Godoy Juan A, Arrázola Macarena S, Ordenes Daniela, Silva-Alvarez Carmen, Braidy Nady, Inestrosa Nibaldo C
From the Centro de Envejecimiento y Regeneración, Departamento de Biología Celular y Molecular, Facultad de Ciencias Biológicas, Pontificia Universidad Católica de Chile, 8331150 Santiago, Chile.
the Centre for Healthy Brain Ageing, School of Psychiatry, Faculty of Medicine, University of New South Wales, Sydney, 2031 New South Wales, Australia, and.
J Biol Chem. 2014 Dec 26;289(52):36179-93. doi: 10.1074/jbc.M114.557009. Epub 2014 Oct 21.
The Wnt signaling pathway plays an important role in developmental processes, including embryonic patterning, cell specification, and cell polarity. Wnt components participate in the development of the central nervous system, and growing evidence indicates that this pathway also regulates the function of the adult nervous system. In this study, we report that Wnt-5a, a noncanonical Wnt ligand, is a potent activator of mitochondrial dynamics and induces acute fission and fusion events in the mitochondria of rat hippocampal neurons. The effect of Wnt-5a was inhibited in the presence of sFRP, a Wnt scavenger. Similarly, the canonical Wnt-3a ligand had no effect on mitochondrial fission-fusion events, suggesting that this effect is specific for Wnt-5a alone. We also show that the Wnt-5a effects on mitochondrial dynamics occur with an increase in both intracellular and mitochondrial calcium (Ca(2+)), which was correlated with an increased phosphorylation of Drp1(Ser-616) and a decrease of Ser-637 phosphorylation, both indicators of mitochondrial dynamics. Electron microscope analysis of hippocampal tissues in the CA1 region showed an increase in the number of mitochondria present in the postsynaptic region, and this finding correlated with a change in mitochondrial morphology. We conclude that Wnt-5a/Ca(2+) signaling regulates the mitochondrial fission-fusion process in hippocampal neurons, a feature that might help to further understand the role of Wnt-related pathologies, including neurodegenerative diseases associated with mitochondrial dysfunction, and represents a potentially important link between impaired metabolic function and degenerative disorders.
Wnt信号通路在发育过程中发挥着重要作用,包括胚胎模式形成、细胞特化和细胞极性。Wnt成分参与中枢神经系统的发育,越来越多的证据表明该通路也调节成年神经系统的功能。在本研究中,我们报告非经典Wnt配体Wnt-5a是线粒体动力学的有效激活剂,并在大鼠海马神经元的线粒体中诱导急性裂变和融合事件。在Wnt清除剂sFRP存在的情况下,Wnt-5a的作用受到抑制。同样,经典Wnt-3a配体对线粒体裂变-融合事件没有影响,表明这种作用仅对Wnt-5a具有特异性。我们还表明,Wnt-5a对线粒体动力学的影响伴随着细胞内和线粒体钙(Ca(2+))的增加而发生,这与Drp1(Ser-616)磷酸化增加和Ser-637磷酸化减少相关,这两个都是线粒体动力学的指标。对CA1区海马组织的电子显微镜分析显示,突触后区域存在的线粒体数量增加,这一发现与线粒体形态的变化相关。我们得出结论,Wnt-5a/Ca(2+)信号调节海马神经元中的线粒体裂变-融合过程,这一特征可能有助于进一步理解Wnt相关病理的作用,包括与线粒体功能障碍相关的神经退行性疾病,并且代表了代谢功能受损与退行性疾病之间潜在的重要联系。