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1.
Brain Behav Immun ; 116: 404-418, 2024 02.
Artigo em Inglês | MEDLINE | ID: mdl-38142919

RESUMO

Huntington's disease (HD) is a neurodegenerative disorder involving psychiatric, cognitive and motor deficits, as well as peripheral symptoms, including gastrointestinal dysfunction. The R6/1 HD mouse model expresses a mutant human huntingtin transgene and has been shown to provide an accurate disease model. Recent evidence of gut microbiome disruption was shown in preclinical and clinical HD. Therefore, we aimed to assess the potential role of gut microbial modulation in the treatment of HD. The R6/1 HD mice and wild-type littermate controls were randomised to receive diets containing different amounts of fibre: high-fibre (10 % fibre), control (5 % fibre), or zero-fibre (0 % fibre), from 6 to 20 weeks of age. We characterized the onset and progression of motor, cognitive and affective deficits, as well as gastrointestinal function and gut morphological changes. Faeces were collected for gut microbiome profiling using 16S rRNA sequencing, at 14 and 20 weeks of age. When compared to the control diet, high-fibre diet improved the performance of HD mice in behavioral tests of cognitive and affective function, as well as the gastrointestinal function of both HD and wild-type mice. While the diets changed the beta diversity of wild-type mice, no statistical significance was observed at 14 or 20 weeks of age within the HD mice. Analysis of Composition of Microbiomes with Bias Correction (ANCOM-BC) models were performed to evaluate microbiota composition, which identified differences, including a decreased relative abundance of the phyla Actinobacteriota, Campylobacterota and Proteobacteria and an increased relative abundance of the families Bacteroidaceae, Oscillospiraceae and Ruminococcaceae in HD mice when compared to wild-type mice after receiving high-fibre diet. PICRUSt2 revealed that high-fibre diet also decreased potentially pathogenic functional pathways in HD. In conclusion, high-fibre intake was effective in enhancing gastrointestinal function, cognition and affective behaviors in HD mice. These findings indicate that dietary fibre interventions may have therapeutic potential in Huntington's disease to delay clinical onset, and have implications for related disorders exhibiting dysfunction of the gut-brain axis.


Assuntos
Doença de Huntington , Humanos , Camundongos , Animais , Doença de Huntington/terapia , Doença de Huntington/genética , Camundongos Transgênicos , RNA Ribossômico 16S , Cognição , Modelos Animais de Doenças , Fibras na Dieta
2.
Int Rev Neurobiol ; 167: 141-184, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-36427954

RESUMO

Huntington's disease (HD) is a fatal neurodegenerative disorder caused by an autosomal dominant trinucleotide (CAG) tandem repeat, resulting in complex motor, psychiatric and cognitive symptoms as well as gastrointestinal disturbances and other peripheral symptoms. There are currently no disease-modifying treatments, and the peripheral pathology of the disorder is not well understood. Emerging evidence suggests that the bi-directional communication pathways between the gut and the brain, including the microbiota-gut-brain axis, can affect motor, psychiatric and cognitive symptoms as well as weight loss and sexual dimorphism seen in HD. Furthermore, both HD and the microbiota-gut-brain axis can be influenced by environmental factors, opening potential new avenues to explore therapeutic options for this devastating disorder.


Assuntos
Doença de Huntington , Microbiota , Doenças Neurodegenerativas , Humanos , Doença de Huntington/patologia , Eixo Encéfalo-Intestino , Encéfalo/metabolismo , Doenças Neurodegenerativas/patologia
3.
Brain Commun ; 4(4): fcac205, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-36035436

RESUMO

Huntington's disease is a neurodegenerative disorder involving psychiatric, cognitive and motor symptoms. Huntington's disease is caused by a tandem-repeat expansion in the huntingtin gene, which is widely expressed throughout the brain and body, including the gastrointestinal system. There are currently no effective disease-modifying treatments available for this fatal disorder. Despite recent evidence of gut microbiome disruption in preclinical and clinical Huntington's disease, its potential as a target for therapeutic interventions has not been explored. The microbiota-gut-brain axis provides a potential pathway through which changes in the gut could modulate brain function, including cognition. We now show that faecal microbiota transplant (FMT) from wild-type into Huntington's disease mice positively modulates cognitive outcomes, particularly in females. In Huntington's disease male mice, we revealed an inefficiency of FMT engraftment, which is potentially due to the more pronounced changes in the structure, composition and instability of the gut microbial community, and the imbalance in acetate and gut immune profiles found in these mice. This study demonstrates a role for gut microbiome modulation in ameliorating cognitive deficits modelling dementia in Huntington's disease. Our findings pave the way for the development of future therapeutic approaches, including FMT and other forms of gut microbiome modulation, as potential clinical interventions for Huntington's disease.

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