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Naked mole-rat cortical neurons are resistant to acid-induced cell death

Zoé Husson, Ewan St John Smith
doi: https://doi.org/10.1101/260901
Zoé Husson
1Department of Pharmacology, University of Cambridge, Tennis Court Road CB2 1PD, United Kingdom
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Ewan St John Smith
1Department of Pharmacology, University of Cambridge, Tennis Court Road CB2 1PD, United Kingdom
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Abstract

Regulation of brain pH is a critical homeostatic process and changes in brain pH modulate various ion channels and receptors and thus neuronal excitability. Tissue acidosis, resulting from hypoxia or hypercapnia, can activate various proteins and ion channels, among which acid-sensing ion channels (ASICs) a family of primarily Na+ permeable ion channels, which alongside classical excitotoxicity causes neuronal death. Naked mole-rats (NMRs, Heterocephalus glaber) are long-lived, fossorial, eusocial rodents that display remarkable behavioral/cellular hypoxia and hypercapnia resistance. In the central nervous system, ASIC subunit expression is similar between mouse and NMR with the exception of much lower expression of ASIC4 throughout the NMR brain. However, ASIC function and neuronal sensitivity to sustained acidosis has not been examined in the NMR brain. Here, we show with whole-cell patch-clamp electrophysiology of cultured NMR and mouse cortical and hippocampal neurons that NMR neurons have smaller voltage-gated Na+ channel currents and more hyperpolarized resting membrane potentials. We further demonstrate that acid-mediated currents in NMR neurons are of smaller magnitude than in mouse, and that all currents in both species are fully blocked by the ASIC antagonist benzamil. We further demonstrate that NMR neurons show greater resistance to acid-induced cell death than mouse neurons. In summary, NMR neurons show significant cellular resistance to acidotoxicity compared to mouse neurons, contributing factors likely to be smaller ASIC-mediated currents and reduced NaV activity.

  • Abbreviations

    ASIC
    acid-sensing ion channel
    CNS
    central nervous system
    DRG
    dorsal root ganglion
    NaV
    voltage-gated Na+ channel
    NMR
    naked mole-rat
    TTX
    tetrodotoxin
  • Copyright 
    The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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    Posted April 15, 2018.
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    Naked mole-rat cortical neurons are resistant to acid-induced cell death
    Zoé Husson, Ewan St John Smith
    bioRxiv 260901; doi: https://doi.org/10.1101/260901
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    Naked mole-rat cortical neurons are resistant to acid-induced cell death
    Zoé Husson, Ewan St John Smith
    bioRxiv 260901; doi: https://doi.org/10.1101/260901

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