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微工程构建具有肿瘤模拟纤维排列梯度的3D胶原蛋白基质

Microengineering 3D Collagen Matrices with Tumor-Mimetic Gradients in Fiber Alignment.

作者信息

Joshi Indranil M, Mansouri Mehran, Ahmed Adeel, Simon Richard A, Bambizi Poorya Esmaili, Desa Danielle E, Elias Tresa M, Brown Edward B, Abhyankar Vinay V

机构信息

Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY.

Department of Biomedical Engineering, University of Rochester, Rochester, NY.

出版信息

bioRxiv. 2023 Jul 10:2023.07.09.548253. doi: 10.1101/2023.07.09.548253.

Abstract

In the tumor microenvironment (TME), collagen fibers facilitate tumor cell migration through the extracellular matrix. Previous studies have focused on studying the responses of cells on uniformly aligned or randomly aligned collagen fibers. However, the in vivo environment also features spatial gradients in alignment, which arise from the local reorganization of the matrix architecture due to cell-induced traction forces. Although there has been extensive research on how cells respond to graded biophysical cues, such as stiffness, porosity, and ligand density, the cellular responses to physiological fiber alignment gradients have been largely unexplored. This is due, in part, to a lack of robust experimental techniques to create controlled alignment gradients in natural materials. In this study, we image tumor biopsy samples and characterize the alignment gradients present in the TME. To replicate physiological gradients, we introduce a first-of-its-kind biofabrication technique that utilizes a microfluidic channel with constricting and expanding geometry to engineer 3D collagen hydrogels with tunable fiber alignment gradients that range from sub-millimeter to millimeter length scales. Our modular approach allows easy access to the microengineered gradient gels, and we demonstrate that HUVECs migrate in response to the fiber architecture. We provide preliminary evidence suggesting that MDA-MB-231 cell aggregates, patterned onto a specific location on the alignment gradient, exhibit preferential migration towards increasing alignment. This finding suggests that alignment gradients could serve as an additional taxis cue in the ECM. Importantly, our study represents the first successful engineering of continuous gradients of fiber alignment in soft, natural materials. We anticipate that our user-friendly platform, which needs no specialized equipment, will offer new experimental capabilities to study the impact of fiber-based contact guidance on directed cell migration.

摘要

在肿瘤微环境(TME)中,胶原纤维促进肿瘤细胞通过细胞外基质迁移。先前的研究主要集中在研究细胞在均匀排列或随机排列的胶原纤维上的反应。然而,体内环境还具有排列的空间梯度,这是由于细胞诱导的牵引力导致基质结构的局部重组而产生的。尽管已经对细胞如何响应分级生物物理线索(如硬度、孔隙率和配体密度)进行了广泛研究,但细胞对生理纤维排列梯度的反应在很大程度上尚未得到探索。部分原因是缺乏在天然材料中创建可控排列梯度的强大实验技术。在本研究中,我们对肿瘤活检样本进行成像,并表征TME中存在的排列梯度。为了复制生理梯度,我们引入了一种首创的生物制造技术,该技术利用具有收缩和扩张几何形状的微流体通道来设计具有可调纤维排列梯度的3D胶原水凝胶,其范围从亚毫米到毫米长度尺度。我们的模块化方法允许轻松获取微工程梯度凝胶,并且我们证明人脐静脉内皮细胞(HUVECs)会响应纤维结构而迁移。我们提供的初步证据表明,图案化在排列梯度特定位置上的MDA-MB-231细胞聚集体表现出向排列增加方向的优先迁移。这一发现表明排列梯度可以作为细胞外基质中的一种额外的趋化线索。重要的是,我们的研究代表了在柔软的天然材料中首次成功构建连续的纤维排列梯度。我们预计,我们这个无需专门设备的用户友好平台将提供新的实验能力,以研究基于纤维的接触导向对定向细胞迁移的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b3be/10369918/100e92450cbe/nihpp-2023.07.09.548253v1-f0001.jpg

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