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基于脱细胞器官支架的灌注生物反应器中转移定植的建模。

Modeling Metastatic Colonization in a Decellularized Organ Scaffold-Based Perfusion Bioreactor.

机构信息

Biotech Research and Innovation Centre (BRIC), University of Copenhagen (UCPH), Ole Maaloes Vej 5, Copenhagen, 2200, Denmark.

Division of Translational Cancer Research, Department of Laboratory Medicine, Lund University, Lund, 22242, Sweden.

出版信息

Adv Healthc Mater. 2022 Jan;11(1):e2100684. doi: 10.1002/adhm.202100684. Epub 2021 Nov 17.

Abstract

Metastatic cancer spread is responsible for most cancer-related deaths. To colonize a new organ, invading cells adapt to, and remodel, the local extracellular matrix (ECM), a network of proteins and proteoglycans underpinning all tissues, and a critical regulator of homeostasis and disease. However, there is a major lack in tools to study cancer cell behavior within native 3D ECM. Here, an in-house designed bioreactor, where mouse organ ECM scaffolds are perfused and populated with cells that are challenged to colonize it, is presented. Using a specialized bioreactor chamber, it is possible to monitor cell behavior microscopically (e.g., proliferation, migration) within the organ scaffold. Cancer cells in this system recapitulate cell signaling observed in vivo and remodel complex native ECM. Moreover, the bioreactors are compatible with co-culturing cell types of different genetic origin comprising the normal and tumor microenvironment. This degree of experimental flexibility in an organ-specific and 3D context, opens new possibilities to study cell-cell and cell-ECM interplay and to model diseases in a controllable organ-specific system ex vivo.

摘要

转移性癌症扩散是大多数癌症相关死亡的原因。为了在新的器官中定植,侵袭细胞会适应和重塑局部细胞外基质(ECM),这是一种支撑所有组织的蛋白质和蛋白聚糖网络,也是维持内稳态和疾病的关键调节剂。然而,目前缺乏研究癌症细胞在天然 3D ECM 中行为的工具。在这里,我们提出了一种内部设计的生物反应器,其中灌注了带有细胞的小鼠器官 ECM 支架,并对其进行定植挑战。使用专门的生物反应器室,可以在显微镜下监测器官支架内细胞的行为(例如增殖、迁移)。该系统中的癌细胞再现了体内观察到的细胞信号,并重塑了复杂的天然 ECM。此外,生物反应器还可以与不同遗传起源的细胞类型共培养,包括正常和肿瘤微环境。这种在器官特异性和 3D 环境中具有高度实验灵活性的方法,为研究细胞-细胞和细胞-ECM 相互作用以及在可控的器官特异性系统中体外建模疾病提供了新的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ea8/11469127/59d26c2d03d0/ADHM-11-2100684-g004.jpg

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