3B's Research Group-Biomaterials, Biodegradables and Biomimetics, AvePark, Zona Industrial da Gandra, S. Cláudio do Barco, 4806-909, Caldas das, Taipas, Guimarães, Portugal; ICVS/3B's-PT Government Associate Laboratory, Braga/Guimarães, Portugal.
Adv Healthc Mater. 2015 Apr 22;4(6):883-91. doi: 10.1002/adhm.201400611. Epub 2015 Jan 15.
Magnetically targeted cells with internalized magnetic nanoparticles (MNPs) could allow the success of cell transplantation and cell-based therapies, overcoming low cell retention that occurs when delivering cells by intravenous or local injection. Upon magnetization, these cells could then accumulate and stimulate the regeneration of the tissue in situ. Magnetic targeting of cells requires a detailed knowledge between interactions of engineered nanomaterials and cells, in particular the influence of shape and surface functionalization of MNPs. For the first time, cellular internalization of amino surface-modified iron oxide nanoparticles of two different shapes (nanospheres or nanorods) is studied. MNPs show high cellular uptake and labeled cells could exhibit a strong reaction with external magnetic fields. Compared to nanorods, nanospheres show better internalization efficiency, and labeled cells exhibit strong transportation reaction with external magnetic fields. Contiguous viable cell-sheets are developed by magnetic-force-based tissue engineering. The results confirm that the developed magnetic-responsive nano-biomaterials have potential applicability in tissue engineering or cellular therapies.
具有内化磁性纳米颗粒(MNPs)的磁性靶向细胞可以允许细胞移植和基于细胞的治疗的成功,克服了通过静脉内或局部注射输送细胞时发生的低细胞保留率。在磁化后,这些细胞可以聚集并刺激组织原位再生。细胞的磁性靶向需要对工程纳米材料与细胞之间的相互作用有详细的了解,特别是 MNPs 的形状和表面功能化的影响。本文首次研究了两种不同形状(纳米球或纳米棒)的氨基表面修饰氧化铁纳米颗粒的细胞内化。MNPs 表现出高细胞摄取率,并且标记的细胞可以与外部磁场表现出强烈的反应。与纳米棒相比,纳米球具有更好的内化效率,并且标记的细胞与外部磁场表现出强烈的运输反应。通过基于磁力的组织工程开发了连续的有活力的细胞片层。结果证实,开发的磁响应纳米生物材料在组织工程或细胞治疗中具有潜在的适用性。