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Babu, R. S.

Publications and source records attributed to Babu, R. S..

2 recordsLinked to original sources

Residual Microglia Following Short-term PLX5622 Treatment in 5xFAD Mice Exhibit Diminished NLRP3 Inflammasome and mTOR Signaling, and Enhanced Autophagy

Chronic neuroinflammation represents a prominent hallmark of Alzheimers disease (AD). While moderately activated microglia are pivotal in clearing amyloid beta (A{beta}), hyperactivated microglia perpetuate neuroinflammation. Prior investigations have indicated that the elimination of [~]80% of microglia through a month-long inhibition of the colony-stimulating factor 1 receptor (CSF1R) during the advanced stage of neuroinflammation in 5xFamilial AD (5xFAD) mice mitigates synapse loss and neurodegeneration without impacting A{beta} levels. Furthermore, prolonged CSF1R inhibition diminished the development of parenchymal plaques. Nonetheless, the immediate effects of short-term CSF1R inhibition during the early stages of neuroinflammation on residual microglial phenotype or metabolic fitness are unknown. Therefore, we investigated the effects of 10-day CSF1R inhibition in three-month-old female 5xFAD mice, a stage characterized by the onset of neuroinflammation and minimal A{beta} plaques. We observed [~]65% microglia depletion in the hippocampus and cerebral cortex. The leftover microglia demonstrated a noninflammatory phenotype, with highly branched and ramified processes and reduced NOD-, LRR-, and pyrin domain-containing protein 3 (NLRP3) inflammasome complexes. Moreover, plaque-associated microglia were reduced in number with diminished Clec7a (dectin-1) expression. Additionally, both microglia and neurons displayed reduced mechanistic target of rapamycin (mTOR) signaling and autophagy. Biochemical assays validated the inhibition of NLRP3 inflammasome activation, decreased mTOR signaling, and enhanced autophagy. However, short-term CSF1R inhibition did not influence A{beta} plaques, soluble A{beta}-42 levels, or hippocampal neurogenesis. Thus, short-term CSF1R inhibition during the early stages of neuroinflammation in 5xFAD mice promotes the retention of homeostatic microglia with diminished inflammasome activation and mTOR signaling, alongside increased autophagy.

neuroscience↗

Extracellular Vesicles from hiPSC-derived NSCs Protect Human Neurons against Abeta-42 Oligomers Induced Neurodegeneration, Mitochondrial Dysfunction and Tau Phosphorylation

BackgroundAlzheimers disease (AD) is characterized by the accumulation of amyloid beta-42 (A{beta}-42) in the brain, causing various adverse effects. Thus, therapies that reduce A{beta}-42 toxicity in AD are of great interest. One promising approach is to use extracellular vesicles from human induced pluripotent stem cell-derived neural stem cells (hiPSC-NSC-EVs) because they carry multiple therapeutic miRNAs and proteins capable of protecting neurons against A{beta}-42-induced toxicity. Therefore, this in vitro study investigated the proficiency of hiPSC-NSC-EVs to protect human neurons from A{beta}-42 oligomers (A{beta}-42o) induced neurodegeneration. MethodsWe isolated hiPSC-NSC-EVs using chromatographic methods and characterized their size, ultrastructure, expression of EV-specific markers and proficiency in getting incorporated into mature human neurons. Next, mature human neurons differentiated from two different hiPSC lines were exposed to 1 {micro}M A{beta}-42o alone or with varying concentrations of hiPSC-NSC-EVs. The protective effects of hiPSC-NSC-EVs against A{beta}-42o-induced neurodegeneration, oxidative stress, mitochondrial dysfunction, impaired autophagy, and tau phosphorylation were ascertained using multiple measures and one-way ANOVA with Newman-Keuls multiple comparisons post hoc tests. ResultsA significant neurodegeneration was observed when human neurons were exposed to A{beta}-42o alone. Neurodegeneration was associated with 1) elevated levels of reactive oxygen species (ROS), mitochondrial superoxide, malondialdehyde (MDA) and protein carbonyls (PCs), 2) increased expression of proapoptotic Bax and Bad genes and proteins, and genes encoding mitochondrial complex proteins, 3) diminished mitochondrial membrane potential and mitochondria, 4) reduced expression of the antiapoptotic gene and protein Bcl-2, and autophagy-related proteins, and 5) increased phosphorylation of tau. However, the addition of an optimal dose of hiPSC-NSC-EVs (6 x 109 EVs) to human neuronal cultures exposed to A{beta}-42o significantly reduced the extent of neurodegeneration, along with diminished levels of ROS, superoxide, MDA and PCs, normalized expressions of Bax, Bad, and Bcl-2, and autophagy-related proteins, higher mitochondrial membrane potential and mitochondria, enhanced expression of genes linked to mitochondrial complex proteins, and reduced tau phosphorylation. ConclusionsAn optimal dose of hiPSC-NSC-EVs could significantly decrease the degeneration of human neurons induced by A{beta}-42o. The results support further research into the effectiveness of hiPSC- NSC-EVs in AD, particularly their proficiency in preserving neurons and slowing disease progression.

neuroscience↗