An early and late peak in microglial activation in Alzheimer's disease trajectory
Zhen Fan1, David J Brooks1,2, Aren Okello1
1Neurology Imaging Unit, Imperial College London, Hammersmith Hospital, Du Cane Road, London, W12 0NN, UK.
Abstract:
Amyloid-β deposition, neuroinflammation and tau tangle formation all play a significant role in Alzheimer's disease. We hypothesized that there is microglial activation early on in Alzheimer's disease trajectory, where in the initial phase, microglia may be trying to repair the damage, while later on in the disease these microglia could be ineffective and produce proinflammatory cytokines leading to progressive neuronal damage. In this longitudinal study, we have evaluated the temporal profile of microglial activation and its relationship between fibrillar amyloid load at baseline and follow-up in subjects with mild cognitive impairment, and this was compared with subjects with Alzheimer's disease. Thirty subjects (eight mild cognitive impairment, eight Alzheimer's disease and 14 controls) aged between 54 and 77 years underwent 11C-(R)PK11195, 11C-PIB positron emission tomography and magnetic resonance imaging scans. Patients were followed-up after 14 ± 4 months. Region of interest and Statistical Parametric Mapping analysis were used to determine longitudinal alterations. Single subject analysis was performed to evaluate the individualized pathological changes over time. Correlations between levels of microglial activation and amyloid deposition at a voxel level were assessed using Biological Parametric Mapping. We demonstrated that both baseline and follow-up microglial activation in the mild cognitive impairment cohort compared to controls were increased by 41% and 21%, respectively. There was a longitudinal reduction of 18% in microglial activation in mild cognitive impairment cohort over 14 months, which was associated with a mild elevation in fibrillar amyloid load. Cortical clusters of microglial activation and amyloid deposition spatially overlapped in the subjects with mild cognitive impairment. Baseline microglial activation was increased by 36% in Alzheimer's disease subjects compared with controls. Longitudinally, Alzheimer's disease subjects showed an increase in microglial activation. In conclusion, this is one of the first longitudinal positron emission tomography studies evaluating longitudinal changes in microglial activation in mild cognitive impairment and Alzheimer's disease subjects. We found there is an initial longitudinal reduction in microglial activation in subjects with mild cognitive impairment, while subjects with Alzheimer's disease showed an increase in microglial activation. This could reflect that activated microglia in mild cognitive impairment initially may adopt a protective activation phenotype, which later change to a cidal pro-inflammatory phenotype as disease progresses and amyloid clearance fails. Thus, we speculate that there might be two peaks of microglial activation in the Alzheimer's disease trajectory; an early protective peak and a later pro-inflammatory peak. If so, anti-microglial agents targeting the pro-inflammatory phenotype would be most beneficial in the later stages of the disease.
Insights
Microglial activation in Alzheimer's disease (AD) shows an initial protective phase in mild cognitive impairment (MCI) that shifts to a pro-inflammatory state in AD. Targeting later stages may benefit AD treatment.
Area of Science:
- Neuroscience
- Neurology
- Immunology
Background:
- Alzheimer's disease (AD) is characterized by amyloid-β deposition, neuroinflammation, and tau tangles.
- Microglial activation is hypothesized to play a dual role, initially protective and later detrimental in AD.
- Understanding the temporal profile of microglial activation is crucial for therapeutic strategies.
Purpose of the Study:
- To evaluate the temporal profile of microglial activation in mild cognitive impairment (MCI) and AD.
- To assess the relationship between microglial activation and fibrillar amyloid load longitudinally.
- To compare microglial activation patterns between MCI, AD, and control groups.
Main Methods:
- Longitudinal positron emission tomography (PET) study using 11C-(R)PK11195 and 11C-PIB.
- 30 subjects (8 MCI, 8 AD, 14 controls) underwent baseline and follow-up PET and MRI scans (14 ± 4 months).
- Region of interest, Statistical Parametric Mapping, and Biological Parametric Mapping analyses were employed.
Main Results:
- Microglial activation was increased at baseline and follow-up in MCI compared to controls.
- MCI subjects showed a longitudinal reduction in microglial activation associated with increased amyloid load.
- AD subjects exhibited increased baseline microglial activation and a longitudinal increase over time.
Conclusions:
- Microglial activation exhibits distinct longitudinal changes in MCI and AD, suggesting a shift in phenotype.
- An early, potentially protective microglial response in MCI may transition to a pro-inflammatory state in AD.
- Therapeutic strategies targeting pro-inflammatory microglia may be most effective in later stages of Alzheimer's disease.


