Non-Synaptic Roles of Acetylcholinesterase and Agrin

被引:0
作者
Katarina Gros
Giulia Parato
Sergej Pirkmajer
Katarina Mis
Matej Podbregar
Zoran Grubic
Paola Lorenzon
Tomaz Mars
机构
[1] University of Ljubljana,Institute of Pathophysiology, Faculty of Medicine
[2] University of Trieste,Department of Life Sciences
[3] University Clinical Centre,Centre for Intensive Internal Medicine
来源
Journal of Molecular Neuroscience | 2014年 / 53卷
关键词
Agrin; Acetylcholinesterase; Muscle cells; Interleukin 6; Neuromuscular junction;
D O I
暂无
中图分类号
学科分类号
摘要
Proteins in living organisms have names that are usually derived from their function in the biochemical system their discoverer was investigating. Typical examples are acetylcholinesterase and agrin; however, for both of these, various other functions that are not related to the cholinergic system have been revealed. Our investigations have been focused on the alternative roles of acetylcholinesterase and agrin in the processes of muscle development and regeneration. Previously, we described a role for agrin in the development of excitability in muscle contraction. In this study, we report the effects of agrin on secretion of interleukin 6 in developing human muscle. At the myoblast stage, agrin increases interleukin 6 secretion. This effect seems to be general as it was observed in all of the cell models analysed (human, mouse, cell lines). After fusion of myoblasts into myotubes, the effects of agrin are no longer evident, although agrin has further effects at the innervation stage, at least in in vitro innervated human muscle. These effects of agrin are another demonstration of its non-synaptic roles that are apparently developmental-stage specific. Our data support the view that acetylcholinesterase and agrin participate in various processes during development of skeletal muscle.
引用
收藏
页码:454 / 460
页数:6
相关论文
共 251 条
[1]  
Al-Khalili L(2006)Signaling specificity of interleukin-6 action on glucose and lipid metabolism in skeletal muscle Mol Endocrinol 20 3364-3375
[2]  
Bouzakri K(1992)Effects of leukaemia inhibitory factor and other cytokines on murine and human myoblast proliferation J Neurol Sci 112 185-191
[3]  
Glund S(2008)Neural agrin controls maturation of the excitation–contraction coupling mechanism in human myotubes developing in vitro Am J Physiol Cell Physiol 294 C66-C73
[4]  
Lönnqvist F(2003)New insights into the roles of agrin Nat Rev Mol Cell Biol 4 295-308
[5]  
Koistinen HA(2001)Neural agrin controls acetylcholine receptor stability in skeletal muscle fibers Proc Natl Acad Sci 98 9924-9929
[6]  
Krook A(2012)Soluble miniagrin enhances contractile function of engineered skeletal muscle FASEB J 26 955-965
[7]  
Austin L(2002)Building the vertebrate neuromuscular synapse J Neurobiol 53 501-511
[8]  
Bower J(2008)Acetylcholinesterase expression in muscle is specifically controlled by a promoter-selective enhancesome in the first intron J Neurosci 28 2459-2470
[9]  
Kurek J(1998)Over-expression of acetylcholinesterase stimulates the expression of agrin in NG108-15 cells Neurosci Lett 248 17-20
[10]  
Vakakis N(2010)Regeneration of mammalian skeletal muscle. Basic mechanisms and clinical implications Curr Pharm Des 16 906-914