Downregulation of the silent potassium channel Kv8.1 increases motor neuron vulnerability in amyotrophic lateral sclerosis

Author:

Huang Xuan12,Lee Seungkyu12,Chen Kuchuan12,Kawaguchi Riki3,Wiskow Ole4,Ghosh Sulagna4,Frost Devlin1,Perrault Laura1,Pandey Roshan12,Klim Joseph R4,Boivin Bruno1,Hermawan Crystal1,Livak Kenneth J5,Geschwind Daniel H3ORCID,Wainger Brian J6,Eggan Kevin C4,Bean Bruce P2,Woolf Clifford J12ORCID

Affiliation:

1. F.M. Kirby Neurobiology Research Center, Boston Children’s Hospital , Boston, MA 02115 , USA

2. Department of Neurobiology, Harvard Medical School , Boston, MA 02115 , USA

3. Department of Psychiatry and Semel Institute for Neuroscience and Human Behavior, David Geffen School of Medicine, University of California Los Angeles , Los Angeles, CA 90095 , USA

4. Department of Stem Cell and Regenerative Biology and Department of Molecular and Cellular Biology, Harvard Stem Cell Institute , Cambridge, MA 02138 , USA

5. Translational Immunogenomics Lab, Dana-Farber Cancer Institute , Boston, MA 02215 , USA

6. Department of Neurology, Mass General Brigham and Harvard Medical School , Boston, MA 02114 , USA

Abstract

Abstract While voltage-gated potassium channels have critical roles in controlling neuronal excitability, they also have non-ion–conducting functions. Kv8.1, encoded by the KCNV1 gene, is a ‘silent’ ion channel subunit whose biological role is complex since Kv8.1 subunits do not form functional homotetramers but assemble with Kv2 to modify its ion channel properties. We profiled changes in ion channel expression in amyotrophic lateral sclerosis patient–derived motor neurons carrying a superoxide dismutase 1(A4V) mutation to identify what drives their hyperexcitability. A major change identified was a substantial reduction of KCNV1/Kv8.1 expression, which was also observed in patient-derived neurons with C9orf72 expansion. We then studied the effect of reducing KCNV1/Kv8.1 expression in healthy motor neurons and found it did not change neuronal firing but increased vulnerability to cell death. A transcriptomic analysis revealed dysregulated metabolism and lipid/protein transport pathways in KCNV1/Kv8.1-deficient motor neurons. The increased neuronal vulnerability produced by the loss of KCNV1/Kv8.1 was rescued by knocking down Kv2.2, suggesting a potential Kv2.2-dependent downstream mechanism in cell death. Our study reveals, therefore, unsuspected and distinct roles of Kv8.1 and Kv2.2 in amyotrophic lateral sclerosis–related neurodegeneration.

Funder

Target ALS

ALS Alliance

Harvard Brian Science Initiative

ALS Association

Department of Defense

Adelson Medical Research Foundation

Publisher

Oxford University Press (OUP)

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