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A Novel Stromal Fibroblast-Modulated 3D Tumor Spheroid Model for Studying Tumor-Stroma Interaction and Drug Discovery
Published on: February 28, 2020
Fibroblast stromal support model for predicting human papillomavirus-associated cancer drug responses
Claire D James1, Rachel L Lewis1, Alexis L Fakunmoju1
1Philips Institute for Oral Health Research, School of Dentistry, Virginia Commonwealth University (VCU), Richmond, Virginia, USA.
Abstract:
Currently, there are no specific antiviral therapeutic approaches targeting Human papillomaviruses (HPVs), which cause around 5% of all human cancers. Specific antiviral reagents are particularly needed for HPV-related oropharyngeal cancers (HPV+OPCs) whose incidence is increasing and for which there are no early diagnostic tools available. We and others have demonstrated that the estrogen receptor alpha (ERα) is overexpressed in HPV+OPCs, compared to HPV-negative cancers in this region, and that these elevated levels are associated with an improved disease outcome. Utilizing this HPV+-specific overexpression profile, we previously demonstrated that estrogen attenuates the growth and cell viability of HPV+ keratinocytes and HPV+ cancer cells in vitro. Expansion of this work in vivo failed to replicate this sensitization. The role of stromal support from the tumor microenvironment (TME) has previously been tied to both the HPV lifecycle and in vivo therapeutic responses. Our investigations revealed that in vitro co-culture with fibroblasts attenuated HPV+-specific estrogen growth responses. Continuing to monopolize on the HPV+-specific overexpression of ERα, our co-culture models then assessed the suitability of the selective estrogen receptor modulators (SERMs), raloxifene and tamoxifen, and showed growth attenuation in a variety of our models to one or both of these drugs in vitro. Utilization of these SERMs in vivo closely resembled the sensitization predicted by our co-culture models. Therefore, the in vitro fibroblast co-culture model better predicts in vivo responses. We propose that utilization of our co-culture in vitro model can accelerate cancer therapeutic drug discovery.
Importance:
Human papillomavirus-related cancers (HPV+ cancers) remain a significant public health concern, and specific clinical approaches are desperately needed. In translating drug response data from in vitro to in vivo, the fibroblasts of the adjacent stromal support network play a key role. Our study presents the utilization of a fibroblast 2D co-culture system to better predict translational drug assessments for HPV+ cancers. We also suggest that this co-culture system should be considered for other translational approaches. Predicting even a portion of treatment paradigms that may fail in vivo with a co-culture model will yield significant time, effort, resource, and cost efficiencies.
Insights
Developing a fibroblast co-culture model improves prediction of Human Papillomavirus (HPV) cancer drug responses. This 2D system better reflects in vivo outcomes, accelerating therapeutic discovery for HPV-related cancers.
Area of Science:
- Oncology
- Virology
- Drug Discovery
Background:
- Human Papillomavirus (HPV) causes significant cancer burden, with limited specific antiviral therapies.
- Estrogen receptor alpha (ERα) is overexpressed in HPV-related oropharyngeal cancers (HPV+OPCs), correlating with better outcomes.
- Previous in vitro studies showed estrogen's anti-cancer effects, but in vivo models failed to replicate this, suggesting a role for the tumor microenvironment.
Purpose of the Study:
- To develop and validate a 2D fibroblast co-culture system for predicting in vivo drug responses in HPV+ cancers.
- To assess the efficacy of selective estrogen receptor modulators (SERMs) in HPV+ cancer models.
- To enhance the efficiency of translational drug discovery for HPV-related malignancies.
Main Methods:
- Utilized in vitro co-culture models with fibroblasts to investigate the impact of the tumor microenvironment on HPV+ cancer cell responses.
- Assessed the effects of estrogen and SERMs (raloxifene, tamoxifen) on HPV+ cancer cells in both 2D co-culture and in vivo settings.
- Compared the predictive accuracy of the co-culture model against traditional in vitro and in vivo experiments.
Main Results:
- Fibroblast co-culture attenuated HPV+-specific estrogen growth responses observed in simple in vitro models.
- Selective estrogen receptor modulators (SERMs) like raloxifene and tamoxifen demonstrated growth inhibition in co-culture models.
- The in vitro fibroblast co-culture system demonstrated a higher correlation with in vivo drug responses compared to standard in vitro methods.
Conclusions:
- A 2D fibroblast co-culture model provides a more accurate preclinical assessment of therapeutic efficacy for HPV+ cancers.
- This co-culture system can significantly improve the efficiency of drug discovery and development for HPV-related cancers.
- The proposed model offers a valuable tool for predicting in vivo drug responses, saving time, resources, and costs.
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