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Kir2.2 p.Thr140Met: a genetic susceptibility to sporadic periodic paralysis
Chunxiang Fan1, Marius Kuhn2, Alexander Pepler Mbiol3
1Division of Neurophysiology, Ulm University, Germany.
Introduction:
Periodic paralyses (PP) are recurrent episodes of flaccid limb muscle weakness. Next to autosomal dominant forms, sporadic PP (SPP) cases are known but their genetics are unclear.
Methods:
In a patient with hypokalemic SPP, we performed exome sequencing to identify a candidate gene. We sequenced this gene in 263 unrelated PP patients without any known causative mutations. Then we performed functional analysis of all variants found and molecular modelling for interpretation.
Results:
Exome sequencing in the proband yielded three heterozygous variants predicted to be linked to disease. These encoded p.Thr140Met in the Kir2.2 potassium channel, p.Asp229Asn in protein kinase C theta, and p.Thr15943Ile in titin. Since all hitherto known causative PP genes code for ion channels, we studied the Kir2.2-encoding gene, KCNJ12, for involvement in PP pathogenesis. KCNJ12 screening in 263 PP patients revealed three further variants, each in a single individual and coding for p.Gly419Ser, p.Cys75Tyr, and p.Ile283Val. All four Kir2.2 variants were functionally expressed. Only p.Thr140Met displayed relevant functional alterations, i.e. homo-tetrameric channels produced almost no current, and hetero-tetrameric channels suppressed co-expressed wildtype Kir2.1 in a dominant-negative manner. Molecular modelling showed Kir2.2 p.Thr140Met to reduce movement of potassium ions towards binding sites in the hetero-tetramer pore compatible with a reduced maximal current. MD simulations revealed loss of hydrogen bonding with the p.Thr140Met substitution.
Discussion:
The electrophysiological findings of p.Thr140Met are similar to those found in thyrotoxic PP caused by Kir2.6 mutations. Also, the homologous Thr140 residue is mutated in Kir2.6. This supports the idea that Kir2.2 p.Thr140Met conveys susceptibility to SPP and should be included in genetic screening.
Insights
Genetic analysis identified a novel Kir2.2 potassium channel mutation, p.Thr140Met, linked to sporadic periodic paralysis (SPP). This finding offers new insights into SPP pathogenesis and aids genetic screening for this rare disorder.
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- Periodic paralysis (PP) encompasses recurrent episodes of flaccid limb muscle weakness.
- While autosomal dominant forms are recognized, the genetic underpinnings of sporadic PP (SPP) remain largely unknown.
Purpose of the Study:
- To investigate the genetic basis of sporadic hypokalemic periodic paralysis (SPP).
- To identify and functionally characterize novel genetic variants associated with SPP.
Main Methods:
- Exome sequencing was performed on a patient with hypokalemic SPP to identify candidate genes.
- The identified candidate gene, KCNJ12, encoding the Kir2.2 potassium channel, was sequenced in 263 unrelated PP patients.
- Functional expression studies and molecular modeling were conducted to assess the pathogenicity of identified variants.
Main Results:
- Exome sequencing revealed three potentially disease-linked variants, including p.Thr140Met in Kir2.2.
- KCNJ12 screening identified three additional variants in PP patients, but only p.Thr140Met demonstrated significant functional alterations.
- The Kir2.2 p.Thr140Met variant exhibited severely reduced channel currents and dominant-negative inhibition of wild-type Kir2.1, suggesting impaired potassium ion transport.
Conclusions:
- The functional and molecular modeling data for Kir2.2 p.Thr140Met are consistent with findings in thyrotoxic PP linked to Kir2.6 mutations.
- The p.Thr140Met mutation in Kir2.2 confers susceptibility to SPP.
- Genetic screening for KCNJ12 variants, particularly p.Thr140Met, is recommended for patients with SPP.
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