Outer Pore Collapse as a Potential Mechanism of Partial Loss of Pain in Nav1.7 M899I
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Complete loss of function of the voltage-gated sodium channel subtype Na v 1.7, encoded by SCN9A, results in congenital insensitivity to pain. Here, we investigate a previously identified variant, M899I, in which methionine at position 899 is substituted by isoleucine. This variant was originally described in a Chinese patient with loss of pain. We confirmed membrane expression of the mutant channel in HEK cells using extracellular HA-tagging; however, no sodium currents were detectable from the variant in patch-clamp recordings.
The M899I substitution is located within a tightly packed hydrophobic region of the pore module. Introducing the corresponding variant into Na v 1.2 and Na v 1.5 similarly abolished channel function, underscoring the high conservation and functional importance of this residue. To further investigate the underlying mechanism, we combined in-silico coarse-grained molecular dynamics simulations with in-vitro electrophysiological analysis. Our simulations predicted that the M899I substitution induces collapse of the outer pore, substantially reducing both pore radius and volume. Substitution with other hydrophobic residues was likewise predicted to alter pore geometry and, consequently, ion permeation to varying degrees. Whole-cell voltage-clamp recordings validated these predictions, with observed current densities closely correlating with the extent of pore collapse predicted in silico .
Together, our findings establish pore collapse as a mechanism underlying disease-relevant loss-of-function variants in Na v 1.7 and suggest that this principle may extend to other sodium channel subtypes. Moreover, our results demonstrate that in-silico molecular dynamics approaches can reliably predict structural and functional consequences of channel variants, as confirmed by in-vitro electrophysiological data.
Statement of Significance
Na v 1.7 is a key determinant of pain perception, and genetic variants in this channel are known to cause a spectrum of pain disorders. Understanding the structural and functional consequences of these variants is essential for elucidating the mechanisms that govern channel function.
Using complementary in silico and in vitro approaches, we demonstrate that the loss-of-function Na v 1.7 variant p.M899I, associated with congenital pain insensitivity, is expressed at the plasma membrane but induces alterations in pore geometry. Our findings underscore the critical role and high sensitivity of the pore module in ion conduction and suggest a broader pathogenic mechanism that may be shared among loss-of-function Na v channel variants affecting the outer pore region.