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使用三维工程模型对胰腺肿瘤中基质诱导的脉管系统压缩进行微观结构模拟。

Microarchitectural mimicking of stroma-induced vasculature compression in pancreatic tumors using a 3D engineered model.

作者信息

Heinrich Marcel Alexander, Uboldi Irene, Kuninty Praneeth Reddy, Ankone Marc J K, van Baarlen Joop, Zhang Yu Shrike, Jain Kartik, Prakash Jai

机构信息

Department of Advanced Organ Bioengineering and Therapeutics, Engineered Therapeutics Section, Technical Medical Centre, University of Twente, 7500AE, Enschede, the Netherlands.

Laboratorium Pathologie Oost-Nederland (LabPON), 7550 AM, Hengelo, the Netherlands.

出版信息

Bioact Mater. 2022 Sep 24;22:18-33. doi: 10.1016/j.bioactmat.2022.09.015. eCollection 2023 Apr.

Abstract

Fibrotic tumors, such as pancreatic ductal adenocarcinoma (PDAC), are characterized for high desmoplastic reaction, which results in high intra-tumoral solid stress leading to the compression of blood vessels. These microarchitectural alterations cause loss of blood flow and poor intra-tumoral delivery of therapeutics. Currently, there is a lack of relevant in vitro models capable of replicating these mechanical characteristics and to test anti-desmoplastic compounds. Here, a multi-layered vascularized 3D PDAC model consisting of primary human pancreatic stellate cells (PSCs) embedded in collagen/fibrinogen (Col/Fib), mimicking tumor tissue within adjunct healthy tissue, is presented to study the fibrosis-induced compression of vasculature in PDAC. It is demonstrated how the mechanical and biological stimulation induce PSC activation, extracellular matrix production and eventually vessel compression. The clinical relevance is confirmed by correlating with patient transcriptomic data. Furthermore, the effects of gradual vessel compression on the fluid dynamics occurring within the channel is evaluated in silico. Finally, it is demonstrated how cancer-associated fibroblast (CAF)-modulatory therapeutics can inhibit the cell-mediated compression of blood vessels in PDAC in vitro, in silico and in vivo. It is envisioned that this 3D model is used to improve the understanding of mechanical characteristics in tumors and for evaluating novel anti-desmoplastic therapeutics.

摘要

纤维化肿瘤,如胰腺导管腺癌(PDAC),其特征是具有高度的促结缔组织增生反应,这会导致肿瘤内固体应力升高,进而压迫血管。这些微观结构改变会导致血流丧失以及肿瘤内治疗药物递送不佳。目前,缺乏能够复制这些力学特性并测试抗促结缔组织增生化合物的相关体外模型。在此,我们展示了一种多层血管化3D PDAC模型,该模型由嵌入胶原蛋白/纤维蛋白原(Col/Fib)中的原代人胰腺星状细胞(PSC)组成,模拟了附属健康组织内的肿瘤组织,用于研究PDAC中纤维化诱导的血管压迫。研究表明了机械和生物刺激如何诱导PSC活化、细胞外基质产生并最终导致血管压迫。通过与患者转录组数据相关联,证实了其临床相关性。此外,还通过计算机模拟评估了逐渐的血管压迫对通道内流体动力学的影响。最后,证明了癌症相关成纤维细胞(CAF)调节疗法如何在体外、计算机模拟和体内抑制PDAC中细胞介导的血管压迫。预计该3D模型将用于增进对肿瘤力学特性的理解,并评估新型抗促结缔组织增生疗法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9075/9516389/3a1c90cfaecb/ga1.jpg

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