bioRxiv Science⌕ Search

Biology subjects

Santa Cruz, A.

Publications and source records attributed to Santa Cruz, A..

2 recordsLinked to original sources

PIP2 stabilizes Nav1.5 gating and links receptor signaling to cardiac late sodium current

The cardiac sodium channel NaV1.5 initiates each heartbeat by generating the rapid depolarizing upstroke of the action potential. Dysregulation of NaV1.5 gating can produce cardiac arrhythmias by slowing inactivation, increasing late sodium current (INa,L), and impairing electrical stability. Here, we show that phosphatidylinositol-4,5-bisphosphate (PIP2) is a critical membrane cofactor that stabilizes NaV1.5 gating. Acute PIP2 depletion in human iPSC-derived cardiomyocytes, produced by activation of endogenous AT1 receptors, activation of an engineered M3q-DREADD, or optogenetic recruitment of CRY2-pseudojanin, shifted voltage dependence, slowed fast inactivation, and increased INa,L. These effects were prevented by augmenting intracellular PIP2, required PLC activity when driven by Gq-coupled receptors, and were independent of downstream Ca{superscript 2} or PKC signaling. Unlike the skeletal-muscle isoform NaV1.4, NaV1.5 displayed PIP2-dependent shifts in both activation and steady-state inactivation, indicating isoform-specific lipid coupling. Induced-fit docking and molecular dynamics simulations identified a PIP2-interaction interface between the domain IV voltage sensor and pore that contains disease-linked residues. The disease-reported variant R1644C weakened and redistributed the predicted PIP2-contact network, produced elevated basal INa,L, showed enhanced sensitivity to PIP2 depletion, and caused an approximately 30-fold reduction in apparent functional PIP2 sensitivity in excised patches. These findings define a lipid-dependent mechanism that stabilizes NaV1.5 gating and reveal how physiological Gq signaling and inherited channel variants can converge on the channel-PIP2 axis to promote proarrhythmic late sodium current.

physiology↗

Orthosteric interactions with PIP2 activate TMEM16A channels

TMEM16A channels pass Ca2+-activated Cl- currents that drive a plethora of fundamental physiological processes. TMEM16A channels are activated by a rise in intracellular Ca2+ levels but also require interactions with the signaling phospholipid phosphatidylinositol 4,5-bisphosphate (PIP2) to gate open. Although PIP2 is essential for the activity of many types of ion channels, its precise binding site and role in channel gating remain poorly understood in most cases, limiting efforts to study channel dynamics and design targeted modulators. In this study, we identify the PIP2 binding interactions that govern TMEM16A gating and permeation. Using a combination of gating molecular dynamics (GMD) simulations and electrophysiological assays, we reveal how the 4 helix of TMEM16A interacts with both the phosphate headgroups and acyl chains of PIP2 to open an electrostatic ring within the channel and stabilize the extracellular opening of the Cl- conduction pathway. These findings provide key insights into the dynamic role of PIP2 in membrane protein function and shed light on the activation mechanism of TMEM16A. This work establishes a framework for rational targeting of TMEM16A in drug development, with potential therapeutic applications in a variety of diseases.

biophysics↗