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Dive into the research topics where Subhadra P. Narayanan is active.

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Featured researches published by Subhadra P. Narayanan.


Investigative Ophthalmology & Visual Science | 2011

Neuroprotection from retinal ischemia/reperfusion injury by NOX2 NADPH oxidase deletion

Harumasa Yokota; Subhadra P. Narayanan; Wenbo Zhang; Hua Liu; Modesto Rojas; Zhimin Xu; Tahira Lemtalsi; Taiji Nagaoka; Akitoshi Yoshida; Steven E. Brooks; Robert W. Caldwell; Ruth B. Caldwell

PURPOSE The aim of this study was to determine whether NOX2, one of the homologs of NADPH oxidase, plays a role in neuronal cell death during retinal ischemia. METHODS Ischemia reperfusion (I/R) injury was generated in C57/BL6 and NOX2(-/-) mice by increasing the intraocular pressure (IOP) to 110 mm Hg for 40 minutes followed by reperfusion. Quantitative PCR and Western blot analysis were performed to measure NOX2 expression. Reactive oxygen species (ROS) formation was assessed by dihydroethidium imaging of superoxide formation and Western blot analysis for tyrosine nitration. TUNEL assay was performed to determine cell death at 3 days after I/R. Survival of neurons within the ganglion cell layer (GCL) was assessed at 7 days after I/R by confocal morphometric imaging of retinal wholemounts immunostained with NeuN antibody. Activation of mitogen-activated protein kinases and nuclear factor κB (NF-κΒ) was measured by Western blot analysis. RESULTS NOX2 mRNA and protein and ROS were significantly increased in wild-type I/R retinas. This effect was associated with a 60% decrease in the number of GCL neurons and a 10-fold increase in TUNEL-positive cells compared with the fellow sham control eyes. Phosphorylation of ERK and NF-κB was significantly increased in wild-type I/R retinas. Each of these effects was markedly attenuated in the NOX2(-/-) retina (P < 0.01). CONCLUSIONS These data demonstrate that the deletion of NOX2 can reduce I/R-induced cell death and preserve retinal GCL neurons after I/R injury. The neuronal cell injury caused by I/R is associated with the activation of ERK and NF-κB signaling mechanisms.


PLOS ONE | 2011

Arginase 2 deletion reduces neuro-glial injury and improves retinal function in a model of retinopathy of prematurity.

Subhadra P. Narayanan; Jutamas Suwanpradid; Alan Saul; Zhimin Xu; amber still; Robert W. Caldwell; Ruth B. Caldwell

Background Retinopathy of prematurity (ROP) is a major cause of vision impairment in low birth weight infants. While previous work has focused on defining the mechanisms of vascular injury leading to retinal neovascularization, recent studies show that neurons are also affected. This study was undertaken to determine the role of the mitochondrial arginine/ornithine regulating enzyme arginase 2 (A2) in retinal neuro-glial cell injury in the mouse model of ROP. Methods and Findings Studies were performed using wild type (WT) and A2 knockout (A2−/−) mice exposed to Oxygen Induced Retinopathy (OIR). Neuronal injury and apoptosis were assessed using immunohistochemistry, TUNEL (terminal deoxynucleotidyl transferase dUTP nick end) labeling and Western blotting. Electroretinography (ERG) was used to assess retinal function. Neuro-glial injury in WT ROP mice was evident by TUNEL labeling, retinal thinning, decreases in number of rod bipolar cells and glial cell activation as compared with room air controls. Significant reduction in numbers of TUNEL positive cells, inhibition of retinal thinning, preservation of the rod bipolar cells and prevention of glial activation were observed in the A2−/− retinas. Retinal function was markedly impaired in the WT OIR mice as shown by decreases in amplitude of the b-wave of the ERG. This defect was significantly reduced in A2−/− mice. Levels of the pro-apoptotic proteins p53, cleaved caspase 9, cytochrome C and the mitochondrial protein Bim were markedly increased in WT OIR retinas compared to controls, whereas the pro-survival mitrochondrial protein BCL-xl was reduced. These alterations were largely blocked in the A2−/− OIR retina. Conclusions Our data implicate A2 in neurodegeneration during ROP. Deletion of A2 significantly improves neuronal survival and function, possibly through the regulation of mitochondrial membrane permeability mediated apoptosis during retinal ischemia. These molecular events are associated with decreased activation of glial cells, suggesting a rescue effect on macroglia as well.


Cell Death and Disease | 2015

Endoplasmic reticulum stress-regulated CXCR3 pathway mediates inflammation and neuronal injury in acute glaucoma

Yonju Ha; Hong Liu; Zhimin Xu; Harumasa Yokota; Subhadra P. Narayanan; Tahira Lemtalsi; Suzanne Smith; Robert W. Caldwell; Ruth B. Caldwell; Wenbo Zhang

Acute glaucoma is a leading cause of irreversible blindness in East Asia. The mechanisms underlying retinal neuronal injury induced by a sudden rise in intraocular pressure (IOP) remain obscure. Here we demonstrate that the activation of CXCL10/CXCR3 axis, which mediates the recruitment and activation of inflammatory cells, has a critical role in a mouse model of acute glaucoma. The mRNA and protein expression levels of CXCL10 and CXCR3 were significantly increased after IOP-induced retinal ischemia. Blockade of the CXCR3 pathway by deleting CXCR3 gene significantly attenuated ischemic injury-induced upregulation of inflammatory molecules (interleukin-1β and E-selectin), inhibited the recruitment of microglia/monocyte to the superficial retina, reduced peroxynitrite formation, and prevented the loss of neurons within the ganglion cell layer. In contrast, intravitreal delivery of CXCL10 increased leukocyte recruitment and retinal cell apoptosis. Inhibition of endoplasmic reticulum (ER) stress with chemical chaperones partially blocked ischemic injury-induced CXCL10 upregulation, whereas induction of ER stress with tunicamycin enhanced CXCL10 expression in retina and primary retinal ganglion cells. Interestingly, deleting CXCR3 attenuated ER stress-induced retinal cell death. In conclusion, these results indicate that ER stress-medicated activation of CXCL10/CXCR3 pathway has an important role in retinal inflammation and neuronal injury after high IOP-induced ischemia.


Cell Death and Disease | 2014

Arginase 2 deficiency reduces hyperoxia-mediated retinal neurodegeneration through the regulation of polyamine metabolism

Subhadra P. Narayanan; Zhimin Xu; Nagireddy Putluri; Arun Sreekumar; Tahira Lemtalsi; Robert W. Caldwell; Ruth B. Caldwell

Hyperoxia treatment has been known to induce neuronal and glial death in the developing central nervous system. Retinopathy of prematurity (ROP) is a devastating disease in premature infants and a major cause of childhood vision impairment. Studies indicate that, in addition to vascular injury, retinal neurons are also affected in ROP. Using an oxygen-induced retinopathy (OIR) mouse model for ROP, we have previously shown that deletion of the arginase 2 (A2) significantly reduced neuro-glial injury and improved retinal function. In the current study, we investigated the mechanism of A2 deficiency-mediated neuroprotection in the OIR retina. Hyperoxia treatment has been known to induce neuronal death in neonates. During the hyperoxia phase of OIR, a significant increase in the number of apoptotic cells was observed in the wild-type (WT) OIR retina compared with A2-deficient OIR. Mass spectrometric analysis showed alterations in polyamine metabolism in WT OIR retina. Further, increased expression level of spermine oxidase was observed in WT OIR retina, suggesting increased oxidation of polyamines in OIR retina. These changes were minimal in A2-deficient OIR retina. Treatment using the polyamine oxidase inhibitor, N, N′-bis (2, 3-butadienyl)-1, 4-butanediamine dihydrochloride, significantly improved neuronal survival during OIR treatment. Our data suggest that retinal arginase is involved in the hyperoxia-induced neuronal degeneration in the OIR model, through the regulation of polyamine metabolism.


Investigative Ophthalmology & Visual Science | 2011

Hyperoxia Therapy of Pre-Proliferative Ischemic Retinopathy in a Mouse Model

Wenbo Zhang; Harumasa Yokota; Zhimin Xu; Subhadra P. Narayanan; Lauren Yancey; Akitoshi Yoshida; Dennis M. Marcus; Robert W. Caldwell; Ruth B. Caldwell; Steven E. Brooks

PURPOSE To investigate the therapeutic use and mechanisms of action of normobaric hyperoxia to promote revascularization and to prevent neovascularization in a mouse model of oxygen-induced ischemic retinopathy. METHODS Hyperoxia treatment (HT, 40%-75% oxygen) was initiated on postnatal day (P) 14 during the pre-proliferative phase of ischemic retinopathy. Immunohistochemistry, ELISA, and quantitative PCR were used to assess effects on retinal vascular repair and pathologic angiogenesis in relation to glial cell injury, VEGF protein, and mRNA levels of key mediators of pathologic angiogenesis. Effects of intravitreal injections of VEGF and the VEGF inhibitor VEGFR1/Fc fusion protein were also studied. RESULTS Administration of HT during the ischemic pre-proliferative phase of retinopathy effectively accelerated the process of revascularization while preventing the development of vitreous neovascularization. HT enhanced the formation of specialized endothelial tip cells at the edges of the repairing capillary networks and blocked the overexpression of several molecular mediators of angiogenesis, inflammation, and extracellular proteolysis. HT markedly reduced the reactive expression of GFAP in Müller cells and improved the morphology of astrocytes in the avascular region of the retina. Exogenous VEGF administered into the vitreous on P14 was not sufficient to cause vitreous neovascularization in the HT mice. Injection of the VEGF antagonist VEGFR1/Fc blocked both pathologic and physiological angiogenesis and did not rescue astrocytes. CONCLUSIONS HT may be clinically useful to facilitate vascular repair while blocking neovascularization in the pre-proliferative stage of ischemic retinopathy by correcting a broad range of biochemical and cellular abnormalities.


International Journal of Molecular Sciences | 2018

Mechanisms of Diabetes-Induced Endothelial Cell Senescence: Role of Arginase 1

Esraa Shosha; Zhimin Xu; Subhadra P. Narayanan; Tahira Lemtalsi; Abdelrahman Y. Fouda; Modesto Rojas; Ji Xing; David Fulton; Ruth B. Caldwell

We have recently found that diabetes-induced premature senescence of retinal endothelial cells is accompanied by NOX2-NADPH oxidase-induced increases in the ureohydrolase enzyme arginase 1 (A1). Here, we used genetic strategies to determine the specific involvement of A1 in diabetes-induced endothelial cell senescence. We used A1 knockout mice and wild type mice that were rendered diabetic with streptozotocin and retinal endothelial cells (ECs) exposed to high glucose or transduced with adenovirus to overexpress A1 for these experiments. ABH [2(S)-Amino-6-boronohexanoic acid] was used to inhibit arginase activity. We used Western blotting, immunolabeling, quantitative PCR, and senescence associated β-galactosidase (SA β-Gal) activity to evaluate senescence. Analyses of retinal tissue extracts from diabetic mice showed significant increases in mRNA expression of the senescence-related proteins p16INK4a, p21, and p53 when compared with non-diabetic mice. SA β-Gal activity and p16INK4a immunoreactivity were also increased in retinal vessels from diabetic mice. A1 gene deletion or pharmacological inhibition protected against the induction of premature senescence. A1 overexpression or high glucose treatment increased SA β-Gal activity in cultured ECs. These results demonstrate that A1 is critically involved in diabetes-induced senescence of retinal ECs. Inhibition of arginase activity may therefore be an effective therapeutic strategy to alleviate diabetic retinopathy by preventing premature senescence.


Investigative Ophthalmology & Visual Science | 2012

Deletion of Arginase 2 Prevents Retinal Ganglion Cell Loss and Blocks Formation of Acellular Capillaries after Ischemia/Reperfusion Injury

Zhimin Xu; Harumasa Yokota; Subhadra P. Narayanan; Robert W. Caldwell; Ruth B. Caldwell


Investigative Ophthalmology & Visual Science | 2012

Arginase 2 Deficiency Limits Microglia/Macrophage Activation and Prevents Hyperoxia-induced Vascular Injury in the Mouse Retina

Jutamas Suwanpradid; Zhimin Xu; Subhadra P. Narayanan; Robert W. Caldwell; Ruth B. Caldwell


Investigative Ophthalmology & Visual Science | 2012

Activation of the Endothelin System in Models of Ischemic Retinopathy

Chintan Patel; Wenbo Zhang; Zhimin Xu; Subhadra P. Narayanan; Nai-tse Tsai; William Caldwell; Ruth B. Caldwell


Investigative Ophthalmology & Visual Science | 2012

Deficiency of CXCR3 Prevents Inflammation and Neuronal Damage in Retinal Ischemic Injury

Wenbo Zhang; Hua Liu; Zhimin Xu; Harumasa Yokota; Jun Wang; Subhadra P. Narayanan; Modesto Rojas; Massoud Motamedi; Robert W. Caldwell; Ruth B. Caldwell

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Ruth B. Caldwell

Georgia Regents University

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Zhimin Xu

Georgia Regents University

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Wenbo Zhang

University of Texas Medical Branch

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Harumasa Yokota

Asahikawa Medical University

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Steven E. Brooks

Georgia Regents University

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Tahira Lemtalsi

Georgia Regents University

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Akitoshi Yoshida

Asahikawa Medical University

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Hua Liu

University of Texas Medical Branch

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