氧化铁纳米粒子(离子和 SPIONs)在三维细胞培养系统中的应用进展

IF 2.5 4区 医学 Q3 BIOCHEMICAL RESEARCH METHODS SLAS Technology Pub Date : 2024-04-04 DOI:10.1016/j.slast.2024.100132
Khin The Nu Aye , Joao N. Ferreira , Chayanit Chaweewannakorn , Glauco R. Souza
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引用次数: 0

摘要

背景通过整合纳米技术和广泛使用磁性纳米粒子,组织工程领域取得了显著进展。这些纳米颗粒带来了三维(3D)细胞培养平台的创新方法,包括球形细胞、有机体和组织仿生培养的生成,它们在其中发挥了关键作用。值得注意的是,氧化铁纳米粒子和超顺磁性氧化铁纳米粒子已成为在这些三维环境中对细胞进行非接触式操作的不可或缺的工具。磁性纳米粒子物理和化学特性的多样性和改性对细胞机制、新陈代谢过程和整体生物功能有着深远的影响。这篇综述文章重点介绍了磁性纳米粒子的应用,阐明了它们融入三维细胞培养系统后的优势和潜在缺陷。这篇综述旨在阐明磁性纳米粒子在组织工程方面的变革潜力及其改善三维环境中细胞培养和操作的能力。
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Advances in the application of iron oxide nanoparticles (IONs and SPIONs) in three-dimensional cell culture systems

Background

The field of tissue engineering has remarkably progressed through the integration of nanotechnology and the widespread use of magnetic nanoparticles. These nanoparticles have resulted in innovative methods for three-dimensional (3D) cell culture platforms, including the generation of spheroids, organoids, and tissue-mimetic cultures, where they play a pivotal role. Notably, iron oxide nanoparticles and superparamagnetic iron oxide nanoparticles have emerged as indispensable tools for non-contact manipulation of cells within these 3D environments. The variety and modification of the physical and chemical properties of magnetic nanoparticles have profound impacts on cellular mechanisms, metabolic processes, and overall biological function. This review article focuses on the applications of magnetic nanoparticles, elucidating their advantages and potential pitfalls when integrated into 3D cell culture systems. This review aims to shed light on the transformative potential of magnetic nanoparticles in terms of tissue engineering and their capacity to improve the cultivation and manipulation of cells in 3D environments.

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来源期刊
SLAS Technology
SLAS Technology Computer Science-Computer Science Applications
CiteScore
6.30
自引率
7.40%
发文量
47
审稿时长
106 days
期刊介绍: SLAS Technology emphasizes scientific and technical advances that enable and improve life sciences research and development; drug-delivery; diagnostics; biomedical and molecular imaging; and personalized and precision medicine. This includes high-throughput and other laboratory automation technologies; micro/nanotechnologies; analytical, separation and quantitative techniques; synthetic chemistry and biology; informatics (data analysis, statistics, bio, genomic and chemoinformatics); and more.
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