Related Experiment Video
Updated: Apr 18, 2026

Methods to Study Mrp4-containing Macromolecular Complexes in the Regulation of Fibroblast Migration
Published on: May 19, 2016
Mertk deficiency affects macrophage directional migration via disruption of cytoskeletal organization
Yong Tang1, Shen Wu2, Qian Liu2
1Beijing Institute of Ophthalmology, Beijing Tong-Ren Hospital, Capital Medical University, Beijing 100069, China.
Abstract:
Mertk belongs to the Tyro3, Axl and Mertk (TAM) family of receptor tyrosine kinases, and plays a pivotal role in regulation of cytoskeletal rearrangement during phagocytosis. Phagocytosis by either professional or non-professional phagocytes is impaired in the Mertk deficient individual. In the present study, we further investigated the effects of Mertk mutation on peritoneal macrophage morphology, attachment, spreading and movement. Mertk-mutated macrophages exhibited decreased attachment, weak spreading, loss of spindle-like body shape and lack of clear leading and trailing edges within the first few hours of culture, as observed by environmental scanning electron microscopy. Time-lapse video photography recording showed that macrophage without Mertk conducted mainly random movement with oscillating swing around the cell body, and lost the directional migration action seen on the WT cells. Western blotting showed a decreased phosphorylation of focal adhesion kinase (FAK). Immunocytochemistry revealed that actin filaments and dynamic protein myosin II failed to concentrate in the leading edge of migrating cells. Microtubules were localized mainly in one side of mutant cell body, with no clear MTOC and associated radially-distributed microtubule bundles, which were clearly evident in the WT cells. Our results suggest that Mertk deficiency affects not only phagocytosis but also cell shape and migration, likely through a common regulatory mechanism on cytoskeletons.
Insights
Mertk deficiency impairs macrophage phagocytosis, cell shape, and directional migration by disrupting cytoskeletal organization. This receptor tyrosine kinase is crucial for cell movement and morphology.
Area of Science:
- Cell Biology
- Immunology
- Biochemistry
Background:
- Mertk (Mer tyrosine kinase) is a receptor tyrosine kinase in the TAM family.
- It plays a key role in phagocytosis and cytoskeletal regulation.
- Mertk deficiency impairs phagocytosis in various cell types.
Purpose of the Study:
- To investigate the impact of Mertk mutation on peritoneal macrophage morphology, attachment, spreading, and migration.
- To elucidate the underlying molecular mechanisms affecting cell shape and movement.
Main Methods:
- Environmental scanning electron microscopy (ESEM) for morphology.
- Time-lapse video photography for cell migration analysis.
- Western blotting for protein phosphorylation (FAK).
- Immunocytochemistry for cytoskeletal protein localization (actin, myosin II, microtubules).
Main Results:
- Mertk-mutated macrophages showed reduced attachment, weak spreading, and abnormal cell shape.
- Mutant macrophages exhibited random movement and lacked directional migration.
- Decreased focal adhesion kinase (FAK) phosphorylation was observed.
- Actin, myosin II, and microtubules were improperly localized in mutant cells, affecting cytoskeletal dynamics and leading edge formation.
Conclusions:
- Mertk deficiency significantly affects macrophage morphology, attachment, and motility.
- These cellular defects are linked to impaired cytoskeletal organization and dynamics.
- Mertk plays a critical role in regulating cell shape and migration, potentially via common cytoskeletal regulatory pathways.
Related Concept Videos
Cell Migration
Cell Migration
Cytoskeletal Coordination in Cell Migration
Microtubule Instability
Chemotaxis and Direction of Cell Migration
Role of Myosin in Cell Migration
Myosin II is a hexamer comprising two heavy chains with globular heads and coiled-coil tails, two regulatory light chains, and two essential light chains. The ATPase sites on the myosin heads hydrolyze ATP, and the released phosphate generates the force for contraction....

