PRRT2 as an auxiliary regulator of Nav channel slow inactivation

During sustained activity, voltage-gated sodium (Nav) channels enter a slow-inactivated state to limit cellular hyperexcitability. Disruption of this regulatory process has been implicated in skeletal, cardiac, and neurological disorders. While the kinetics of this process are well characterized, its endogenous modulators remain unclear. Here, we identify Proline-Rich Transmembrane Protein 2 (PRRT2) as a native regulator of Nav channel slow inactivation. We show that PRRT2 facilitates the entry of Nav channels into the slow-inactivated state and delays their recovery, a regulatory effect conserved from zebrafish to humans. PRRT2 forms molecular complexes with Nav channels both in vitro and in vivo. In the mouse cortex, PRRT2 deficiency impairs the slow inactivation of Nav channels in neuronal axons, leading to reduced cortical resilience in response to hyperexcitable challenges. Together, these findings establish PRRT2 as a physiological modulator of Nav channel slow inactivation and reveal a mechanism that supports cortical resilience to pathological perturbations.

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Publication Details

Journal
eLife
Published
2026-09-11
DOI
https://doi.org/10.7554/elife.109327.4
Primary Topic
Ion channel regulation and function
Type
article
Field-Weighted Citation Impact
0.00

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article

PRRT2 as an auxiliary regulator of Nav channel slow inactivation

Yu‐Xian Zhang, Guang Yang, Xuemei Wu, Zhi‐Ying Wu et al.
eLife
Ion channel regulation and function
article

PRRT2 as an auxiliary regulator of Nav channel slow inactivation

Yu‐Xian Zhang, Guang Yang, Xuemei Wu, Zhi‐Ying Wu, Bin Lu, Zhi‐Qi Xiong, Qiwu Xu, J. C. He, Ling Zhuang, Jing-Qiu Peng, Ke-Xian Li, Jing Zhang
article en

Abstract

During sustained activity, voltage-gated sodium (Nav) channels enter a slow-inactivated state to limit cellular hyperexcitability. Disruption of this regulatory process has been implicated in skeletal, cardiac, and neurological disorders. While the kinetics of this process are well characterized, its endogenous modulators remain unclear. Here, we identify Proline-Rich Transmembrane Protein 2 (PRRT2) as a native regulator of Nav channel slow inactivation. We show that PRRT2 facilitates the entry of Nav channels into the slow-inactivated state and delays their recovery, a regulatory effect conserved from zebrafish to humans. PRRT2 forms molecular complexes with Nav channels both in vitro and in vivo. In the mouse cortex, PRRT2 deficiency impairs the slow inactivation of Nav channels in neuronal axons, leading to reduced cortical resilience in response to hyperexcitable challenges. Together, these findings establish PRRT2 as a physiological modulator of Nav channel slow inactivation and reveal a mechanism that supports cortical resilience to pathological perturbations.

eLifeVol. 14
Fudan University (CN), ShanghaiTech University (CN), Center for Excellence in Brain Science and Intelligence Technology (CN), Zhongshan Hospital (CN), Second Affiliated Hospital of Zhejiang University (CN), Shanghai Center for Brain Science and Brain-Inspired Technology (CN), University of Chinese Academy of Sciences (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 18%
Ion channel regulation and function
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