In Vitro Priming and Hyper-Activation of Brain Microglia: an Assessment of Phenotypes

Kyle Koss1,2, Matthew A Churchward1,2, Christopher Tsui1,2,3

  • 1Neurochemical Research Unit, Department of Psychiatry, University of Alberta, Edmonton, AB, T6G 2G3, Canada.

Molecular Neurobiology
|February 27, 2019
PubMed

Insights

Microglia, the central nervous system immune cells, can be hyper-activated or primed, impacting nervous tissue. This study models these states in vitro to understand their mechanisms.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Microglia are crucial immune cells in the central nervous system, regulating neural tissue health.
  • Dysfunctional microglial states, including hyper-activation and priming, are implicated in neurodegenerative disorders.
  • Understanding these phenotypes is vital for developing targeted therapies.

Purpose of the Study:

  • To establish in vitro models for microglial hyper-activation and priming phenotypes.
  • To investigate the molecular and morphological characteristics of these microglial states.
  • To provide a platform for mechanistic studies of microglial dysfunction.

Main Methods:

  • Primary microglia or mixed glial cultures were treated with lipopolysaccharide (LPS) to induce activation.
  • Recovery and priming were modeled using dexamethasone treatment.
  • Interferon gamma (IFNγ) was used to assess inflammatory memory.
  • Cellular responses including cytokine secretion, protein expression (iNOS, MHCII), neurotrophic factor levels (BDNF, GDNF), and morphology were analyzed.

Main Results:

  • Untreated microglia exhibited a surveying phenotype with low inflammation and high neurotrophic factor expression.
  • LPS and IFNγ treatment induced an activated phenotype with increased pro-inflammatory factors, reduced neurotrophic factors, and amoeboid morphology.
  • Dexamethasone treatment led to a primed state, characterized by dysregulated gene expression and altered morphology, suggesting incomplete recovery.
  • Specific molecular markers like iNOS, MHCII, TNF, IL-1β, and CD68 were differentially regulated across phenotypes.

Conclusions:

  • In vitro modeling effectively recreates microglial hyper-activation and priming.
  • These models allow for detailed mechanistic investigations into microglial roles in CNS injury and disease.
  • Findings highlight the potential for targeting specific microglial phenotypes in neurodegenerative conditions.

Related Concept Videos

Background and Environment Affect Phenotype02:27

Background and Environment Affect Phenotype

Although the genetic makeup of an organism plays a major role in determining the phenotype, there are also several environmental factors, such as temperature, oxygen availability, presence of mutagens, that can alter an organism’s phenotype.
An example of how genetic background affects phenotype can be seen in horses. The Extension gene in horses is responsible for their coat color. A wild-type gene (EE) produces black pigment in the coat, while a mutant gene (ee) produces red pigment. A...
7.7K
Co-activators and Co-repressors02:04

Co-activators and Co-repressors

Gene transcription is regulated by the synergistic action of several proteins that form a complex at a gene regulatory site. This is observed in eukaryotes, where the regulation of gene expression is a complex process. Regulatory proteins in eukaryotes can broadly be classified into two types – regulators that bind directly to specific DNA sequences and co-regulators that associate with regulatory proteins but cannot directly bind to the DNA. These co-regulators are further divided into...
8.6K
tRNA Activation02:26

tRNA Activation

Aminoacyl-tRNA synthetases are present in both eukaryotes and bacteria. Though eukaryotes have 20 different aminoacyl-tRNA synthetases to couple to 20 amino acids, many bacteria do not have genes for all of these aminoacyl-tRNA synthetases. Despite this, they still use all 20 amino acids to synthesize their proteins. For instance, some bacteria do not have the gene encoding the enzyme that couples glutamine with its partner tRNA. In these organisms, one enzyme adds glutamic acid to all of the...
22.9K
Activation Energy01:26

Activation Energy

Activation energy is the minimum amount of energy necessary for a chemical reaction to move forward. The higher the activation energy, the slower the rate of the reaction. However, adding heat to the reaction will increase the rate, since it causes molecules to move faster and increase the likelihood that molecules will collide. The collision and breaking of bonds represents the uphill phase of a reaction and generates the transition state. The transition state is an unstable high-energy state...
86.6K
Eukaryotic Transcription Activators02:42

Eukaryotic Transcription Activators

Transcription activators are proteins that promote the transcription of genes from DNA to RNA. In most cases, these proteins contain two separate domains ‒ a domain that binds to DNA and a domain for activating transcription; however, in some cases, a single domain is responsible for both binding and activation of transcription, as seen in the glucocorticoid receptor and MyoD.
The binding domains are capable of recognizing and interacting with regulatory sequences on the DNA. These...
12.8K
Secondary Active Transport01:55

Secondary Active Transport

One example of how cells use the energy contained in electrochemical gradients is demonstrated by glucose transport into cells. The ion vital to this process is sodium (Na+), which is typically present in higher concentrations extracellularly than in the cytosol. Such a concentration difference is due, in part, to the action of an enzyme “pump” embedded in the cellular membrane that actively expels Na+ from a cell. Importantly, as this pump contributes to the high concentration of...
137.7K