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Transgenic minipig model of Huntington's disease exhibiting gradually progressing neurodegeneration
T. Ardan, M. Baxa, B. Levinská, M. Sedláčková, TD. Nguyen, J. Klíma, Š. Juhás, J. Juhásová, P. Šmatlíková, P. Vochozková, J. Motlík, Z. Ellederová,
Language English Country Great Britain
Document type Journal Article, Research Support, Non-U.S. Gov't
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PubMed
31645369
DOI
10.1242/dmm.041319
Knihovny.cz E-resources
- MeSH
- White Matter pathology ultrastructure MeSH
- Biomarkers metabolism MeSH
- Nerve Degeneration pathology MeSH
- Animals, Genetically Modified MeSH
- Genotype MeSH
- Weight Loss MeSH
- Huntington Disease pathology MeSH
- Body Mass Index MeSH
- Humans MeSH
- Swine, Miniature MeSH
- Disease Models, Animal MeSH
- Motor Cortex pathology ultrastructure MeSH
- Myelin Sheath metabolism MeSH
- Caudate Nucleus pathology ultrastructure MeSH
- Swine MeSH
- Huntingtin Protein metabolism MeSH
- Protein Aggregates MeSH
- Aging pathology MeSH
- Animals MeSH
- Check Tag
- Humans MeSH
- Male MeSH
- Female MeSH
- Animals MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
Recently developed therapeutic approaches for the treatment of Huntington's disease (HD) require preclinical testing in large animal models. The minipig is a suitable experimental animal because of its large gyrencephalic brain, body weight of 70-100 kg, long lifespan, and anatomical, physiological and metabolic resemblance to humans. The Libechov transgenic minipig model for HD (TgHD) has proven useful for proof of concept of developing new therapies. However, to evaluate the efficacy of different therapies on disease progression, a broader phenotypic characterization of the TgHD minipig is needed. In this study, we analyzed the brain tissues of TgHD minipigs at the age of 48 and 60-70 months, and compared them to wild-type animals. We were able to demonstrate not only an accumulation of different forms of mutant huntingtin (mHTT) in TgHD brain, but also pathological changes associated with cellular damage caused by mHTT. At 48 months, we detected pathological changes that included the demyelination of brain white matter, loss of function of striatal neurons in the putamen and activation of microglia. At 60-70 months, we found a clear marker of neurodegeneration: significant cell loss detected in the caudate nucleus, putamen and cortex. This was accompanied by clusters of structures accumulating in the neurites of some neurons, a sign of their degeneration that is also seen in Alzheimer's disease, and a significant activation of astrocytes. In summary, our data demonstrate age-dependent neuropathology with later onset of neurodegeneration in TgHD minipigs.
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