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Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation

Neuronal hyperexcitability is a hallmark of seizures. It has been recently shown in rodent models of seizures that microglia, the brain’s resident immune cells, can respond to and modulate neuronal excitability. However, how human microglia interacts with human neurons to regulate hyperexcitability...

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Autores principales: Que, Zhefu, Olivero-Acosta, Maria I., Chen, Ian, Zhang, Jingliang, Wettschurack, Kyle, Wu, Jiaxiang, Xiao, Tiange, Otterbacher, C. Max, Wang, Muhan, Harlow, Hope, Cui, Ningren, Chen, Xiaoling, Deming, Brody, Halurkar, Manasi, Zhao, Yuanrui, Rochet, Jean-Christophe, Xu, Ranjie, Brewster, Amy L., Wu, Long-jun, Yuan, Chongli, Skarnes, William C., Yang, Yang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634902/
https://www.ncbi.nlm.nih.gov/pubmed/37961213
http://dx.doi.org/10.1101/2023.10.26.563426
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author Que, Zhefu
Olivero-Acosta, Maria I.
Chen, Ian
Zhang, Jingliang
Wettschurack, Kyle
Wu, Jiaxiang
Xiao, Tiange
Otterbacher, C. Max
Wang, Muhan
Harlow, Hope
Cui, Ningren
Chen, Xiaoling
Deming, Brody
Halurkar, Manasi
Zhao, Yuanrui
Rochet, Jean-Christophe
Xu, Ranjie
Brewster, Amy L.
Wu, Long-jun
Yuan, Chongli
Skarnes, William C.
Yang, Yang
author_facet Que, Zhefu
Olivero-Acosta, Maria I.
Chen, Ian
Zhang, Jingliang
Wettschurack, Kyle
Wu, Jiaxiang
Xiao, Tiange
Otterbacher, C. Max
Wang, Muhan
Harlow, Hope
Cui, Ningren
Chen, Xiaoling
Deming, Brody
Halurkar, Manasi
Zhao, Yuanrui
Rochet, Jean-Christophe
Xu, Ranjie
Brewster, Amy L.
Wu, Long-jun
Yuan, Chongli
Skarnes, William C.
Yang, Yang
author_sort Que, Zhefu
collection PubMed
description Neuronal hyperexcitability is a hallmark of seizures. It has been recently shown in rodent models of seizures that microglia, the brain’s resident immune cells, can respond to and modulate neuronal excitability. However, how human microglia interacts with human neurons to regulate hyperexcitability mediated by epilepsy-causing genetic mutation found in human patients remains unknown. The SCN2A genetic locus is responsible for encoding the voltage-gated sodium channel Nav1.2, recognized as one of the leading contributors to monogenic epilepsies. Previously, we demonstrated that the recurring Nav1.2-L1342P mutation identified in patients with epilepsy leads to hyperexcitability in a hiPSC-derived cortical neuron model from a male donor. While microglia play an important role in the brain, these cells originate from a different lineage (yolk sac) and thus are not naturally present in hiPSCs-derived neuronal culture. To study how microglia respond to diseased neurons and influence neuronal excitability, we established a co-culture model comprising hiPSC-derived neurons and microglia. We found that microglia display altered morphology with increased branch length and enhanced calcium signal when co-cultured with neurons carrying the Nav1.2-L1342P mutation. Moreover, the presence of microglia significantly lowers the action potential firing of neurons carrying the mutation. Interestingly, we further demonstrated that the current density of sodium channels in neurons carrying the epilepsy-associated mutation was reduced in the presence of microglia. Taken together, our work reveals a critical role of human iPSCs-derived microglia in sensing and dampening hyperexcitability mediated by an epilepsy-causing mutation present in human neurons, highlighting the importance of neuron-microglia interactions in human pathophysiology.
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spelling pubmed-106349022023-11-13 Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation Que, Zhefu Olivero-Acosta, Maria I. Chen, Ian Zhang, Jingliang Wettschurack, Kyle Wu, Jiaxiang Xiao, Tiange Otterbacher, C. Max Wang, Muhan Harlow, Hope Cui, Ningren Chen, Xiaoling Deming, Brody Halurkar, Manasi Zhao, Yuanrui Rochet, Jean-Christophe Xu, Ranjie Brewster, Amy L. Wu, Long-jun Yuan, Chongli Skarnes, William C. Yang, Yang bioRxiv Article Neuronal hyperexcitability is a hallmark of seizures. It has been recently shown in rodent models of seizures that microglia, the brain’s resident immune cells, can respond to and modulate neuronal excitability. However, how human microglia interacts with human neurons to regulate hyperexcitability mediated by epilepsy-causing genetic mutation found in human patients remains unknown. The SCN2A genetic locus is responsible for encoding the voltage-gated sodium channel Nav1.2, recognized as one of the leading contributors to monogenic epilepsies. Previously, we demonstrated that the recurring Nav1.2-L1342P mutation identified in patients with epilepsy leads to hyperexcitability in a hiPSC-derived cortical neuron model from a male donor. While microglia play an important role in the brain, these cells originate from a different lineage (yolk sac) and thus are not naturally present in hiPSCs-derived neuronal culture. To study how microglia respond to diseased neurons and influence neuronal excitability, we established a co-culture model comprising hiPSC-derived neurons and microglia. We found that microglia display altered morphology with increased branch length and enhanced calcium signal when co-cultured with neurons carrying the Nav1.2-L1342P mutation. Moreover, the presence of microglia significantly lowers the action potential firing of neurons carrying the mutation. Interestingly, we further demonstrated that the current density of sodium channels in neurons carrying the epilepsy-associated mutation was reduced in the presence of microglia. Taken together, our work reveals a critical role of human iPSCs-derived microglia in sensing and dampening hyperexcitability mediated by an epilepsy-causing mutation present in human neurons, highlighting the importance of neuron-microglia interactions in human pathophysiology. Cold Spring Harbor Laboratory 2023-10-31 /pmc/articles/PMC10634902/ /pubmed/37961213 http://dx.doi.org/10.1101/2023.10.26.563426 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Que, Zhefu
Olivero-Acosta, Maria I.
Chen, Ian
Zhang, Jingliang
Wettschurack, Kyle
Wu, Jiaxiang
Xiao, Tiange
Otterbacher, C. Max
Wang, Muhan
Harlow, Hope
Cui, Ningren
Chen, Xiaoling
Deming, Brody
Halurkar, Manasi
Zhao, Yuanrui
Rochet, Jean-Christophe
Xu, Ranjie
Brewster, Amy L.
Wu, Long-jun
Yuan, Chongli
Skarnes, William C.
Yang, Yang
Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation
title Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation
title_full Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation
title_fullStr Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation
title_full_unstemmed Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation
title_short Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated SCN2A-L1342P mutation
title_sort human ipsc-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated scn2a-l1342p mutation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634902/
https://www.ncbi.nlm.nih.gov/pubmed/37961213
http://dx.doi.org/10.1101/2023.10.26.563426
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