Acta Pharmaceutica Sinica B
|
2026, 16(7): 4442-4458
• Original articles •
Acquired pharmacoresistance in temporal lobe epilepsy is driven by Nav1.6-mediated subicular hyperexcitability
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Yuanzhi Yang1, Menghan Li1, Minjuan Sun1, Shuo Zhang1,2, Xiongfeng Guo1, Shuangshuang Wu1, Yiwei Gong1, Lan Huang1, Tong Liu1, Junxiu Ye1, Xiangyu Ma1, Xiaoyun Qiu1, Shuang Wang3, Fan Fei1, Yu Du1, Yi Wang1, Zhong Chen1, Cenglin Xu1
Affiliations
1 Zhejiang Collaborative Innovation Center for the Brain Diseases with Integrative Medicine, Zhejiang Key Laboratory of Neuropsychopharmacology, Huzhou Central Hospital, The Fifth School of Clinical Medicine of Zhejiang Chinese Medical University, School of Pharmaceutical Science, Zhejiang Chinese Medical University, Hangzhou 310053, China;
2 Department of Pharmacy, The First Affiliated Hospital of Zhejiang Chinese Medical University (Zhejiang Provincial Hospital of Chinese Medicine), Hangzhou 310006, China;
3 Epilepsy Center, Second Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310050, China
doi: 10.1016/j.apsb.2026.04.011
Outline
Pharmacoresistance to anti-seizure medications (ASMs) remains a major unmet challenge in temporal lobe epilepsy (TLE), and occurs diversely, as classified to primary or acquired manner. The pathophysiological underpinnings of acquired pharmacoresistance remain elusive. Here, using a hippocampal kindling mouse model, we established that prolonged lamotrigine (LTG) treatment—either during or after kindling—induces broad-spectrum resistance to multiple ASMs, effectively recapitulating clinical patterns of acquired pharmacoresistance. Multimodal interrogation revealed hyperexcitability of subicular pyramidal neurons as a critical factor in pharmacoresistance, characterized by elevated c-Fos expression specifically within the subiculum, as well as hyperexcitability of subicular glutamatergic pyramidal neurons. This hyperexcitability phenotype stemmed from Nav1.6 upregulation, driving both enhanced persistent sodium current (INaP) and a pro-excitatory shift in voltage-dependent activation kinetics of voltage-gated sodium channel (VGSC). Crucially, pharmacological activation of subicular Nav1.6 sufficed to induce acquired pharmacoresistance in pharmaco-responsive mice. Conversely, subiculum-specific Nav1.6 knockdown in pyramidal neurons (but not GABAergic neurons) prevented or reversed pharmacoresistance, while analogous genetic manipulation in the CA1 had no such impact. Chemogenetic inhibition of subicular pyramidal neurons (mimicking ASM effects) restored drug responsiveness, directly implicating compensatory increases in Nav1.6 offsetting ASM’s inhibitory function on subicular excitability in acquired pharmacoresistance. These findings collectively identify Nav1.6 upregulation in subicular pyramidal neurons as a critical driver of acquired pharmacoresistance in TLE, highlighting a novel therapeutic target for refractory epilepsy.
Anti-seizure medication
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Hyperexcitability
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Nav1.6
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Pharmacoresistance
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Pyramidal neurons
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Sodium channel
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Subiculum
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Temporal lobe epilepsy
Yuanzhi Yang, Menghan Li, Minjuan Sun, Shuo Zhang, Xiongfeng Guo, Shuangshuang Wu, Yiwei Gong, Lan Huang, Tong Liu, Junxiu Ye, Xiangyu Ma, Xiaoyun Qiu, Shuang Wang, Fan Fei, Yu Du, Yi Wang, Zhong Chen, Cenglin Xu.
Acquired pharmacoresistance in temporal lobe epilepsy is driven by Nav1.6-mediated subicular hyperexcitability[J].
Acta Pharmaceutica Sinica B,
2026
, 16
(7)
: 4442
-4458
.
DOI: 10.1016/j.apsb.2026.04.011
Year 2026 volume 16 Issue 7
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Article Info
doi: 10.1016/j.apsb.2026.04.011
- Receive Date:2025-05-22
- Online Date:2026-09-17