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Updated: Jul 19, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Glucocorticoid receptor-induced non-muscle caldesmon regulates metastasis in castration-resistant prostate cancer
Verneri Virtanen1, Kreetta Paunu1, Antti Kukkula1
1Cancer Research Unit, Institute of Biomedicine, and FICAN West Cancer Center Laboratory, University of Turku, and Turku University Hospital, Kiinamyllynkatu 10, 20520, Turku, Finland.
Abstract:
Lethal prostate cancer (PCa) is characterized by the presence of metastases and development of resistance to therapies. Metastases form in a multi-step process enabled by dynamic cytoskeleton remodeling. An actin cytoskeleton regulating gene, CALD1, encodes a protein caldesmon (CaD). Its isoform, low-molecular-weight CaD (l-CaD), operates in non-muscle cells, supporting the function of filaments involved in force production and mechanosensing. Several factors, including glucocorticoid receptor (GR), have been identified as regulators of l-CaD in different cell types, but the regulation of l-CaD in PCa has not been defined. PCa develops resistance in response to therapeutic inhibition of androgen signaling by multiple strategies. Known strategies include androgen receptor (AR) alterations, modified steroid synthesis, and bypassing AR signaling, for example, by GR upregulation. Here, we report that in vitro downregulation of l-CaD promotes epithelial phenotype and reduces spheroid growth in 3D, which is reflected in vivo in reduced formation of metastases in zebrafish PCa xenografts. In accordance, CALD1 mRNA expression correlates with epithelial-to-mesenchymal transition (EMT) transcripts in PCa patients. We also show that CALD1 is highly co-expressed with GR in multiple PCa data sets, and GR activation upregulates l-CaD in vitro. Moreover, GR upregulation associates with increased l-CaD expression after the development of resistance to antiandrogen therapy in PCa xenograft mouse models. In summary, GR-regulated l-CaD plays a role in forming PCa metastases, being clinically relevant when antiandrogen resistance is attained by the means of bypassing AR signaling by GR upregulation.
Insights
Glucocorticoid receptor (GR) upregulates low-molecular-weight caldesmon (l-CaD) in prostate cancer (PCa). This GR-regulated l-CaD promotes PCa metastasis, especially upon developing resistance to antiandrogen therapies.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Biology
Background:
- Lethal prostate cancer (PCa) is marked by metastasis and therapy resistance.
- Cytoskeleton remodeling, particularly involving actin, is crucial for metastasis formation.
- The CALD1 gene encodes caldesmon (CaD), with the low-molecular-weight isoform (l-CaD) regulating cytoskeletal dynamics in non-muscle cells.
Purpose of the Study:
- To investigate the regulation of l-CaD in prostate cancer.
- To determine the role of l-CaD in PCa metastasis and therapy resistance.
- To explore the relationship between glucocorticoid receptor (GR) and l-CaD in PCa.
Main Methods:
- In vitro studies involving l-CaD downregulation and GR activation.
- 3D spheroid growth assays.
- In vivo zebrafish PCa xenograft models.
- Analysis of PCa patient data for CALD1 and GR expression correlation.
- Evaluation of l-CaD expression in PCa xenograft mouse models resistant to antiandrogen therapy.
Main Results:
- Downregulation of l-CaD reduced PCa spheroid growth in vitro and metastasis in vivo.
- CALD1 mRNA expression correlated with epithelial-to-mesenchymal transition (EMT) markers in PCa patients.
- CALD1 and GR were highly co-expressed in PCa datasets, with GR activation upregulating l-CaD.
- GR upregulation led to increased l-CaD expression in PCa models resistant to antiandrogen therapy.
Conclusions:
- GR-regulated l-CaD plays a significant role in prostate cancer metastasis.
- The GR-l-CaD axis is clinically relevant in PCa that develops resistance to antiandrogen therapy via GR upregulation.
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