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Updated: Jun 1, 2025

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Published on: March 25, 2022
Altered cytoskeleton dynamics in patient-derived iPSC-based model of PCDH19 clustering epilepsy
Rossella Borghi1, Stefania Petrini2, Valentina Apollonio2
1Molecular Genetics and Functional Genomics, Bambino Gesù Children's Hospital, IRCCS, Rome, Italy.
Insights
Protocadherin 19 (PCDH19) dysfunction alters cytoskeletal dynamics, impacting microtubule stability and polymerization speed in neurons. This finding reveals new therapeutic targets for PCDH19-Clustering Epilepsy.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Protocadherin 19 (PCDH19) mutations cause PCDH19-Clustering Epilepsy (PCDH19-CE), a drug-resistant epilepsy.
- The precise mechanisms underlying PCDH19-CE pathogenesis remain unclear.
- Previous studies linked PCDH19 dysfunction to altered mitotic spindle orientation and accelerated neurogenesis.
Purpose of the Study:
- To investigate the impact of PCDH19 dysfunction on microfilament and microtubule organization.
- To analyze cytoskeletal dynamics in a disease model derived from patient-induced pluripotent stem cells (iPSCs).
Main Methods:
- Utilized patient-derived iPSCs to generate cortical neurons.
- Assessed cytoskeletal organization, including microfilaments (MFs) and microtubules (MTs).
- Employed live-imaging techniques like fluorescence recovery after photobleaching and EB3 comet assays.
Main Results:
- PCDH19-mutated iPSC-derived cortical neurons exhibited altered cytoskeletal dynamics.
- Increased levels of acetylated-tubulin indicated enhanced microtubule stability.
- Impaired plus-end polymerization speed of microtubules was observed in PCDH19-mutated neurons.
Conclusions:
- PCDH19 plays a crucial role in modulating cytoskeletal stability, particularly microtubules.
- PCDH19 dysfunction leads to significant alterations in cytoskeletal rearrangement beyond mitotic spindle formation.
- These findings identify novel therapeutic targets for PCDH19-CE.
Abstract:
Protocadherin 19 (PCDH19) is an adhesion molecule involved in cell-cell interaction whose mutations cause a drug-resistant form of epilepsy, named PCDH19-Clustering Epilepsy (PCDH19-CE, MIM 300088). The mechanism by which altered PCDH19 function drive pathogenesis is not yet fully understood. Our previous work showed that PCDH19 dysfunction is associated with altered orientation of the mitotic spindle and accelerated neurogenesis, suggesting a contribution of altered cytoskeleton organization in PCDH19-CE pathogenesis in the control of cell division and differentiation. Here, we evaluate the consequences of altered PCDH19 function on microfilaments and microtubules organization, using a disease model obtained from patient-derived induced pluripotent stem cells. We show that iPSC-derived cortical neurons are characterized by altered cytoskeletal dynamics, suggesting that this protocadherin has a role in modulating stability of MFs and MTs. Consistently, the levels of acetylated-tubulin, which is related with stable MTs, are significantly increased in cortical neurons derived from the patient's iPSCs compared to control cells, supporting the idea that the altered dynamics of the MTs depends on their increased stability. Finally, performing live-imaging experiments using fluorescence recovery after photobleaching and by monitoring GFP-tagged end binding protein 3 (EB3) "comets," we observe an impairment of the plus-end polymerization speed in PCDH19-mutated cortical neurons, therefore confirming the impaired MT dynamics. In addition to altering the mitotic spindle formation, the present data unveil that PCDH19 dysfunction leads to altered cytoskeletal rearrangement, providing therapeutic targets and pharmacological options to treat this disorder.
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