2 research outputs found
Anti-oxidant, anti-apoptotic and anti-inflammatory effects of geraniin in spinal cord injury in rats: role of COX-2
BACKGROUND: Spinal cord injury (SCI) has a devastating effect on degeneration of the spinal column, and vascular problems. However, the currently available therapeutic interventions are insufficient to address these effects, which lead to significant impacts on the morbidity and mortality of patients. In this study, we aimed to investigate the pharmacological effect of geraniin (GER) on SCI in Sprague–Dawley (SD) rats. MATERIALS AND METHODS: SCIs in rats were induced by the conventional weightdrop method and treated with geraniin (GER) (at 2.5, 5, and 10 mg/kg). Subsequently, the locomotor activity of rats with SCI was assessed using Basso, Beattie, and Bresnahan (BBB) scores, while oxidative stress indicators and inflammatory variables were analysed using commercially available kits. Additionally, neuronal death was quantified using TUNEL labelling. The enzymatic activity of caspase-3, -8, and -9 was also assessed. Furthermore, the expression levels of Bcl2, Bax, and COX-2 in rat spinal cords after SCI were analysed by RT-PCR analysis. RESULTS: We found that therapy with GER could enhance functional recovery in a dosage-dependent manner, as well as reduce the occurrence of apoptosis, and mitigate the inflammatory and oxidative response in rats with SCI. Furthermore, we observed that GER increased the expression of Bcl2 and decreased the expression of Bax and COX-2. The concentrations of caspase-3, -8, and -9 was observed to be decreased in SCI rats treated with GER. CONCLUSIONS: GER might protect the spinal cord from SCI by reducing apoptosis, oxidative stress, and inflammatory response through the inhibition of COX-2
Structured Light Field Recovery from Dynamic Scattering Media
Performing light field recovery from diffusing wave is difficult owing to its complex and randomized light behaviors imposed by scatters. The problem becomes even more challenging when a time-varying scattering medium is involved, because, the scattered light changes in space and time. Here we report theoretically and experimentally an approach to structured field recovery behind a dynamic scattering medium, both in the near-field and the far-field diffraction regimes. We exploit the temporal irregular scattering behaviors of the dynamic scatter to overcome light field distortions, without any prior knowledge or wavefront control technique. Of particular interest is that the technique can work with a fast response rate of the scattering change in the order of microsecond level, which is inaccessible with previous techniques. Furthermore, we demonstrate the possibility for recovering a higher-order vector vortex light field from a dynamic diffuser, which was not addressed before. This work shows a significant advance toward light field recovery behind the dynamic scatters and may find intriguing applications
