Matrix stiffness mediates pancreatic cancer chemoresistance through induction of exosome hypersecretion in a cancer associated fibroblasts-tumor organoid biomimetic model

Q1 Medicine Matrix Biology Plus Pub Date : 2022-06-01 DOI:10.1016/j.mbplus.2022.100111
Weikun Xiao , Mahsa Pahlavanneshan , Chae-Young Eun , Xinyu Zhang , Charlene DeKalb , Bayan Mahgoub , Hanaa Knaneh-Monem , Sana Shah , Alireza Sohrabi , Stephanie K. Seidlits , Reginald Hill
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引用次数: 19

Abstract

In pancreatic ductal adenocarcinoma (PDAC), the abundant stromal cells which comprise the tumor microenvironment constitute more than 90% of the primary tumor bulk. Moreover, this desmoplastic environment has been found to be three times stiffer than normal pancreas tissue. Despite the importance of studying the desmoplastic environment of PDAC, there is still a lack of models designed to adequately recapitulate this complex stiff microenvironment, a critical hallmark of the disease that has been shown to induce chemoresistance. Here, we present a bio-mimetic, 3-dimensional co-culture system that integrates tumor organoids and host-matching stromal cancer associated-fibroblasts (CAFs) that recapitulates the complex, fibrotic matrix of PDAC using advanced biomaterials. With this model, we show that matrix-activated CAFs are able to “re-engineer” the fibrotic environment into a significantly stiffer environment through lysyl-oxidase dependent crosslinking. Moreover, we show that culture of CAFs in this model leads to an increase of exosomes; extracellular vesicles known to promote chemoresistance. Finally, using previously identified exosome inhibitors, climbazole and imipramine, we demonstrate how abrogation of exosome hypersecretion can reduce matrix stiffness-induced chemoresistance. These data highlight the importance of the development of new models that recapitulate not only the cellular composition found in PDAC tumors, but also the biophysical stresses, like stiffness, that the cells are exposed to in order to identify therapies that can overcome this critical feature which can contribute to the chemoresistance observed in patients. We believe that the 3D bio-mimetic model we have developed will be a valuable tool for the development, testing, and optimization of “mechano-medicines” designed to target the biophysical forces that lead to tumor growth and chemoresistance.

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在癌症相关成纤维细胞-肿瘤类器官仿生模型中,基质硬度通过诱导外泌体高分泌介导胰腺癌化疗耐药
在胰腺导管腺癌(PDAC)中,构成肿瘤微环境的丰富的间质细胞占原发肿瘤体积的90%以上。此外,这种结缔组织形成的环境已被发现比正常胰腺组织坚硬三倍。尽管研究PDAC的结缔组织增生环境很重要,但仍然缺乏设计模型来充分概括这种复杂的僵硬微环境,这是该疾病的一个关键标志,已被证明可诱导化疗耐药。在这里,我们提出了一个仿生的三维共培养系统,该系统整合了肿瘤类器官和宿主匹配的间质癌相关成纤维细胞(CAFs),该系统使用先进的生物材料再现了复杂的PDAC纤维化基质。通过这个模型,我们发现基质活化的CAFs能够通过赖氨酸氧化酶依赖的交联将纤维化环境“重新设计”成一个明显更硬的环境。此外,我们表明,在该模型中,CAFs的培养导致外泌体的增加;已知细胞外囊泡促进化学耐药。最后,使用先前鉴定的外泌体抑制剂,克里巴唑和丙咪嗪,我们证明了如何消除外泌体的高分泌可以减少基质硬度诱导的化学耐药。这些数据强调了开发新模型的重要性,这些模型不仅概括了PDAC肿瘤中发现的细胞成分,而且还概括了细胞暴露于的生物物理应力,如僵硬,以便确定可以克服这一关键特征的治疗方法,这可能有助于患者观察到的化疗耐药。我们相信,我们开发的3D仿生模型将成为开发、测试和优化“机械药物”的宝贵工具,旨在针对导致肿瘤生长和化疗耐药的生物物理力量。
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来源期刊
Matrix Biology Plus
Matrix Biology Plus Medicine-Histology
CiteScore
9.00
自引率
0.00%
发文量
25
审稿时长
105 days
期刊最新文献
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