Stoica Radu, Paillusson Sébastien, Gomez-Suaga Patricia, Mitchell Jacqueline C, Lau Dawn Hw, Gray Emma H, Sancho Rosa M, Vizcay-Barrena Gema, De Vos Kurt J, Shaw Christopher E, Hanger Diane P, Noble Wendy, Miller Christopher Cj
Department of Basic and Clinical Neuroscience, Institute of Psychiatry, Psychology and Neuroscience, Kings College London, London, UK.
Centre for Ultrastructural Imaging, King's College London, London, UK.
EMBO Rep. 2016 Sep;17(9):1326-42. doi: 10.15252/embr.201541726. Epub 2016 Jul 14.
Defective FUS metabolism is strongly associated with amyotrophic lateral sclerosis and frontotemporal dementia (ALS/FTD), but the mechanisms linking FUS to disease are not properly understood. However, many of the functions disrupted in ALS/FTD are regulated by signalling between the endoplasmic reticulum (ER) and mitochondria. This signalling is facilitated by close physical associations between the two organelles that are mediated by binding of the integral ER protein VAPB to the outer mitochondrial membrane protein PTPIP51, which act as molecular scaffolds to tether the two organelles. Here, we show that FUS disrupts the VAPB-PTPIP51 interaction and ER-mitochondria associations. These disruptions are accompanied by perturbation of Ca(2+) uptake by mitochondria following its release from ER stores, which is a physiological read-out of ER-mitochondria contacts. We also demonstrate that mitochondrial ATP production is impaired in FUS-expressing cells; mitochondrial ATP production is linked to Ca(2+) levels. Finally, we demonstrate that the FUS-induced reductions to ER-mitochondria associations and are linked to activation of glycogen synthase kinase-3β (GSK-3β), a kinase already strongly associated with ALS/FTD.
FUS代谢缺陷与肌萎缩侧索硬化症和额颞叶痴呆(ALS/FTD)密切相关,但FUS与疾病之间的联系机制尚未完全明确。然而,许多在ALS/FTD中受到破坏的功能是由内质网(ER)和线粒体之间的信号传导所调节的。这种信号传导是由这两个细胞器之间紧密的物理联系所促进的,这种联系是由内质网整合蛋白VAPB与线粒体外膜蛋白PTPIP51的结合介导的,它们作为分子支架将两个细胞器拴在一起。在这里,我们表明FUS破坏了VAPB-PTPIP51相互作用以及内质网-线粒体联系。这些破坏伴随着内质网储存释放的Ca(2+)被线粒体摄取的扰动,这是内质网-线粒体接触的生理指标。我们还证明,在表达FUS的细胞中线粒体ATP生成受损;线粒体ATP生成与Ca(2+)水平有关。最后,我们证明FUS诱导的内质网-线粒体联系减少与糖原合酶激酶-3β(GSK-3β)的激活有关,GSK-3β是一种已经与ALS/FTD密切相关的激酶。