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Bioinformatics analysis of Ras homologue enriched in the striatum, a potential target for Huntington's disease therapy
- Source :
- International Journal of Molecular Medicine, International Journal of Molecular Medicine 44 (2019): 2223–2233. doi:10.3892/ijmm.2019.4373, info:cnr-pdr/source/autori:Carbo, Miriam; Brandi, Valentina; Pascarella, Gianmarco; Staid, David Sasah; Colotti, Gianni; Polticelli, Fabio; Ilari, Andrea; Morea, Veronica/titolo:Bioinformatics analysis of Ras homologue enriched in the striatum, a potential target for Huntington's disease therapy/doi:10.3892%2Fijmm.2019.4373/rivista:International Journal of Molecular Medicine/anno:2019/pagina_da:2223/pagina_a:2233/intervallo_pagine:2223–2233/volume:44
- Publication Year :
- 2019
-
Abstract
- Huntington's disease (HD) is a lethal neurodegenerative disorder for which no cure is available yet. It is caused by abnormal expansion of a CAG triplet in the gene encoding the huntingtin protein (Htt), with consequent expansion of a polyglutamine repeat in mutated Htt (mHtt). This makes mHtt highly unstable and aggregation prone. Soluble mHtt is linked to cytotoxicity and neurotoxicity, whereas mHtt aggregates are thought to be neuroprotective. While Htt and mHtt are ubiquitously expressed throughout the brain and peripheral tissues, HD is characterized by selective degradation of the corpus striatum, without notable alterations in peripheral tissues. Screening for mRNAs preferentially expressed in rodent striatum led to the discovery of a GTP binding protein homologous to Ras family members. Due to these features, the newly discovered protein was termed Ras Homolog Enriched in Striatum (RHES). The aetiological role of RHES in HD has been ascribed to its small ubiquitin-like modifier (SUMO)-E3 ligase function. RHES sumoylates mHtt with higher efficiency than wild-type Htt, thereby protecting mHtt from degradation and increasing the amounts of the soluble form. Although RHES is an attractive target for HD treatment, essential information about protein structure and function are still missing. With the aim of investigating RHES 3D structure and function, bioinformatic analyses and molecular modelling have been performed in the present study, based on which, RHES regions predicted to be involved in the interaction with mHtt or the SUMO-E2 ligase Ubc9 have been identified. These regions have been used to design peptides aimed at inhibiting RHES interactions and, therefore, mHtt sumoylation; in turn, these peptides will be used to develop small molecule inhibitors by both rational design and virtual screening of large compound libraries. Once identified, RHES sumoylation inhibitors may open the road to the development of therapeutic agents against the severe, and currently untreatable, HD.
- Subjects :
- 0301 basic medicine
Models, Molecular
Huntingtin
Protein Conformation
SUMO protein
Ubiquitin-conjugating enzyme
0302 clinical medicine
Mutant Protein
Peptide design
homology modelling
Neurons
Huntingtin Protein
Brain
Huntington's disease
General Medicine
Articles
Homology modelling
molecular docking
peptide design
Ras homologue enriched in the striatum
ubiquitin carrier protein 9
Cell biology
Huntington Disease
030220 oncology & carcinogenesis
Molecular docking
Indans
GTP-Binding Protein
Human
huntingtin
Ubiquitin-Protein Ligases
Biology
Neuroprotection
03 medical and health sciences
Ubiquitin carrier protein 9
Ubiquitin-Conjugating Enzyme
GTP-binding protein regulators
GTP-Binding Proteins
Genetics
medicine
Animals
Humans
Oncogene
Animal
Indan
Computational Biology
Sumoylation
Neuron
medicine.disease
Corpus Striatum
Disease Models, Animal
030104 developmental biology
Ubiquitin-Conjugating Enzymes
Mutant Proteins
Subjects
Details
- ISSN :
- 1791244X
- Volume :
- 44
- Issue :
- 6
- Database :
- OpenAIRE
- Journal :
- International journal of molecular medicine
- Accession number :
- edsair.doi.dedup.....6bbd9afa80eca71a7ff7c2a34f091b92
- Full Text :
- https://doi.org/10.3892/ijmm.2019.4373