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Evidence of Müller Glia Conversion Into Retina Ganglion Cells Using Neurogenin2
Roberta Pereira de Melo Guimarães1,2,3, Bruna Soares Landeira1, Diego Marques Coelho1,4
1Brain Institute, Federal University of Rio Grande do Norte, Natal, Brazil.
Abstract:
Degenerative retinopathies are the leading causes of irreversible visual impairment in the elderly, affecting hundreds of millions of patients. Müller glia cells (MGC), the main type of glia found in the vertebrate retina, can resume proliferation in the rodent adult injured retina but contribute weakly to tissue repair when compared to zebrafish retina. However, postnatal and adult mouse MGC can be genetically reprogrammed through the expression of the transcription factor (TF) Achaete-scute homolog 1 (ASCL1) into induced neurons (iNs), displaying key hallmarks of photoreceptors, bipolar and amacrine cells, which may contribute to regenerate the damaged retina. Here, we show that the TF neurogenin 2 (NEUROG2) is also sufficient to lineage-reprogram postnatal mouse MGC into iNs. The efficiency of MGC lineage conversion by NEUROG2 is similar to that observed after expression of ASCL1 and both TFs induce the generation of functionally active iNs. Treatment of MGC cultures with EGF and FGF2 prior to Neurog2 or Ascl1 expression enhances reprogramming efficiencies, what can be at least partially explained by an increase in the frequency of MGCs expressing sex determining region Y (SRY)-box 2 (SOX2). Transduction of either Neurog2 or Ascl1 led to the upregulation of key retina neuronal genes in MGC-derived iNs, but only NEUROG2 induced a consistent increase in the expression of putative retinal ganglion cell (RGC) genes. Moreover, in vivo electroporation of Neurog2 in late progenitors from the neonatal rat retina, which are transcriptionally similar to MGCs, also induced a shift in the generation of retinal cell subtypes, favoring neuronal differentiation at the expense of MGCs and resuming the generation of RGCs. Altogether, our data indicate that NEUROG2 induces lineage conversion of postnatal rodent MGCs into RGC-like iNs in vitro and resumes the generation of this neuronal type from late progenitors of the retina in vivo.
Insights
Neurogenin 2 (NEUROG2) can reprogram Müller glia cells (MGC) into induced neurons (iNs) in the rodent retina. This reprogramming promotes the generation of retinal ganglion cells (RGCs), offering potential for treating visual impairment.
Area of Science:
- Ophthalmology
- Neuroscience
- Regenerative Medicine
Background:
- Degenerative retinopathies cause irreversible vision loss in millions.
- Müller glia cells (MGC) in rodents can be reprogrammed into neurons, unlike in zebrafish.
- Previous studies showed Achaete-scute homolog 1 (ASCL1) can reprogram MGCs into induced neurons (iNs).
Purpose of the Study:
- To investigate if neurogenin 2 (NEUROG2) can reprogram postnatal mouse MGC into iNs.
- To compare NEUROG2's reprogramming efficiency with ASCL1.
- To assess NEUROG2's potential for generating retinal ganglion cells (RGCs) in vitro and in vivo.
Main Methods:
- Genetic reprogramming of postnatal mouse MGC using NEUROG2 and ASCL1 transcription factors.
- Treatment of MGC cultures with EGF and FGF2 to enhance reprogramming.
- In vivo electroporation of NEUROG2 in neonatal rat retinal progenitors.
Main Results:
- NEUROG2 efficiently reprograms MGC into iNs, comparable to ASCL1.
- Both TFs generate functionally active iNs; growth factors enhance efficiency.
- NEUROG2 specifically upregulates putative RGC genes and resumes RGC generation in vivo.
Conclusions:
- NEUROG2 is a potent TF for lineage conversion of rodent MGC into RGC-like iNs.
- NEUROG2 facilitates in vitro MGC reprogramming and in vivo RGC generation.
- This approach holds promise for regenerative strategies against retinal degenerative diseases.
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