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首页> 外文期刊>Biomaterials >Fibril bending stiffness of 3D collagen matrices instructs spreading and clustering of invasive and non-invasive breast cancer cells
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Fibril bending stiffness of 3D collagen matrices instructs spreading and clustering of invasive and non-invasive breast cancer cells

机译:3D胶原矩阵的原纤维弯曲刚度指示侵入性和非侵入性乳腺癌细胞的扩散和聚类

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摘要

Extracellular matrix stiffening of breast tissues has been clinically correlated with malignant transformation and poor prognosis. An increase of collagen fibril diameter and lysyl-oxidase mediated crosslinking has been observed in advanced tumor stages. Many current reports suggest that the local mechanical properties of single fibrillar components dominantly regulate cancer cell behavior. Here, we demonstrate by an independent control of fibril diameter and intrafibrillar crosslinking of three-dimensional (3D) collagen matrices that fibril bending stiffness instructs cell behavior of invasive and non-invasive breast cancer cells. Two types of collagen matrices with fibril diameter of either 650 nm or 800 nm at a similar pore size of 10 pm were reconstituted and further modified with the zero-length crosslinker 1-ethyl-3-(3-dimethyl aminopropyl)-carbodiimide (EDC) at concentrations of 0, 20, 100 and 500 mM. This approach yields two sets of collagen matrices with overlapping variation of matrix elasticity. With these matrices we could prove the common assumption that matrix elasticity of collagen networks is bending dominated with a linear dependence on fibril bending stiffness. We derive that the measured variation of matrix elasticity is directly correlated to the variation of fibril bending stiffness, being independently controlled either by fibril diameter or by intrafibrillar crosslinking. We use these defined matrices to demonstrate that the adjustment of fibril bending stiffness allows to instruct the behavior of two different breast cancer cell lines, invasive MDA-MB-231 (human breast carcinoma) and non-invasive MCF-7 cells (human breast adenocarcinoma). Invasiveness and spreading of invasive MDA-MB-231 cells as well as clustering of non-invasive MCF-7 cells is thereby investigated over a broad parameter range. Our results demonstrate and quantify the direct dependence of cancer cell phenotypes on the matrix mechanical properties on the scale of single fibrils.
机译:乳腺组织的细胞外基质加固在临床上与恶性转化和预后差。在晚期肿瘤阶段观察到胶原纤维直径和溶酶氧化酶介导的交联。许多目前的报告表明,单纤维组分的局部机械性能占主导地调节癌细胞行为。这里,我们通过对纤维弯曲刚度的三维(3D)胶原基质的三维(3D)胶原蛋白的intriaMirlarar交联的独立控制来证明侵袭性和非侵入性乳腺癌细胞的细胞行为。两种类型的胶原矩阵,其具有650nm或800nm的纤维直径,在类似的孔径为10μm的10μm,并用零长度交联剂1-乙基-3-(3-二甲基氨基丙基)-Carbodiidide(EDC)进一步改性)在0,20,100和500mm的浓度下。该方法产生两组胶原矩阵,具有重叠的基质弹性变化。利用这些矩阵,我们可以证明胶原蛋白网络的基质弹性是弯曲的常见假设以线性依赖于原纤维弯曲刚度。我们得出了基质弹性的测量变化与原纤维弯曲刚度的变化直接相关,通过原纤维直径或通过胃中的交联独立地控制。我们使用这些定义的矩阵来证明原纤维弯曲刚度的调节允许指导两种不同的乳腺癌细胞系,侵入性MDA-MB-231(人乳腺癌)和非侵入性MCF-7细胞的行为(人乳腺腺癌)。由此在广泛的参数范围内研究了侵袭性MDA-MB-231细胞以及非侵入性MCF-7细胞的聚类的侵袭性和扩散。我们的结果证明并量化了癌细胞表型对单一原纤维等级基质机械性能的直接依赖性。

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