This project is designed to uncover basic patterns of bipolar cell connectivity in the inner nuclear layer of the retina. The output of cones quickly diverges into many parallel pathways initiated at the cone to bipolar cell synapses. The properties of these channels are defined by the morphology and pharmacology of the bipolar cells, t;he spatial extent and stratification patterns of their dendrites, their pattern of cone contacts, and their degree of interconnectedness. Yet studies directly concerned with cone bipolar cells have been rare in mammalian retina, save for a few Golgi and electron microscopy studies and a very few electrophysiological recordings. This project aims to study: The morphology of bipolar cells. The PI will label bipolar cells with aDAPI, then stain them intracellularly with Lucifer Yellow. Their morphology and stratification patterns will be determined. Bipolar cell density, size and coverage factor will have measured across the entire retina. Nearest neighbors of a given type will be stained to show patterns of contact and local coverage. DAPI fluorescence will aid in clarifying the number of distinct bipolar cell types in the rabbit retina. Comparison will be made of individual cell types stained by the Golgi method, by antibodies selective for subtypes of bipolar cell, by dye injection following DAPI labeling, and by dye coupling via AII amacrine cells. Cone-to-bipolar cell contacts. Staining of the cone mosaic with lectins and anti-blue opsin will determine the convergence, divergence and cone specificity of the various bipolar cell types. These measures show how spatial and chromatic information is conveyed through the channels associated with the individuals bipolar cell types. Examination of the contacts made by bipolar cell dendrites with cone pedicles will be made with electron microcopy. Dye coupling in bipolar cells. The small tracer Neurobiotin will be injected into the various types of bipolar cell. Coupling to AII amacrine cells or other bipolar cells will be observed. The rate of Neurobiotin spread in bipolar cells can be compared to that in other cell types to quantify relative extent of dye coupling. This will assess the relative significance of the various gap junction in terms of pooled electrical signals and other small cytoplasmic molecules. The degree to which this spatial pooling contributes to mechanisms of adaptation and acuity can be inferred. Pharmacological manipulation of dye spread will indicate the extent to which light adaptation regulates coupling between bipolar cells and between bipolar cells and AII amacrine cells.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
First Independent Research Support & Transition (FIRST) Awards (R29)
Project #
5R29EY010121-04
Application #
2019873
Study Section
Visual Sciences C Study Section (VISC)
Project Start
1994-01-01
Project End
1998-12-31
Budget Start
1997-01-01
Budget End
1997-12-31
Support Year
4
Fiscal Year
1997
Total Cost
Indirect Cost
Name
University of Texas Health Science Center Houston
Department
Other Health Professions
Type
Schools of Medicine
DUNS #
City
Houston
State
TX
Country
United States
Zip Code
77225
Marshak, David W; Chuang, Alice Z; Dolino, Drew M et al. (2015) Synaptic connections of amacrine cells containing vesicular glutamate transporter 3 in baboon retinas. Vis Neurosci 32:E006
Mao, Chai-An; Li, Hongyan; Zhang, Zhijing et al. (2014) T-box transcription regulator Tbr2 is essential for the formation and maintenance of Opn4/melanopsin-expressing intrinsically photosensitive retinal ganglion cells. J Neurosci 34:13083-95
Marshak, David W; Mills, Stephen L (2014) Short-wavelength cone-opponent retinal ganglion cells in mammals. Vis Neurosci 31:165-75
Mills, Stephen L; Tian, Lian-Ming; Hoshi, Hideo et al. (2014) Three distinct blue-green color pathways in a mammalian retina. J Neurosci 34:1760-8
Hoshi, Hideo; Tian, Lian-Ming; Massey, Stephen C et al. (2013) Properties of the ON bistratified ganglion cell in the rabbit retina. J Comp Neurol 521:1497-509
Pan, Feng; Keung, Joyce; Kim, In-Beom et al. (2012) Connexin 57 is expressed by the axon terminal network of B-type horizontal cells in the rabbit retina. J Comp Neurol 520:2256-74
Hoshi, Hideo; Tian, Lian-Ming; Massey, Stephen C et al. (2011) Two distinct types of ON directionally selective ganglion cells in the rabbit retina. J Comp Neurol 519:2509-21
Hoshi, Hideo; Mills, Stephen L (2009) Components and properties of the G3 ganglion cell circuit in the rabbit retina. J Comp Neurol 513:69-82
Hoshi, Hideo; Liu, Wei-Li; Massey, Stephen C et al. (2009) ON inputs to the OFF layer: bipolar cells that break the stratification rules of the retina. J Neurosci 29:8875-83