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量子点与 G-肌动蛋白的相互作用。

Interactions between Quantum Dots and G-Actin.

机构信息

Department of Biology, Missouri State University, Springfield, MO 65897, USA.

Jordan Valley Innovation Center, Springfield, MO 65806, USA.

出版信息

Int J Mol Sci. 2023 Sep 29;24(19):14760. doi: 10.3390/ijms241914760.

Abstract

Quantum dots (QDs) are a type of nanoparticle with excellent optical properties, suitable for many optical-based biomedical applications. However, the potential of quantum dots to be used in clinical settings is limited by their toxicity. As such, much effort has been invested to examine the mechanism of QDs' toxicity. Yet, the current literature mainly focuses on ROS- and apoptosis-mediated cell death induced by QDs, which overlooks other aspects of QDs' toxicity. Thus, our study aimed to provide another way by which QDs negatively impact cellular processes by investigating the possibility of protein structure and function modification upon direct interaction. Through shotgun proteomics, we identified a number of QD-binding proteins, which are functionally associated with essential cellular processes and components, such as transcription, translation, vesicular trafficking, and the actin cytoskeleton. Among these proteins, we chose to closely examine the interaction between quantum dots and actin, as actin is one of the most abundant proteins in cells and plays crucial roles in cellular processes and structural maintenance. We found that CdSe/ZnS QDs spontaneously bind to G-actin in vitro, causing a static quenching of G-actin's intrinsic fluorescence. Furthermore, we found that this interaction favors the formation of a QD-actin complex with a binding ratio of 1:2.5. Finally, we also found that CdSe/ZnS QDs alter the secondary structure of G-actin, which may affect G-actin's function and properties. Overall, our study provides an in-depth mechanistic examination of the impact of CdSe/ZnS QDs on G-actin, proposing that direct interaction is another aspect of QDs' toxicity.

摘要

量子点 (QDs) 是一种具有优异光学性质的纳米粒子,适用于许多基于光学的生物医学应用。然而,量子点在临床环境中的应用潜力受到其毒性的限制。因此,人们投入了大量精力来研究 QDs 毒性的机制。然而,目前的文献主要集中在 QDs 诱导的 ROS 和细胞凋亡介导的细胞死亡上,而忽略了 QDs 毒性的其他方面。因此,我们的研究旨在通过研究直接相互作用对蛋白质结构和功能修饰的可能性,提供另一种方法来研究 QDs 如何对细胞过程产生负面影响。通过鸟枪法蛋白质组学,我们鉴定了许多与转录、翻译、囊泡运输和肌动蛋白细胞骨架等重要细胞过程和组成部分相关的 QD 结合蛋白。在这些蛋白质中,我们选择密切研究量子点与肌动蛋白之间的相互作用,因为肌动蛋白是细胞中最丰富的蛋白质之一,在细胞过程和结构维持中起着至关重要的作用。我们发现 CdSe/ZnS QDs 在体外自发与 G-肌动蛋白结合,导致 G-肌动蛋白固有荧光的静态猝灭。此外,我们发现这种相互作用有利于形成 QD-肌动蛋白复合物,其结合比为 1:2.5。最后,我们还发现 CdSe/ZnS QDs 改变了 G-肌动蛋白的二级结构,这可能会影响 G-肌动蛋白的功能和性质。总的来说,我们的研究深入探讨了 CdSe/ZnS QDs 对 G-肌动蛋白的影响机制,提出直接相互作用是 QDs 毒性的另一个方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/898f/10572542/6d14adc560ff/ijms-24-14760-g001.jpg

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