Nolan Robert McGrady
University of North Texas Health Science Center
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Investigative Ophthalmology & Visual Science | 2016
Yong H. Park; Heather Broyles; Shaoqing He; Nolan Robert McGrady; Linya Li; Thomas Yorio
PURPOSE The α-amino-3-hydroxy-5-methyl-4-isoxazoleproprionic acid (AMPA) receptors (AMPAR) subunits can be posttranscriptionally modified by alternative splicing forming flip and flop isoforms. We determined if an ischemia-like insult to retinal ganglion cells (RGCs) increases AMPAR susceptibility to s-AMPA-mediated excitotoxicity through changes in posttranscriptional modified isoforms. METHODS Purified neonatal rat RGCs were subjected to either glucose deprivation (GD) or oxygen/glucose deprivation (OGD) conditions followed by treatment with either 100 μM s-AMPA or Kainic acid. A live-dead assay and caspase 3 assay was used to assess cell viability and apoptotic changes, respectively. We used JC-1 dye and dihydroethidium to measure mitochondria depolarization and reactive oxygen species (ROS), respectively. Calcium imaging with fura-2AM was used to determine intracellular calcium, while the fluorescently-labeled probe, Nanoprobe1, was used to detect calcium-permeable AMPARs. Quantitative PCR (qPCR) analysis was done to determine RNA editing sites AMPAR isoforms. RESULTS Glucose deprivation, as well as an OGD insult followed by AMPAR stimulation, produced a significant increase in RGC death. Retinal ganglion cell death was independent of caspase 3/7 activity, but was accompanied by increased mitochondrial depolarization and increased ROS production. This was associated with an elevated intracellular Ca(2+) and calcium permeable-AMPARs. The mRNA expression of GLUA2 and GLUA3 flop isoform decreased significantly, while no appreciable changes were found in the corresponding flip isoforms. There were no changes in the Q/R editing of GLUA2, while R/G editing of GLUA2 flop declined under these conditions. CONCLUSIONS Following oxidative injury, RGCs become more susceptible to AMPAR-mediated excitotoxicity. RNA editing and changes in alternative spliced flip and flop isoforms of AMPAR subunits may contribute to increased RGC death.
Experimental Eye Research | 2015
Yong H. Park; Brett H. Mueller; Nolan Robert McGrady; Hai-Ying Ma; Thomas Yorio
BMC Neuroscience | 2017
Nolan Robert McGrady; Alena Z. Minton; Dorota Stankowska; Shaoqing He; Hayden B. Jefferies; Raghu R. Krishnamoorthy
Archive | 2017
Nolan Robert McGrady; Dorotoa L Stankowska; Caitlin Rendon; Raghu R. Krishnamoorthy
Investigative Ophthalmology & Visual Science | 2017
Raghu R. Krishnamoorthy; Nolan Robert McGrady; Shaoqing He; Dorota Stankowska
Investigative Ophthalmology & Visual Science | 2017
Nolan Robert McGrady; Dorota Stankowska; Hayden B. Jefferies; Shaoqing He; Raghu R. Krishnamoorthy
Investigative Ophthalmology & Visual Science | 2016
Raghu R. Krishnamoorthy; Alena Z. Minton; Shaoqing He; Nolan Robert McGrady; Dorota Stankowska
Investigative Ophthalmology & Visual Science | 2015
Yong H. Park; Nolan Robert McGrady; Thomas Yorio
Investigative Ophthalmology & Visual Science | 2015
Nolan Robert McGrady; Alena Z. Minton; Raghu R. Krishnamoorthy
Archive | 2014
Nolan Robert McGrady; Alena Z. Minton; Raghu R. Krishnamoorthy