|
|
||||||||
| ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
Cullen Eye Institute, Baylor College of Medicine, Houston, TX 77030, USA
The visual system processes light images by projecting various representations of the visual world to segregated regions in the brain through parallel channels. Retinal bipolar cells constitute the first parallel channels that carry different light response attributes to different parts of the inner plexiform layer (IPL). Here we present a systematic study on detailed axonal morphology and light response characteristics of over 200 bipolar cells in dark-adapted salamander retinal slices by the whole-cell voltage clamp and Lucifer yellow fluorescence (with a confocal microscope) techniques. Four major groups of bipolar cells were identified according to the patterns of axon terminal ramification in the IPL: 36% were narrowly monostratified (whose axon terminals ramified in one of the 10 strata of the IPL), 27% were broadly monostratified, 19% were multistratified, and 18% bore pyramidally branching axons. By analysing the bipolar cells with narrowly monostratified axon terminals in each of the 10 strata of the IPL, we found that several key light response attributes are highly correlated with the strata in which the cells' axon terminals ramify. The 10 IPL strata appear to be the basic building blocks for attributes of light-evoked signal outputs in all bipolar cells, and several general stratum-by-stratum rules were identified by analysing the broadly monostratified, multistratified and pyramidally branching cells. These rules not only uncover mechanisms by which third-order retinal cells integrate and compute bipolar cell signals, but also shed considerable light on how bipolar cells in other vertebrates process visual information and how physiological signals may shape the morphology and projection of output synapses of visual neurones during development.
(Received 26 February 2004;
accepted after revision 10 May 2004;
first published online 14 May 2004)
Corresponding author S. M. Wu: Cullen Eye Institute, Baylor College of Medicine, One Baylor Plaza, NC-205, Houston, TX 77030, USA. Email: swu{at}bcm.tmc.edu
This article has been cited by other articles:
![]() |
J.-J. Pang, F. Gao, A. Barrow, R. A. Jacoby, and S. M. Wu How do tonic glutamatergic synapses evade receptor desensitization? J. Physiol., June 15, 2008; 586(12): 2889 - 2902. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. Y. Wong, F. A. Dunn, D. M. Graham, and D. M. Berson Synaptic influences on rat ganglion-cell photoreceptors J. Physiol., July 1, 2007; 582(1): 279 - 296. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. Segev, J. Puchalla, and M. J. Berry II Functional Organization of Ganglion Cells in the Salamander Retina J Neurophysiol, April 1, 2006; 95(4): 2277 - 2292. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Suryanarayanan and M. M. Slaughter Synaptic Transmission Mediated by Internal Calcium Stores in Rod Photoreceptors J. Neurosci., February 8, 2006; 26(6): 1759 - 1766. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. Y. Wong and J. E. Dowling Retinal Bipolar Cell Input Mechanisms in Giant Danio. III. ON-OFF Bipolar Cells and Their Color-Opponent Mechanisms J Neurophysiol, July 1, 2005; 94(1): 265 - 272. [Abstract] [Full Text] [PDF] |
||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |