4.7 Article

Efficient Neuroprotective Rescue of Sacsin-Related Disease Phenotypes in Zebrafish

期刊

出版社

MDPI
DOI: 10.3390/ijms22168401

关键词

ARSACS; ataxia; cerebellum; neurological disorders; zebrafish

资金

  1. Foundation de l'Ataxie Charlevoix-Saguenay
  2. Italian Ministry of Health [RF-2016-02361610, 3398]
  3. EJP-RD network PROSPAX: an integrated multimodal progression chart in spastic ataxias [441409627]
  4. A.I. Vi.P.S (Associazione Italiana Vivere la Paraparesi Spastica Onlus)
  5. Telethon [GGP19287]

向作者/读者索取更多资源

The study demonstrates that zebrafish can serve as a model organism for ARSCS, facilitating the efficient and rapid optimization and screening of potential therapeutic compounds. This finding opens up new possibilities for interventions targeting the early phases of Purkinje cell degeneration in ARSCS.
Autosomal recessive spastic ataxia of Charlevoix-Saguenay (ARSACS) is a multisystem hereditary ataxia associated with mutations in SACS, which encodes sacsin, a protein of still only partially understood function. Although mouse models of ARSACS mimic largely the disease progression seen in humans, their use in the validation of effective therapies has not yet been proposed. Recently, the teleost Danio rerio has attracted increasing attention as a vertebrate model that allows rapid and economical screening, of candidate molecules, and thus combines the advantages of whole-organism phenotypic assays and in vitro high-throughput screening assays. Through CRISPR/Cas9-based mutagenesis, we generated and characterized a zebrafish sacs-null mutant line that replicates the main features of ARSACS. The sacs-null fish showed motor impairment, hindbrain atrophy, mitochondrial dysfunction, and reactive oxygen species accumulation. As proof of principle for using these mutant fish in high-throughput screening studies, we showed that both acetyl-DL-leucine and tauroursodeoxycholic acid improved locomotor and biochemical phenotypes in sacs(-/-) larvae treated with these neuroprotective agents, by mediating significant rescue of the molecular functions altered by sacsin loss. Taken together, the evidence here reported shows the zebrafish to be a valuable model organism for the identification of novel molecular mechanisms and for efficient and rapid in vivo optimization and screening of potential therapeutic compounds. These findings may pave the way for new interventions targeting the earliest phases of Purkinje cell degeneration in ARSACS.

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