The KCNA2 gene encodes the Kv1.2 channel, a mammalian Shaker-like voltage-gated K+ channel, whose defections are linked to neuronal deficiency and childhood epilepsy. Despite the important role in the kinetic behavior of the channel, the inactivation remained hereby elusive. Here, we studied the Kv1.2 inactivation via a combined simulation/network theoretical approach that revealed two distinct pathways coupling the Voltage Sensor Domain and the Pore Domain to the Selectivity Filter. Additionally, we mutated some residues implicated in these paths and we explained microscopically their function in the inactivation mechanism by computing a contact map. Interestingly, some pathological residues shown to impair the inactivation lay on the paths. In summary, the presented results suggest two pathways as the possible molecular basis of the inactivation mechanism in the Kv1.2 channel. These pathways are consistent with earlier mutational studies and known mutations involved in neuronal channelopathies.

Exploring Kv1.2 channel inactivation through MD simulations and network analysis / Costa, F.; Guardiani, C.; Giacomello, A.. - In: FRONTIERS IN MOLECULAR BIOSCIENCES. - ISSN 2296-889X. - 8:(2021). [10.3389/fmolb.2021.784276]

Exploring Kv1.2 channel inactivation through MD simulations and network analysis

Costa F.
Primo
;
Guardiani C.
Secondo
;
Giacomello A.
Ultimo
2021

Abstract

The KCNA2 gene encodes the Kv1.2 channel, a mammalian Shaker-like voltage-gated K+ channel, whose defections are linked to neuronal deficiency and childhood epilepsy. Despite the important role in the kinetic behavior of the channel, the inactivation remained hereby elusive. Here, we studied the Kv1.2 inactivation via a combined simulation/network theoretical approach that revealed two distinct pathways coupling the Voltage Sensor Domain and the Pore Domain to the Selectivity Filter. Additionally, we mutated some residues implicated in these paths and we explained microscopically their function in the inactivation mechanism by computing a contact map. Interestingly, some pathological residues shown to impair the inactivation lay on the paths. In summary, the presented results suggest two pathways as the possible molecular basis of the inactivation mechanism in the Kv1.2 channel. These pathways are consistent with earlier mutational studies and known mutations involved in neuronal channelopathies.
2021
C-type inactivation; Kv1.2; molecular dynamics; network analysis; shaker
01 Pubblicazione su rivista::01a Articolo in rivista
Exploring Kv1.2 channel inactivation through MD simulations and network analysis / Costa, F.; Guardiani, C.; Giacomello, A.. - In: FRONTIERS IN MOLECULAR BIOSCIENCES. - ISSN 2296-889X. - 8:(2021). [10.3389/fmolb.2021.784276]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1614080
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