Cone photoreceptors and horizontal cells (HCs) have a reciprocal synapse that underlies lateral inhibition and establishes the antagonistic center-surround organization of the visual system. Cones transmit to HCs through an excitatory synapse and HCs feed back to cones through an inhibitory synapse. Here we report that HCs also transmit to cone terminals a positive feedback signal that elevates intracellular Ca2+ and accelerates neurotransmitter release. Positive and negative feedback are both initiated by AMPA receptors on HCs, but positive feedback appears to be mediated by a change in HC Ca2+, whereas negative feedback is mediated by a change in HC membrane potential. Local uncaging of AMPA receptor agonists suggests that positive feedba...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...
Cone photoreceptors and horizontal cells (HCs) have a reciprocal synapse that underlies lateral inhi...
Cone photoreceptors and horizontal cells (HCs) have a reciprocal synapse that underlies lateral inhi...
How neurons in the eye feed signals back to photoreceptors to optimize sensitivity to patterns of li...
KEY POINTS: In the retina, horizontal cells feed back negatively to cone photoreceptors. Glutamate r...
Retinal horizontal cells (HCs) provide negative feedback to cones, but, largely because annular illu...
In the outer plexiform layer (OPL) of the mammalian retina, cone photoreceptors (cones) provide inpu...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
Lateral inhibition at the first synapse in the retina is important for visual perception, enhancing ...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...
Cone photoreceptors and horizontal cells (HCs) have a reciprocal synapse that underlies lateral inhi...
Cone photoreceptors and horizontal cells (HCs) have a reciprocal synapse that underlies lateral inhi...
How neurons in the eye feed signals back to photoreceptors to optimize sensitivity to patterns of li...
KEY POINTS: In the retina, horizontal cells feed back negatively to cone photoreceptors. Glutamate r...
Retinal horizontal cells (HCs) provide negative feedback to cones, but, largely because annular illu...
In the outer plexiform layer (OPL) of the mammalian retina, cone photoreceptors (cones) provide inpu...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
Lateral inhibition at the first synapse in the retina is important for visual perception, enhancing ...
In the vertebrate retina, horizontal cells generate the inhibitory surround of bipolar cells, an ess...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...
In neuronal systems, excitation and inhibition must be well balanced to ensure reliable information ...