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ATP-dependent membrane assembly of F-actin facilitates membrane fusion
Abstract:
We recently established an in vitro assay that monitors the fusion between latex-bead phagosomes and endocytic organelles in the presence of J774 macrophage cytosol (). Here, we show that different reagents affecting the actin cytoskeleton can either inhibit or stimulate this fusion process. Because the membranes of purified phagosomes can assemble F-actin de novo from pure actin with ATP (), we focused here on the ability of membranes to nucleate actin in the presence of J774 cytosolic extracts. For this, we used F-actin sedimentation, pyrene actin assays, and torsional rheometry, a biophysical approach that could provide kinetic information on actin polymerization and gel formation. We make two major conclusions. First, under our standard in vitro conditions (4 mg/ml cytosol and 1 mM ATP), the presence of membranes actively catalyzed the assembly of cytosolic F-actin, which assembled into highly viscoelastic gels. A model is discussed that links these results to how the actin may facilitate fusion. Second, cytosolic actin paradoxically polymerized more under ATP depletion than under high-ATP conditions, even in the absence of membranes; we discuss these data in the context of the well described, large increases in F-actin seen in many cells during ischemia.
Insights
Membrane-associated actin polymerization is crucial for phagosome-endosome fusion. Actin assembly is stimulated by membranes and surprisingly increases with ATP depletion, offering insights into cellular processes like ischemia.
Area of Science:
- Cell Biology
- Biophysics
- Biochemistry
Background:
- Phagosome-endosome fusion is a critical cellular process.
- The role of the actin cytoskeleton in this fusion is not fully understood.
Purpose of the Study:
- To investigate the role of actin nucleation by membranes in phagosome-endosome fusion.
- To characterize the biophysical properties of actin assembly in the presence of macrophage cytosol and membranes.
Main Methods:
- In vitro fusion assay using latex-bead phagosomes and J774 macrophage cytosol.
- F-actin sedimentation assays.
- Pyrene actin assays.
- Torsional rheometry to analyze actin polymerization and gel formation.
Main Results:
- Membranes actively catalyzed the assembly of cytosolic F-actin into viscoelastic gels under standard in vitro conditions.
- Cytosolic actin polymerization increased paradoxically under ATP depletion compared to high-ATP conditions, even without membranes.
Conclusions:
- Membrane-catalyzed actin assembly likely plays a significant role in facilitating phagosome-endosome fusion.
- The observed actin polymerization patterns under varying ATP levels provide insights into cellular responses to conditions like ischemia.