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Updated: Nov 17, 2025

Time-Resolved Fluorescence Imaging and Analysis of Cancer Cell Invasion in the 3D Spheroid Model
Published on: January 30, 2021
Time-Resolved Fluorescence Imaging and Analysis of Cancer Cell Invasion in the 3D Spheroid Model
Louisiane Perrin1, Theodore Tucker1, Bojana Gligorijevic2
1Bioengineering Department, Temple University.
Abstract:
The invasion of cancer cells from the primary tumor into the adjacent healthy tissues is an early step in metastasis. Invasive cancer cells pose a major clinical challenge because no efficient method exist for their elimination once their dissemination is underway. A better understanding of the mechanisms regulating cancer cell invasion may lead to the development of novel potent therapies. Due to their physiological resemblance to tumors, spheroids embedded in collagen I have been extensively utilized by researchers to study the mechanisms governing cancer cell invasion into the extracellular matrix (ECM). However, this assay is limited by (1) a lack of control over the embedding of spheroids into the ECM; (2) high cost of collagen I and glass bottom dishes, (3) unreliable immunofluorescent labeling, due to the inefficient penetration of antibodies and fluorescent dyes and (4) time-consuming image processing and quantification of the data. To address these challenges, we optimized the three-dimensional (3D) spheroid protocol to image fluorescently labeled cancer cells embedded in collagen I, either using time-lapse videos or longitudinal imaging, and analyze cancer cell invasion. First, we describe the fabrication of a spheroid imaging device (SID) to embed spheroids reliably and in a minimal collagen I volume, reducing the assay cost. Next, we delineate the steps for robust fluorescence labeling of live and fixed spheroids. Finally, we offer an easy-to-use Fiji macro for image processing and data quantification. Altogether, this simple methodology provides a reliable and affordable platform to monitor cancer cell invasion in collagen I. Furthermore, this protocol can be easily modified to fit the users' needs.
Insights
Researchers developed an affordable 3D spheroid imaging device (SID) to reliably study cancer cell invasion in collagen. This optimized protocol enhances fluorescence labeling and image analysis for better understanding of metastasis mechanisms.
Area of Science:
- Biomedical Engineering
- Cancer Research
- Cell Biology
Background:
- Cancer cell invasion is a critical step in metastasis, posing significant clinical challenges.
- Studying cancer cell invasion using 3D spheroids in collagen I is common but faces limitations.
- Existing methods suffer from poor spheroid embedding control, high costs, inefficient labeling, and complex data analysis.
Purpose of the Study:
- To optimize a three-dimensional (3D) spheroid protocol for studying cancer cell invasion in collagen I.
- To develop a reliable, affordable, and user-friendly platform for monitoring and analyzing cancer cell invasion.
- To address the limitations of current spheroid-based invasion assays.
Main Methods:
- Fabrication of a novel spheroid imaging device (SID) for controlled spheroid embedding in minimal collagen I volume.
- Optimization of robust fluorescence labeling protocols for both live and fixed spheroids.
- Development of an easy-to-use Fiji macro for efficient image processing and data quantification.
Main Results:
- The developed SID ensures reliable spheroid embedding, significantly reducing assay costs.
- The optimized protocol enables robust and efficient fluorescence labeling of cancer cells within spheroids.
- The Fiji macro simplifies and speeds up image analysis and quantification of invasion data.
Conclusions:
- The optimized 3D spheroid protocol provides a reliable and affordable platform for studying cancer cell invasion in collagen I.
- This methodology facilitates better understanding of invasion mechanisms, potentially leading to novel therapeutic strategies.
- The protocol is adaptable and can be modified for various research needs in cancer invasion studies.

