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CRISPR/Cas9 Technology in Restoring Dystrophin Expression in iPSC-Derived Muscle Progenitors
Published on: September 14, 2019
Dystrophin Is Required for the Proper Timing in Retinal Histogenesis: A Thorough Investigation on the mdx Mouse Model
Irene Persiconi1,2, Francesca Cosmi1, Noemi Antonella Guadagno2
1Department of Biology and Biotechnology "Charles Darwin", Sapienza University of Rome, Rome, Italy.
Abstract:
Duchenne muscular dystrophy (DMD) is a lethal X-linked muscular disease caused by defective expression of the cytoskeletal protein dystrophin (Dp427). Selected autonomic and central neurons, including retinal neurons, express Dp427 and/or dystrophin shorter isoforms. Because of this, DMD patients may also experience different forms of cognitive impairment, neurological and autonomic disorders, and specific visual defects. DMD-related damages to the nervous system are established during development, suggesting a role for all dystrophin isoforms in neural circuit development and differentiation; however, to date, their function in retinogenesis has never been investigated. In this large-scale study, we analyzed whether the lack of Dp427 affects late retinogenesis in the mdx mouse, the most well studied animal model of DMD. Retinal gene expression and layer maturation, as well as neural cell proliferation, apoptosis, and differentiation, were evaluated in E18 and/or P0, P5, P10, and adult mice. In mdx mice, expression of Capn3, Id3 (E18-P5), and Dtnb (P5) genes, encoding proteins involved in different aspects of retina development and synaptogenesis (e.g., Calpain 3, DNA-binding protein inhibitor-3, and β-dystrobrevin, respectively), was transiently reduced compared to age-matched wild type mice. Concomitantly, a difference in the time required for the retinal ganglion cell layer to reach appropriate thickness was observed (P0-P5). Immunolabeling for specific cell markers also evidenced a significant dysregulation in the number of GABAergic amacrine cells (P5-P10), a transient decrease in the area immunopositive for the Vesicular Glutamate Transporter 1 (VGluT1) during ribbon synapse maturation (P10) and a reduction in the number of calretinin+ retinal ganglion cells (RGCs) (adults). Finally, the number of proliferating retinal progenitor cells (P5-P10) and apoptotic cells (P10) was reduced. These results support the hypothesis of a role for Dp427 during late retinogenesis different from those proposed in consolidated neural circuits. In particular, Dp427 may be involved in shaping specific steps of retina differentiation. Notably, although most of the above described quantitative alterations recover over time, the number of calretinin+ RGCs is reduced only in the mature retina. This suggests that alterations subtler than the timing of retinal maturation may occur, a hypothesis that demands further in-depth functional studies.
Insights
Duchenne muscular dystrophy (DMD) affects the nervous system, including the retina. This study in mdx mice reveals dystrophin (Dp427) is crucial for normal retina development and cell differentiation.
Area of Science:
- Neuroscience
- Developmental Biology
- Ophthalmology
Background:
- Duchenne muscular dystrophy (DMD) is an X-linked disorder caused by defective dystrophin (Dp427) expression.
- DMD patients exhibit neurological and visual impairments, suggesting dystrophin's role in neural development.
- The function of dystrophin isoforms in retinogenesis remains unexplored.
Purpose of the Study:
- To investigate the impact of Dp427 deficiency on late-stage retina development in the mdx mouse model.
- To analyze gene expression, cell proliferation, apoptosis, and differentiation during retinogenesis in mdx mice.
Main Methods:
- Comparative analysis of retinal gene expression, layer maturation, cell proliferation, apoptosis, and differentiation in mdx and wild-type mice at various developmental stages (E18-adult).
- Evaluation of specific gene markers (Capn3, Id3, Dtnb) and cell types (GABAergic amacrine cells, calretinin+ retinal ganglion cells).
- Assessment of ribbon synapse maturation using Vesicular Glutamate Transporter 1 (VGluT1) immunolabeling.
Main Results:
- Transient reduction in Capn3, Id3, and Dtnb gene expression observed in mdx mice.
- Delayed maturation of the retinal ganglion cell layer and dysregulation of GABAergic amacrine cells noted.
- Reduced proliferation of retinal progenitor cells and apoptotic cells, with a persistent decrease in calretinin+ retinal ganglion cells in adult mdx mice.
Conclusions:
- Dp427 plays a significant role in specific steps of late retinogenesis, distinct from its function in mature neural circuits.
- Dp427 influences retina differentiation, cell proliferation, and apoptosis during development.
- While most developmental alterations normalize, the reduction in calretinin+ retinal ganglion cells suggests subtle, long-term functional deficits in the mature retina.

