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Novel miniaturised and highly versatile biomechatronic platforms for the characterisation of melanoma cancer cells

机译:用于表征黑素瘤癌细胞的新型小型化和高度通用的生物机电平台

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摘要

There has been an increasing demand to acquire highly sensitive devices that are able to detect and characterize cancer at a single cell level. Despite the moderate progress in this field, the majority of approaches failed to reach cell characterization with optimal sensitivity and specificity. Accordingly, in this study highly sensitive, miniaturized-biomechatronic platforms have been modeled, designed, optimized, microfabricated, and characterized, which can be used to detect and differentiate various stages of melanoma cancer cells. The melanoma cell has been chosen as a legitimate cancer model, where electrophysiological and analytical expression of cell-membrane potential have been derived, and cellular contractile force has been obtained through a correlation with micromechanical deflections of a miniaturized cantilever beam. The main objectives of this study are in fourfold: (1) to quantify cell-membrane potential, (2) correlate cellular biophysics to respective contractile force of a cell in association with various stages of the melanoma disease, (3) examine the morphology of each stage of melanoma, and (4) arrive at a relation that would interrelate stage of the disease, cellular contractile force, and cellular electrophysiology based on conducted in vitro experimental findings. Various well-characterized melanoma cancer cell lines, with varying degrees of genetic complexities have been utilized. udIn this study, two-miniaturized-versatile-biomechatronic platforms have been developed to extract the electrophysiology of cells, and cellular mechanics (mechanobiology). The former platform consists of a microfluidic module, and stimulating and recording array of electrodes patterned on a glass substrate, forming multi-electrode arrays (MEAs), whereas the latter system consists of a microcantilever-based biosensor with an embedded Wheatstone bridge, and a microfluidic module. Furthermore, in support of this work main objectives, dedicated microelectronics together with customized software have been attained to functionalize, and empower the two-biomechatronic platforms. The bio-mechatronic system performance has been tested throughout a sufficient number of in vitro experiments.
机译:越来越需要能够在单个细胞水平上检测和表征癌症的高度敏感的设备。尽管在该领域取得了适度的进展,但大多数方法仍无法以最佳的灵敏度和特异性达到细胞鉴定的目的。因此,在这项研究中,已经对高灵敏度,小型化的生物机电一体化平台进行了建模,设计,优化,微制造和表征,可用于检测和区分黑色素瘤癌细胞的各个阶段。黑色素瘤细胞已被选为合法的癌症模型,其中已经得出了细胞膜电位的电生理和分析表达,并且通过与微型悬臂梁的微机械挠度的相关性获得了细胞收缩力。这项研究的主要目标有四个方面:(1)量化细胞膜的潜力,(2)将细胞生物物理学与细胞的各个收缩力相关联,并与黑色素瘤疾病的各个阶段相关联;(3)检查细胞的形态黑色素瘤的每个阶段,以及(4)根据进行的体外实验发现,得出将疾病阶段,细胞收缩力和细胞电生理相互关联的关系。已经利用了具有不同程度的遗传复杂性的各种特征充分的黑素瘤癌细胞系。 ud在这项研究中,已经开发出两个小型多功能生物机电一体化平台来提取细胞的电生理学和细胞力学(力学生物学)。前者平台由微流体模块组成,并在玻璃基板上形成图案的电极刺激和记录阵列,形成多电极阵列(MEA),而后者系统则由基于微悬臂梁的生物传感器和嵌入式惠斯通电桥组成,微流体模块。此外,为了支持这项工作的主要目标,已经实现了专用微电子技术和定制软件的共同作用,并增强了双生物机电一体化平台的功能。生物机电系统的性能已通过足够数量的体外实验进行了测试。

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    Alqabandi Jassim;

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  • 年度 2014
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