A three‐dimensional in vitro ovarian cancer coculture model using a high‐throughput cell patterning platform

Feng Xu, Jonathan P. Celli, Imran Rizvi, Sangjun Moon, Tayyaba Hasan, Utkan Demirci

Biotechnology Journal · 2011 · 333 citations · 28 references

Concepts

TL;DR

In vitro 3D cancer models that better mimic in vivo disease are urgently needed, but manual cell ejection methods limit control over density, repeatability, throughput, and spatial arrangement in cocultures. This study builds on a recent 3D model where human ovarian cancer cells form acini on Matrigel™ and introduces a high‑throughput automated cell printing system to bioprint a 3D coculture of cancer cells and normal fibroblasts. The automated system patterns both cell types within a spatially controlled microenvironment on Matrigel™, maintaining viability and proliferation during and after printing. The approach miniaturizes a macro‑scale 3D culture model, enabling systematic investigation of tumor–stromal regulatory feedback and providing a tool for high‑throughput drug screening.

Abstract

In vitro 3D cancer models that provide a more accurate representation of disease in vivo are urgently needed to improve our understanding of cancer pathology and to develop better cancer therapies. However, development of 3D models that are based on manual ejection of cells from micropipettes suffer from inherent limitations such as poor control over cell density, limited repeatability, low throughput, and, in the case of coculture models, lack of reproducible control over spatial distance between cell types (e.g., cancer and stromal cells). In this study, we build on a recently introduced 3D model in which human ovarian cancer (OVCAR-5) cells overlaid on Matrigel™ spontaneously form multicellular acini. We introduce a high-throughput automated cell printing system to bioprint a 3D coculture model using cancer cells and normal fi broblasts micropatterned on Matrigel™ . Two cell types were patterned within a spatially controlled microenvironment (e.g., cell density, cell-cell distance) in a high-throughput and reproducible manner; both cell types remained viable during printing and continued to proliferate following patterning. This approach enables the miniaturization of an established macro-scale 3D culture model and would allow systematic investigation into the multiple unknown regulatory feedback mechanisms between tumor and stromal cells and provide a tool for high-throughput drug screening.

References

28