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Direct observation of hexokinase translocation in stimulated macrophages
K C Pedley1, G E Jones, M Magnani
1Biomedical Sciences Division, King's College London, U.K.
Abstract:
1. Fluorescence imaging of antibodies was used to show that phorbol 12-myristate 13-acetate (PMA) induces a 4-fold increase in the amount of hexokinase relative to the control in the cortical shell of rat peritoneal macrophage cytosol adjacent to the plasma membrane, and a corresponding depletion in the amount of hexokinase in the central core of the cytosol. However, there was no significant PMA-dependent change in the distribution of glucose-6-phosphate dehydrogenase. 2. Cytochalasin D, an inhibitor of actin microfilament polymerization, prevented the PMA-induced hexokinase translocation and also reduced the PMA-dependent increases in 2-deoxy-D-glucose transport and glucose-dependent PMA-stimulated superoxide production. 3. PMA caused a contraction of the width of the cortical F-actin zone. Cytochalasin D caused some dispersal of F-actin within the cell, increasing the density of F-actin within the central cytosolic core and causing aggregation of the F-actin within the cortex. These data are consistent with the view that PMA induces attachment of hexokinase to microfilaments within the cortical zone adjacent to the cell membrane of macrophages, and cytochalasin D prevents this attachment. This is the first direct demonstration of the translocation of hexokinase to the plasma membrane in activated cells, and supports the view that enhanced hexokinase activity in the cortical region of the cytosol is an important early component of the macrophage activation process.
Insights
Phorbol 12-myristate 13-acetate (PMA) causes hexokinase to move to the macrophage cell membrane, enhancing glucose uptake. Cytochalasin D blocks this translocation, impacting cellular activation and glucose metabolism.
Area of Science:
- Cell Biology
- Immunology
- Biochemistry
Background:
- Macrophage activation involves complex cellular rearrangements and metabolic shifts.
- Hexokinase plays a crucial role in glucose metabolism and cellular energy production.
Purpose of the Study:
- To investigate the subcellular localization of hexokinase in activated macrophages.
- To determine the role of actin cytoskeleton in PMA-induced hexokinase translocation.
Main Methods:
- Fluorescence imaging of antibodies to track hexokinase distribution.
- Utilizing cytochalasin D to inhibit actin polymerization.
- Measuring 2-deoxy-D-glucose transport and superoxide production.
Main Results:
- PMA induced a 4-fold increase in hexokinase near the plasma membrane, with depletion in the cytosol core.
- Cytochalasin D inhibited PMA-induced hexokinase translocation and reduced glucose transport and superoxide production.
- PMA contracted the F-actin zone; cytochalasin D altered F-actin distribution.
Conclusions:
- PMA induces hexokinase attachment to microfilaments in the macrophage cortical zone.
- Cytochalasin D disrupts this attachment, suggesting a role for actin in hexokinase localization.
- This translocation is a key early event in macrophage activation.