Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.

Mutations in the fused in sarcoma/translated in liposarcoma gene (FUS/TLS, FUS) have been identified in sporadic and familial forms of amyotrophic lateral sclerosis (ALS). FUS is an RNA-binding protein that is normally localized in the nucleus, but is mislocalized to the cytoplasm in ALS, and compri...

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Main Authors: Hiroshi Sasayama, Mai Shimamura, Takahiko Tokuda, Yumiko Azuma, Tomokatsu Yoshida, Toshiki Mizuno, Masanori Nakagawa, Nobuhiro Fujikake, Yoshitaka Nagai, Masamitsu Yamaguchi
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3378546?pdf=render
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spelling doaj-7928c9af429d4bb7978e5c286f4cd09c2020-11-25T01:52:03ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0176e3948310.1371/journal.pone.0039483Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.Hiroshi SasayamaMai ShimamuraTakahiko TokudaYumiko AzumaTomokatsu YoshidaToshiki MizunoMasanori NakagawaNobuhiro FujikakeYoshitaka NagaiMasamitsu YamaguchiMutations in the fused in sarcoma/translated in liposarcoma gene (FUS/TLS, FUS) have been identified in sporadic and familial forms of amyotrophic lateral sclerosis (ALS). FUS is an RNA-binding protein that is normally localized in the nucleus, but is mislocalized to the cytoplasm in ALS, and comprises cytoplasmic inclusions in ALS-affected areas. However, it is still unknown whether the neurodegeneration that occurs in ALS is caused by the loss of FUS nuclear function, or by the gain of toxic function due to cytoplasmic FUS aggregation. Cabeza (Caz) is a Drosophila orthologue of human FUS. Here, we generated Drosophila models with Caz knockdown, and investigated their phenotypes. In wild-type Drosophila, Caz was strongly expressed in the central nervous system of larvae and adults. Caz did not colocalize with a presynaptic marker, suggesting that Caz physiologically functions in neuronal cell bodies and/or their axons. Fly models with neuron-specific Caz knockdown exhibited reduced climbing ability in adulthood and anatomical defects in presynaptic terminals of motoneurons in third instar larvae. Our results demonstrated that decreased expression of Drosophila Caz is sufficient to cause degeneration of motoneurons and locomotive disability in the absence of abnormal cytoplasmic Caz aggregates, suggesting that the pathogenic mechanism underlying FUS-related ALS should be ascribed more to the loss of physiological FUS functions in the nucleus than to the toxicity of cytoplasmic FUS aggregates. Since the Caz-knockdown Drosophila model we presented recapitulates key features of human ALS, it would be a suitable animal model for the screening of genes and chemicals that might modify the pathogenic processes that lead to the degeneration of motoneurons in ALS.http://europepmc.org/articles/PMC3378546?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Hiroshi Sasayama
Mai Shimamura
Takahiko Tokuda
Yumiko Azuma
Tomokatsu Yoshida
Toshiki Mizuno
Masanori Nakagawa
Nobuhiro Fujikake
Yoshitaka Nagai
Masamitsu Yamaguchi
spellingShingle Hiroshi Sasayama
Mai Shimamura
Takahiko Tokuda
Yumiko Azuma
Tomokatsu Yoshida
Toshiki Mizuno
Masanori Nakagawa
Nobuhiro Fujikake
Yoshitaka Nagai
Masamitsu Yamaguchi
Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.
PLoS ONE
author_facet Hiroshi Sasayama
Mai Shimamura
Takahiko Tokuda
Yumiko Azuma
Tomokatsu Yoshida
Toshiki Mizuno
Masanori Nakagawa
Nobuhiro Fujikake
Yoshitaka Nagai
Masamitsu Yamaguchi
author_sort Hiroshi Sasayama
title Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.
title_short Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.
title_full Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.
title_fullStr Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.
title_full_unstemmed Knockdown of the Drosophila fused in sarcoma (FUS) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.
title_sort knockdown of the drosophila fused in sarcoma (fus) homologue causes deficient locomotive behavior and shortening of motoneuron terminal branches.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description Mutations in the fused in sarcoma/translated in liposarcoma gene (FUS/TLS, FUS) have been identified in sporadic and familial forms of amyotrophic lateral sclerosis (ALS). FUS is an RNA-binding protein that is normally localized in the nucleus, but is mislocalized to the cytoplasm in ALS, and comprises cytoplasmic inclusions in ALS-affected areas. However, it is still unknown whether the neurodegeneration that occurs in ALS is caused by the loss of FUS nuclear function, or by the gain of toxic function due to cytoplasmic FUS aggregation. Cabeza (Caz) is a Drosophila orthologue of human FUS. Here, we generated Drosophila models with Caz knockdown, and investigated their phenotypes. In wild-type Drosophila, Caz was strongly expressed in the central nervous system of larvae and adults. Caz did not colocalize with a presynaptic marker, suggesting that Caz physiologically functions in neuronal cell bodies and/or their axons. Fly models with neuron-specific Caz knockdown exhibited reduced climbing ability in adulthood and anatomical defects in presynaptic terminals of motoneurons in third instar larvae. Our results demonstrated that decreased expression of Drosophila Caz is sufficient to cause degeneration of motoneurons and locomotive disability in the absence of abnormal cytoplasmic Caz aggregates, suggesting that the pathogenic mechanism underlying FUS-related ALS should be ascribed more to the loss of physiological FUS functions in the nucleus than to the toxicity of cytoplasmic FUS aggregates. Since the Caz-knockdown Drosophila model we presented recapitulates key features of human ALS, it would be a suitable animal model for the screening of genes and chemicals that might modify the pathogenic processes that lead to the degeneration of motoneurons in ALS.
url http://europepmc.org/articles/PMC3378546?pdf=render
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