Related Experiment Videos
Patient-Specific iPSC-Based Models of Huntington's Disease as a Tool to Study Store-Operated Calcium Entry Drug
Vladimir Vigont1, Evgeny Nekrasov2, Alexey Shalygin1
1Institute of Cytology, Russian Academy of Sciences, Saint Petersburg, Russia.
Abstract:
Neurodegenerative pathologies are among the most serious and socially significant problems of modern medicine, along with cardiovascular and oncological diseases. Several attempts have been made to prevent neuronal death using novel drugs targeted to the cell calcium signaling machinery, but the lack of adequate models for screening markedly impairs the development of relevant drugs. A potential breakthrough in this field is offered by the models of hereditary neurodegenerative pathologies based on endogenous expression of mutant proteins in neurons differentiated from patient-specific induced pluripotent stem cells (iPSCs). Here, we study specific features of store-operated calcium entry (SOCE) using an iPSCs-based model of Huntington's disease (HD) and analyze the pharmacological effects of a specific drug targeted to the calcium channels. We show that SOCE in gamma aminobutyric acid-ergic striatal medium spiny neurons (GABA MSNs) was mediated by currents through at least two different channel groups, ICRAC and ISOC. Both of these groups were upregulated in HD neurons compared with the wild-type neurons. Thapsigargin-induced intracellular calcium store depletion in GABA MSNs resulted in predominant activation of either ICRAC or ISOC. The potential anti-HD drug EVP4593, which was previously shown to have neuroprotective activity in different HD models, affected both ICRAC and ISOC.
Insights
This study reveals that store-operated calcium entry (SOCE) is upregulated in Huntington's disease (HD) neurons. A potential drug, EVP4593, impacts key calcium channels, offering hope for neurodegenerative disease treatments.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Neurodegenerative diseases, like Huntington's disease (HD), pose significant medical challenges.
- Developing effective treatments is hindered by a lack of adequate screening models.
- Patient-specific induced pluripotent stem cells (iPSCs) offer a promising avenue for disease modeling.
Purpose of the Study:
- To investigate store-operated calcium entry (SOCE) in an iPSC-based model of Huntington's disease (HD).
- To analyze the pharmacological effects of the drug EVP4593 on calcium channels in HD neurons.
Main Methods:
- Utilized patient-specific iPSCs to create a cellular model of Huntington's disease.
- Differentiated iPSCs into gamma aminobutyric acid-ergic striatal medium spiny neurons (GABA MSNs).
- Electrophysiological recordings were used to study SOCE and the effects of EVP4593.
Main Results:
- SOCE in GABA MSNs was mediated by two channel groups: ICRAC and ISOC.
- Both ICRAC and ISOC were found to be upregulated in HD neurons compared to wild-type.
- The drug EVP4593 demonstrated an effect on both ICRAC and ISOC currents.
Conclusions:
- HD neurons exhibit altered SOCE, characterized by upregulation of ICRAC and ISOC.
- The drug EVP4593 modulates these key calcium channels, suggesting therapeutic potential for HD.
- iPSC-based models provide valuable insights into neurodegenerative disease mechanisms and drug screening.