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October 16, 2014Proceedings of the National Academy of Sciences155 citationsOpen Access

Activity-dependent FUS dysregulation disrupts synaptic homeostasis

CSChantelle F. SephtonATAmy TangAKAshwinikumar Kulkarni

Key Points

  • This study investigates how FUS mutations contribute to motor deficits and neurodegeneration in a mouse model.
  • Generated transgenic mice expressing low levels of human wild-type FUS and a pathological mutation FUS(R521G).
  • Analyzed motor deficits, neuroinflammation, and dendritic spine structures in FUS(WT) and FUS(R521G) mice.
  • Examined the impact of metabotropic glutamate receptor activation on FUS protein levels in neural tissue.
  • FUS(R521G) mice exhibited severe motor deficits, neuroinflammation, and premature death.
  • Only FUS(R521G) mice showed significant alterations in dendritic arbors and mature spines, unlike FUS(WT) mice.
  • Activation of specific glutamate receptors increased FUS(WT) levels but decreased FUS(R521G), indicating a biochemical distinction.

Abstract

The RNA-binding protein fused-in-sarcoma (FUS) has been associated with amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration (FTLD), two neurodegenerative disorders that share similar clinical and pathological features. Both missense mutations and overexpression of wild-type FUS protein can be pathogenic in human patients. To study the molecular and cellular basis by which FUS mutations and overexpression cause disease, we generated novel transgenic mice globally expressing low levels of human wild-type protein (FUS(WT)) and a pathological mutation (FUS(R521G)). FUS(WT) and FUS(R521G) mice that develop severe motor deficits also show neuroinflammation, denervated neuromuscular junctions, and premature death, phenocopying the human diseases. A portion of FUS(R521G) mice escape early lethality; these escapers have modest motor impairments and altered sociability, which correspond with a reduction of dendritic arbors and mature spines. Remarkably, only FUS(R521G) mice show dendritic defects; FUS(WT) mice do not. Activation of metabotropic glutamate receptors 1/5 in neocortical slices and isolated synaptoneurosomes increases endogenous mouse FUS and FUS(WT) protein levels but decreases the FUS(R521G) protein, providing a potential biochemical basis for the dendritic spine differences between FUS(WT) and FUS(R521G) mice.

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Cite This Study

Sephton et al. (2014) studied this question.

synapsesocial.com/papers/69f80fe3d1698ea6aba63059https://doi.org/10.1073/pnas.1406162111
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