Related Experiment Video
Updated: May 21, 2025

Stability and Structure of Bat Major Histocompatibility Complex Class I with Heterologous β2-Microglobulin
Published on: March 10, 2021
Phylogenetic and structural insights into the origin of C-type lectin Mincle in vertebrates
Taiki Ito1,2, Carla Guenther2, Eri Ishikawa1,2
1Department of Molecular Immunology, Research Institute for Microbial Diseases, Osaka University, Suita, Osaka, Japan.
Abstract:
Our bodies are continuously exposed to injurious insults by infection and tissue damage, which are primarily sensed by innate immune receptors to maintain homeostasis. Among such receptors is macrophage-inducible C-type lectin (Mincle, gene symbol CLEC4E), a member of the C-type lectin receptor (CLR) family, which functions as an immune sensor for both pathogens and damaged self. To monitor these injurious stimuli, Mincle recognizes disaccharide-based pathogen-derived glycolipids and monosaccharide-based intracellular metabolites, such as β-glucosylceramide. Mincle is well-conserved among mammals; however, there are questions that remain unclear, such as from which lower vertebrate did it arise and whether the original ligand was self or non-self. Here, we found homologues of Mincle and its signaling subunit Fc receptor γ chain (FcRγ) in lower vertebrates, such as reptiles, amphibians, and fishes. The crystal structure of a Mincle homologue revealed that fish Mincle possesses a narrower sugar-binding pocket than that of mammalian Mincle, and accommodates only monosaccharide moieties. These results suggest that Mincle may have evolved from a self-recognizing receptor, and its sugar-binding pocket widened during evolution, presumably to adapt to disaccharide-based glycolipids derived from life-threatening pathogens.
Insights
The C-type lectin receptor (CLR) Mincle evolved from recognizing self-molecules to detecting pathogen-derived glycolipids. Its sugar-binding pocket narrowed in fish, suggesting an evolutionary adaptation to pathogen recognition.
Area of Science:
- Immunology
- Evolutionary Biology
- Structural Biology
Background:
- Innate immunity relies on receptors sensing infection and tissue damage.
- Macrophage-inducible C-type lectin (Mincle) is an immune sensor for pathogens and self-damage.
- Mincle recognizes pathogen glycolipids and self-metabolites like β-glucosylceramide.
Purpose of the Study:
- To investigate the evolutionary origins of Mincle in lower vertebrates.
- To determine if Mincle's ancestral ligand was self or non-self.
- To understand the structural basis for Mincle's ligand specificity.
Main Methods:
- Searched for Mincle and Fc receptor γ chain (FcRγ) homologues in reptiles, amphibians, and fishes.
- Determined the crystal structure of a fish Mincle homologue.
- Analyzed the sugar-binding pocket of fish Mincle.
Main Results:
- Mincle and FcRγ homologues were identified in lower vertebrates.
- Fish Mincle exhibits a narrower sugar-binding pocket compared to mammalian Mincle.
- The fish Mincle pocket accommodates only monosaccharide moieties.
Conclusions:
- Mincle likely evolved from a receptor that recognized self-molecules.
- The Mincle sugar-binding pocket expanded during evolution.
- This expansion likely facilitated recognition of disaccharide glycolipids from pathogens.
Related Concept Videos
Selectins
Cell Adhesion Molecules - Types and Functions
CAM Families
The Integrin family of proteins is primarily involved...
Microtubules in Signaling
Structure of Cadherins
Integrins
Some ECM proteins assemble into a basement membrane to which the remaining components adhere. Proteoglycans typically form the bulk of the ECM while fibrous proteins, like collagen,...
Immunoglobulin-like Cell Adhesion Molecules
Ig-CAMs exhibit either homophilic binding (to other Ig-CAMs) or heterophilic binding (to other ligands such as integrins). While most Ig-CAMs...

