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Pradeepkiran, J. A.

Publications and source records attributed to Pradeepkiran, J. A..

2 recordsLinked to original sources

A partial reduction of Drp1 enhances mitophagy, autophagy, mitochondrial biogenesis, dendritic spines and synaptic activity in a transgenic Tau mouse model of Alzheimer disease

The purpose of our study is to understand the impact of a partial dynamin-related protein 1 (Drp1) on cognitive behavior, mitophagy/autophagy, mitochondrial and synaptic activities in transgenic Tau mice in Alzheimers disease (AD). Our lab reported increased levels of A{beta} and P-Tau, and abnormal interactions between A{beta} and Drp1, P-Tau and Drp1 induced increased mitochondrial fragmentation and reduced fusion and synaptic activities in AD. These abnormal interactions, result in the proliferation of dysfunctional mitochondria in AD neurons. Recent research on mitochondria revealed that fission protein Drp1 is largely implicated in mitochondrial dynamics in AD. To determine the impact of reduced Drp1 in AD, we recently crossed transgenic Tau mice with Drp1 heterozygote knockout (Drp1+/-) mice and generated double mutant (Drp1+/- X Tau) mice. In the current study, we assessed cognitive behavior, mRNA and protein levels of mitophagy, autophagy, mitochondrial biogenesis, dynamics and synaptic genes, mitochondrial morphology & mitochondrial function, dendritic spines in Tau mice relative to double mutant mice. When compared to Tau mice, double mutant mice did better on Morris Maze (reduced latency to find hidden platform, increased swimming speed and time spent on quadrant) and rotarod (stayed a longer period of time) tests. Both mRNA and proteins levels autophagy, mitophagy, mitochondrial biogenesis and synaptic proteins were increased in double mutant mice compared to Tau mice. Dendritic spines were significantly increased; mitochondrial number is reduced and length is increased in double mutant mice. Based on these observations, we conclude that reduced Drp1 is beneficial in a symptomatic-transgenic Tau mice.

neuroscience

Novel microRNA-455-3p mouse models to study Alzheimers disease pathogenesis

MicroRNA-455-3p is one of the highly conserved miRNAs involved in several human diseases but newly explored by our lab in Alzheimers disease (AD). Our past studies unveiled the biomarker and therapeutic potentials of miR-455-3p in AD. Our in vitro study exhibited the protective role of miR-455-3p against AD toxicities in reducing full-length APP and amyloid-{beta} (A{beta}) protein levels, and also reducing defective mitochondrial biogenesis, impaired mitochondrial dynamics and synaptic deficiencies. Next, we sought to determine the essential roles of miR-455-3p in AD using mouse models. Therefore, for the first time we generated both transgenic (TG) and knockout (KO) mouse models of miR-455-3p. We determined the positive and negative effects of miR-455-3p on mice cognitive function, mitochondrial biogenesis, mitochondrial dynamics, mitochondrial number & length, dendritic spine density, synapse numbers and synaptic activity in 12-month-old miR-455-3p TG and KO mice. MiR-455-3p TG mice lived 5 months longer than wild-type (WT) mice, whereas KO mice lived 4 months shorter than their WT counter parts. Morris water maze test showed improved cognitive behavior, spatial learning and memory in miR-455-3p TG mice relative to age-matched WT mice and miR-455-3p KO mice. Further, mitochondrial biogenesis, dynamics and synaptic activities were enhanced in miR-455-3p TG mice, while these were reduced in KO mice. Overall, miR-455-3p TG mice displayed protective effects and miR-455-3p KO mice exhibited deleterious effects in relation to AD pathogenesis. Both mouse models could be ideal research tools to understand the molecular mechanism of miR-455-3p in AD and other human diseases.

neuroscience