Visual information is coded as a dynamic spatio-temporal pattern of photoreceptor activation, and the ribbon synapse between photoreceptors and second-order neurons determines the downstream transfer of visual information. The vertical slice preparation of the mammalian retina is a highly valuable tool to study signal processing in vertical pathways, i.e. between photoreceptors and bipolar cells, and between bipolar cells and some types of amacrine cell1,2,3,4.
However, vertical sectioning always causes severe truncation of the dendritic fields of many retinal neurons, leading to considerable loss of synaptic contacts. Especially in the outer retina, horizontal cells are affected due to their laterally spread extended dendritic fields and axon terminal systems5. In a vertical slice preparation, the synaptic input of hundreds of cone photoreceptor terminals to the dendrites of a horizontal cell is thus reduced to a few sparse contacts. This might suffice to study the properties of individual synapses, but it does by no means represent the signal processing capabilities underlying the synchronized activation of photoreceptor ribbon synapses.
We therefore developed a horizontal slice preparation, which leaves almost all of the cone photoreceptor synaptic input to horizontal cell dendrites intact and functional. The plane of sectioning runs parallel to the surface of the retina, ideally cutting through the inner nuclear layer between horizontal cells and amacrine cells. Thus, horizontal slices of the outer retina are created containing, on the presynaptic site, photoreceptors with inner and outer segments as well as synaptic terminals, and horizontal cells and bipolar cells on the postsynaptic site. This preparation is well suited to investigate coordinated synaptic inputs into horizontal cell dendrites by all cone photoreceptors within its dendritic field. It thus might prove useful to better understand the workings of the photoreceptor ribbon synapse, which is crucial for the transfer of visual information from the matrix of photoreceptor activation into a postsynaptic response.