Tdp-43 Pathology

TDP-43 pathology is the abnormal accumulation and cellular redistribution of the TAR DNA-binding protein 43, an RNA-binding protein whose dysfunction is linked to neurodegenerative disease. Normally, TDP-43 helps regulate RNA splicing, transport, and stability in the nucleus; pathological stress can promote its movement into the cytoplasm, where it becomes hyperphosphorylated, ubiquitinated, and assembled into insoluble aggregates. These changes can reduce essential nuclear RNA-processing functions while contributing to neuronal toxicity. Studying TDP-43 pathology supports biochemical investigation of amyotrophic lateral sclerosis and frontotemporal dementia, helps distinguish disease subtypes, and guides the development of biomarkers and treatments that target protein clearance, aggregation, or RNA regulation.

Tdp-43 Pathology - Related Videos

Research

JoVE Journal - Bioengineering

Novel Atomic Force Microscopy Based Biopanning for Isolation of Morphology Specific Reagents against TDP-43 Variants in Amyotrophic Lateral Sclerosis

0 Views •

Cited by 17 •

2015

Using atomic force microscopy in combination with biopanning technology we created a negative and positive biopanning system to acquire antibodies against disease-specific protein variants present in any biological material, even at low concentrations. We were successful in obtaining antibodies to TDP-43 protein variants involved in Amyotrophic Lateral Sclerosis.

Measuring Glucose Uptake in Drosophila Models of TDP-43 Proteinopathy

0 Views •

Cited by 3 •

2021

Glucose uptake is increased in Drosophila motor neurons affected by TAR DNA binding protein (TDP-43) proteinopathy, as indicated by a FRET-based, genetically encoded glucose sensor.

Optogenetic Phase Transition of TDP-43 in Spinal Motor Neurons of Zebrafish Larvae

0 Views •

2022

We describe a protocol to induce phase transition of TAR DNA-binding protein 43 (TDP-43) by light in the spinal motor neurons using zebrafish as a model.

Perturbing Endothelial Biomechanics via Connexin 43 Structural Disruption

0 Views •

Cited by 6 •

2019

Here, we present a mechanics-based protocol to disrupt the gap junction connexin 43 and measure the subsequent impact this has on endothelial biomechanics via observation of tractions and intercellular stresses.

Symmetric Bihemispheric Postmortem Brain Cutting to Study Healthy and Pathological Brain Conditions in Humans

0 Views •

Cited by 7 •

2016

Organized brain cutting procedures are necessary to correlate specific neuropsychiatric phenomena with definitive neuropathologic diagnoses. Brain cuttings are performed differently based on various clinico-academic contingencies. This protocol describes a symmetric bihemispheric brain cutting procedure to investigate hemispheric differences in human brain pathologies and to maximize current and future biomolecular/neuroimaging techniques.

View All Results

FAQs

Related Topics