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Lahiri, D. K.

Publications and source records attributed to Lahiri, D. K..

3 recordsLinked to original sources

Oral administration of 1,10-phenanthroline-5-amine (PAA) significantly reduced amyloid plaque burden compared with untreated APP/PS1 mice.

BackgroundWe previously demonstrated that 1,10-phenanthroline-5-amine (PAA) significantly reduced the number and size of amyloid plaques in one-year-old APP/TAU mice. The primary objective of the present study was to validate these findings in the APP/PS1 mouse model using a larger cohort of animals. A second objective was to determine whether PAA binds directly to amyloid plaques in brain tissue sections. MethodsFor the in vivo studies, APP/PS1 mice received daily oral PAA or vehicle treatment and were euthanized at one year of age. Brains were collected, fixed, cryosectioned, and stained with hydroxyquinoline oxalate (HQ-O) to visualize amyloid plaques. For the in vitro studies, brain tissue sections were incubated in a PAA solution. Double labeling with PAA and HQ-O was performed on the same tissue sections to compare plaque labeling patterns. ResultsDaily oral administration of PAA produced a significant reduction in both the number and size of amyloid plaques compared with untreated control mice. In vitro incubation of tissue sections with PAA resulted in red fluorescent labeling of all amyloid plaques. Double-labeling studies showed that PAA labeled plaques are more extensive than HQ-O in frozen tissue sections, whereas no such difference was observed in paraffin-embedded sections. ConclusionsThese findings extend our previous observation that chronic oral administration of PAA significantly reduces amyloid plaque burden in vivo. In addition, the in vitro studies demonstrate that PAA binds directly to amyloid plaques. The mechanism of PAA binding may involve interactions with transition metals incorporated within amyloid plaques and/or the sialic acid moieties of plaque-associated gangliosides.

neuroscience↗

MicroRNA-181 influences Alzheimer's risk by regulating neprilysin and microtubule-associated tau pathways, offering a novel target

Alzheimers disease (AD) is characterized by amyloid-{beta} (A{beta}) peptide plaques and neurofibrillary tangles from hyperphosphorylated tau, though factors linking amyloid and tau pathology remain unclear. We investigated whether microRNA-181d-5p (miR-181d) associates with AD-related brain changes and regulates neprilysin and tau. Modeling miR-181d across individuals with no cognitive impairment, mild cognitive impairment, and AD revealed region- and sex-specific associations. Higher miR-181d levels associated with greater AD probability in the temporal lobe and cerebellum, and lower probability in the posterior cingulate cortex of males; miR-181c attenuated these probabilities. SNPs near MIR181 associated with altered entorhinal cortical thickness. In cellular models, miR-181 reduced neprilysin 3'-UTR activity, mRNA, protein, and enzymatic activity, while increasing tau mRNA and protein. Neprilysin diminution impairs A{beta} clearance and elevates tau, contributing to AD. RNA sequencing identified miR-181d-responsive neurodegenerative pathways. These findings identify miR-181 as a regulator of AD-relevant amyloid and tau pathways, providing novel targets. TeaserMiRNA-181 is a key regulator of Alzheimers risk through its effects on neprilysin and tau proteins, a novel potential target.

neuroscience↗

Human microRNA-153-3p targets specific neuronal genes and is associated with the risk of Alzheimer's disease.

Alzheimers disease (AD) is a progressive degenerative disease characterized by a significant loss of neurons and synapses in cognitive brain regions and is the leading cause of dementia worldwide. AD pathology comprises extracellular amyloid plaques and intracellular neurofibrillary tangles. However, the triggers of this pathology are still poorly understood. Repressor element 1-silencing transcription/neuron-restrictive silencer factor (REST/NRSF), a transcription repressor of neuronal genes, is dysregulated during AD pathogenesis. How REST is dysregulated is still poorly understood, especially at the post-transcriptional level. MicroRNAs (miRNAs), a group of short non-coding RNAs, typically regulate protein expression by interacting with target mRNA transcript 3-untranslated region (UTR) and play essential roles in AD pathogenesis. Herein, we demonstrate that miR-153-3p reduces REST 3-UTR activities, mRNA, and protein levels in human cell lines, along with downregulating amyloid-{beta} precursor protein (APP) and -synuclein (SNCA). We determine by mutational analyses that miR-153-3p interacts with specific targets via the seed sequence present within the respective mRNA 3UTR. We show that miR-153-3p treatment alters the expression of these specific proteins in human neuronally differentiated cell lines and human induced pluripotent stem cells and that miR-153-3p is itself dysregulated in AD. We further find that single nucleotide polymorphisms (SNPs) within 5kb of the MIR153-1 and MIR153-2 genes are associated with AD-related endophenotypes. Elevation of miR-153-3p is associated with a reduced probability of AD, while elevated REST may associate with a greater probability of AD. Our work suggests that a supplement of miR-153-3p would reduce levels of toxic protein aggregates by reduced expression of APP, SNCA and REST expression, all pointing towards a therapeutic and biomarker potential of miR-153-3p in AD and related dementias.

neuroscience↗