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通过直接覆盖前梯度同源物 2 蛋白的活性位点来评估石墨烯(氧化)量子点的潜在毒性。

Potential toxicity of graphene (oxide) quantum dots via directly covering the active site of anterior gradient homolog 2 protein.

机构信息

Department of Gastrointestinal and Hepatobiliary Surgery, Shenzhen Longhua District Central Hospital, No. 187, Guanlan Road, Longhua District, Shenzhen, 518110, Guangdong, China.

College of Physical Science and Technology, Yangzhou University, Jiangsu, 225009, China.

出版信息

Sci Rep. 2024 Mar 26;14(1):7091. doi: 10.1038/s41598-024-57677-9.

Abstract

Graphene quantum dots (GQDs) have attracted significant attention in biomedicine, while extensive investigations have revealed a reverse regarding the potential biotoxicity of GQDs. In order to supplementing the understanding of the toxicity profile of GQDs, this study employs a molecular dynamics (MD) simulation approach to systematically investigate the potential toxicity of both GQDs and Graphene Oxide Quantum Dots (GOQDs) on the Anterior Gradient Homolog 2 (AGR2) protein, a key protein capable of protecting the intestine. We construct two typical simulation systems, in which an AGR2 protein is encircled by either GQDs or GOQDs. The MD results demonstrate that both GQDs and GOQDs can directly make contact with and even cover the active site (specifically, the Cys81 amino acid) of the AGR2 protein. This suggests that GQDs and GOQDs have the capability to inhibit or interfere with the normal biological interaction of the AGR2 active site with its target protein. Thus, GQDs and GOQDs exhibit potential detrimental effects on the AGR2 protein. Detailed analyses reveal that GQDs adhere to the Cys81 residue due to van der Waals (vdW) interaction forces, whereas GOQDs attach to the Cys81 residue through a combination of vdW (primary) and Coulomb (secondary) interactions. Furthermore, GQDs aggregation typically adsorb onto the AGR2 active site, while GOQDs adsorb to the active site of AGR2 one by one. Consequently, these findings shed new light on the potential adverse impact of GQDs and GOQDs on the AGR2 protein via directly covering the active site of AGR2, providing valuable molecular insights for the toxicity profile of GQD nanomaterials.

摘要

石墨烯量子点(GQDs)在生物医药领域引起了广泛关注,然而大量研究表明,GQDs 具有潜在的生物毒性。为了更全面地了解 GQDs 的毒性特征,本研究采用分子动力学(MD)模拟方法,系统地研究了 GQDs 和石墨烯氧化物量子点(GOQDs)对前梯度同源物 2(AGR2)蛋白的潜在毒性。AGR2 蛋白是一种能够保护肠道的关键蛋白。我们构建了两个典型的模拟系统,其中一个 AGR2 蛋白被 GQDs 或 GOQDs 包围。MD 结果表明,GQDs 和 GOQDs 都可以直接与 AGR2 蛋白的活性部位(具体为 Cys81 氨基酸)接触,甚至覆盖该活性部位。这表明 GQDs 和 GOQDs 能够抑制或干扰 AGR2 活性部位与其靶蛋白的正常生物学相互作用。因此,GQDs 和 GOQDs 对 AGR2 蛋白具有潜在的有害影响。详细分析表明,GQDs 由于范德华(vdW)相互作用力而附着在 Cys81 残基上,而 GOQDs 通过 vdW(主要)和库仑(次要)相互作用附着在 Cys81 残基上。此外,GQDs 聚集物通常吸附在 AGR2 活性部位上,而 GOQDs 则一个一个地吸附在 AGR2 的活性部位上。因此,这些发现为 GQDs 和 GOQDs 通过直接覆盖 AGR2 的活性部位对 AGR2 蛋白的潜在不利影响提供了新的视角,为 GQD 纳米材料的毒性特征提供了有价值的分子见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c393/10963778/37a7869e37f5/41598_2024_57677_Fig1_HTML.jpg

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