Search bioRxiv⌕ Search

Biology subjects

Magda, D. P.

Publications and source records attributed to Magda, D. P..

3 recordsLinked to original sources

Proliferative Capacity and Neural Lineage Commitment of Muller Glia in the Adult Human Retina

BackgroundThe mammalian retina lacks meaningful regenerative capacity, and degeneration usually leads to irreversible vision loss. Although lower vertebrates regenerate retinal neurons through Muller glia, this capacity has generally been considered absent in humans. This study investigated whether defined humoral cues alone are sufficient to unlock a latent neurogenic program in human Muller cells. MethodsLong-term organotypic retinal cultures were established from 39 adult donors. Cultures were treated with FGF-2 and GSK-3 inhibition to assess proliferation across the peripheral and central retina. Cellular responses were evaluated using single-cell transcriptomics and immunohistochemistry. ResultsFGF-2 treatment and GSK-3 inhibition induced robust proliferation across both peripheral and central retina, with 79.09 {+/-} 6.32% of dividing cells identified as Muller glia, some completing multiple cell cycles. Single-cell transcriptomics revealed activation of progenitor-like and neuronal differentiation pathways, whereas immunohistochemistry demonstrated expression of early and late neuronal markers spanning all major retinal lineages. Newly generated cells expressed markers of cone, rod, bipolar, horizontal, amacrine, and ganglion cell identities, together with evidence of early synaptogenesis. ConclusionsThese findings reveal an intrinsic regenerative potential in adult human Muller glia and show that defined humoral cues can activate a latent neurogenic program in these cells. This may have implications for future vision-restoration strategies in degenerative retinal disease.

neuroscience↗

Engineering Infrared Light Detection in Blind Human Retina Using Ultrasensitive Human TRPV1 Channels

Engineering infrared light sensitivity in the blind human retina could restore visual function in patients with regional retinal degeneration. However, current approaches are complex and contain non-human biological components. Using rational protein design we engineered human TRPV1 channels ({Delta}786-840) with temperature sensitivity shifted from 45 to 41{degrees}C that enabled near-infrared light- induced heat activation of mammalian cells at close to physiological temperatures. When expressed in ganglion cells of human retinal explants, {Delta}786-840 TRPV1 generated robust spiking responses to brief near-infrared light-induced temperature transients. Additionally, increasing intensity of radiation evoked graded responses correlating with increasing firing frequencies. Unlike previous approaches that used non-human TRPV1 channels, which risk immune reactions and a multicomponent system that poses barriers to clinical implementation, this single component human-derived approach eliminates immunogenicity concerns, addressing a major challenge to clinical translation, and allow gene delivery using adeno-associated viral vectors.

bioengineering↗

High-efficiency base editing for Stargardt disease in mice, non-human primates, and human retina tissue

Stargardt disease is a currently untreatable, inherited neurodegenerative disease that leads to macular degeneration and blindness due to loss-of-function mutations in the ABCA4 gene. We have designed a dual adeno-associated viral vector split-intein adenine base-editing strategy to correct the most common mutation in ABCA4 (c.5882G>A, p.G1961E). We optimized ABCA4 base editing in human models, including retinal organoids, iPSC-derived retinal pigment epithelial (RPE) cells, as well as adult human retinal- and RPE/choroid explants in vitro. The resulting gene therapy vectors achieved high levels of gene correction in mutation-carrying mice and in non-human primates, with an average editing of 37% of photoreceptors and 73% of RPE cells in vivo. The high editing rates in primates make way for precise and efficient gene editing in other neurodegenerative ocular diseases.

neuroscience↗