Department of Biomedical Engineering, Columbia University, New York, NY 10032.
Department of Chemistry, Materials and Chemical Engineering "G Natta," Politecnico di Milano, 20133 Milan, Italy.
Proc Natl Acad Sci U S A. 2018 Feb 6;115(6):1256-1261. doi: 10.1073/pnas.1714282115. Epub 2018 Jan 23.
Eight out of 10 breast cancer patients die within 5 years after the primary tumor has spread to the bones. Tumor cells disseminated from the breast roam the vasculature, colonizing perivascular niches around blood capillaries. Slow flows support the niche maintenance by driving the oxygen, nutrients, and signaling factors from the blood into the interstitial tissue, while extracellular matrix, endothelial cells, and mesenchymal stem cells regulate metastatic homing. Here, we show the feasibility of developing a perfused bone perivascular niche-on-a-chip to investigate the progression and drug resistance of breast cancer cells colonizing the bone. The model is a functional human triculture with stable vascular networks within a 3D native bone matrix cultured on a microfluidic chip. Providing the niche-on-a-chip with controlled flow velocities, shear stresses, and oxygen gradients, we established a long-lasting, self-assembled vascular network without supplementation of angiogenic factors. We further show that human bone marrow-derived mesenchymal stem cells, which have undergone phenotypical transition toward perivascular cell lineages, support the formation of capillary-like structures lining the vascular lumen. Finally, breast cancer cells exposed to interstitial flow within the bone perivascular niche-on-a-chip persist in a slow-proliferative state associated with increased drug resistance. We propose that the bone perivascular niche-on-a-chip with interstitial flow promotes the formation of stable vasculature and mediates cancer cell colonization.
在原发性肿瘤扩散到骨骼后,10 个乳腺癌患者中有 8 个在 5 年内死亡。从乳房扩散的肿瘤细胞在脉管系统中漫游,在毛细血管周围的血管周围龛殖民化。缓慢的流动通过将氧气、营养物质和信号因子从血液中驱动到间质组织中,从而支持龛维持,而细胞外基质、内皮细胞和间充质干细胞调节转移性归巢。在这里,我们展示了开发灌注骨血管周围龛位芯片以研究在骨中定植的乳腺癌细胞的进展和耐药性的可行性。该模型是一种功能上的人类三培养物,具有稳定的血管网络,在微流控芯片上培养的 3D 天然骨基质内。通过提供具有受控流速、剪切应力和氧气梯度的龛位芯片,我们在没有补充血管生成因子的情况下建立了持久的、自组装的血管网络。我们进一步表明,经历了向血管周围细胞谱系表型转变的人骨髓间充质干细胞支持沿着血管腔排列的毛细血管样结构的形成。最后,在骨血管周围龛位芯片中的间质流中暴露的乳腺癌细胞保持与增加的耐药性相关的缓慢增殖状态。我们提出,具有间质流的骨血管周围龛位芯片促进了稳定血管的形成,并介导了癌细胞的定植。