Literature DB >> 32506846

Osmotic Response of Dorsal Root Ganglion Neurons Expressing Wild-Type and Mutant KCC3 Transporters.

Bianca Flores1, Eric Delpire2.   

Abstract

BACKGROUND/AIMS: Loss-of-Function (LOF) of the potassium chloride cotransporter 3 (KCC3) results in hereditary sensorimotor neuropathy with Agenesis of the Corpus Callosum (HSMN/ACC). Our KCC3 knockout mouse recapitulated axonal swelling and tissue vacuolization observed in autopsies of individuals with HSMN/ACC. We previously documented the first human case of a KCC3 gain-of-function (GOF) in which the patient also exhibited severe peripheral neuropathy. Furthermore, the GOF mouse model exhibited shrunken axons implicating the cotransporter in cell volume homeostasis. It is unclear how both KCC3 LOF and GOF lead to peripheral neuropathy. Thus, we sought to study differences in cell volume regulation of dorsal root ganglion neurons isolated from different mouse lines.
METHODS: Using wide-field microscopy, we measured calcein fluorescence intensity through pinhole measurements at the center of cells and compared cell swelling and cell volume regulation/recovery of wild-type, LOF, and GOF dorsal root ganglia neurons, as well as wild-type neurons treated with a KCC-specific inhibitor.
RESULTS: In contrast to control neurons that swell and volume regulate under a hypotonic challenge, neurons lacking KCC3 swell but fail to volume regulate. Similar data were observed in wild-type neurons treated with the KCC inhibitor. We also show that sensory neurons expressing a constitutively active KCC3 exhibited a blunted swelling phase compared to wild-type neurons, questioning the purely osmotic nature of the swelling phase.
CONCLUSION: These findings demonstrate the integral role of KCC3 in cell volume homeostasis and support the idea that cell volume homeostasis is critical to the health of peripheral nerves. © Copyright by the Author(s). Published by Cell Physiol Biochem Press.

Entities:  

Keywords:  K-Cl cotransport; Cell Volume regulation; Regulatory Volume Decrease; Dorsal Root Ganglion neurons; Peripheral neuropathy

Mesh:

Substances:

Year:  2020        PMID: 32506846      PMCID: PMC7393635          DOI: 10.33594/000000241

Source DB:  PubMed          Journal:  Cell Physiol Biochem        ISSN: 1015-8987


  31 in total

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Journal:  Am J Physiol       Date:  1992-11

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Journal:  Neuroscience       Date:  1995-11       Impact factor: 3.590

3.  Loss of neuronal potassium/chloride cotransporter 3 (KCC3) is responsible for the degenerative phenotype in a conditional mouse model of hereditary motor and sensory neuropathy associated with agenesis of the corpus callosum.

Authors:  Masoud Shekarabi; Randal X Moldrich; Sarah Rasheed; Adéle Salin-Cantegrel; Janet Laganière; Daniel Rochefort; Pascale Hince; Karine Huot; Rébecca Gaudet; Nyoman Kurniawan; Susana G Sotocinal; Jennifer Ritchie; Patrick A Dion; Jeffrey S Mogil; Linda J Richards; Guy A Rouleau
Journal:  J Neurosci       Date:  2012-03-14       Impact factor: 6.167

4.  KCC3 axonopathy: neuropathological features in the central and peripheral nervous system.

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5.  Cotransport of K+, Cl- and H2O by membrane proteins from choroid plexus epithelium of Necturus maculosus.

Authors:  T Zeuthen
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6.  Fine mapping the candidate region for peripheral neuropathy with or without agenesis of the corpus callosum in the French Canadian population.

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Journal:  Science       Date:  2019-10-25       Impact factor: 63.714

Review 9.  A role for KCC3 in maintaining cell volume of peripheral nerve fibers.

Authors:  Bianca Flores; Cara C Schornak; Eric Delpire
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10.  Cryo-EM structures of DrNKCC1 and hKCC1: a new milestone in the physiology of cation-chloride cotransporters.

Authors:  Eric Delpire; Jiangtao Guo
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  2 in total

1.  Temporal manipulation of KCC3 expression in juvenile or adult mice suggests irreversible developmental deficit in hereditary motor sensory neuropathy with agenesis of the corpus callosum.

Authors:  Bianca Flores; Eric Delpire
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Review 2.  Advances in the development of novel compounds targeting cation-chloride cotransporter physiology.

Authors:  Eric Delpire
Journal:  Am J Physiol Cell Physiol       Date:  2020-12-23       Impact factor: 5.282

  2 in total

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