磁力显微镜:生物材料的定量问题。

Biomatter Pub Date : 2014-01-01 Epub Date: 2014-07-22 DOI:10.4161/biom.29507
Daniele Passeri, Chunhua Dong, Melania Reggente, Livia Angeloni, Mario Barteri, Francesca A Scaramuzzo, Francesca De Angelis, Fiorenzo Marinelli, Flavia Antonelli, Federica Rinaldi, Carlotta Marianecci, Maria Carafa, Angela Sorbo, Daniela Sordi, Isabel Wce Arends, Marco Rossi
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引用次数: 46

摘要

磁力显微镜(MFM)是一种基于原子力显微镜(AFM)的技术,该技术使用带有磁性涂层的原子力显微镜尖端,以典型的原子力显微镜空间分辨率探测局部磁场,从而获得反映样品在纳米尺度上的局部磁性的图像。作为磁性记录介质、超导体和磁性纳米材料表征的成熟工具,MFM在生物和生物医学领域的材料和系统的磁性研究中得到了越来越多的应用。在回顾了后一种应用之后,提出了三个案例研究,其中MFM用于表征:(i)利用载铁蛋白作为分子反应器合成磁铁蛋白;(ii)装载纳米粒的磁性纳米颗粒,用作药物递送的纳米载体;(iii)利用叶酸包被的核壳超顺磁性纳米颗粒标记白血病细胞,以利用细胞膜表面叶酸受体的存在。在这些例子中,对MFM数据进行了定量分析,证明了目前使用的简单分析模型的局限性。如果使用合适的模型来模拟MFM响应,则MFM可以用于评估磁性铁蛋白核心的磁动量,单个囊泡中的铁捕获效率或磁性纳米颗粒进入细胞的摄取。
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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Magnetic force microscopy: quantitative issues in biomaterials.

Magnetic force microscopy (MFM) is an atomic force microscopy (AFM) based technique in which an AFM tip with a magnetic coating is used to probe local magnetic fields with the typical AFM spatial resolution, thus allowing one to acquire images reflecting the local magnetic properties of the samples at the nanoscale. Being a well established tool for the characterization of magnetic recording media, superconductors and magnetic nanomaterials, MFM is finding constantly increasing application in the study of magnetic properties of materials and systems of biological and biomedical interest. After reviewing these latter applications, three case studies are presented in which MFM is used to characterize: (i) magnetoferritin synthesized using apoferritin as molecular reactor; (ii) magnetic nanoparticles loaded niosomes to be used as nanocarriers for drug delivery; (iii) leukemic cells labeled using folic acid-coated core-shell superparamagnetic nanoparticles in order to exploit the presence of folate receptors on the cell membrane surface. In these examples, MFM data are quantitatively analyzed evidencing the limits of the simple analytical models currently used. Provided that suitable models are used to simulate the MFM response, MFM can be used to evaluate the magnetic momentum of the core of magnetoferritin, the iron entrapment efficiency in single vesicles, or the uptake of magnetic nanoparticles into cells.

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