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Noel, N. C.

Publications and source records attributed to Noel, N. C..

2 recordsLinked to original sources

Turquoise killifish naturally develop hallmarks of age-related macular degeneration with advancing age

Ageing is a major risk factor for developing vision loss diseases such as age-related macular degeneration (AMD). Unfortunately, we do not have the ability to effectively prevent, slow, or stop onset and progression of AMD long term. These challenges with therapeutic development result from poor understanding of disease mechanism and pathogenesis due to a lack of animal models that manifest the hallmark features of disease. Here, we investigated the rapidly ageing turquoise killifish (Nothobranchius furzeri) retina for features of human ageing and AMD. We report that the ageing killifish retina expresses genes associated with human retinal disease in the photoreceptors and retinal pigment epithelium (RPE). Our characterisation of the retina identified that killifish spontaneously develop many hallmark features of AMD and human ageing, including photoreceptor deterioration, lipid deposits, outer retinal inflammation, and ceramide accumulation in the RPE with advancing age. Further, we identify a sex-specific difference in the severity of phenotypes. We propose that the turquoise killifish is a highly suitable model for investigating ageing and AMD-related disease mechanisms across the lifespan.

neuroscience↗

Age-related dysregulation of the retinal transcriptome in African turquoise killifish

Age-related vision loss caused by retinal neurodegenerative pathologies is becoming more prevalent in our ageing society. To understand the physiological and molecular impact of ageing on retinal homeostasis, we used the short-lived African turquoise killifish, a model known to naturally develop central nervous system (CNS) ageing hallmarks and vision loss. Bulk and single-cell RNA-sequencing (scRNA-seq) of three age groups (6-, 12-, and 18-week-old) identified transcriptional ageing fingerprints in the killifish retina, unveiling pathways also identified in the aged brain, including oxidative stress, gliosis, and inflammageing. These findings were comparable to observations in ageing mouse retina. Additionally, transcriptional changes in genes related to retinal diseases, such as glaucoma and age-related macular degeneration, were observed. The cellular heterogeneity in the killifish retina was characterised, confirming the presence of all typical vertebrate retinal cell types. Data integration from age-matched samples between the bulk and scRNA-seq experiments revealed a loss of cellular specificity in gene expression upon ageing, suggesting potential disruption in transcriptional homeostasis. Differential expression analysis within the identified cell types highlighted the role of glial/immune cells as important stress regulators during ageing. Our work emphasises the value of the fast-ageing killifish in elucidating molecular signatures in age-associated retinal disease and vision decline. This study contributes to the understanding of how age-related changes in molecular pathways may impact CNS health, providing insights that may inform future therapeutic strategies for age-related pathologies. HighlightsO_LIThe aged killifish retina displays several ageing hallmarks, such as oxidative stress, gliosis and inflammageing, at the transcriptome level. C_LIO_LIRisk genes for neurodegenerative disorders show dysregulation in the old killifish retina. C_LIO_LIAll vertebrate retinal cell types are present in the killifish retina. C_LIO_LITranscriptional dysregulation in the aged killifish retina is observed across cell types. C_LI

neuroscience↗