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Updated: Jun 19, 2026

Isolation of Salmonella typhimurium-containing Phagosomes from Macrophages
Published on: October 25, 2017
Mannose receptor-dependent delay in phagosome maturation by Mycobacterium avium glycopeptidolipids
Lindsay Sweet1, Prachi P Singh, Abul K Azad
1Department of Biological Sciences, Eck Institute for Tropical Disease Research and Training, University of Notre Dame, Notre Dame, Indiana 46556, USA.
Abstract:
The ability of pathogenic mycobacteria to block phagosome-lysosome fusion is critical for its pathogenesis. The molecules expressed by mycobacteria that inhibit phagosome maturation and the mechanism of this inhibition have been extensively studied. Recent work has indicated that mannosylated lipoarabinomannan (ManLAM) isolated from Mycobacterium tuberculosis can function to delay phagosome-lysosome fusion and that this delay requires the interaction of ManLAM with the mannose receptor (MR). However, the molecules expressed by other pathogenic mycobacteria that function to inhibit phagosome maturation have not been well described. In the present study, we show that phagosomes containing silica beads coated with glycopeptidolipids (GPLs), a major surface component of Mycobacterium avium, showed limited acidification and delayed recruitment of late endosomal/lysosomal markers compared to those of phosphatidylcholine-coated beads. The carbohydrate component of the GPLs was required, as beads coated only with the lipopeptide core failed to delay phagosome-lysosome fusion. Moreover, the ability of GPLs to delay phagosome maturation was dependent on the macrophage expression of the MR. Using CHO cells expressing the MR, we confirmed that the GPLs bind this receptor. Finally, human monocyte-derived macrophages knocked down for MR expression showed increased M. avium phagosome-lysosome fusion relative to control cells. Together, the data indicate that GPLs can function to delay phagosome-lysosome fusion and suggest that GPLs, like ManLAM, work through the MR to mediate this activity.
Insights
Pathogenic mycobacteria evade immune cells by blocking phagosome-lysosome fusion. Mycobacterium avium glycopeptidolipids (GPLs) delay this fusion by interacting with the mannose receptor (MR).
Area of Science:
- Microbiology
- Immunology
- Cell Biology
Background:
- Pathogenic mycobacteria survival relies on inhibiting phagosome-lysosome fusion.
- Mycobacterium tuberculosis uses mannosylated lipoarabinomannan (ManLAM) via the mannose receptor (MR) to delay this fusion.
- Mechanisms used by other mycobacteria remain less understood.
Purpose of the Study:
- To investigate the role of Mycobacterium avium glycopeptidolipids (GPLs) in phagosome maturation inhibition.
- To determine if GPLs utilize the mannose receptor (MR) for this function.
Main Methods:
- Silica beads coated with Mycobacterium avium glycopeptidolipids (GPLs) were incubated with macrophages.
- Phagosome acidification and lysosomal marker recruitment were assessed.
- Mannose receptor (MR) expression was manipulated in cell lines and primary macrophages.
- Binding of GPLs to MR was confirmed using CHO cells expressing MR.
Main Results:
- GPL-coated beads showed delayed phagosome acidification and lysosomal marker recruitment compared to controls.
- The carbohydrate portion of GPLs was essential for this inhibitory effect.
- GPL-mediated delay of phagosome maturation was dependent on macrophage MR expression.
- Macrophages with reduced MR expression exhibited increased Mycobacterium avium phagosome-lysosome fusion.
Conclusions:
- Mycobacterium avium glycopeptidolipids (GPLs) inhibit phagosome-lysosome fusion.
- GPLs function similarly to ManLAM by engaging the mannose receptor (MR) to delay phagosome maturation.
- GPLs represent a novel mechanism for mycobacterial immune evasion.
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