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Myostatin-like Proteins Regulate Synaptic Function and Neuronal Morphology

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Journal Development
Specialty Biology
Date 2017 May 24
PMID 28533206
Citations 24
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Abstract

Growth factors of the TGFβ superfamily play key roles in regulating neuronal and muscle function. Myostatin (or GDF8) and GDF11 are potent negative regulators of skeletal muscle mass. However, expression of myostatin and its cognate receptors in other tissues, including brain and peripheral nerves, suggests a potential wider biological role. Here, we show that Myoglianin (MYO), the homolog of myostatin and GDF11, regulates not only body weight and muscle size, but also inhibits neuromuscular synapse strength and composition in a Smad2-dependent manner. Both myostatin and GDF11 affected synapse formation in isolated rat cortical neuron cultures, suggesting an effect on synaptogenesis beyond neuromuscular junctions. We also show that MYO acts to inhibit synaptic transmission between neurons in the escape response neural circuit of adult flies. Thus, these anti-myogenic proteins act as important inhibitors of synapse function and neuronal growth.

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References
1.
Oh S, Yeo C, Lee Y, Schrewe H, Whitman M, Li E . Activin type IIA and IIB receptors mediate Gdf11 signaling in axial vertebral patterning. Genes Dev. 2002; 16(21):2749-54. PMC: 187472. DOI: 10.1101/gad.1021802. View

2.
Wei J, Liu W, Yan Z . Regulation of AMPA receptor trafficking and function by glycogen synthase kinase 3. J Biol Chem. 2010; 285(34):26369-76. PMC: 2924064. DOI: 10.1074/jbc.M110.121376. View

3.
Chen Y, Guo Q, Zhang M, Song S, Quan T, Zhao T . Relationship of serum GDF11 levels with bone mineral density and bone turnover markers in postmenopausal Chinese women. Bone Res. 2016; 4:16012. PMC: 4923943. DOI: 10.1038/boneres.2016.12. View

4.
Bradley C, Peineau S, Taghibiglou C, Nicolas C, Whitcomb D, Bortolotto Z . A pivotal role of GSK-3 in synaptic plasticity. Front Mol Neurosci. 2012; 5:13. PMC: 3279748. DOI: 10.3389/fnmol.2012.00013. View

5.
Lein E, Hawrylycz M, Ao N, Ayres M, Bensinger A, Bernard A . Genome-wide atlas of gene expression in the adult mouse brain. Nature. 2006; 445(7124):168-76. DOI: 10.1038/nature05453. View