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Microengineering 3D Collagen Hydrogels with Long-Range Fiber Alignment.


ABSTRACT: Aligned collagen I (COL1) fibers guide tumor cell motility, influence endothelial cell morphology, control stem cell differentiation, and are a hallmark of cardiac and musculoskeletal tissues. To study cell response to aligned microenvironments in vitro, several protocols have been developed to generate COL1 matrices with defined fiber alignment, including magnetic, mechanical, cell-based, and microfluidic methods. Of these, microfluidic approaches offer advanced capabilities such as accurate control over fluid flows and the cellular microenvironment. However, the microfluidic approaches to generate aligned COL1 matrices for advanced in vitro culture platforms have been limited to thin "mats" (<40 µm in thickness) of COL1 fibers that extend over distances less than 500 µm and are not conducive to 3D cell culture applications. Here, we present a protocol to fabricate 3D COL1 matrices (130-250 µm in thickness) with millimeter-scale regions of defined fiber alignment in a microfluidic device. This platform provides advanced cell culture capabilities to model structured tissue microenvironments by providing direct access to the micro-engineered matrix for cell culture.

SUBMITTER: Ahmed A 

PROVIDER: S-EPMC10203374 | biostudies-literature | 2022 Sep

REPOSITORIES: biostudies-literature

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Microengineering 3D Collagen Hydrogels with Long-Range Fiber Alignment.

Ahmed Adeel A   Joshi Indranil M IM   Goulet Madeleine R MR   Vidas Justin A JA   Byerley Ann M AM   Mansouri Mehran M   Day Steven W SW   Abhyankar Vinay V VV  

Journal of visualized experiments : JoVE 20220907 187


Aligned collagen I (COL1) fibers guide tumor cell motility, influence endothelial cell morphology, control stem cell differentiation, and are a hallmark of cardiac and musculoskeletal tissues. To study cell response to aligned microenvironments in vitro, several protocols have been developed to generate COL1 matrices with defined fiber alignment, including magnetic, mechanical, cell-based, and microfluidic methods. Of these, microfluidic approaches offer advanced capabilities such as accurate co  ...[more]

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