Cheusova Tatiana, Khan Muhammad Amir, Schubert Steffen Wolfgang, Gavin Anne-Claude, Buchou Thierry, Jacob Germaine, Sticht Heinrich, Allende Jorge, Boldyreff Brigitte, Brenner Hans Rudolf, Hashemolhosseini Said
Institut für Biochemie, Universität Erlangen-Nürnberg, D-91054 Erlangen, Germany.
Genes Dev. 2006 Jul 1;20(13):1800-16. doi: 10.1101/gad.375206.
The release of Agrin by motoneurons activates the muscle-specific receptor tyrosine kinase (MuSK) as the main organizer of subsynaptic specializations at the neuromuscular junction. MuSK downstream signaling is largely undefined. Here we show that protein kinase CK2 interacts and colocalizes with MuSK at post-synaptic specializations. We observed CK2-mediated phosphorylation of serine residues within the kinase insert (KI) of MuSK. Inhibition or knockdown of CK2, or exchange of phosphorylatable serines by alanines within the KI of MuSK, impaired acetylcholine receptor (AChR) clustering, whereas their substitution by residues that imitate constitutive phosphorylation led to aggregation of AChRs even in the presence of CK2 inhibitors. Impairment of AChR cluster formation after replacement of MuSK KI with KIs of other receptor tyrosine kinases correlates with potential CK2-dependent serine phosphorylation within KIs. MuSK activity was unchanged but AChR stability decreased in the presence of CK2 inhibitors. Muscle-specific CK2beta knockout mice develop a myasthenic phenotype due to impaired muscle endplate structure and function. This is the first description of a regulatory cross-talk between MuSK and CK2 and of a role for the KI of the receptor tyrosine kinase MuSK for the development of subsynaptic specializations.
运动神经元释放的聚集蛋白可激活肌肉特异性受体酪氨酸激酶(MuSK),后者是神经肌肉接头处突触下特化结构的主要组织者。MuSK的下游信号传导在很大程度上尚不清楚。在此,我们发现蛋白激酶CK2在突触后特化结构处与MuSK相互作用并共定位。我们观察到CK2介导MuSK激酶插入区(KI)内丝氨酸残基的磷酸化。抑制或敲低CK2,或者将MuSK的KI内可磷酸化的丝氨酸替换为丙氨酸,均会损害乙酰胆碱受体(AChR)的聚集,而将其替换为模拟组成型磷酸化的残基,即使在存在CK2抑制剂的情况下也会导致AChR聚集。用其他受体酪氨酸激酶的KI替换MuSK的KI后,AChR簇形成受损,这与KI内潜在的CK2依赖性丝氨酸磷酸化有关。在存在CK2抑制剂的情况下,MuSK活性未变,但AChR稳定性降低。肌肉特异性CK2β基因敲除小鼠因肌肉终板结构和功能受损而出现肌无力表型。这是首次描述MuSK与CK2之间的调节性相互作用以及受体酪氨酸激酶MuSK的KI在突触下特化结构发育中的作用。