Profiling paracrine interactions between hypoxic and normoxic skeletal muscle tissue in a microphysiological system fabricated from 3D printed components†

IF 6.1 2区 工程技术 Q1 BIOCHEMICAL RESEARCH METHODS
Lab on a Chip Pub Date : 2024-12-04 DOI:10.1039/D4LC00603H
Megan L. Rexius-Hall, Malinda D. Madrigal, Cem Y. Kilic, Keyue Shen and Megan L. McCain
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Abstract

Disrupted blood flow in conditions such as peripheral artery disease and critical limb ischemia leads to variations in oxygen supply within skeletal muscle tissue, creating regions of poorly perfused, hypoxic skeletal muscle surrounded by regions of adequately perfused, normoxic muscle tissue. These oxygen gradients may have significant implications for muscle injury or disease, as mediated by the exchange of paracrine factors between differentially oxygenated tissue. However, creating and maintaining heterogeneous oxygen landscapes within a controlled experimental setup to ensure continuous paracrine signaling is a technological challenge. Here, we engineer oxygen-controlled microphysiological systems to investigate paracrine interactions between differentially oxygenated engineered muscle tissue. We fabricated microphysiological systems with dual oxygen landscapes that also had engineered control over paracrine interactions between hypoxic and normoxic skeletal muscle tissues, which were differentiated from C2C12 myoblasts cultured on micromolded gelatin hydrogels. The microphysiological systems interfaced with a new 3D-printed oxygen control well plate insert, which we designed to distribute flow to multiple microphysiological systems and minimize evaporation for longer timepoints. With our system, we demonstrated that amphiregulin, a myokine associated with skeletal muscle injury, exhibits unique upregulation in both gene expression and secretion after 24 hours due to paracrine interactions between hypoxic and normoxic skeletal muscle tissue. Our platform can be extended to investigate other impacts of paracrine interactions between hypoxic and normoxic skeletal muscle and can more broadly be used to elucidate many forms of oxygen-dependent crosstalk in other organ systems.

Abstract Image

在由3D打印组件制造的微生理系统中,分析缺氧和常氧骨骼肌组织之间的旁分泌相互作用。
在外周动脉疾病和肢体严重缺血等情况下,血流中断导致骨骼肌组织内氧气供应的变化,造成灌注不良、缺氧的骨骼肌区域被充分灌注、缺氧的肌肉组织区域包围。这些氧梯度可能对肌肉损伤或疾病有重要影响,这是由不同氧合组织之间的旁分泌因子交换介导的。然而,在可控的实验环境中创建和维持异质氧景观以确保持续的旁分泌信号是一项技术挑战。在这里,我们设计了氧气控制的微生理系统来研究不同氧合工程肌肉组织之间的旁分泌相互作用。我们制造了具有双氧环境的微生理系统,该系统还对缺氧和常氧骨骼肌组织之间的旁分泌相互作用进行了工程控制,这些骨骼肌组织从微模塑明胶水凝胶培养的C2C12成肌细胞中分化出来。微生理系统与一个新的3d打印氧气控制孔板插入接口,我们设计了一个新的孔板插入,将流体分配到多个微生理系统,并在更长的时间点内最大限度地减少蒸发。通过我们的系统,我们证明了与骨骼肌损伤相关的肌因子amphiregulin在缺氧和常氧骨骼肌组织之间的旁分泌相互作用下,在24小时后表现出独特的基因表达和分泌上调。我们的平台可以扩展到研究缺氧和常氧骨骼肌之间旁分泌相互作用的其他影响,并可以更广泛地用于阐明其他器官系统中多种形式的氧依赖性串扰。
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来源期刊
Lab on a Chip
Lab on a Chip 工程技术-化学综合
CiteScore
11.10
自引率
8.20%
发文量
434
审稿时长
2.6 months
期刊介绍: Lab on a Chip is the premiere journal that publishes cutting-edge research in the field of miniaturization. By their very nature, microfluidic/nanofluidic/miniaturized systems are at the intersection of disciplines, spanning fundamental research to high-end application, which is reflected by the broad readership of the journal. Lab on a Chip publishes two types of papers on original research: full-length research papers and communications. Papers should demonstrate innovations, which can come from technical advancements or applications addressing pressing needs in globally important areas. The journal also publishes Comments, Reviews, and Perspectives.
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