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工程化多细胞血管龛以模拟造血细胞迁移。

Engineering a multicellular vascular niche to model hematopoietic cell trafficking.

机构信息

Department of Bioengineering, University of Washington, Brotman Building, 850 Republican Street, Seattle, WA, 98109, USA.

Clinical Research Division, Fred Hutchinson Cancer Research Center, Seattle, WA, 98109, USA.

出版信息

Stem Cell Res Ther. 2018 Mar 23;9(1):77. doi: 10.1186/s13287-018-0808-2.

Abstract

BACKGROUND

The marrow microenvironment and vasculature plays a critical role in regulating hematopoietic cell recruitment, residence, and maturation. Extensive in vitro and in vivo studies have aimed to understand the marrow cell types that contribute to hematopoiesis and the stem cell environment. Nonetheless, in vitro models are limited by a lack of complex multicellular interactions, and cellular interactions are not easily manipulated in vivo. Here, we develop an engineered human vascular marrow niche to examine the three-dimensional cell interactions that direct hematopoietic cell trafficking.

METHODS

Using soft lithography and injection molding techniques, fully endothelialized vascular networks were fabricated in type I collagen matrix, and co-cultured under flow with embedded marrow fibroblast cells in the matrix. Marrow fibroblast (mesenchymal stem cells (MSCs), HS27a, or HS5) interactions with the endothelium were imaged via confocal microscopy and altered endothelial gene expression was analyzed with RT-PCR. Monocytes, hematopoietic progenitor cells, and leukemic cells were perfused through the network and their adhesion and migration was evaluated.

RESULTS

HS27a cells and MSCs interact directly with the vessel wall more than HS5 cells, which are not seen to make contact with the endothelial cells. In both HS27a and HS5 co-cultures, endothelial expression of junctional markers was reduced. HS27a co-cultures promote perfused monocytes to adhere and migrate within the vessel network. Hematopoietic progenitors rely on monocyte-fibroblast crosstalk to facilitate preferential recruitment within HS27a co-cultured vessels. In contrast, leukemic cells sense fibroblast differences and are recruited preferentially to HS5 and HS27a co-cultures, but monocytes are able to block this sensitivity.

CONCLUSIONS

We demonstrate the use of a microvascular platform that incorporates a tunable, multicellular composition to examine differences in hematopoietic cell trafficking. Differential recruitment of hematopoietic cell types to distinct fibroblast microenvironments highlights the complexity of cell-cell interactions within the marrow. This system allows for step-wise incorporation of cellular components to reveal the dynamic spatial and temporal interactions between endothelial cells, marrow-derived fibroblasts, and hematopoietic cells that comprise the marrow vascular niche. Furthermore, this platform has potential for use in testing therapeutics and personalized medicine in both normal and disease contexts.

摘要

背景

骨髓微环境和脉管系统在调节造血细胞募集、驻留和成熟方面起着关键作用。大量的体外和体内研究旨在了解有助于造血和干细胞环境的骨髓细胞类型。尽管如此,体外模型受到缺乏复杂的多细胞相互作用的限制,并且细胞相互作用在体内不易操作。在这里,我们开发了一种工程化的人类血管骨髓生态位,以研究指导造血细胞迁移的三维细胞相互作用。

方法

使用软光刻和注塑技术,在 I 型胶原基质中制造完全内皮化的血管网络,并在基质中与嵌入的骨髓成纤维细胞一起在流动下共培养。通过共聚焦显微镜观察骨髓成纤维细胞(间充质干细胞(MSCs)、HS27a 或 HS5)与内皮的相互作用,并通过 RT-PCR 分析改变的内皮基因表达。将单核细胞、造血祖细胞和白血病细胞灌注通过网络,并评估其粘附和迁移。

结果

HS27a 细胞和 MSCs 与血管壁直接相互作用的程度超过 HS5 细胞,后者未观察到与内皮细胞接触。在 HS27a 和 HS5 共培养物中,内皮细胞连接标记物的表达减少。HS27a 共培养物促进灌注的单核细胞在血管网络内粘附和迁移。造血祖细胞依赖于单核细胞-成纤维细胞的串扰来促进在 HS27a 共培养物血管内的优先募集。相比之下,白血病细胞感知到成纤维细胞的差异,并优先募集到 HS5 和 HS27a 共培养物,但单核细胞能够阻止这种敏感性。

结论

我们展示了使用微脉管平台,该平台结合了可调节的多细胞组成,以研究造血细胞迁移的差异。造血细胞类型对不同成纤维微环境的差异募集突出了骨髓中细胞-细胞相互作用的复杂性。该系统允许逐步纳入细胞成分,以揭示构成骨髓血管生态位的内皮细胞、骨髓来源的成纤维细胞和造血细胞之间的动态空间和时间相互作用。此外,该平台具有在正常和疾病情况下测试治疗方法和个性化医学的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b2c9/5865379/da5f250d365c/13287_2018_808_Fig1_HTML.jpg

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