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纳米材料对细胞内信号的调节。

Intracellular signal modulation by nanomaterials.

机构信息

Clinical Research Program, National Institute of Environmental Health Sciences (NIEHS), National Institute of Health (NIH), Research Triangle Park, NC, USA,

出版信息

Adv Exp Med Biol. 2014;811:111-34. doi: 10.1007/978-94-017-8739-0_7.

Abstract

A thorough understanding of the interactions of nanomaterials with biological systems and the resulting activation of signal transduction pathways is essential for the development of safe and consumer friendly nanotechnology. Here we present an overview of signaling pathways induced by nanomaterial exposures and describe the possible correlation of their physicochemical characteristics with biological outcomes. In addition to the hierarchical oxidative stress model and a review of the intrinsic and cell-mediated mechanisms of reactive oxygen species (ROS) generating capacities of nanomaterials, we also discuss other oxidative stress dependent and independent cellular signaling pathways. Induction of the inflammasome, calcium signaling, and endoplasmic reticulum stress are reviewed. Furthermore, the uptake mechanisms can be of crucial importance for the cytotoxicity of nanomaterials and membrane-dependent signaling pathways have also been shown to be responsible for cellular effects of nanomaterials. Epigenetic regulation by nanomaterials, effects of nanoparticle-protein interactions on cell signaling pathways, and the induction of various cell death modalities by nanomaterials are described. We describe the common trigger mechanisms shared by various nanomaterials to induce cell death pathways and describe the interplay of different modalities in orchestrating the final outcome after nanomaterial exposures. A better understanding of signal modulations induced by nanomaterials is not only essential for the synthesis and design of safer nanomaterials but will also help to discover potential nanomedical applications of these materials. Several biomedical applications based on the different signaling pathways induced by nanomaterials are already proposed and will certainly gain a great deal of attraction in the near future.

摘要

深入了解纳米材料与生物系统的相互作用以及由此引发的信号转导途径的激活对于开发安全、对消费者友好的纳米技术至关重要。在这里,我们概述了纳米材料暴露所诱导的信号通路,并描述了它们的物理化学特性与生物结果之间可能的相关性。除了分层氧化应激模型以及对纳米材料产生活性氧(ROS)的内在和细胞介导机制的回顾,我们还讨论了其他依赖于氧化应激和不依赖于氧化应激的细胞信号通路。综述了炎症小体的诱导、钙信号和内质网应激。此外,摄取机制对于纳米材料的细胞毒性可能至关重要,并且已经表明膜依赖性信号通路也是纳米材料对细胞产生影响的原因。还描述了纳米材料的表观遗传调控、纳米颗粒-蛋白质相互作用对细胞信号通路的影响以及纳米材料诱导的各种细胞死亡方式。我们描述了各种纳米材料诱导细胞死亡途径的常见触发机制,并描述了不同方式在协调纳米材料暴露后的最终结果方面的相互作用。更好地了解纳米材料诱导的信号调节不仅对于合成和设计更安全的纳米材料至关重要,而且还有助于发现这些材料的潜在纳米医学应用。已经提出了基于纳米材料诱导的不同信号通路的几种生物医学应用,并且肯定会在不久的将来获得很大的吸引力。

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