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Vision Research|December 21, 2010
The genetics of normal and defective color visionJay Neitz, Maureen NeitzCold Spring Harbor Perspectives in Medicine|August 23, 2014
Curing color blindness--mice and nonhuman primatesMaureen Neitz, Jay NeitzGenes|August 27, 2021
Intermixing the OPN1LW and OPN1MW Genes Disrupts the Exonic Splicing Code Causing an Array of Vision DisordersMaureen Neitz, Jay NeitzBiomedical Optics Express|February 26, 2024
Clarification on the understanding of contrast theory in relation to the article "ON and OFF receptive field processing in the presence of optical scattering": commentJay Neitz, Maureen NeitzTranslational Vision Science & Technology|October 30, 2024
Diffusion Optics Technology (DOT): A Myopia Control Spectacle Lens Based on Contrast TheoryJay Neitz, Maureen NeitzVisual Neuroscience|September 12, 2006
An adaptation of the Cambridge Colour Test for use with animalsKatherine Mancuso, Maureen Neitz, Jay NeitzJournal of Vision|April 17, 2004
Evaluating the human X-chromosome pigment gene promoter sequences as predictors of L:M cone ratio variationCarrie McMahon, Jay Neitz, Maureen NeitzJournal of the Optical Society of America. A, Optics, Image Science, and Vision|May 3, 2023
From cones to color vision: a neurobiological model that explains the unique huesDragos Rezeanu, Maureen Neitz, Jay NeitzFrontiers in Neuroanatomy|July 22, 2022
How We See Black and White: The Role of Midget Ganglion CellsDragos Rezeanu, Maureen Neitz, Jay NeitzPageof 11