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用于人工组织中转录激活的热流体热交换器。

Thermofluidic heat exchangers for actuation of transcription in artificial tissues.

机构信息

Department of Bioengineering, University of Washington, Seattle, WA 98195, USA.

Institute for Stem Cell and Regenerative Medicine, Seattle, WA 98195, USA.

出版信息

Sci Adv. 2020 Sep 30;6(40). doi: 10.1126/sciadv.abb9062. Print 2020 Sep.

Abstract

Spatial patterns of gene expression in living organisms orchestrate cell decisions in development, homeostasis, and disease. However, most methods for reconstructing gene patterning in 3D cell culture and artificial tissues are restricted by patterning depth and scale. We introduce a depth- and scale-flexible method to direct volumetric gene expression patterning in 3D artificial tissues, which we call "heat exchangers for actuation of transcription" (HEAT). This approach leverages fluid-based heat transfer from printed networks in the tissues to activate heat-inducible transgenes expressed by embedded cells. We show that gene expression patterning can be tuned both spatially and dynamically by varying channel network architecture, fluid temperature, fluid flow direction, and stimulation timing in a user-defined manner and maintained in vivo. We apply this approach to activate the 3D positional expression of Wnt ligands and Wnt/β-catenin pathway regulators, which are major regulators of development, homeostasis, regeneration, and cancer throughout the animal kingdom.

摘要

生物体内基因表达的空间模式在发育、稳态和疾病过程中协调细胞决策。然而,大多数在 3D 细胞培养物和人工组织中重构基因模式的方法受到模式化深度和规模的限制。我们引入了一种深度和规模灵活的方法来直接在 3D 人工组织中进行体积基因表达模式化,我们称之为“用于转录激活的热交换器”(HEAT)。这种方法利用组织中打印网络的基于流体的热传递来激活嵌入细胞表达的热诱导转基因。我们表明,通过以用户定义的方式改变通道网络结构、流体温度、流体流动方向和刺激时间,可以在空间和动态上调整基因表达模式,并在体内维持。我们将这种方法应用于激活 Wnt 配体和 Wnt/β-连环蛋白信号通路调节剂的 3D 位置表达,这些配体和调节剂是整个动物界发育、稳态、再生和癌症的主要调节因子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d872/7527231/a99f6f86e2c1/abb9062-F1.jpg

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