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Phagosome-lysosome fusion is a calcium-independent event in macrophages
S Zimmerli1, M Majeed, M Gustavsson
1Division of Infectious Diseases, San Francisco General Hospital, University of California at San Francisco 94143-0868, USA.
Abstract:
Phagosome-lysosome membrane fusion is a highly regulated event that is essential for intracellular killing of microorganisms. Functionally, it represents a form of polarized regulated secretion, which is classically dependent on increases in intracellular ionized calcium ([Ca2+]i). Indeed, increases in [Ca2+]i are essential for phagosome-granule (lysosome) fusion in neutrophils and for lysosomal fusion events that mediate host cell invasion by Trypanosoma cruzi trypomastigotes. Since several intracellular pathogens survive in macrophage phagosomes that do not fuse with lysosomes, we examined the regulation of phagosome-lysosome fusion in macrophages. Macrophages (M phi) were treated with 12.5 microM bis-(2-amino-S-methylphenoxy) ethane-N,N,N',N',-tetraacetic acid tetraacetoxymethyl ester (MAPT/AM), a cell-permeant calcium chelator which reduced resting cytoplasmic [Ca2+]; from 80 nM to < or = 20 nM and completely blocked increases in [Ca2+]i in response to multiple stimuli, even in the presence of extracellular calcium. Subsequently, M phi phagocytosed serum-opsonized zymosan, staphylococci, or Mycobacterium bovis. Microbes were enumerated by 4',6-diamidino-2-phenylindole, dihydrochloride (DAPI) staining, and phagosome-lysosome fusion was scored using both lysosome-associated membrane protein (LAMP-1) as a membrane marker and rhodamine dextran as a content marker for lysosomes. Confirmation of phagosome-lysosome fusion by electron microscopy validated the fluorescence microscopy findings. We found that phagosome-lysosome fusion in M phi occurs noramlly at very low [Ca2+]i (< or = 20 nM). Kinetic analysis showed that in M phi none of the steps leading from particle binding to eventual phagosome-lysosome fusion are regulated by [Ca2+]i in a rate-limiting way. Furthermore, confocal microscopy revealed no difference in the intensity of LAMP-1 immunofluorescence in phagolysosome membranes in calcium-buffered vs. control macrophages. We conclude that neither membrane recognition nor fusion events in the phagosomal pathway in macrophages are dependent on or regulated by calcium.
Insights
Calcium ions do not regulate phagosome-lysosome fusion in macrophages. This study shows that phagosome-lysosome fusion occurs normally even when intracellular calcium levels are significantly reduced.
Area of Science:
- Cell Biology
- Immunology
- Microbiology
Background:
- Phagosome-lysosome fusion is critical for eliminating intracellular pathogens.
- This process is often considered a form of regulated secretion dependent on intracellular calcium ([Ca2+]i).
- Dysfunctional phagosome-lysosome fusion allows pathogens to survive within macrophages.
Purpose of the Study:
- To investigate the role of intracellular calcium ([Ca2+]i) in regulating phagosome-lysosome fusion in macrophages.
- To determine if calcium levels are a rate-limiting factor in the phagosome maturation pathway.
Main Methods:
- Macrophages (M phi) were treated with a calcium chelator (MAPT/AM) to reduce intracellular calcium.
- Phagosome-lysosome fusion was assessed by quantifying microbial uptake and using markers like LAMP-1 and rhodamine dextran.
- Confocal microscopy and electron microscopy were employed to validate fusion events and marker localization.
Main Results:
- Phagosome-lysosome fusion occurred normally in macrophages with significantly reduced intracellular calcium (< or = 20 nM).
- No rate-limiting regulation by [Ca2+]i was observed in any step from particle binding to fusion.
- LAMP-1 immunofluorescence intensity on phagolysosome membranes was unchanged in calcium-buffered versus control macrophages.
Conclusions:
- Intracellular calcium ([Ca2+]i) does not regulate phagosome-lysosome fusion in macrophages.
- Neither membrane recognition nor fusion events in the macrophage phagosomal pathway are calcium-dependent.
- This finding challenges the classical view of calcium's role in this essential cellular process.