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Updated: Feb 7, 2026

Mutagenesis and Functional Analysis of Ion Channels Heterologously Expressed in Mammalian Cells
Published on: October 1, 2010
The human ion channel TRPM2 modulates neuroblastoma cell survival and mitochondrial function through Pyk2, CREB, and
Iwona Hirschler-Laszkiewicz1, Shu-Jen Chen1, Lei Bao1
1Department of Pediatrics, The Pennsylvania State University College of Medicine , Hershey, Pennsylvania.
Abstract:
Transient receptor potential melastatin channel subfamily member 2 (TRPM2) has an essential function in cell survival and is highly expressed in many cancers. Inhibition of TRPM2 in neuroblastoma by depletion with CRISPR technology or expression of dominant negative TRPM2-S has been shown to significantly reduce cell viability. Here, the role of proline-rich tyrosine kinase 2 (Pyk2) in TRPM2 modulation of neuroblastoma viability was explored. In TRPM2-depleted cells, phosphorylation and expression of Pyk2 and cAMP-responsive element-binding protein (CREB), a downstream target, were significantly reduced after application of the chemotherapeutic agent doxorubicin. Overexpression of wild-type Pyk2 rescued cell viability. Reduction of Pyk2 expression with shRNA decreased cell viability and CREB phosphorylation and expression, demonstrating Pyk2 modulates CREB activation. TRPM2 depletion impaired phosphorylation of Src, an activator of Pyk2, and this may be a mechanism to reduce Pyk2 phosphorylation. TRPM2 inhibition was previously demonstrated to decrease mitochondrial function. Here, CREB, Pyk2, and phosphorylated Src were reduced in mitochondria of TRPM2-depleted cells, consistent with their role in modulating expression and activation of mitochondrial proteins. Phosphorylated Src and phosphorylated and total CREB were reduced in TRPM2-depleted nuclei. Expression and function of mitochondrial calcium uniporter (MCU), a target of phosphorylated Pyk2 and CREB, were significantly reduced. Wild-type TRPM2 but not Ca2+-impermeable mutant E960D reconstituted phosphorylation and expression of Pyk2 and CREB in TRPM2-depleted cells exposed to doxorubicin. Results demonstrate that TRPM2 expression protects the viability of neuroblastoma through Src, Pyk2, CREB, and MCU activation, which play key roles in maintaining mitochondrial function and cellular bioenergetics.
Insights
Transient receptor potential melastatin channel subfamily member 2 (TRPM2) protects neuroblastoma cells by activating Src, Pyk2, CREB, and MCU, crucial for mitochondrial function and cell survival.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Transient receptor potential melastatin channel subfamily member 2 (TRPM2) is vital for cell survival and overexpressed in cancers.
- TRPM2 inhibition reduces neuroblastoma cell viability.
- The role of proline-rich tyrosine kinase 2 (Pyk2) in TRPM2's effect on neuroblastoma was unexplored.
Purpose of the Study:
- To investigate the role of Pyk2 in TRPM2-mediated neuroblastoma cell viability.
- To elucidate the molecular mechanisms by which TRPM2 influences neuroblastoma cell survival.
Main Methods:
- CRISPR technology and dominant-negative TRPM2-S expression for TRPM2 depletion.
- Short hairpin RNA (shRNA) for Pyk2 knockdown.
- Western blotting to assess protein phosphorylation and expression.
- Analysis of mitochondrial and nuclear protein localization.
- Functional assays for cell viability and mitochondrial calcium uniporter (MCU) activity.
Main Results:
- TRPM2 depletion reduced Pyk2 and CREB phosphorylation and expression in doxorubicin-treated neuroblastoma cells.
- Pyk2 overexpression rescued cell viability in TRPM2-depleted cells.
- TRPM2 depletion impaired Src phosphorylation, a Pyk2 activator.
- Mitochondrial and nuclear levels of key proteins (Src, Pyk2, CREB) and MCU function were reduced in TRPM2-depleted cells.
- Wild-type TRPM2, but not a Ca2+-impermeable mutant, restored Pyk2 and CREB activation.
Conclusions:
- TRPM2 expression is protective in neuroblastoma, promoting viability through the Src-Pyk2-CREB-MCU signaling axis.
- This pathway is critical for maintaining mitochondrial function and cellular bioenergetics in neuroblastoma.
- Targeting TRPM2 may offer a therapeutic strategy for neuroblastoma treatment.
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