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Published on: July 30, 2014
Filamin A C-terminal fragment modulates Orai1 expression by inhibition of protein degradation
Alvaro Macias-Díaz1, Joel Nieto-Felipe1, Isaac Jardín1
1Department of Physiology (Cellular Physiology Research Group), Institute of Molecular Pathology Biomarkers (IMPB), University of Extremadura, Caceres, Spain.
Abstract:
Filamin A (FLNA) is an actin-binding protein that has been reported to interact with STIM1 modulating the activation of Orai1 channels. Cleaving of FLNA by calpain leads to a C-terminal fragment that is involved in a variety of functional and pathological events, including pro-oncogenic activity in different types of cancer. Here, we show that full-length FLNA is downregulated in samples from patients with colon cancer as well as in the adenocarcinoma cell line HT-29. This is consistent with an increased calpain-dependent FLNA cleaving with enhanced expression of the C-terminal FLNA fragment accompanied by enhanced expression of Orai1 and STIM1, as well as store-operated Ca2+ entry (SOCE). To further explore the mechanism underlying the enhancement of SOCE by the C-terminal FLNA fragment, we expressed in HEK-293 cells the C-terminal FLNA region encompassing repeats 16-24 (FLNA16-24 fragment), which enhanced both Orai1 and STIM1 as well as SOCE. Transfection of the FLNA16-24 fragment attenuates Orai1 and STIM1 protein degradation, and, specifically, abrogates Orai1α lysosomal degradation and retains this channel in the plasma membrane. However, the C-terminal FLNA fragment did not induce a detectable modification in Orai1β degradation. Due to the relevance of SOCE in cell physiology, our results provide evidence of a novel mechanism for the regulation of Ca2+ influx with relevant pathophysiological implications.NOTE & NOTEWORTHY FLNA cleaving by calpain has been observed in a variety of tumoral, including prostate and colorectal cancer cells, as well as in nontumoral cells, leading to a C-terminal fragment encompassing repeats 16-24. Expression of the FLNA16-24 fragment in HEK-293 cells enhances Orai1 and STIM1 expression, as well as SOCE, a mechanism mediated by attenuation of Orai1α and STIM1 degradation, providing evidence for a novel mechanism for the regulation of SOCE in normal and malignant cells.
Insights
Filamin A (FLNA) cleavage by calpain in colon cancer enhances a C-terminal fragment, boosting Orai1 and STIM1 expression and store-operated calcium entry (SOCE). This fragment stabilizes Orai1α and STIM1, revealing a new SOCE regulation mechanism.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Filamin A (FLNA) interacts with STIM1, modulating Orai1 channel activity.
- Calpain-mediated cleavage of FLNA generates a C-terminal fragment implicated in cancer.
- FLNA downregulation and C-terminal fragment generation are observed in colon cancer.
Purpose of the Study:
- Investigate the role of FLNA cleavage in colon cancer.
- Elucidate the mechanism by which the FLNA C-terminal fragment affects store-operated calcium entry (SOCE).
- Determine the impact of the FLNA C-terminal fragment on Orai1 and STIM1 expression and degradation.
Main Methods:
- Analysis of FLNA expression in colon cancer patient samples and cell lines.
- Expression of the FLNA C-terminal fragment (repeats 16-24) in HEK-293 cells.
- Assessment of Orai1 and STIM1 expression levels and degradation pathways.
- Measurement of store-operated calcium entry (SOCE) using calcium imaging techniques.
Main Results:
- Full-length FLNA is downregulated in colon cancer, with increased calpain-dependent cleavage.
- The FLNA C-terminal fragment enhances Orai1 and STIM1 expression and promotes SOCE.
- The FLNA C-terminal fragment specifically abrogates Orai1α lysosomal degradation, retaining it at the plasma membrane.
- STIM1 protein degradation is also attenuated by the FLNA C-terminal fragment.
Conclusions:
- FLNA cleavage by calpain plays a significant role in colon cancer pathogenesis.
- The FLNA C-terminal fragment is a novel regulator of SOCE by stabilizing Orai1α and STIM1.
- This mechanism offers new insights into calcium influx regulation in both normal and malignant cells.
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