Related Experiment Video
Updated: Feb 16, 2026

Characterization and Isolation of Mouse Primary Microglia by Density Gradient Centrifugation
Published on: February 16, 2018
Minocycline reduces chronic microglial activation after brain trauma but increases neurodegeneration
Gregory Scott1, Henrik Zetterberg2,3,4, Amy Jolly1
1Division of Brain Sciences, Department of Medicine, Imperial College London, UK.
Abstract:
Survivors of a traumatic brain injury can deteriorate years later, developing brain atrophy and dementia. Traumatic brain injury triggers chronic microglial activation, but it is unclear whether this is harmful or beneficial. A successful chronic-phase treatment for traumatic brain injury might be to target microglia. In experimental models, the antibiotic minocycline inhibits microglial activation. We investigated the effect of minocycline on microglial activation and neurodegeneration using PET, MRI, and measurement of the axonal protein neurofilament light in plasma. Microglial activation was assessed using 11C-PBR28 PET. The relationships of microglial activation to measures of brain injury, and the effects of minocycline on disease progression, were assessed using structural and diffusion MRI, plasma neurofilament light, and cognitive assessment. Fifteen patients at least 6 months after a moderate-to-severe traumatic brain injury received either minocycline 100 mg orally twice daily or no drug, for 12 weeks. At baseline, 11C-PBR28 binding in patients was increased compared to controls in cerebral white matter and thalamus, and plasma neurofilament light levels were elevated. MRI measures of white matter damage were highest in areas of greater 11C-PBR28 binding. Minocycline reduced 11C-PBR28 binding (mean Δwhite matter binding = -23.30%, 95% confidence interval -40.9 to -5.64%, P = 0.018), but increased plasma neurofilament light levels. Faster rates of brain atrophy were found in patients with higher baseline neurofilament light levels. In this experimental medicine study, minocycline after traumatic brain injury reduced chronic microglial activation while increasing a marker of neurodegeneration. These findings suggest that microglial activation has a reparative effect in the chronic phase of traumatic brain injury.
Insights
Minocycline reduced microglial activation after traumatic brain injury but increased neurodegeneration markers. This suggests chronic microglial activation may be beneficial for brain injury recovery.
Area of Science:
- Neuroscience
- Neurology
- Immunology
Background:
- Traumatic brain injury (TBI) survivors can experience long-term neurodegeneration, including brain atrophy and dementia.
- Chronic microglial activation is a hallmark of TBI, but its role (harmful or beneficial) remains unclear.
- Targeting microglia presents a potential therapeutic strategy for chronic TBI phases.
Purpose of the Study:
- To investigate the effect of minocycline, a microglial inhibitor, on microglial activation and neurodegeneration in patients with chronic moderate-to-severe TBI.
- To assess the relationship between microglial activation, brain injury markers, and disease progression.
Main Methods:
- Utilized positron emission tomography (PET) with 11C-PBR28 to assess microglial activation.
- Employed magnetic resonance imaging (MRI) for structural and diffusion measures of brain injury.
- Measured plasma neurofilament light (NfL) as a marker of axonal damage.
- Administered minocycline or placebo for 12 weeks to 15 TBI patients.
Main Results:
- Baseline 11C-PBR28 binding was elevated in TBI patients, particularly in white matter and thalamus.
- Minocycline treatment significantly reduced microglial activation (11C-PBR28 binding) by 23.30% in white matter.
- Minocycline treatment increased plasma NfL levels, indicating enhanced neurodegeneration.
- Higher baseline NfL levels correlated with faster rates of brain atrophy.
Conclusions:
- Minocycline effectively reduces chronic microglial activation post-TBI.
- The increase in plasma NfL suggests minocycline may exacerbate neurodegeneration in the chronic phase.
- These findings imply that microglial activation might play a reparative role in the chronic phase of traumatic brain injury.

