制备在水缓冲液和生物混合物中稳定的缀合物,并能够与核苷酸结合蛋白相互作用。使用这种策略,我们获得了修饰有 7-甲基鸟苷 mRNA 5'帽类似物的 AuNPs,并表明它们与帽特异性蛋白 eIF4E 结合。用非功能二核苷酸修饰的 AuNPs 也与 eIF4E 相互作用,尽管亲和力较低,这表明 eIF4E 与帽修饰的 AuNPs 的结合部分是由非特异性离子相互作用介导的。通过应用巯基乙酸-三(羟甲基)氨基甲烷(Tris)缀合物作为带电荷的稀释分子,可以克服这个问题。带电荷的三(羟甲基)氨基甲烷(Tris)-巯基乙酸稀释帽-AuNPs 缀合物以完全特异性的方式与 eIF4E 相互作用,从而能够设计功能性工具。为了证明这些缀合物在蛋白质传感中的潜力,我们设计了一种由帽-AuNP 和 4E-BP1-AuNP 缀合物组成的双组分 eIF4E 传感系统,其中 4E-BP1 是一种短肽,来源于 4E-BP 蛋白,该蛋白在与 5'帽不同的位点特异性结合 eIF4E。该系统促进了受控聚集,其中 eIF4E 充当交联两种类型的 AuNP 的交联剂,从而诱导肉眼可见的吸光度红移。所报道的基于金纳米粒子与巯基乙酸亲和力的 AuNPs-核苷酸偶联方法,可以用于获得其他类型的核苷酸功能化 AuNPs,从而为研究其他核苷酸结合蛋白铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/985b/8333360/599154dbd5be/41598_2021_94983_Fig1_HTML.jpg

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