bioRxiv Science⌕ Search

Biology subjects

Bohrer, L. R.

Publications and source records attributed to Bohrer, L. R..

4 recordsLinked to original sources

Production of clinical grade patient iPSC-derived 3D retinal organoids containing transplantable photoreceptor cells

Neurodegenerative conditions that affect the retina are currently the leading cause of incurable blindness in the developed world. Although gene and drug therapies are being developed to slow disease progression in some cases, restorative cell replacement approaches are needed for patients with significant vision impairment due to retinal degeneration. While a variety of different cell types have been evaluated in the context of retinal cell replacement, induced pluripotent stem cells (iPSCs), which can be generated and delivered as an autologous therapeutic, are in many ways the most attractive donor cell source currently available. Like embryonic stem cells, iPSCs must be differentiated into the target therapeutic cell type prior to transplantation. For instance, for patients with retinitis pigmentosa who have primary photoreceptor cell disease, photoreceptor cell derivation and enrichment are required prior to transplantation. Although other effective retinal differentiation protocols exist, they are often not fully compatible with clinical manufacturing. In this study, we report development of a xeno-free 3D retinal differentiation protocol based on the most robust adherent/non-adherent 3D differentiation strategies published to date. In addition, we demonstrate that while iPSC reprogramming efficiency is enhanced under reduced oxygen tension (i.e., 5%), efficient embryoid body and subsequent retinal organoid production require standard oxygen levels (i.e., 21%). Finally, we show that photoreceptor precursor cells obtained from 3D retinal organoids derived using the developed protocol under current good manufacturing practices (cGMP) survive in the subretinal space of dystrophic Pde6b-null rats for 1-month post-transplantation and form new synaptic connections with host bipolar neurons.

neuroscience↗

Exonic splice variant discovery using in vitro models of inherited retinal disease

Correct identification of the molecular consequences of pathogenic genetic variants is essential to the development of allele-specific therapies. However, in some cases, such molecular effects may be ambiguous following genetic sequence analysis alone. One such case is exonic, codon-altering variants that are also predicted to disrupt normal RNA splicing. Here, we identify such cases in the context of inherited retinal disease. NR2E3 c.932G>A (p.Arg311Gln) is a variant commonly associated with Enhanced S Cone Syndrome (ESCS). Previous studies using mutagenized cDNA constructs have shown that the arginine to glutamine substitution at position 311 of NR2E3 does not meaningfully diminish function of the rod-specific transcription factor. Using retinal organoids, we explored the molecular consequences of NR2E3 c.932G>A when expressed endogenously during human rod photoreceptor cell development. Retinal organoids carrying the NR2E3 c.932G>A allele expressed a transcript containing a 186-nucleotide deletion of exon 6 within the ligand binding domain. This short transcript was not detected in control organoids or control human donor retina samples. A minigene containing exons 5 and 6 of NR2E3 showed sufficiency of the c.932G>A variant to cause the observed splicing defect. These results support the hypothesis that the pathogenic NR2E3 c.932G>A variant leads to photoreceptor disease by causing a splice defect and not through an amino acid substitution as previously supposed. They also explain the relatively mild effect of Arg311Gln on NR2E3 function in vitro. We also used in silico prediction tools to show that similar changes are likely to affect other inherited retinal disease variants in genes such as CEP290, ABCA4, and BEST1.

genetics↗

Device-free isolation of photoreceptor cells from patient iPSC-derived retinal organoids

Autologous photoreceptor cell replacement therapy shows great promise for treating patients with multiple forms of inherited retinal degenerative blindness. Specifically, in disorders such as retinitis pigmentosa and Stargardts disease, selective death of photoreceptor cells results in irreversible blindness. Induced pluripotent stem cell (iPSC) derived retinal organoids, which faithfully recapitulate the structure of the neural retina, are an ideal source of photoreceptor cells required for these therapies. However, in addition to photoreceptor cells, retinal organoids also contain many other retinal cell types. Therefore, approaches for isolating fate committed photoreceptors from dissociated retinal organoids are desirable to produce photoreceptor cell replacement therapies. In this work, we present a partial dissociation strategy, which leverages the high level of organization found in retinal organoids to enable selective enrichment of photoreceptor cells without the use of specialized equipment or reagents such as antibody labels. Given that this technique can be performed with only standard plasticware and cGMP compliant reagents, it is an ideal candidate for use in the preparation of clinical cell therapies.

bioengineering↗

Loss of NR2E3 disrupts rod photoreceptor cell maturation causing a fate switch late in human retinal development.

While dysfunction and death of light-detecting photoreceptor cells underlie most inherited retinal dystrophies, knowledge of the species-specific details of human rod and cone photoreceptor cell development remains limited. Here, we generate retinal organoids using induced pluripotent stem cells (iPSC) derived from a patient with genetic photoreceptor disease due to mutations in NR2E3, an isogenic control, and an unrelated control. Organoids were sampled using single-cell RNA sequencing across the developmental window encompassing photoreceptor specification, emergence, and maturation, up to 260 days of in vitro differentiation. Using single-cell transcriptomics data, we reconstruct the rod photoreceptor developmental lineage and identify a branchpoint in development unique to the disease state that gives rise to a divergent rod photoreceptor cell population. We show that the rod-specific transcription factor NR2E3 is required for the proper expression of genes involved in phototransduction, including expression of the light-sensitive protein rhodopsin, which is absent in divergent rods. NR2E3-null rods additionally misexpress several cone-specific phototransduction genes at both the transcript and protein level. Using joint multimodal single-cell sequencing on late-stage retinal organoids, we further identify specific putative regulatory sites where rod-specific factors act to steer rod and cone photoreceptor cell development. Importantly, these findings are strikingly different than those observed in rodent models of disease. Together, these data provide a roadmap of human photoreceptor development and leverage patient iPSCs to define the specific roles of rod transcription factors in photoreceptor cell emergence and maturation.

developmental biology↗