Hydrogen-rich saline promotes survival of retinal ganglion cells in a rat model of optic nerve crush. 2014

Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
Department of Anatomy, Second Military Medical University, Shanghai, PR China; Graduates Management Unit, Second Military Medical University, Shanghai, PR China.

OBJECTIVE To investigate the effect of molecular hydrogen (H2) in a rat model subjected to optic nerve crush (ONC). METHODS We tested the hypothesis that after optic nerve crush (ONC), retinal ganglion cell (RGC) could be protected by H₂. Rats in different groups received saline or hydrogen-rich saline every day for 14 days after ONC. Retinas from animals in each group underwent measurements of hematoxylin and eosin (H&E) staining, cholera toxin beta (CTB) tracing, gamma synuclein staining, and terminal deoxynucleotidyltransferase-mediated dUTP nick end labeling (TUNEL) staining 2 weeks post operation. Flash visual evoked potentials (FVEP) and pupillary light reflex (PLR) were then tested to evaluate the function of optic nerve. The malondialdehyde (MDA) level in retina was evaluated. RESULTS H&E, gamma synuclein staining and CTB tracing showed that the survival rate of RGCs in hydrogen saline-treated group was significantly higher than that in saline-treated group. Apoptosis of RGCs assessed by TUNEL staining were less observed in hydrogen saline-treated group. The MDA level in retina of H₂ group was much lower than that in placebo group. Furthermore, animals treated with hydrogen saline showed better function of optic nerve in assessments of FVEP and PLR. CONCLUSIONS These results demonstrated that H₂ protects RGCs and helps preserve the visual function after ONC and had a neuroprotective effect in a rat model subjected to ONC.

UI MeSH Term Description Entries
D008027 Light That portion of the electromagnetic spectrum in the visible, ultraviolet, and infrared range. Light, Visible,Photoradiation,Radiation, Visible,Visible Radiation,Photoradiations,Radiations, Visible,Visible Light,Visible Radiations
D008297 Male Males
D008315 Malondialdehyde The dialdehyde of malonic acid. Malonaldehyde,Propanedial,Malonylaldehyde,Malonyldialdehyde,Sodium Malondialdehyde,Malondialdehyde, Sodium
D009409 Nerve Crush Treatment of muscles and nerves under pressure as a result of crush injuries. Crush, Nerve
D011680 Pupil The aperture in the iris through which light passes. Pupils
D012018 Reflex An involuntary movement or exercise of function in a part, excited in response to a stimulus applied to the periphery and transmitted to the brain or spinal cord.
D002452 Cell Count The number of CELLS of a specific kind, usually measured per unit volume or area of sample. Cell Density,Cell Number,Cell Counts,Cell Densities,Cell Numbers,Count, Cell,Counts, Cell,Densities, Cell,Density, Cell,Number, Cell,Numbers, Cell
D002470 Cell Survival The span of viability of a cell characterized by the capacity to perform certain functions such as metabolism, growth, reproduction, some form of responsiveness, and adaptability. Cell Viability,Cell Viabilities,Survival, Cell,Viabilities, Cell,Viability, Cell
D004195 Disease Models, Animal Naturally-occurring or experimentally-induced animal diseases with pathological processes analogous to human diseases. Animal Disease Model,Animal Disease Models,Disease Model, Animal
D005074 Evoked Potentials, Visual The electric response evoked in the cerebral cortex by visual stimulation or stimulation of the visual pathways. Visual Evoked Response,Evoked Potential, Visual,Evoked Response, Visual,Evoked Responses, Visual,Potential, Visual Evoked,Potentials, Visual Evoked,Response, Visual Evoked,Responses, Visual Evoked,Visual Evoked Potential,Visual Evoked Potentials,Visual Evoked Responses

Related Publications

Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
November 2012, Neuroscience,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
January 2017, PloS one,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
February 1995, Current eye research,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
January 2023, Frontiers in cellular neuroscience,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
June 2015, Brain research,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
February 2015, Cell death & disease,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
April 2011, Journal of visualized experiments : JoVE,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
February 2009, American journal of ophthalmology,
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
May 2017, Cellular and molecular biology (Noisy-le-Grand, France),
Jing-chuan Sun, and Tao Xu, and Qiao Zuo, and Ruo-bing Wang, and Ai-qing Qi, and Wen-luo Cao, and Ai-jun Sun, and Xue-jun Sun, and Jiajun Xu
August 2021, Investigative ophthalmology & visual science,
Copied contents to your clipboard!