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用于研究与肺腺癌相关的上皮-内皮细胞间相互作用的多室导管平台。

Multicompartment duct platform to study epithelial-endothelial crosstalk associated with lung adenocarcinoma.

作者信息

Gagnon Keith A, Huang Jessie, Hix Olivia T, Hui Veronica W, Hinds Anne, Bullitt Esther, Eyckmans Jeroen, Kotton Darrell N, Chen Christopher S

机构信息

Department of Biomedical Engineering, Boston University, Boston, Massachusetts 02215, USA.

The Pulmonary Center and Department of Medicine, Boston University Chobian & Avedisian School of Medicine, Boston, Massachusetts 02118, USA.

出版信息

APL Bioeng. 2024 Jun 17;8(2):026126. doi: 10.1063/5.0207228. eCollection 2024 Jun.

Abstract

Previous lung-on-chip devices have facilitated significant advances in our understanding of lung biology and pathology. Here, we describe a novel lung-on-a-chip model in which human induced pluripotent stem cell-derived alveolar epithelial type II cells (iAT2s) form polarized duct-like lumens alongside engineered perfused vessels lined with human umbilical vein endothelium, all within a 3D, physiologically relevant microenvironment. Using this model, we investigated the morphologic and signaling consequences of the KRAS mutation, a commonly identified oncogene in human lung adenocarcinoma (LUAD). We show that expression of the mutant KRAS isoform in iAT2s leads to a hyperproliferative response and morphologic dysregulation in the epithelial monolayer. Interestingly, the mutant epithelia also drive an angiogenic response in the adjacent vasculature that is mediated by enhanced secretion of the pro-angiogenic factor soluble uPAR. These results demonstrate the functionality of a multi-cellular platform capable of modeling mutation-specific behavioral and signaling changes associated with lung adenocarcinoma.

摘要

以往的肺芯片装置极大地推动了我们对肺生物学和病理学的理解。在此,我们描述了一种新型的肺芯片模型,其中人诱导多能干细胞衍生的II型肺泡上皮细胞(iAT2s)在与内衬人脐静脉内皮的工程化灌注血管并排形成极化的导管样管腔,所有这些都处于三维、生理相关的微环境中。利用该模型,我们研究了KRAS突变的形态学和信号转导后果,KRAS是人类肺腺癌(LUAD)中常见的一种致癌基因。我们发现,iAT2s中突变型KRAS异构体的表达导致上皮单层的过度增殖反应和形态失调。有趣的是,突变上皮还在相邻血管中驱动血管生成反应,这是由促血管生成因子可溶性uPAR的分泌增强介导的。这些结果证明了一个多细胞平台的功能,该平台能够模拟与肺腺癌相关的突变特异性行为和信号变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb86/11191334/7cae1f066f59/ABPID9-000008-026126_1-g003.jpg

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