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Updated: Jul 24, 2026

Assessment of Ovarian Cancer Spheroid Attachment and Invasion of Mesothelial Cells in Real Time
Published on: May 20, 2014
Genetic and Functional Modifications Associated with Ovarian Cancer Cell Aggregation and Limited Culture Conditions
Joseph P Grieco1, Stephanie L E Compton2, Grace N Davis2
1Graduate Program in Translational Biology, Medicine, and Health, Virginia Tech, Blacksburg, VA 24061, USA.
Abstract:
The aggregation of cancer cells provides a survival signal for disseminating cancer cells; however, the underlying molecular mechanisms have yet to be elucidated. Using qPCR gene arrays, this study investigated the changes in cancer-specific genes as well as genes regulating mitochondrial quality control, metabolism, and oxidative stress in response to aggregation and hypoxia in our progressive ovarian cancer models representing slow- and fast-developing ovarian cancer. Aggregation increased the expression of anti-apoptotic, stemness, epithelial-mesenchymal transition (EMT), angiogenic, mitophagic, and reactive oxygen species (ROS) scavenging genes and functions, and decreased proliferation, apoptosis, metabolism, and mitochondrial content genes and functions. The incorporation of stromal vascular cells (SVF) from obese mice into the spheroids increased DNA repair and telomere regulatory genes that may represent a link between obesity and ovarian cancer risk. While glucose had no effect, glutamine was essential for aggregation and supported proliferation of the spheroid. In contrast, low glucose and hypoxic culture conditions delayed adhesion and outgrowth capacity of the spheroids independent of their phenotype, decreased mitochondrial mass and polarity, and induced a shift of mitochondrial dynamics towards mitophagy. However, these conditions did not reduce the appearance of polarized mitochondria at adhesion sites, suggesting that adhesion signals that either reversed mitochondrial fragmentation or induced mitobiogenesis can override the impact of low glucose and oxygen levels. Thus, the plasticity of the spheroids' phenotype supports viability during dissemination, allows for the adaptation to changing conditions such as oxygen and nutrient availability. This may be critical for the development of an aggressive cancer phenotype and, therefore, could represent druggable targets for clinical interventions.
Insights
Cancer cell aggregation enhances survival signals by altering gene expression, promoting stemness and angiogenesis while reducing apoptosis. This plasticity is key for cancer cell survival and adaptation during metastasis.
Area of Science:
- Oncology
- Cell Biology
- Metabolic Regulation
Background:
- Cancer cell aggregation offers survival advantages to disseminating cells, but the molecular drivers remain unclear.
- Understanding these mechanisms is crucial for developing targeted therapies against metastatic cancer.
Purpose of the Study:
- To investigate molecular changes in ovarian cancer cells during aggregation under various conditions.
- To explore the role of mitochondrial dynamics, metabolism, and oxidative stress in cancer cell survival and dissemination.
Main Methods:
- Quantitative real-time PCR (qPCR) gene arrays were used to analyze gene expression.
- Progressive ovarian cancer models (slow- and fast-developing) were cultured as spheroids.
- Experiments involved aggregation, hypoxia, varying glucose/glutamine levels, and co-culture with stromal vascular fraction (SVF).
Main Results:
- Aggregation upregulated anti-apoptotic, stemness, EMT, angiogenic, and ROS-scavenging genes, while downregulating proliferation and apoptosis genes.
- Glutamine was essential for spheroid aggregation and proliferation; glucose had no significant effect.
- Low glucose and hypoxia induced mitophagy but did not impede mitochondrial polarization at adhesion sites, indicating adaptive plasticity.
Conclusions:
- Ovarian cancer cell spheroids exhibit remarkable phenotypic plasticity, adapting to nutrient and oxygen availability for survival during dissemination.
- The observed changes in gene expression and mitochondrial dynamics highlight potential druggable targets for inhibiting cancer progression and metastasis.
- Obesity-associated SVF incorporation suggests a link between obesity and ovarian cancer risk via DNA repair and telomere regulation.
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07:59Evaluating the Angiogenetic Properties of Ovarian Cancer Stem-Like Cells using the Three-Dimensional Co-Culture System, NICO-1
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