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Mechanical properties of the tumor stromal microenvironment probed in vitro and ex vivo by in situ-calibrated optical trap-based active microrheology

机译:原位校准的基于光阱的活性微流变技术在体外和离体探测的肿瘤基质微环境的机械性能

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摘要

One of the hallmarks of the malignant transformation of epithelial tissue is the modulation of stromal components of the microenvironment. In particular, aberrant extracellular matrix (ECM) remodeling and stiffening enhances tumor growth and survival and promotes metastasis. Type I collagen is one of the major ECM components. It serves as a scaffold protein in the stroma contributing to the tissue’s mechanical properties, imparting tensile strength and rigidity to tissues such as those of the skin, tendons, and lungs. Here we investigate the effects of intrinsic spatial heterogeneities due to fibrillar architecture, pore size and ligand density on the microscale and bulk mechanical properties of the ECM. Type I collagen hydrogels with topologies tuned by polymerization temperature and concentration to mimic physico-chemical properties of a normal tissue and tumor microenvironment were measured by in situ-calibrated >Active >Microrheology by >Optical >Trapping revealing significantly different microscale complex shear moduli at Hz-kHz frequencies and two orders of magnitude of strain amplitude that we compared to data from bulk rheology measurements. Access to higher frequencies enabled observation of transitions from elastic to viscous behavior that occur at ~200Hz to 2750Hz, which largely was dependent on tissue architecture well outside the dynamic range of instrument acquisition possible with SAOS bulk rheology. We determined that mouse melanoma tumors and human breast tumors displayed complex moduli ~5–1000 Pa, increasing with frequency and displaying a nonlinear stress-strain response. Thus, we show the feasibility of a mechanical biopsy in efforts to provide a diagnostic tool to aid in the design of therapeutics complementary to those based on standard histopathology.
机译:上皮组织恶性转化的标志之一是微环境基质成分的调节。特别地,异常的细胞外基质(ECM)重塑和硬化可增强肿瘤的生长和存活并促进转移。 I型胶原蛋白是ECM的主要成分之一。它作为基质中的支架蛋白,有助于组织的机械性能,为皮肤,肌腱和肺等组织赋予抗张强度和刚度。在这里,我们研究了由于原纤维结构,孔径和配体密度而引起的固有空间异质性对ECM的微观和整体力学性能的影响。通过原位校准的> A 活性> M 电流变法测量通过聚合温度和浓度模拟正常组织的理化性质和肿瘤微环境拓扑结构的I型胶原蛋白水凝胶通过> O 真实的> T 分析,我们发现了与整体流变学测量数据相比,Hz-kHz频率和两个数量级的应变幅度存在显着不同的微尺度复剪切模量。获得更高的频率可以观察到从弹性到粘性行为的转变,该行为发生在〜200Hz到2750Hz之间,这很大程度上取决于组织结构,远远超出了SAOS大量流变学可能获得的器械动态范围。我们确定,小鼠黑素瘤肿瘤和人类乳腺肿瘤表现出约5–1000 Pa的复数模量,随频率增加并显示非线性应力应变响应。因此,我们展示了机械活检在提供诊断工具以协助设计与基于标准组织病理学的疗法互补的疗法方面的可行性。

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