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Xhaferri, N.

Publications and source records attributed to Xhaferri, N..

4 recordsLinked to original sources

Humanized Kcnv2 E151X Mouse Captures Hallmarks of KCNV2-Associated Retinal Dystrophy

BackgroundKCNV2-associated retinopathy is a rare inherited retinal dystrophy caused by variants in the KCNV2 gene, leading to disrupted photoreceptor function and slowly progressive vision loss. Patients have characteristic electroretinography abnormalities, including reduced cone responses, delayed and reduced rod responses to low light flashes and paradoxally large rod-driven responses to bright flashes of light. To model this condition, we generated the Kcnv2 E151X mouse line and assessed its structural and functional retinal features. MethodsWe have employed CRISPR/Cas 9 gene editing technology to generate a mouse line with an early stop mutation in position E151- orthologous to the commonly encountered E143X mutation in humans - and performed a combination of Iimmunohistochemistry and Western Blot to confirm the absence of the full-length KCNV2-encoded protein, Kv8.2. To assess how closely it models the human disease, we have characterised the KCNV2 mutant mouse line at histological and functional levels employing immunohistochemistry and electroretinography, respectiveley. ResultsKcnv2 mutant mice showed markedly reduced photopic responses and reproduced the supernormal rod phenotype as described in affected individuals. In the morphological context, mutant retinas demonstrated strong and early glial fibrillary acidic protein upregulation together with reduced counts of cone arrestin positive cells as well as photoreceptors in general. Power calculations based on the data obtained herein suggest therapeutic trials are feasible with small sample sizes. ConclusionsThe Kcnv2 mutant mouse line replicates key functional and structural hallmarks of KCNV2- associated retinopathy. This model provides a relevant platform for mechanistic studies and preclinical evaluation of gene based or pharmacological therapies targeting cone and rod photoreceptor dysfunction.

neuroscience↗

Lipid Nanoparticles Enable mRNA Delivery to Diverse Cell Types of the Inner Retina

Lipid nanoparticles (LNPs) have emerged as a promising platform for retinal genetic therapy, offering a non-viral alternative to adeno-associated viruses (AAVs). While LNPs can transfect outer retinal cells, their tropism for inner retinal cell types remains insufficiently characterized. Here, we systematically assessed cellular tropism of conventional LNPs encapsulating chemically modified mRNA encoding mCherry in murine retinal explants and dissociated retinal cells. We compared quasi-subretinal and quasi-intravitreal administrations and evaluated how retinal degeneration and inner limiting membrane (ILM) integrity influence LNP-mediated transfections. We observed that LNPs efficiently transfected Muller glia under all experimental conditions. In addition, LNPs transfected several other retinal cell types, including neurons in dissociated cells and explants, and vascular cells exclusively in explants. Subretinal delivery resulted in significantly higher transfection rates than intravitreal administration, and overall efficiency was higher in degenerate as compared to non-degenerate healthy retinas. In healthy retinas, removal of ILM-associated barriers significantly increased transfection efficiency following intravitreal administration. Together, these findings demonstrate that conventional LNPs can transfect a broader range of retinal cell types than previously recognized and highlight LNPs as a versatile tool for mRNA delivery to the retina, with applications in gene supplementation, gene editing, and regenerative therapies for inner retinal disorders.

neuroscience↗

Interaction between native and prosthetic visual responses in optogenetic visual restoration

Degenerative retinal disorders leading to irreversible photoreceptor death are a common cause of blindness. Optogenetic gene therapy aims to restore vision in affected individuals by introducing light sensitive opsins into the surviving neurons of inner retina. While up until now the main focus of optogenetic therapy has been on terminally blind individuals, treating at stages where residual native vision is present could have several advantages. Yet, it is still unknown how residual native and optogenetic vision would interact if present at the same time. Using transgenic mice expressing the optogenetic tool ReaChR in ON-bipolar cells, we herein examine this interaction through electroretinography (ERG) and visually evoked potentials (VEP). We find that optogenetic responses show a peculiar ERG signature and are enhanced in retinas without photoreceptor loss. Conversely, native responses are dampened in the presence of ReaChR. Moreover, in VEP recordings we find that optogenetic responses reach the cortex asynchronous to the native response. These findings should be taken into consideration when planning future clinical trials and may direct future preclinical research to optimize optogenetic approaches for visual restoration. The identified ERG signatures moreover may serve to track treatment efficiency in clinical trials.

neuroscience↗

Versatile Functional Interaction between Electrically Silent KV Subunits and KV7 Potassium Channels

Voltage-gated K+ (KV) channels govern K+-ion flux across cell membranes in response to changes in membrane potential. They are formed by the assembly of four subunits, typically from the same family. Electrically silent KV channels (KVS), however, are unable to conduct currents on their own. It has been assumed that these KVS must obligatorily assemble with subunits from the KV2 family into heterotetrameric channels, thereby giving raise to currents distinct from those of homomeric KV2 channels. Herein, we show that KVS subunits indeed also modulate the activity, biophysical properties and surface expression of recombinant KV7 isoforms in a subunit-specific manner. Employing co-immunoprecipitation, and proximity labelling, we unveil the spatial coexistence of KVS and KV7 within a single protein complex. Electrophysiological experiments further indicate functional interaction and probably heterotetramer formation. Finally, single-cell transcriptomic analyses identify native cell types in which this KVS and KV7 interaction may occur. Our finding demonstrate that KV cross-family interaction is much more versatile than previously thought - possibly serving nature to shape potassium conductance to the needs of individual cell types.

neuroscience↗