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Radial movement of lysosomes along microtubules in permeabilized macrophages
J A Swanson1, A Locke, P Ansel
1Department of Anatomy and Cellular Biology, Harvard Medical School, Boston, MA 02115.
Abstract:
In murine bone marrow-derived macrophages, lysosomes often form tubulovesicular compartments, whose extended distribution in the cytoplasm depends on the integrity of cytoplasmic microtubules. When macrophages with fluorescently labeled lysosomes were plated onto coverslips opsonized with IgG, they engaged that surface in a phagocytic response (frustrated phagocytosis). The tubular lysosomal compartment of these cells collected in a central, perinuclear region, despite the continued presence of a radiating array of cytoplasmic microtubules. Using methods developed in the study of melanophores, we permeabilized macrophages engaged in frustrated phagocytosis, then re-activated lysosome extension along microtubules. Permeabilization was selective for plasma membranes, in that high molecular weight probes such as trypan blue or IgG could enter cells, while fluorescent probes previously loaded into lysosomes via endocytosis remained contained therein. Addition of 2 mM ATP, GTP or UTP to these permeabilized cell models produced centrifugal extension of tubular lysosomes. Selective depletion of ATP, using Escherichia coli glycerol kinase, inhibited ATP-dependent extension but not that which occurred with GTP or UTP, indicating that the mechanism of radial movement can use any of these three nucleotide triphosphates. Extension was independent of pH between 6.8 and 7.4, and was inhibited by AMP-PNP and by GMP-PNP. Depolymerization of cytoplasmic microtubules with nocodazole prevented subsequent ATP-inducible lysosome extension, whereas preincubation of cells with cytochalasin D did not inhibit the response. These results are consistent with the in vitro mechanochemical properties of kinesin (Cohn et al., 1989), and support earlier evidence, obtained in living cells, that kinesin is the mechanochemical motor of lysosome extension along microtubules in macrophages.
Insights
Lysosome extension in macrophages relies on microtubule tracks and nucleotide triphosphates like ATP, GTP, or UTP. Kinesin motor proteins drive this movement along microtubules, crucial for cellular processes.
Area of Science:
- Cell Biology
- Molecular Motors
- Macrophage Function
Background:
- Lysosomes in macrophages form dynamic tubulovesicular compartments.
- Lysosome distribution is dependent on cytoplasmic microtubule integrity.
- Frustrated phagocytosis triggers lysosomal compartment centralization.
Purpose of the Study:
- To investigate the mechanism of lysosome extension along microtubules in macrophages.
- To identify the nucleotide requirements and motor proteins involved in lysosome movement.
- To understand lysosome dynamics during frustrated phagocytosis.
Main Methods:
- Permeabilization of macrophages engaged in frustrated phagocytosis.
- Re-activation of lysosome extension using nucleotide triphosphates (ATP, GTP, UTP).
- Selective depletion of ATP using Escherichia coli glycerol kinase.
- Inhibition studies using AMP-PNP, GMP-PNP, nocodazole, and cytochalasin D.
Main Results:
- Centrifugal extension of tubular lysosomes was induced by ATP, GTP, or UTP in permeabilized macrophages.
- ATP-dependent extension was inhibited by ATP depletion, but GTP/UTP-dependent extension persisted.
- Microtubule depolymerization with nocodazole abolished ATP-inducible lysosome extension.
- Extension was independent of pH and inhibited by non-hydrolyzable nucleotide analogs.
Conclusions:
- Lysosome extension along microtubules in macrophages can be powered by ATP, GTP, or UTP.
- Kinesin is likely the mechanochemical motor responsible for lysosome movement along microtubules.
- These findings support the role of kinesin in lysosome transport within macrophages.