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Updated: May 28, 2026

A Cancer Cell Spheroid Assay to Assess Invasion in a 3D Setting
Published on: November 20, 2015
Interstitial guidance of cancer invasion
Pavlo G Gritsenko1, Olga Ilina, Peter Friedl
1Microscopical Imaging of the Cell, Department of Cell Biology, Nijmegen Centre for Molecular Life Sciences, Radboud University Nijmegen Medical Centre, Nijmegen, The Netherlands.
Abstract:
Cancer cell invasion into healthy tissues develops preferentially along pre-existing tracks of least resistance, followed by secondary tissue remodelling and destruction. The tissue scaffolds supporting or preventing guidance of invasion vary in structure and molecular composition between organs. In the brain, the guidance is provided by myelinated axons, astrocyte processes, and blood vessels which are used as invasion routes by glioma cells. In the human breast, containing interstitial collagen-rich connective tissue, disseminating breast cancer cells preferentially invade along bundled collagen fibrils and the surface of adipocytes. In both invasion types, physical guidance prompted by interfaces and space is complemented by molecular guidance. Generic mechanisms shared by most, if not all, tissues include (i) guidance by integrins towards fibrillar interstitial collagen and/or laminins and type IV collagen in basement membranes decorating vessels and adipocytes, and, likely, CD44 engaging with hyaluronan; (ii) haptotactic guidance by chemokines and growth factors; and likely (iii) physical pushing mechanisms. Tissue-specific, resticted guidance cues include ECM proteins with restricted expression (tenascins, lecticans), cell-cell interfaces, and newly secreted matrix molecules decorating ECM fibres (laminin-332, thrombospondin-1, osteopontin, periostin). We here review physical and molecular guidance mechanisms in interstitial tissue and brain parenchyma and explore shared principles and organ-specific differences, and their implications for experimental model design and therapeutic targeting of tumour cell invasion.
Insights
Cancer cells invade tissues along paths of least resistance, using physical and molecular cues. Understanding these invasion routes in different organs is key for developing new cancer therapies.
Area of Science:
- Oncology
- Cell Biology
- Biophysics
Background:
- Cancer cell invasion follows pre-existing tissue pathways.
- Tissue structure and molecular composition guide invasion differently across organs.
- Glioma cells use brain structures; breast cancer cells use collagen and adipocytes.
Purpose of the Study:
- To review physical and molecular guidance mechanisms of cancer cell invasion.
- To explore shared principles and organ-specific differences in invasion pathways.
- To discuss implications for experimental models and therapeutic targeting.
Main Methods:
- Literature review of physical and molecular guidance mechanisms.
- Analysis of cancer cell invasion routes in interstitial tissues and brain parenchyma.
- Comparison of generic and tissue-specific guidance cues.
Main Results:
- Invasion is guided by physical interfaces and molecular signals like integrins, CD44, chemokines, and ECM proteins.
- Brain invasion utilizes myelinated axons, astrocytes, and blood vessels.
- Breast cancer invasion follows collagen fibrils and adipocyte surfaces.
- Tissue-specific cues include ECM proteins, cell-cell interfaces, and secreted matrix molecules.
Conclusions:
- Physical and molecular guidance are crucial for cancer cell invasion.
- Organ-specific differences in tissue scaffolds and guidance cues exist.
- Understanding these mechanisms can inform better cancer model design and treatment strategies.
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