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Published on: February 18, 2017
The Fight against Cancer by Microgravity: The Multicellular Spheroid as a Metastasis Model
Daniela Grimm1,2,3,4, Herbert Schulz1,2,3, Marcus Krüger1,3
1Department of Microgravity and Translational Regenerative Medicine, Medical Faculty, University Hospital Magdeburg, Otto von Guericke University, Universitätsplatz 2, 39106 Magdeburg, Germany.
Abstract:
Cancer is a disease exhibiting uncontrollable cell growth and spreading to other parts of the organism. It is a heavy, worldwide burden for mankind with high morbidity and mortality. Therefore, groundbreaking research and innovations are necessary. Research in space under microgravity (µg) conditions is a novel approach with the potential to fight cancer and develop future cancer therapies. Space travel is accompanied by adverse effects on our health, and there is a need to counteract these health problems. On the cellular level, studies have shown that real (r-) and simulated (s-) µg impact survival, apoptosis, proliferation, migration, and adhesion as well as the cytoskeleton, the extracellular matrix, focal adhesion, and growth factors in cancer cells. Moreover, the µg-environment induces in vitro 3D tumor models (multicellular spheroids and organoids) with a high potential for preclinical drug targeting, cancer drug development, and studying the processes of cancer progression and metastasis on a molecular level. This review focuses on the effects of r- and s-µg on different types of cells deriving from thyroid, breast, lung, skin, and prostate cancer, as well as tumors of the gastrointestinal tract. In addition, we summarize the current knowledge of the impact of µg on cancerous stem cells. The information demonstrates that µg has become an important new technology for increasing current knowledge of cancer biology.
Insights
Microgravity research offers novel insights into cancer biology, impacting cell behavior and enabling new 3D tumor models for drug development. This approach is crucial for advancing cancer therapies and understanding disease progression.
Area of Science:
- Space biology
- Oncology
- Cell biology
Background:
- Cancer poses a significant global health challenge, necessitating innovative research approaches.
- Space microgravity (µg) presents a unique environment for studying cancer at the cellular level.
Purpose of the Study:
- To review the effects of real (r-) and simulated (s-) microgravity on various cancer cell types.
- To explore the potential of microgravity in cancer research and therapy development.
Main Methods:
- Analysis of existing studies on the impact of r- and s-µg on cancer cells.
- Focus on cellular processes like survival, apoptosis, proliferation, migration, and adhesion.
- Examination of microgravity's role in forming 3D tumor models (spheroids, organoids).
Main Results:
- Microgravity affects key cancer cell behaviors, including survival, apoptosis, proliferation, and migration.
- Microgravity promotes the development of in vitro 3D tumor models for drug screening and metastasis studies.
- The review covers effects on thyroid, breast, lung, skin, prostate, and gastrointestinal cancers, as well as cancer stem cells.
Conclusions:
- Microgravity is a valuable tool for advancing cancer biology knowledge.
- Space-based research holds promise for developing novel cancer therapies and drug targeting strategies.

