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3D 水凝胶的力学、结构和粘附特性在调节癌症侵袭和转移中的独立作用。

The independent roles of mechanical, structural and adhesion characteristics of 3D hydrogels on the regulation of cancer invasion and dissemination.

机构信息

Department of Cell Biology, Center for Cell Dynamics, Johns Hopkins University, Baltimore, MD 21205, USA.

出版信息

Biomaterials. 2013 Dec;34(37):9486-95. doi: 10.1016/j.biomaterials.2013.08.077. Epub 2013 Sep 14.

Abstract

Metastasis begins with the escape, or dissemination, of cancer cells from the primary tumor. We recently demonstrated that tumors preferentially disseminate into collagen I and not into basement membrane protein gels (Matrigel). In this study, we used synthetic polymer systems to define material properties that could induce dissemination into Matrigel. We first specifically varied rigidity by varying the crosslinking density of poly(ethylene glycol) (PEG) networks within Matrigel scaffolds. Increased microenvironmental rigidity limited epithelial growth but did not promote dissemination. We next incorporated adhesive signals into the PEG network using peptide-conjugated cyclodextrin (α-CDYRGDS) rings. The α-CDYRGDS rings threaded along the PEG polymers, enabling independent control of matrix mechanics, adhesive peptide composition, and adhesive density. Adhesive PEG networks induced dissemination of normal and malignant mammary epithelial cells at intermediate values of adhesion and rigidity. Our data reveal that microenvironmental signals can induce dissemination of normal and malignant epithelial cells without requiring the fibrillar structure of collagen I or containing collagen I-specific adhesion sequences. Finally, the nanobiomaterials and assays developed in this study are generally useful both in 3D culture of primary mammalian tissues and in the systematic evaluation of the specific role of mechanical and adhesive inputs on 3D tumor growth, invasion, and dissemination.

摘要

转移始于癌细胞从原发性肿瘤中逃逸或扩散。我们最近证明,肿瘤优先扩散到 I 型胶原中,而不是基底膜蛋白凝胶(Matrigel)中。在这项研究中,我们使用合成聚合物系统来定义可以诱导扩散到 Matrigel 的材料特性。我们首先通过改变 Matrigel 支架中聚乙二醇(PEG)网络的交联密度来专门改变刚性。增加微环境刚性会限制上皮细胞生长,但不会促进扩散。接下来,我们使用肽偶联的环糊精(α-CDYRGDS)环将粘附信号纳入 PEG 网络。α-CDYRGDS 环沿着 PEG 聚合物穿过,从而能够独立控制基质力学、粘附肽组成和粘附密度。粘附性 PEG 网络诱导正常和恶性乳腺上皮细胞在中等粘附力和刚性值下进行扩散。我们的数据表明,微环境信号可以诱导正常和恶性上皮细胞的扩散,而不需要 I 型胶原的纤维状结构或包含 I 型胶原特异性粘附序列。最后,本研究中开发的纳米生物材料和测定方法对于哺乳动物组织的 3D 培养以及对机械和粘附输入对 3D 肿瘤生长、侵袭和扩散的具体作用的系统评估都非常有用。

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