Department of Cell and Developmental Biology, University of North Carolina, Neuroscience Center, Chapel Hill, NC 27599, USA.
Proc Natl Acad Sci U S A. 2011 Apr 5;108(14):5849-54. doi: 10.1073/pnas.1013660108. Epub 2011 Mar 21.
Mammalian brain connectivity requires the coordinated production and migration of billions of neurons and the formation of axons and dendrites. The LKB1/Par4 kinase is required for axon formation during cortical development in vivo partially through its ability to activate SAD-A/B kinases. LKB1 is a master kinase phosphorylating and activating at least 11 other serine/threonine kinases including the metabolic sensor AMP-activated protein kinase (AMPK), which defines this branch of the kinome. A recent study using a gene-trap allele of the β1 regulatory subunit of AMPK suggested that AMPK catalytic activity is required for proper brain development including neurogenesis and neuronal survival. We used a genetic loss-of-function approach producing AMPKα1/α2-null cortical neurons to demonstrate that AMPK catalytic activity is not required for cortical neurogenesis, neuronal migration, polarization, or survival. However, we found that application of metformin or AICAR, potent AMPK activators, inhibit axogenesis and axon growth in an AMPK-dependent manner. We show that inhibition of axon growth mediated by AMPK overactivation requires TSC1/2-mediated inhibition of the mammalian target of rapamycin (mTOR) signaling pathway. Our results demonstrate that AMPK catalytic activity is not required for early neural development in vivo but its overactivation during metabolic stress impairs neuronal polarization in a mTOR-dependent manner.
哺乳动物脑连接需要数十亿神经元的协调产生和迁移,以及轴突和树突的形成。LKB1/Par4 激酶在体内皮质发育过程中对于轴突的形成是必需的,部分原因是其能够激活 SAD-A/B 激酶。LKB1 是一种主激酶,能够磷酸化和激活至少 11 种其他丝氨酸/苏氨酸激酶,包括代谢传感器 AMP 激活蛋白激酶 (AMPK),这定义了激酶组的这一分支。最近的一项使用 AMPKβ1 调节亚基基因捕获等位基因的研究表明,AMPK 催化活性对于正常的大脑发育是必需的,包括神经发生和神经元存活。我们使用 AMPKα1/α2 缺失的皮质神经元产生遗传功能丧失的方法,证明 AMPK 催化活性对于皮质神经发生、神经元迁移、极化或存活不是必需的。然而,我们发现二甲双胍或 AICAR 的应用,即 AMPK 的有效激活剂,以 AMPK 依赖性方式抑制轴突发生和轴突生长。我们表明,由 AMPK 过度激活介导的轴突生长抑制需要 TSC1/2 介导的雷帕霉素 (mTOR) 信号通路的抑制。我们的结果表明,AMPK 催化活性对于体内早期神经发育不是必需的,但在代谢应激期间的过度激活以 mTOR 依赖性方式损害神经元极化。