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Balmik, A. A.

Publications and source records attributed to Balmik, A. A..

3 recordsLinked to original sources

Melatonin reduces GSK3β expression and tau phosphorylation via Nrf2 nuclear translocation

Alzheimers disease is a neuropathological condition with abnormal formation of extracellular Amyloid-{beta} plaques and intracellular neurofibrillary tangles (NFTs) of Microtubule-associated protein Tau (Tau) in brain. In pathological condition, MAP-Tau can undergo various post-translational modifications such as hyperphosphorylation by the activity of cellular kinases which eventually leads to protein aggregation in neurons. Melatonin is a hormone which mainly secreted from pineal gland, functions to modulate cellular kinases. In our study, we elucidated that Melatonin has inhibited the Tau aggregates mediated cytotoxicity and membrane leakage by MTT and LDH assay respectively in neuro2A cells. Melatonin has found to reduce the GSK3{beta} mRNA expression and protein level by western blot and immunofluorescence assay. Melatonin has also decreased phospho-Tau level (pThr181 and pThr212-pSer214) in neuron cell line upon OA induction as seen by microscopic analysis.. Melatonin treatment has associated with ROS quenching by DCFDA assay, reduced caspase 3 activity in neuronal cells. Further, Melatonin has increased Nrf2 level and nuclear translocation as oxidative stress response in Tauopathy. Together, these findings clearly signifies that Melatonin remediate the Tau-induced neuronal cytotoxicity and reduce Tau hyperphosphorylation via downregulating GSK3{beta} expression. Melatonin can combat oxidative damage by Nrf2 activation and nuclear translocation in AD condition.

cell biology↗

Effect of Melatonin on Tau aggregation and Tau-mediated cell surface morphology

Tau is the major neuronal protein involved in the stabilization of microtubule assembly. In Alzheimers disease, Tau self assembles to form intracellular protein aggregates, which are toxic to cells. Various methods have been tried and tested to restrain the aggregation of Tau. Most of the agents tested for this purpose have limitations in their effectiveness and availability to neuronal cells. We tested melatonin against in vitro Tau aggregation and observed its effect on membrane topology, tubulin network and Tau phosphorylation in neuro2a and N9 cell lines. The aggregation and conformation of Tau was determined by ThT fluorescence and CD spectroscopy respectively. The morphology of Tau aggregates in presence and absence of melatonin was studied by transmission electron microscopy. Melatonin was found to reduce the formation of higher order oligomeric structures without affecting the overall aggregation kinetics of Tau. Melatonin also modulates and helps to maintain membrane topology as evidenced by FE-SEM analysis. Overall, melatonin administration shows mild anti-aggregation and cytoprotective effects.

cell biology↗

Modulation of Actin network and Tau phosphorylation by HDAC6 ZnF UBP domain

Microtubule-associated protein Tau undergoes aggregation in Alzheimers disease and a group of other related diseases collectively known as Tauopathies. In AD, Tau forms aggregates, which are deposited intracellularly as neurofibrillary tangles. HDAC6 plays an important role in aggresome formation where it recruits polyubiquitinated aggregates to the motor protein dynein. Here, we have studied the effect of HDAC6 ZnF UBP on Tau phosphorylation, ApoE localization, GSK-3{beta} regulation and cytoskeletal organization in neuronal cells by immunocytochemistry. Immunocytochemistry reveals that HDAC6 ZnF UBP can modulate Tau phosphorylation and actin cytoskeleton organization when the cells are exposed to the domain. HDAC6 ZnF UBP treatment to cells does not affect their viability and resulted in enhanced neurite extension and formation of structures similar to podosomes, lamellipodia and podonuts suggesting its role in actin re-organization. Also, HDAC6 treatment showed increased nuclear localization of ApoE and tubulin localization in microtubule organizing centre. Our studies suggest the regulatory role of this domain in different aspects of neurodegenerative diseases.

cell biology↗