FTY720-Mitoxy reduces synucleinopathy and neuroinflammation, restores behavior and mitochondria function, and

Guadalupe Vidal-Martinez1, Ismael Segura-Ulate1, Barbara Yang1

  • 1Texas Tech University Health Sciences Center El Paso, Department of Molecular and Translational Medicine, Center of Emphasis in Neurosciences, Graduate School of Biomedical Sciences, Paul L Foster School of Medicine, 5001 El Paso Dr, El Paso, TX 79905, United States of America.

Experimental Neurology
|November 22, 2019
PubMed

Insights

FTY720-Mitoxy, a novel compound, shows promise in treating Multiple System Atrophy (MSA) by improving motor function and reducing alpha-synuclein pathology. This derivative offers a potential therapeutic avenue for this fatal neurodegenerative disease.

Area of Science:

  • Neuroscience
  • Neurodegenerative Diseases
  • Pharmacology

Background:

  • Multiple System Atrophy (MSA) is a fatal neurodegenerative disorder characterized by alpha-synuclein (aSyn) accumulation in oligodendrocytes, leading to glial cytoplasmic inclusions (GCIs).
  • MSA pathology is associated with motor and autonomic dysfunction, including impaired sweating, and abnormal expression of neurotrophic factors like GDNF and BDNF.
  • Previous research indicated that FTY720, an FDA-approved drug for multiple sclerosis, protects against parkinsonian pathology by increasing BDNF.

Purpose of the Study:

  • To preclinically assess the efficacy of FTY720-Mitoxy, a FTY720 derivative, as a potential therapeutic agent for Multiple System Atrophy (MSA).
  • To investigate FTY720-Mitoxy's effects on neurotrophic factor expression, alpha-synuclein pathology, and motor and autonomic dysfunction in a mouse model of MSA.

Main Methods:

  • Utilized CNP-aSyn transgenic mice, which develop motor deficits and GCI pathology mimicking human MSA.
  • Administered FTY720-Mitoxy via osmotic pump and assessed behavioral outcomes (rotarod, sweat test), molecular markers (mRNA/protein levels of BDNF, GDNF, NGF, aSyn), and microglial activation.
  • Evaluated FTY720-Mitoxy's protective effects in the 3-nitropropionic acid (3NP) toxin model of MSA.

Main Results:

  • FTY720-Mitoxy treatment normalized movement, improved sweat function, and preserved soleus muscle mass in MSA model mice.
  • The compound increased brain GDNF levels, reduced miR-96-5p (a GDNF inhibitor), and significantly blocked alpha-synuclein pathology and microglial activation.
  • FTY720-Mitoxy demonstrated protective effects on movement and mitochondrial function in both wild-type and MSA model mice subjected to 3NP toxin.

Conclusions:

  • FTY720-Mitoxy exhibits potent in vivo protective effects against MSA pathology and associated functional deficits.
  • The compound's ability to enhance neurotrophic factors, reduce alpha-synuclein burden, and mitigate neuroinflammation supports its therapeutic potential.
  • FTY720-Mitoxy warrants further investigation as a promising candidate for treating Multiple System Atrophy and related synucleinopathies.