A novel TRPM2 isoform inhibits calcium influx and susceptibility to cell death
Wenyi Zhang1, Xin Chu, Qin Tong
1Henry Hood Research Program, Sigfried and Janet Weis Center for Research, The Geisinger Clinic, 100 North Academy Avenue, Danville, PA 17822, USA.
Abstract:
TRPM2 is a Ca(2+)-permeable channel that is activated by oxidative stress and confers susceptibility to cell death. Here, an isoform of TRPM2 was identified in normal human bone marrow that consists of the TRPM2 N terminus and the first two predicted transmembrane domains. Because of alternative splicing, a stop codon (TAG) is located at the splice junction between exons 16 and 17, resulting in deletion of the four C-terminal transmembrane domains, the putative calcium-permeable pore region, and the entire C terminus. This splice variant was found in other hematopoietic cells including human burst forming unit-erythroid-derived erythroblasts and TF-1 erythroleukemia cells. Endogenous expression of both the short form of TRPM2 (TRPM2-S) and the full length (TRPM2-L) was determined by reverse transcriptase-PCR, and localization of endogenous TRPM2 to the plasma membrane was demonstrated by confocal microscopy. Heterologous expression of TRPM2-S in HEK 293T cells demonstrated similar membrane localization as TRPM2-L, and coexpression of TRPM2-S did not alter the subcellular localization of TRPM2-L. The direct interaction of TRPM2-S with TRPM2-L was demonstrated with immunoprecipitation. H(2)O(2) induced calcium influx through TRPM2-L expressed in 293T cells. Coexpression of TRPM2-S suppressed H(2)O(2)-induced calcium influx through TRPM2-L. Furthermore, expression of TRPM2-S inhibited susceptibility to cell death and onset of apoptosis induced by H(2)O(2) in cells expressing TRPM2-L. These data demonstrate that TRPM2-S is an important physiologic isoform of TRPM2 and modulates channel activity and induction of cell death by oxidative stress through TRPM2-L.
Insights
A new short form of TRPM2 (TRPM2-S) was found in human bone marrow. TRPM2-S modulates the activity of full-length TRPM2 (TRPM2-L), reducing calcium influx and cell death caused by oxidative stress.
Area of Science:
- Molecular Biology
- Cell Biology
- Ion Channels
Background:
- TRPM2 (Transient Receptor Potential Melastatin 2) is a calcium-permeable channel.
- TRPM2 activation by oxidative stress leads to cell death.
- The full-length TRPM2 channel (TRPM2-L) structure and function are partially understood.
Purpose of the Study:
- To identify and characterize novel isoforms of TRPM2.
- To investigate the functional role of a newly identified TRPM2 splice variant.
- To determine the interaction between TRPM2 isoforms and their effect on oxidative stress-induced cell death.
Main Methods:
- Identification of TRPM2 splice variants using RT-PCR.
- Confocal microscopy for protein localization.
- Heterologous expression in HEK 293T cells.
- Immunoprecipitation to assess protein interactions.
- Calcium influx measurements.
- Assessment of cell death and apoptosis assays.
Main Results:
- A short isoform of TRPM2 (TRPM2-S), lacking C-terminal domains, was identified in human bone marrow and other hematopoietic cells.
- TRPM2-S localizes to the plasma membrane and directly interacts with TRPM2-L.
- Coexpression of TRPM2-S suppressed hydrogen peroxide (H2O2)-induced calcium influx through TRPM2-L.
- TRPM2-S expression inhibited H2O2-induced cell death and apoptosis in cells expressing TRPM2-L.
Conclusions:
- TRPM2-S is a physiologically relevant isoform of TRPM2.
- TRPM2-S acts as a negative modulator of TRPM2-L channel activity.
- TRPM2-S plays a protective role against oxidative stress-induced cell death by regulating TRPM2-L function.
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