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DAS, T. K.

Publications and source records attributed to DAS, T. K..

2 recordsLinked to original sources

Alleviation of arsenic (III) toxicity in rice (Oryza sativa L.) by employingmonolayer protected modified silver nanoadsorbent: Insights into growthreconditioning with antioxidant defence

The present work imparts an efficient, simple and cost-effective nano-based technology for the removal of arsenic (III) from aqueous environment that was subsequently investigated on plant system for its evaluation. The study was designed to investigate the arsenic induced toxicity in rice cultivar MTU 7029 and its amelioration by monolayer protected silver nanoadsorbent under laboratory conditions. An efficient amelioration of arsenic induced toxicity was successfully achieved by the supplementation of nano-pretreated water ([~]97% arsenic free) in hydroponic culture medium of rice seedlings (MTU 7029). As (III) exposure in the growth medium declined the seedlings growth, physiological conditions as well as it disrupted antioxidant defence system by overproducing reactive oxygen species (ROS) and superoxide anions. However, the application of the nanoadsorbent exhibited the alleviation of As (III) toxicity through the improvement of seedlings growth, restoration of normal root morphology and anatomy as indicated by scanning electron microscopy (SEM) and histology; decreased level of root oxidizability, electrolyte leakage, hydrogen peroxide (H2O2), malondialdehyde (MDA) and proline content. Furthermore, the supplementation of nano-pretreated water in hydroponic culture medium of the rice seedlings showed improved level of antioxidant enzymes such as, catalase (CAT), ascorbate peroxidase (APX), superoxide dismutase (SOD), glutathione reductase (GR) and reduced level of ROS generation and superoxide anions formation as revealed by CM-H2DCFDA and DHE staining of the roots. Hence, the present findings conveying a successful amelioration of arsenic induced toxicity in rice plant could be a useful technique for the alternative use of irrigation water in the arsenic contaminated land. HighlightsO_LIArsenic (As III) exposure led to reduced growth and oxidative damage in rice plant. C_LIO_LISilver nanoadsorbent efficiently mitigated As (III) toxicity. C_LIO_LINanoadsorbent improved plant growth by enhancing the antioxidant defence system. C_LIO_LIThe technique served a sustainable solution for rice cultivation in As contaminated land. C_LI

plant biology↗

Cholecalciferol improves cognitive impairment by amending impaired insulin signaling in sporadic Alzheimers Disease Rats

Alzheimers disease (AD) is the most common form of dementia and contributes to 50-70% of neurodegenerative brain diseases. AD has been associated with poor vitamin D nutrition, which is correlated with low mood and impaired cognitive performance in older people. The impact of vitamin D on the insulin signaling pathway in AD is not well known. Hence, this study was to explore the effects of cholecalciferol (Vitamin D3) on the expression of IRS-1, IRS-2, Akt, pAkt (Ser473), and GLUT3 in the sporadic AD rat model. The rats were induced to develop sporadic AD by intraperitoneal administration of Scopolamine. The downregulation expression of IRS-1, IRS-2, Akt, pAkt (Ser473) and GLUT3 may lead to impaired insulin signaling which is associated with the development of AD. All these data were compared to Saline-treated control rats. However, cholecalciferol treatment in AD rats may improve memory performance by increasing the expression of insulin signaling proteins and hence ameliorates impaired insulin signaling. All these data were compared to Scopolamine-induced AD rats and sunflower oil-treated rats. Therefore, cholecalciferol treatment may be an alternative approach for the treatment of AD.

neuroscience↗