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Evaluating the Differentiation Capacity of Mouse Prostate Epithelial Cells Using Organoid Culture
Published on: November 22, 2019
Differential Redox Regulation of Ca²⁺ Signaling and Viability in Normal and Malignant Prostate Cells
Christian Holzmann1, Tatiana Kilch2, Sven Kappel1
1Biophysics, Center for Integrated Physiology and Molecular Medicine, School of Medicine, Saarland University, Homburg, Germany.
Abstract:
In prostate cancer, reactive oxygen species (ROS) are elevated and Ca(2+) signaling is impaired. Thus, several novel therapeutic strategies have been developed to target altered ROS and Ca(2+) signaling pathways in prostate cancer. Here, we investigate alterations of intracellular Ca(2+) and inhibition of cell viability caused by ROS in primary human prostate epithelial cells (hPECs) from healthy tissue and prostate cancer cell lines (LNCaP, DU145, and PC3). In hPECs, LNCaP and DU145 H2O2 induces an initial Ca(2+) increase, which in prostate cancer cells is blocked at high concentrations of H2O2. Upon depletion of intracellular Ca(2+) stores, store-operated Ca(2+) entry (SOCE) is activated. SOCE channels can be formed by hexameric Orai1 channels; however, Orai1 can form heteromultimers with its homolog, Orai3. Since the redox sensor of Orai1 (Cys-195) is absent in Orai3, the Orai1/Orai3 ratio in T cells determines the redox sensitivity of SOCE and cell viability. In prostate cancer cells, SOCE is blocked at lower concentrations of H2O2 compared with hPECs. An analysis of data from hPECs, LNCaP, DU145, and PC3, as well as previously published data from naive and effector TH cells, demonstrates a strong correlation between the Orai1/Orai3 ratio and the SOCE redox sensitivity and cell viability. Therefore, our data support the concept that store-operated Ca(2+) channels in hPECs and prostate cancer cells are heteromeric Orai1/Orai3 channels with an increased Orai1/Orai3 ratio in cells derived from prostate cancer tumors. In addition, ROS-induced alterations in Ca(2+) signaling in prostate cancer cells may contribute to the higher sensitivity of these cells to ROS.
Insights
Altered calcium (Ca2+) signaling and increased reactive oxygen species (ROS) in prostate cancer are linked to the Orai1/Orai3 channel ratio. This ratio impacts store-operated Ca2+ entry (SOCE) and cell viability, offering therapeutic targets.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Prostate cancer is characterized by elevated reactive oxygen species (ROS) and impaired calcium (Ca2+) signaling.
- Novel therapeutic strategies are being developed to target these altered pathways in prostate cancer.
Purpose of the Study:
- To investigate the impact of ROS on intracellular Ca2+ and cell viability in primary human prostate epithelial cells (hPECs) and prostate cancer cell lines (LNCaP, DU145, PC3).
- To explore the role of Orai1/Orai3 heteromeric channels in store-operated Ca2+ entry (SOCE) and its redox sensitivity in prostate cancer.
Main Methods:
- Comparative analysis of intracellular Ca2+ responses to hydrogen peroxide (H2O2) in hPECs and prostate cancer cell lines.
- Assessment of store-operated Ca2+ entry (SOCE) and its sensitivity to H2O2 across different cell types.
- Correlation analysis of the Orai1/Orai3 ratio with SOCE redox sensitivity and cell viability.
Main Results:
- Prostate cancer cells exhibit altered Ca2+ signaling and are more sensitive to ROS-induced inhibition of SOCE compared to hPECs.
- The Orai1/Orai3 ratio is strongly correlated with SOCE redox sensitivity and cell viability.
- Prostate cancer cells show an increased Orai1/Orai3 ratio compared to healthy hPECs.
Conclusions:
- Store-operated Ca2+ channels in prostate cells are heteromeric Orai1/Orai3 channels.
- An elevated Orai1/Orai3 ratio in prostate cancer cells contributes to their altered Ca2+ signaling and increased sensitivity to ROS.
- Targeting Orai1/Orai3 channels represents a potential therapeutic strategy for prostate cancer.
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