Atypical Cadherin FAT3 Is a Novel Mediator for Morphological Changes of Microglia

Tomomi Okajima1, Yichen Gu1, Rin-Ichiro Teruya2

  • 1Graduate School of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Ibaraki 305-8577, Japan.

Eneuro
|September 2, 2020
PubMed

Insights

The FAT3 protein regulates microglial cell shape, particularly in response to nutrients and hypoxanthine. This discovery reveals a new pathway controlling microglial morphology during brain development.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Immunology

Background:

  • Microglia, the brain's resident macrophages, are crucial for development and homeostasis.
  • Microglial morphology dynamically changes, influencing synaptogenesis and synapse pruning.
  • Altered microglial shape is observed in response to cellular debris and pathogens.

Purpose of the Study:

  • To investigate the mechanisms controlling microglial morphology.
  • To identify novel regulators of microglial cell shape.
  • To explore the role of FAT atypical cadherin family protein, FAT3, in microglial morphology.

Main Methods:

  • Utilized BV2 microglial cell line and primary mouse microglia.
  • Employed microarray analysis to identify gene expression changes.
  • Investigated the effects of high-nutrient medium and hypoxanthine on microglial morphology and FAT3 expression.

Main Results:

  • FAT3 regulates the morphology of BV2 microglial cells.
  • High-nutrient medium induces elongated BV2 cell shapes and FAT3 expression.
  • Hypoxanthine promotes FAT3 expression, sustaining elongated microglial forms.

Conclusions:

  • The hypoxanthine-FAT3 axis represents a novel pathway regulating microglial morphology.
  • FAT3 may control microglial morphologic transitions during postnatal development in vivo.
  • Understanding FAT3's role offers insights into microglial function and brain homeostasis.

Related Concept Videos

Cadherins in Tissue Organization01:19

Cadherins in Tissue Organization

The cadherins are a superfamily of cell adhesion molecules comprising over 180 variants, with specific tissues expressing a particular combination of cadherin types. Cadherins generally exhibit homophilic binding; i.e., cadherins on one cell bind to cadherins of the same or closely related type on another cell. Thus, cells of the same type have a specific affinity to bind to each other and sort themselves into clusters to form tissues.
Cell Sorting During Development
Cell sorting plays an...
3.7K
Structure of Cadherins01:25

Structure of Cadherins

The cadherins were one of the first cell adhesion molecules discovered; the term “cadherins”   is based on their calcium-dependent adhering properties. The first cadherins discovered on the epithelial, neuronal, and placental cells were named E-cadherin, P-cadherin, and N-cadherin, respectively. These classical cadherins share sequence and structural similarities. Other cadherins, including those involved in cell signaling, are grouped into non-classical cadherins. This...
4.3K
Catenins01:23

Catenins

Catenins are characterized by multiple binding domains and dynamic structures that allow them to function as linker proteins in cell junction complexes. All catenins, except α-catenin, contain a characteristic protein sequence called the armadillo repeat and are therefore also called armadillo proteins.
Catenins in Cell Junctions
Catenins bind to cell adhesion molecules such as cadherins and link them to different cytoskeletal proteins depending on the type of cell junction. At the...
2.9K