Literature DB >> 34245260

KCND2 variants associated with global developmental delay differentially impair Kv4.2 channel gating.

Yongqiang Zhang1,2, Georgios Tachtsidis1, Claudia Schob3, Mahmoud Koko4, Ulrike B S Hedrich4, Holger Lerche4, Johannes R Lemke5,6, Arie van Haeringen7, Claudia Ruivenkamp7, Trine Prescott8, Kristian Tveten8, Thorsten Gerstner9,10, Brianna Pruniski11, Stephanie DiTroia12, Grace E VanNoy12, Heidi L Rehm12, Heather McLaughlin13, Hanno J Bolz14,15, Ulrich Zechner14,16, Emily Bryant17, Tiffani McDonough17, Stefan Kindler3, Robert Bähring1.   

Abstract

Here, we report on six unrelated individuals, all presenting with early-onset global developmental delay, associated with impaired motor, speech and cognitive development, partly with developmental epileptic encephalopathy and physical dysmorphisms. All individuals carry heterozygous missense variants of KCND2, which encodes the voltage-gated potassium (Kv) channel α-subunit Kv4.2. The amino acid substitutions associated with the variants, p.(Glu323Lys) (E323K), p.(Pro403Ala) (P403A), p.(Val404Leu) (V404L) and p.(Val404Met) (V404M), affect sites known to be critical for channel gating. To unravel their likely pathogenicity, recombinant mutant channels were studied in the absence and presence of auxiliary β-subunits under two-electrode voltage clamp in Xenopus oocytes. All channel mutants exhibited slowed and incomplete macroscopic inactivation, and the P403A variant in addition slowed activation. Co-expression of KChIP2 or DPP6 augmented the functional expression of both wild-type and mutant channels; however, the auxiliary β-subunit-mediated gating modifications differed from wild type and among mutants. To simulate the putative setting in the affected individuals, heteromeric Kv4.2 channels (wild type + mutant) were studied as ternary complexes (containing both KChIP2 and DPP6). In the heteromeric ternary configuration, the E323K variant exhibited only marginal functional alterations compared to homomeric wild-type ternary, compatible with mild loss-of-function. By contrast, the P403A, V404L and V404M variants displayed strong gating impairment in the heteromeric ternary configuration, compatible with loss-of-function or gain-of-function. Our results support the etiological involvement of Kv4.2 channel gating impairment in early-onset monogenic global developmental delay. In addition, they suggest that gain-of-function mechanisms associated with a substitution of V404 increase epileptic seizure susceptibility.
© The Author(s) 2021. Published by Oxford University Press. All rights reserved. For Permissions, please email: journals.permissions@oup.com.

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Year:  2021        PMID: 34245260      PMCID: PMC8600029          DOI: 10.1093/hmg/ddab192

Source DB:  PubMed          Journal:  Hum Mol Genet        ISSN: 0964-6906            Impact factor:   5.121


  62 in total

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Authors:  Kenton J Swartz
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3.  Kainic acid-induced generalized seizures alter the regional hippocampal expression of the rat Kv4.2 potassium channel gene.

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Journal:  Neurosci Lett       Date:  1997-08-29       Impact factor: 3.046

Review 4.  A clinical approach to developmental delay and intellectual disability.

Authors:  Pradeep Vasudevan; Mohnish Suri
Journal:  Clin Med (Lond)       Date:  2017-12       Impact factor: 2.659

5.  Modulation of Kv4.2 channels by a peptide isolated from the venom of the giant bird-eating tarantula Theraphosa leblondi.

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6.  DECIPHER: Database of Chromosomal Imbalance and Phenotype in Humans Using Ensembl Resources.

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7.  Kv4.2 autism and epilepsy mutation enhances inactivation of closed channels but impairs access to inactivated state after opening.

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9.  Voltage sensor inactivation in potassium channels.

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Review 10.  Update on the implication of potassium channels in autism: K(+) channelautism spectrum disorder.

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2.  Clinical and Functional Study of a De Novo Variant in the PVP Motif of Kv1.1 Channel Associated with Epilepsy, Developmental Delay and Ataxia.

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