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Chapter 11 Experimental Modal Analysis of Tumorigenesis and Cancer Metastasis

机译:第11章肿瘤鉴定和癌变转移的实验模态分析

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Traditionally, performing an experimental modal analysis of a building/structure required instrumenting the structure with a spatially distributed array of accelerometers or strain gages. Alternatively, a laser doppler vibrometer would have to be scanned across the structure of interest in a sequential manner to measure structural response. Recently, researchers at LANL developed a technology that combines the theory of structural dynamics with computer vision that provides the capability to characterize structural dynamics at very high spatial density using only an imager. With this newfound success at the macro-scale, we have exploited this novel technology to a whole new scale - to studying the basic structure of life itself, the human cell. We hypothesize that this new technology and novel application will provide a significantly better understanding of how stiffness and mass distribution changes in a cell as it undergoes epithelial-mesenchymal transition, and in identifying its associated EMC biochemical cues, highlight potential therapeutic targets. For the first time it should be possible to measure the high-resolution mode shapes of cells; given that all cells undergoing cancer metastasis experience a breakdown in the cytoskeleton, this work will enable groundbreaking advances in various fields including medicine and structural dynamics. It is imperative to highlight, that we are only beginning to understand the relationship between biophysical properties of cells and their potential to regulate tumorigenesis and motility, which is commonly known as metastasis. This knowledge could be used to provide verification and validation of finite element models of cellular structure. This work will represent the first time that expertise in experimental structural dynamics will be brought to bear on the problem of characterizing the structural dynamics of cells at high spatial resolution, which is novel and unique on its own. When successful, this new technology could be used to couple the biophysical cues associated with other detrimental human pathologies.
机译:传统上,对建筑物/结构进行实验模态分析,需要用空间分布的加速度计或应变计仪器仪表。或者,将以顺序方式横跨感兴趣的结构扫描激光多普勒振动器以测量结构响应。最近,LANL的研究人员开发了一种技术,将结构动态的理论与计算机视觉相结合,该计算机视觉提供了仅使用成像仪以非常高的空间密度表征结构动态的能力。随着宏观规模的新取得的成功,我们利用了这项新颖的技术来实现了一种全新的规模 - 研究人类自身的基本结构,人类细胞。我们假设这一新技术和新的应用程序将在显着了解细胞中的刚度和质量分布变化的显着理解,因为它经历上皮 - 间充质转换,并且鉴定其相关的EMC生化线索,突出潜在的治疗目标。首次可以测量细胞的高分辨率模式形状;鉴于癌症转移的所有细胞经历细胞骨架中的崩溃,这项工作将实现各种领域的开创性进展,包括药物和结构动态。突出显示,我们只是开始了解细胞的生物物理性质与其调节肿瘤鉴定和运动的可能性之间的关系,这通常称为转移。该知识可用于提供蜂窝结构有限元模型的验证和验证。这项工作将第一次代表实验结构动态的专业知识将承担在高空间分辨率下表征细胞结构动态的问题,这是新颖的,独特的。成功时,这种新技术可用于将与其他有害的人类病理相关的生物物理提示耦合。

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