Publications

Sondereker KB., Stabio ME., Renna JM. (2020) Crosstalk: The diversity of melanopsin ganglion cell types has begun to challenge the canonical divide between image-forming and non-image-forming vision. The Journal of Comparative Neurology. 2020 Jan 31; 528(12): 2044-2067.


Cleymaet AM., Gallagher SK., Tooker RE., Lipin MY., Renna JM., Sodhi P., Berg D., Hartwick ATE., Berson DM., Vigh J. (2019) μ-Opioid Receptor Activation Directly Modulates Intrinsically Photosensitive Retinal Ganglion Cells   Neuroscience. 2019 April 11; ePub


Sondereker KB., Satbio ME., Jamil JR., Tarchick M., Renna JM. (2018) Where You Cut Matters: A Dissection and Analysis Guide for the Spatial Orientation of the Mouse Retina from Ocular Landmarks.  Journal of Visualized Experiments. 2018 Aug 4; (138), E57861


Tufford AR., Onyak JR., Sondereker KB., Mattar P., Hattar S., Schmidt T., Renna JM., Cayouette M. (2018) Light-evoked activity in melanopsin ipRGCs instructs cone photoreceptor lamination during retinal development.  Cell Reports. 2018 May 22; 23(8): 2416-2428.


Stabio ME., Sondereker KB., Haghou S., Day BL., Chidsey B., Sabbah S., Renna JM. (2018) A novel map of the mouse eye for orienting retinal topography in anatomical space. The Journal of Comparative Neurology. 2018 Apr 6; 526(11):1749-1759.


Bonezzi PJ., Stabio ME., Renna JM., (2018) The development of medium wavelength photoresponsivity in the postnatal mouse retina. Current Eye Research. 2018 May; 43(5):666-673. Epub 2018 Feb 15.


Stabio ME., Sabbah SX., Quattrochi L., Ilardi MC., Fogerson PM., Leyrer M., Kim MT., Kim I., Schiel M., Renna JM., Briggman KL., Berson DM., (2018) The M5 Cell: A Color-opponent Intrinsically Photosensitive Ganglion Cell.  Neuron, 2018 Jan 3; 97(1):150-163.e4. Epub 2017 Dec 14.


Weng SJ., Renna JM., Chen WY., Yang XL., (2018) Functional assessment of melanopsin-driven light responses in the mouse: Multielectrode array recordings.  Methods in Molecular Biology. 2018; 1753:289-303.


Sondereker KB., Onyak JR., Ross CL., Islam SW., Renna JM. (2017) Melanopsin ganglion cell outer retinal dendrites: Morphologically distinct and asymmetrically distributed.  The Journal of Comparative Neurology, 2017 Dec 1; 525(17):3653-3665. Epub 2017 Aug 12.


Chew KS., Renna JM., McNeill DS., Fernandez DC., Keenan WT., Thomsen MB, Ecker JL., Loevinsohn GS., VanDunk C., Vicarel DC., Tufford A., Weng S., Gray PA., Cayouette M., Herzog ED., Zhao H., Berson DM., Hattar S. (2017) A subset of ipRGCs regulates both maturation of the circadian clock and segregation of the retinogeniculate projections in mice. eLIFE, 2017 June 15; (6).


Renna JM., Stukel JM., Kuntz Willits R., Engeberg ED. (2017) Dorsal root ganglia neurite outgrowth measured as a function of changes in microelectrode array resistance. PLoS ONE, 2017 April; 12(4).


Renna JM.,Chellappa DK., Ross CL., Stabio ME., Berson DM. (2015) Melanopsin ganglion cells extend dendrites into the outer retina during early postnatal developmentDevelopmental Neurobiology, 2015 September; 75(9): 935-46.


Renna JM., Weng S., Berson DM. (2011) Light acts through melanopsin to alter retinal wavesand segregation of retinogeniculate afferents. Nature Neuroscience, 2011 Jul 14; 827-829.


Ecker JL., Dumitrescu ON., Wong KY., Alam N., Chen SK., LeGates T., Renna JM., Prusky G., Berson DM., Hattar S. (2010) Melanopsin-expressing retinal ganglion-cell photoreceptors: cellular diversity and role in pattern vision. Neuron, 2010 Jul 15; 67(1):49-60.


Strang CE., Renna JM., Amthor FR., Keyser KT. (2010) Muscarinic Acetylcholine Receptor Localization and Activation Effects on Ganglion Response Properties. Investigative Ophthalmology and Visual Science, 2010 May; 51(5):2778-2789.


Renna JM., Strang CE., Amthor FR., Keyser KT. (2007) Strychnine, but not PMBA, inhibits neuronal nicotinic acetylcholine receptors expressed by rabbit retinal ganglion cells. Visual Neuroscience, 2007 Jul-Aug;24(4):503-11.


Strang CE., Renna JM., Amthor FR., Keyser KT. (2007) Nicotinic acetylcholine receptor expression by directionally selective ganglion cells. Visual Neuroscience, 2007 Jul-Aug;24(4):523-33.