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A new concept: Aβ1-42 generates a hyperfunctional proteolytic NCX3 fragment that delays caspase-12 activation and
Anna Pannaccione1, Agnese Secondo, Pasquale Molinaro
1Division of Pharmacology, Department of Neuroscience, National Institute of Neuroscience, School of Medicine, "Federico II" University of Naples, 80131 Naples, Italy.
Abstract:
Although the amyloid-β(1-42) (Aβ(1-42)) peptide involved in Alzheimer's disease is known to cause a dysregulation of intracellular Ca(2+) homeostasis, its molecular mechanisms still remain unclear. We report that the extracellular-dependent early increase (30 min) in intracellular calcium concentration ([Ca(2+)](i)), following Aβ(1-42) exposure, caused the activation of calpain that in turn elicited a cleavage of the Na(+)/Ca(2+) exchanger isoform NCX3. This cleavage generated a hyperfunctional form of the antiporter and increased NCX currents (I(NCX)) in the reverse mode of operation. Interestingly, this NCX3 calpain-dependent cleavage was essential for the Aβ(1-42)-dependent I(NCX) increase. Indeed, the calpain inhibitor calpeptin and the removal of the calpain-cleavage recognition sequence, via site-directed mutagenesis, abolished this effect. Moreover, the enhanced NCX3 activity was paralleled by an increased Ca(2+) content in the endoplasmic reticulum (ER) stores. Remarkably, the silencing in PC-12 cells or the knocking-out in mice of the ncx3 gene prevented the enhancement of both I(NCX) and Ca(2+) content in ER stores, suggesting that NCX3 was involved in the increase of ER Ca(2+) content stimulated by Aβ(1-42). By contrast, in the late phase (72 h), when the NCX3 proteolytic cleavage abruptly ceased, the occurrence of a parallel reduction in ER Ca(2+) content triggered ER stress, as revealed by caspase-12 activation. Concomitantly, the late increase in [Ca(2+)](i) coincided with neuronal death. Interestingly, NCX3 silencing caused an earlier activation of Aβ(1-42)-induced caspase-12. Indeed, in NCX3-silenced neurons, Aβ(1-42) exposure hastened caspase-dependent apoptosis, thus reinforcing neuronal cell death. These results suggest that Aβ(1-42), through Ca(2+)-dependent calpain activation, generates a hyperfunctional form of NCX3 that, by increasing Ca(2+) content into ER, delays caspase-12 activation and thus neuronal death.
Insights
Alzheimer's disease peptide Aβ(1-42) activates calpain, leading to a hyperfunctional Na+/Ca2+ exchanger (NCX3) that initially protects neurons by increasing ER calcium. Later, reduced ER calcium triggers cell death.
Area of Science:
- Neuroscience
- Molecular Biology
- Cellular Physiology
Background:
- Alzheimer's disease (AD) involves amyloid-β(1-42) (Aβ(1-42)) peptide and disrupted intracellular calcium (Ca2+) homeostasis.
- The precise molecular mechanisms linking Aβ(1-42) to calcium dysregulation remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms by which Aβ(1-42) disrupts intracellular Ca2+ homeostasis.
- To investigate the role of the Na+/Ca2+ exchanger isoform 3 (NCX3) in Aβ(1-42)-induced cellular responses.
Main Methods:
- Exposure of cells (PC-12) and mice to Aβ(1-42).
- Measurement of intracellular calcium concentration ([Ca2+]i) and NCX currents (INCX).
- Use of calpain inhibitors (calpeptin) and site-directed mutagenesis.
- Gene silencing (ncx3) and gene knockout (NCX3) in relevant models.
- Assessment of endoplasmic reticulum (ER) Ca2+ content and caspase-12 activation.
Main Results:
- Aβ(1-42) exposure rapidly increased [Ca2+]i, activating calpain.
- Calpain cleaved NCX3, generating a hyperfunctional form that enhanced reverse mode NCX currents (INCX) and increased ER Ca2+ content.
- NCX3 silencing/knockout prevented Aβ(1-42)-induced INCX and ER Ca2+ increases.
- Later, reduced ER Ca2+ content triggered ER stress (caspase-12 activation) and neuronal death.
- NCX3 silencing accelerated Aβ(1-42)-induced apoptosis.
Conclusions:
- Aβ(1-42) induces a protective, albeit temporary, cellular response via calpain-mediated NCX3 hyperfunction and ER Ca2+ loading.
- The subsequent depletion of ER Ca2+ contributes to ER stress and neuronal death in Alzheimer's disease.
- NCX3 plays a critical role in modulating calcium homeostasis and neuronal survival during Aβ(1-42) exposure.
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