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Kunze, V. P.

Publications and source records attributed to Kunze, V. P..

4 recordsLinked to original sources

Evolution of neuronal cell classes and types in the vertebrate retina

The basic plan of the retina is conserved across vertebrates, yet species differ profoundly in their visual needs (Baden et al., 2020). One might expect that retinal cell types evolved to accommodate these varied needs, but this has not been systematically studied. Here, we generated and integrated single-cell transcriptomic atlases of the retina from 17 species: humans, two non-human primates, four rodents, three ungulates, opossum, ferret, tree shrew, a teleost fish, a bird, a reptile and a lamprey. Molecular conservation of the six retinal cell classes (photoreceptors, horizontal cells, bipolar cells, amacrine cells, retinal ganglion cells [RGCs] and Muller glia) is striking, with transcriptomic differences across species correlated with evolutionary distance. Major subclasses are also conserved, whereas variation among types within classes or subclasses is more pronounced. However, an integrative analysis revealed that numerous types are shared across species based on conserved gene expression programs that likely trace back to the common ancestor of jawed vertebrates. The degree of variation among types increases from the outer retina (photoreceptors) to the inner retina (RGCs), suggesting that evolution acts preferentially to shape the retinal output. Finally, we identified mammalian orthologs of midget RGCs, which comprise >80% of RGCs in the human retina, subserve high-acuity vision, and were believed to be primate-specific (Berson, 2008); in contrast, the mouse orthologs comprise <2% of mouse RGCs. Projections both primate and mouse orthologous types are overrepresented in the thalamus, which supplies the primary visual cortex. We suggest that midget RGCs are not primate innovations, but descendants of evolutionarily ancient types that decreased in size and increased in number as primates evolved, thereby facilitating high visual acuity and increased cortical processing of visual information.

neuroscience↗

Neurexin 3 is required for the specific S-cone to S-cone bipolar cell synapse in the mammalian retina

Precise wiring within sensory systems is critical for the accurate transmission of information. In the visual system, S-cone photoreceptors specialize in detecting short-wavelength light, crucial to color perception and environmental cue detection. S-cones form specific synapses with S-cone bipolar cells (SCBCs), a connection that is remarkably consistent across species. Yet, the molecular mechanisms guiding this specificity remain unexplored. To address this, we used the cone-dominant ground squirrel for deep-sequencing of cone subtype transcriptomes and identified Nrxn3 as an essential molecule for the S-cone to SCBC synapse. Using transgenic mouse models, we further examined the role of Nrxn3 in S-cones and discovered a significant reduction of SCBC connections in the absence of Nrxn3. This finding extends the known functions of neurexins, typically associated with synapse regulation, by highlighting their essential role in a specific synaptic connection for the first time. Moreover, the differentially expressed genes identified here pave the way for further investigations into the unique functions of cone subtypes.

neuroscience↗

Identification of transcription factors involved in the specification of photoreceptor subtypes

During development, retinal progenitors navigate a complex landscape of fate decisions that results in the generation of unique cell types necessary for proper vision. Here, we aim to provide the resources and techniques required to identify fac-tors that are critical for fate decisions in photoreceptors. These factors help create a diversity of photoreceptor subtypes that sustain vision in day and night, enable the discrimination of colors, facilitate the detection of prey and predators, and support other aspects of vision. First, we generate a key resource: a high-quality and deep transcriptomic profile of each photoreceptor subtype in zebrafish. We make this resource openly accessible, easy to explore and integrate it with other currently available photoreceptor transcriptomic datasets. Second, using our transcriptomic profiles, we derive an in-depth map of expression of transcription factors in photoreceptors--potential key players in cell-fate decisions. Third, we explore CRISPR-FO screening as a fast, efficient and versatile technique to assess the involvement of candidate transcription factors in photoreceptor subtype-specification. We first show that known phenotypes can be easily replicated: loss of S cones in foxq2 mutants and loss of rods in nr2e3 mutants. We then explore four additional transcription factors of unknown function (Skor1a, Sall1a, Lrrfip1a and Xbp1) and find no evidence for their involvement in photoreceptor-subtype specification. Finally, we identify novel functions of Tbx2, demonstrating that it plays a central role in controlling the identity of all photoreceptor sub-types within the retina. Our study provides an open roadmap to discover additional factors involved in this process. This dataset and screening method will be a valuable way to explore the genes involved in many essential aspects of photoreceptor biology.

neuroscience↗

True S-cones are concentrated in the ventral mouse retina for color detection in the upper visual field

Color, an important visual cue for survival, is encoded by comparing signals from photoreceptors with different spectral sensitivities. The mouse retina expresses a short wavelength-sensitive and a middle/long wavelength-sensitive opsin (S- and M-opsin), forming opposing, overlapping gradients along the dorsal-ventral axis. Here, we analyzed the distribution of all cone types across the entire retina for two commonly used mouse strains. We found, unexpectedly, that true S-cones (S-opsin only) are highly concentrated (up to 30% of cones) in ventral retina. Moreover, S-cone bipolar cells (SCBCs) are also skewed towards ventral retina, with wiring patterns matching the distribution of true S-cones. In addition, true S-cones in the ventral retina form clusters, which may augment synaptic input to SCBCs. Such a unique true S-cone pattern forms a basis for mouse color vision, likely reflecting evolutionary adaption to enhance color coding for the upper visual field suitable for mices habitat and behavior.

evolutionary biology↗