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蛋白质冠对氧化石墨烯的影响:对生物医学治疗学的意义。

The influence of protein corona on Graphene Oxide: implications for biomedical theranostics.

机构信息

NanoDelivery Lab, Department of Molecular Medicine, Sapienza University of Rome, Viale Regina Elena 291, 00161, Rome, Italy.

NEST Laboratory, Scuola Normale Superiore, Piazza San Silvestro 12, 56127, Pisa, Italy.

出版信息

J Nanobiotechnology. 2023 Aug 11;21(1):267. doi: 10.1186/s12951-023-02030-x.

Abstract

Graphene-based nanomaterials have attracted significant attention in the field of nanomedicine due to their unique atomic arrangement which allows for manifold applications. However, their inherent high hydrophobicity poses challenges in biological systems, thereby limiting their usage in biomedical areas. To address this limitation, one approach involves introducing oxygen functional groups on graphene surfaces, resulting in the formation of graphene oxide (GO). This modification enables improved dispersion, enhanced stability, reduced toxicity, and tunable surface properties. In this review, we aim to explore the interactions between GO and the biological fluids in the context of theranostics, shedding light on the formation of the "protein corona" (PC) i.e., the protein-enriched layer that formed around nanosystems when exposed to blood. The presence of the PC alters the surface properties and biological identity of GO, thus influencing its behavior and performance in various applications. By investigating this phenomenon, we gain insights into the bio-nano interactions that occur and their biological implications for different intents such as nucleic acid and drug delivery, active cell targeting, and modulation of cell signalling pathways. Additionally, we discuss diagnostic applications utilizing biocoronated GO and personalized PC analysis, with a particular focus on the detection of cancer biomarkers. By exploring these cutting-edge advancements, this comprehensive review provides valuable insights into the rapidly evolving field of GO-based nanomedicine for theranostic applications.

摘要

基于石墨烯的纳米材料由于其独特的原子排列方式而在纳米医学领域引起了广泛关注,这种排列方式允许其具有多种应用。然而,它们固有的高疏水性在生物系统中带来了挑战,从而限制了它们在生物医学领域的应用。为了解决这个限制,一种方法是在石墨烯表面引入氧官能团,从而形成氧化石墨烯(GO)。这种修饰方法可以提高分散性、增强稳定性、降低毒性和调节表面性质。在这篇综述中,我们旨在探讨 GO 与治疗学中生物流体之间的相互作用,阐明“蛋白冠”(PC)的形成机制,即纳米系统暴露于血液时形成的富含蛋白质的层。PC 的存在改变了 GO 的表面性质和生物特性,从而影响其在各种应用中的行为和性能。通过研究这种现象,我们深入了解生物-纳米相互作用及其对不同意图的生物学意义,如核酸和药物输送、主动细胞靶向和细胞信号通路的调节。此外,我们还讨论了利用生物冠化 GO 进行诊断应用和个性化 PC 分析的问题,特别关注癌症生物标志物的检测。通过探索这些前沿进展,本综述为基于 GO 的纳米医学在治疗学应用中的快速发展提供了有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9902/10416361/12e548dce743/12951_2023_2030_Fig1_HTML.jpg

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