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Larbi, D.

Publications and source records attributed to Larbi, D..

3 recordsLinked to original sources

Disabling Muller Glia Preserves Retinal Function After Retinal Injury

We developed a physiologically relevant light damage model in pigmented mice and determined how Muller glial (MG) Dicer1 loss impacts retinal structure and function after injury. A moderate light damage paradigm (5,000 lux, 4 hours) was developed in pigmented mice carrying the RPE65 Leu450 variant. MG-specific Dicer1 conditional knockout (cKO) mice across three Cre lines (Rlbp1-CreER, Glast-CreER, Ascl1-CreER) were subjected to light damage at different developmental stages. Retinal structure and function were assessed using optical coherence tomography (OCT), histology, and electroretinography (ERG). Preconditioning and double-damage paradigms were included as controls. The model induced progressive photoreceptor degeneration characterized by early functional decline, followed by structural loss and delayed inner retinal impairment. Across all lines with Dicer loss in MG, retinal structure and function were better preserved following injury than in light-damaged controls. The most sustained protective phenotype was observed in the Rlbp1-CreER-driven line. Inner retinal function (Vmax) was consistently maintained despite reduced photoreceptor input. This phenotype was independent of age, timing of MG manipulation, or baseline retinal condition and was not reproduced by preconditioning paradigms. Dicer-deficient MG displayed reduced glial fibrillary acidic protein (GFAP) immunoreactivity, indicating a potential suppression of glial reactivity. However, the absence of a neuroprotective phenotype following preconditioning suggests that reduced GFAP expression alone is insufficient to account for the observed retinal preservation. Collectively, these findings demonstrate that MG-specific Dicer1 deletion is associated with a neuroprotective retinal phenotype characterized by preserved inner retinal function and reduced secondary degeneration. These findings establish a glia-driven component of retinal degeneration and demonstrate that altering the MG injury response can preserve retinal function following injury.

neuroscience↗

Dicer is essential for proper maturation, composition, and function in the postnatal retina.

microRNAs (miRNAs) play a pivotal role during the early phases of retinal development, but their impact on late-phase retinogenesis is unknown. We depleted miRNAs in late retinal progenitor/precursor cells (RPCs/PCs) via a conditional Dicer knock-out. Optical coherence tomography (OCT), electroretinography (ERG), histological, and transcriptional analyses were conducted in young and adult mice. Alterations in gene expression of late-born cells were observed as early as postnatal day 7 (P7), resulting in impaired rod function, a significantly reduced number of rod bipolar cells and their associated function, and a decreased Muller glia population at adult age. These defects appear to be caused by a delay in differentiation/ incomplete maturation, as indicated by an enlarged progenitor/precursor population at young ages that persists into adulthood. Notably, an increased population of HuC/D+ amacrine cells was found. Luciferase assays led us to speculate that this increase may be due to the absence of Elavl3 suppression via RPC-miRNAs. This suggests that Dicer/miRNAs in late RPC/PCs are essential for the proper formation and maturation of late RPC progenies and may also play a role in regulating cell state. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=109 SRC="FIGDIR/small/635135v1_ufig1.gif" ALT="Figure 1"> View larger version (22K): org.highwire.dtl.DTLVardef@9e0950org.highwire.dtl.DTLVardef@1757e2corg.highwire.dtl.DTLVardef@aeb5ecorg.highwire.dtl.DTLVardef@29accb_HPS_FORMAT_FIGEXP M_FIG C_FIG Summary statementLate-retinal progenitor microRNAs are essential for proper postnatal retinogenesis and retinal function.

developmental biology↗

Dicer loss in Muller glia leads to a defined sequence of pathological events beginning with cone dysfunction

PurposeThe loss of Dicer in Muller glia (MG) results in severe photoreceptor degeneration as it occurs in retinitis pigmentosa or AMD. However, the sequence of events leading to this severe degenerative state is unknown. The aim of this study was to conduct a chronological functional and structural characterization of the pathological events in MG-specific Dicer-cKO mice in vivo and histologically. MethodsTo delete Dicer and mature microRNAs (miRNAs) in MG, two conditional Dicer1 knock-out mouse strains namely RlbpCre:Dicer-cKOMG and GlastCre:Dicer-cKOMG, were created. Optical coherence tomography (OCT), electroretinograms (ERGs) as well as histological analyses were conducted to investigate structural and functional changes up to six months after Dicer deletion. ResultsDicer/miRNA loss in MG leads to 1) impairments of the external limiting membrane (ELM) - retinal pigment epithelium (RPE), 2) cone photoreceptor dysfunction and 3) retinal remodeling and functional loss of the inner retina, 1, 3 and 6 months after Dicer loss, respectively, in both strains. Furthermore, in the Rlbp:Dicer-cKOMG strain, rod photoreceptor impairment was found 4 months after Dicer depletion (4) accompanied by alteration of RPE integrity (5). ConclusionsMG Dicer loss in the adult mouse retina impacts cone function prior to any measurable changes in rod function, suggesting a pivotal role for MG Dicer and miRNAs in supporting cone health. A partially impaired RPE however seems to accelerate rod degeneration and overall degenerative events.

neuroscience↗