Microglial CD68 and L-ferritin upregulation in response to phosphorylated-TDP-43 pathology in the amyotrophic lateral
Molly E V Swanson1,2, Miran Mrkela1,2, Helen C Murray2,3
1School of Biological Sciences, University of Auckland, Auckland, New Zealand.
Abstract:
Microglia, the innate immune cells of the brain, are activated by damage or disease. In mouse models of amyotrophic lateral sclerosis (ALS), microglia shift from neurotrophic to neurotoxic states with disease progression. It remains unclear how human microglia change relative to the TAR DNA-binding protein 43 (TDP-43) aggregation that occurs in 97% of ALS cases. Here we examine spatial relationships between microglial activation and TDP-43 pathology in brain tissue from people with ALS and from a TDP-43-driven ALS mouse model. Post-mortem human brain tissue from the Neurological Foundation Human Brain Bank was obtained from 10 control and 10 ALS cases in parallel with brain tissue from a bigenic NEFH-tTA/tetO-hTDP-43∆NLS (rNLS) mouse model of ALS at disease onset, early disease, and late disease stages. The spatiotemporal relationship between microglial activation and ALS pathology was determined by investigating microglial functional marker expression in brain regions with low and high TDP-43 burden at end-stage human disease: hippocampus and motor cortex, respectively. Sections were immunohistochemically labelled with a two-round multiplexed antibody panel against; microglial functional markers (L-ferritin, HLA-DR, CD74, CD68, and Iba1), a neuronal marker, an astrocyte marker, and pathological phosphorylated TDP-43 (pTDP-43). Single-cell levels of microglial functional markers were quantified using custom analysis pipelines and mapped to anatomical regions and ALS pathology. We identified a significant increase in microglial Iba1 and CD68 expression in the human ALS motor cortex, with microglial CD68 being significantly correlated with pTDP-43 pathology load. We also identified two subpopulations of microglia enriched in the ALS motor cortex that were defined by high L-ferritin expression. A similar pattern of microglial changes was observed in the rNLS mouse, with an increase first in CD68 and then in L-ferritin expression, with both occurring only after pTDP-43 inclusions were detectable. Our data strongly suggest that microglia are phagocytic at early-stage ALS but transition to a dysfunctional state at end-stage disease, and that these functional states are driven by pTDP-43 aggregation. Overall, these findings enhance our understanding of microglial phenotypes and function in ALS.
Insights
Microglia in amyotrophic lateral sclerosis (ALS) shift from beneficial to harmful states as TAR DNA-binding protein 43 (TDP-43) aggregates. This study reveals microglial dysfunction is driven by TDP-43 pathology in ALS patients and mouse models.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Microglia, the brain's immune cells, are implicated in neurodegenerative diseases like ALS.
- In ALS, microglia are thought to transition from a neuroprotective to a neurotoxic state.
- The precise role of microglial changes in relation to TAR DNA-binding protein 43 (TDP-43) aggregation in human ALS is not fully understood.
Purpose of the Study:
- To investigate the spatiotemporal relationship between microglial activation states and TDP-43 pathology in human ALS brain tissue and a TDP-43-driven mouse model.
- To identify specific microglial subpopulations and their functional markers associated with ALS progression.
- To determine if TDP-43 aggregation drives microglial functional shifts in ALS.
Main Methods:
- Analysis of post-mortem human ALS and control brain tissue, alongside a TDP-43-driven mouse model at various disease stages.
- Immunohistochemical labeling for microglial functional markers (Iba1, CD68, L-ferritin, HLA-DR, CD74), neuronal, astrocyte markers, and phosphorylated TDP-43 (pTDP-43).
- Quantification of single-cell microglial marker expression and mapping to anatomical regions and pTDP-43 pathology load.
Main Results:
- Increased microglial Iba1 and CD68 expression in the motor cortex of human ALS cases, with CD68 correlating with pTDP-43 load.
- Identification of two microglial subpopulations with high L-ferritin expression in the ALS motor cortex.
- Similar microglial changes (CD68 then L-ferritin increase) observed in the mouse model following detectable pTDP-43 inclusions.
Conclusions:
- Microglia exhibit phagocytic activity in early-stage ALS but become dysfunctional in end-stage disease.
- TDP-43 aggregation is a key driver of these microglial functional state transitions in ALS.
- These findings provide insights into microglial phenotypes and their role in ALS pathogenesis.
More Related Videos
11:03Use of Capillary Electrophoresis Immunoassay to Search for Potential Biomarkers of Amyotrophic Lateral Sclerosis in Human Platelets
Published on: February 10, 2020
06:58Evaluation of LC3-II Release via Extracellular Vesicles in Relation to the Accumulation of Intracellular LC3-positive Vesicles
Published on: October 18, 2024
