Gold nanoparticles from magnetite for the detection of amyloid proteins in neurodegenerative diseases

A. Ortiz, Zeyris Herrera, Johanna Moscoso
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Abstract

Introduction. Currently, neurodegenerative diseases (ND) are the fourth leading cause of death worldwide that pose a great challenge in the development of tools for early diagnosis. Thus, advances in science seek sensitive and selective detection systems and this manuscript will highlight the importance of nanotechnology. Material and methods. A literature review was conducted on the representative findings of NPs technologies in neurodegenerative diseases. Articles written in both English and Spanish were included. References between 2015-2021 were also taken into account. Results. One of the most representative techniques, AuNP was specifically implemented, together with a magnetic center composed of magnetite, which has as a specific ligand with a C-terminal cysteine domain present in the B-amyloid protein, which adhere directly to the surface of the NPs, characterizing the anomalous protein. Subsequently, by means of nanosensors capable of detecting and measuring different concentrations, these pathologies are identified at an early stage. Conclusions. Today, along with the advent of biotechnology, it has been possible to design techniques with NPs that allow the identification of specific mutations and provide diagnosis in individuals. In the investigative models of AuNP, it is possible to infer that the capabilities that make them representative focus on their magnetism and biofunctionality, by specifically binding to amyloid peptides and other ligands present in the protein, which are the major components of amyloid plaques used in these studies.
来自磁铁矿的金纳米颗粒用于检测神经退行性疾病中的淀粉样蛋白
介绍。目前,神经退行性疾病(ND)是全球第四大死亡原因,对早期诊断工具的开发构成了巨大挑战。因此,科学的进步寻求敏感和选择性的检测系统,这篇手稿将突出纳米技术的重要性。材料和方法。对NPs技术在神经退行性疾病中的代表性发现进行文献综述。包括用英语和西班牙语写的文章。2015-2021年之间的参考文献也被考虑在内。结果。最具代表性的技术之一是,AuNP与磁铁矿组成的磁性中心一起被具体实施,磁铁矿作为一种特定的配体,具有b -淀粉样蛋白中存在的c端半胱氨酸结构域,它直接粘附在NPs的表面,表征了异常蛋白。随后,通过能够检测和测量不同浓度的纳米传感器,这些病理在早期阶段被识别出来。结论。今天,随着生物技术的出现,已经有可能设计出具有NPs的技术,可以识别特定的突变并为个体提供诊断。在AuNP的研究模型中,可以推断出使其具有代表性的能力主要集中在它们的磁性和生物功能上,通过特异性地结合淀粉样肽和蛋白质中存在的其他配体,这些配体是这些研究中使用的淀粉样斑块的主要成分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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