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Review
. 2019 Nov;151(4):507-519.
doi: 10.1111/jnc.14853. Epub 2019 Sep 15.

The pathobiology of perturbed mutant huntingtin protein-protein interactions in Huntington's disease

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Free article
Review

The pathobiology of perturbed mutant huntingtin protein-protein interactions in Huntington's disease

Erich E Wanker et al. J Neurochem. 2019 Nov.
Free article

Abstract

Mutations are at the root of many human diseases. Still, we largely do not exactly understand how they trigger pathogenesis. One, more recent, hypothesis has been that they comprehensively perturb protein-protein interaction (PPI) networks and significantly alter key biological processes. Under this premise, many rare genetic disorders with Mendelian inheritance, like Huntington's disease and several spinocerebellar ataxias, are likely to be caused by complex genotype-phenotype relationships involving abnormal PPIs. These altered PPI networks and their effects on cellular pathways are poorly understood at the molecular level. In this review, we focus on PPIs that are perturbed by the expanded pathogenic polyglutamine tract in huntingtin (HTT), the protein which, in its mutated form, leads to the autosomal dominant, neurodegenerative Huntington's disease. One aspect of perturbed mutant HTT interactions is the formation of abnormal protein species such as fibrils or large neuronal inclusions as a result of homotypic and heterotypic aberrant molecular interactions. This review focuses on abnormal PPIs that are associated with the assembly of mutant HTT aggregates in cells and their potential relevance in disease. Furthermore, the mechanisms and pathobiological processes that may contribute to phenotype development, neuronal dysfunction and toxicity in Huntington's disease brains are also discussed. This article is part of the Special Issue "Proteomics".

Keywords: Huntington's disease; huntingtin; interactomics; pathobiology; perturbed protein-protein interactions; protein aggregation.

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References

    1. Alanis-Lobato G., Andrade-Navarro M. A. and Schaefer M. H. (2017) HIPPIE v2.0: enhancing meaningfulness and reliability of protein-protein interaction networks. Nucleic Acids Res. 45, D408-D414.
    1. Amberger J. S., Bocchini C. A., Scott A. F. and Hamosh A. (2019) OMIM.org: leveraging knowledge across phenotype-gene relationships. Nucleic Acids Res. 47, D1038-D1043.
    1. Arrasate M., Mitra S., Schweitzer E. S., Segal M. R. and Finkbeiner S. (2004) Inclusion body formation reduces levels of mutant huntingtin and the risk of neuronal death. Nature 431, 805-810.
    1. Ast A., Buntru A., Schindler F., et al. (2018) mHTT Seeding activity: a marker of disease progression and neurotoxicity in models of Huntington's disease. Mol. Cell 71, e676.
    1. Babcock D. T. and Ganetzky B. (2015) Transcellular spreading of huntingtin aggregates in the Drosophila brain. Proc. Natl Acad. Sci. USA 112, E5427-5433.

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