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Biology subjects

Fain, G. L.

Publications and source records attributed to Fain, G. L..

2 recordsLinked to original sources

Molecular Characterization of the Sea Lamprey Retina Illuminates the Evolutionary Origin of Retinal Cell Types

The lamprey, a primitive jawless vertebrate whose ancestors diverged from all other vertebrates over 500 million years ago, offers a unique window into the primordial formation of the retina. Using single-cell RNA-sequencing, we characterized retinal cell types in lamprey and compared their molecular differentiation and regulatory networks with those in mouse and other jawed vertebrates. Our analysis revealed six cell classes and 74 distinct cell types. We discovered multiple conserved cell types shared between jawless and jawed lineages, including notably rods and cones, ON and OFF bipolar cells, and starburst amacrine cells. The conservation of these cell types indicates their emergence early in vertebrate evolution, highlighting the primal designs of retinal circuits for the rod pathway, ON-OFF discrimination, and direction selectivity. In contrast to this evidence for conservation, the pathways of diversification for amacrine cells and retinal ganglion cells appear to have distinctly diverged between the two lineages. Furthermore, we inferred master regulators in specifying retinal cell classes in both lamprey and macaque and identified common regulatory elements across species, underscoring the ancestral nature of the molecular origins governing retinal cell classes. Altogether, our characterization of the lamprey retina illuminates the evolutionary origin of visual processing in the retina.

evolutionary biology↗

Cones and Cone Pathways Remain Functional in Advanced Retinal Degeneration

Most defects causing retinal degeneration in retinitis pigmentosa (RP) are rod-specific mutations, but the subsequent degeneration of cones, which produces loss of daylight vision and high-acuity perception, is the most debilitating feature of the disease. To understand better why cones degenerate and how cone vision might be restored, we have made the first single-cell recordings of light responses from degenerating cones and retinal interneurons after most rods have died and cones have lost their outer-segment disk membranes and synaptic pedicles. We show that degenerating cones have functional cyclic-nucleotide-gated channels and can continue to give light responses, apparently produced by opsin localized either to small areas of organized membrane near the ciliary axoneme or distributed throughout the inner segment. Light responses of second-order horizontal and bipolar cells are smaller and less sensitive but surprisingly similar to those of normal retina. Furthermore, retinal output as reflected in responses of ganglion cells is largely intact at cone-mediated light levels. Together, these findings show that cones and their retinal pathways can remain functional even as degeneration is progressing, an encouraging result for future research aimed at enhancing the light sensitivity of residual cones to restore vision in patients with genetically inherited retinal degeneration.

neuroscience↗