钠通道
轴突变性
周围神经病变
外围设备
医学
变性(医学)
轴浆运输
周围神经损伤
神经损伤
线粒体
神经科学
病理
周围神经
内科学
麻醉
钠
生物
解剖
内分泌学
化学
细胞生物学
糖尿病
有机化学
作者
Anna‐Karin Persson,Janneke G. J. Hoeijmakers,Mark Estación,Joel A. Black,Stephen G. Waxman
标识
DOI:10.1016/j.molmed.2016.03.008
摘要
Peripheral neuropathy results from damage to peripheral nerves and is often accompanied by pain in affected limbs. Treatment represents an unmet medical need and a thorough understanding of the mechanisms underlying axonal injury is needed. Longer nerve fibers tend to degenerate first (length-dependence), and patients carrying pathogenic mutations throughout life usually become symptomatic in mid- or late-life (time-dependence). The activity of voltage-gated sodium channels can contribute to axonal injury and sodium channel gain-of-function mutations have been linked to peripheral neuropathy. Recent studies have implicated sodium channel activity, mitochondrial compromise, and reverse-mode Na(+)/Ca(2+) exchange in time- and length-dependent axonal injury. Elucidation of molecular mechanisms underlying axonal injury in peripheral neuropathy may provide new therapeutic strategies for this painful and debilitating condition.
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