Identification and functional characterization of malignant hyperthermia mutation T1354S in the outer pore of the Cavα1S-subunit

Author:

Pirone Antonella123,Schredelseker Johann1,Tuluc Petronel4,Gravino Elvira5,Fortunato Giuliana23,Flucher Bernhard E.4,Carsana Antonella23,Salvatore Francesco236,Grabner Manfred1

Affiliation:

1. Department of Medical Genetics, Molecular and Clinical Pharmacology, and

2. Dipartimento di Biochimica e Biotecnologie Mediche and

3. CEINGE–Biotecnologie Avanzate, Napoli, Italy; and

4. Department of Physiology and Medical Physics, Innsbruck Medical University, Innsbruck, Austria;

5. Dipartimento di Scienze Chirurgiche, Anestesiologiche, Rianimatorie e dell'Emergenza, Università di Napoli “Federico II,” Napoli, Italy;

6. Istituto Di Ricovero e Cura a Carattere Scientifico–Fondazione SDN, Napoli, Italy

Abstract

To identify the genetic locus responsible for malignant hyperthermia susceptibility (MHS) in an Italian family, we performed linkage analysis to recognized MHS loci. All MHS individuals showed cosegregation of informative markers close to the voltage-dependent Ca2+channel (CaV) α1S-subunit gene (CACNA1S) with logarithm of odds (LOD)-score values that matched or approached the maximal possible value for this family. This is particularly interesting, because so far MHS was mapped to >178 different positions on the ryanodine receptor (RYR1) gene but only to two on CACNA1S. Sequence analysis of CACNA1S revealed a c.4060A>T transversion resulting in amino acid exchange T1354S in the IVS5-S6 extracellular pore-loop region of CaVα1Sin all MHS subjects of the family but not in 268 control subjects. To investigate the impact of mutation T1354S on the assembly and function of the excitation-contraction coupling apparatus, we expressed GFP-tagged α1ST1354S in dysgenic (α1S-null) myotubes. Whole cell patch-clamp analysis revealed that α1ST1354S produced significantly faster activation of L-type Ca2+currents upon 200-ms depolarizing test pulses compared with wild-type GFP-α1S1SWT). In addition, α1ST1354S-expressing myotubes showed a tendency to increased sensitivity for caffeine-induced Ca2+release and to larger action-potential-induced intracellular Ca2+transients under low (≤2 mM) caffeine concentrations compared with α1SWT. Thus our data suggest that an additional influx of Ca2+due to faster activation of the α1ST1354S L-type Ca2+current, in concert with higher caffeine sensitivity of Ca2+release, leads to elevated muscle contraction under pharmacological trigger, which might be sufficient to explain the MHS phenotype.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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