肌萎缩侧索硬化
小胶质细胞
神经保护
运动神经元
SOD1
神经科学
医学
离子通道
PI3K/AKT/mTOR通路
再髓鞘化
睫状神经营养因子
钠通道
神经营养素
下调和上调
生物
CX3CR1型
神经营养因子
神经退行性变
自噬
蛋白激酶B
髓鞘
神经元
髓鞘碱性蛋白
小发夹RNA
化学
作者
Fan Wang,Ke‐Yu Zhang,Lang‐Jian Zhu,W. Li,Yang Wu,Xiang Gao,Xiao‐Ru Ma,Xiu‐Hua Yin,J. Wu,Xiao‐Kang Ye,Zhao‐Jun Dong,Di‐Xian Wang,Zhe Zhou,Shao‐Dong Wang,Lei Han,Zhi‐Nong Jiang,Yu Zhao
标识
DOI:10.1002/advs.202512149
摘要
Amyotrophic lateral sclerosis (ALS) is an incurable motor neuron disease characterized by progressive loss of motor neurons. Current clinically available drugs targeting neurons show minor survival extension and no motor improvement in ALS patients. This shifts the focus of ALS research toward non-neuronal cells, particularly microglia, a critical driver of ALS pathogenesis. Highly druggable ion channels are key regulators of microglia function. Here, Hydrogen voltage gated channel 1 (HVCN1) was screened out as the most highly expressed ion channel in microglia, and was upregulated in microglia of SOD1G93A mice and patients. Deletion of HVCN1 in microglia increased motor neuron survival, rescued the innervated neuromuscular junctions in the muscle, reduced glial activation and decreased the level of both misfolded protein and myelin debris in the ALS mice. Importantly, these pathological improvements were translated into significant motor improvement and survival extension in the ALS mice, exhibiting better effects than the current clinical drugs. HVCN1 deletion enhanced microglia migration and their homeostatic state with elevated neurotrophic functions. Mechanistically, HVCN1 ablation promoted microglial migration via suppressing Akt signaling. Our results identify HVCN1 as a novel promising therapeutic target for ALS, opening a new avenue to further develop specific inhibitors for HVCN1 to alleviates ALS.
科研通智能强力驱动
Strongly Powered by AbleSci AI