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Published on: August 26, 2016
Phagocytosis Enhances Lysosomal and Bactericidal Properties by Activating the Transcription Factor TFEB
Matthew A Gray1, Christopher H Choy2, Roya M Dayam2
1Department of Chemistry and Biology, Ryerson University, Toronto, ON M5B2K3, Canada.
Abstract:
Macrophages internalize pathogens through phagocytosis, entrapping them into organelles called phagosomes. Phagosomes then fuse with lysosomes to mature into phagolysosomes, acquiring an acidic and hydrolytic lumen that kills the pathogens. During an ongoing infection, macrophages can internalize dozens of bacteria. Thus, we hypothesized that an initial round of phagocytosis might boost lysosome function and bactericidal ability to cope with subsequent rounds of phagocytosis. To test this hypothesis, we employed Fcγ-receptor-mediated phagocytosis and endocytosis, which internalize immunoglobulin G (IgG)-opsonized particles and polyvalent IgG immune complexes, respectively. We report that Fcγ receptor activation in macrophages enhances lysosome-based proteolysis and killing of subsequently phagocytosed E. coli compared to naive macrophages. Importantly, we show that Fcγ receptor activation causes nuclear translocation of TFEB, a transcription factor that boosts expression of lysosome genes. Indeed, Fc receptor activation is accompanied by increased expression of specific lysosomal proteins. Remarkably, TFEB silencing represses the Fcγ-receptor-mediated enhancements in degradation and bacterial killing. In addition, nuclear translocation of TFEB requires phagosome completion and fails to occur in cells silenced for MCOLN1, a lysosomal Ca(2+) channel, suggesting that lysosomal Ca(2+) released during phagosome maturation activates TFEB. Finally, we demonstrate that non-opsonic phagocytosis of E. coli also enhances lysosomal degradation in a TFEB-dependent manner, suggesting that this phenomenon is not limited to Fcγ receptors. Overall, we show that macrophages become better killers after one round of phagocytosis and suggest that phagosomes and lysosomes are capable of bi-directional signaling.
Insights
Macrophages enhance their killing ability after initial pathogen uptake. This involves lysosomal function boosted by signaling pathways, making them more effective against subsequent infections.
Area of Science:
- Immunology
- Cell Biology
Background:
- Macrophages engulf pathogens via phagocytosis, forming phagosomes that mature into bactericidal phagolysosomes.
- Repeated pathogen exposure during infection prompts investigation into adaptive macrophage responses.
Purpose of the Study:
- To investigate if an initial phagocytosis event enhances subsequent lysosomal function and bacterial killing in macrophages.
- To elucidate the molecular mechanisms underlying this adaptive response.
Main Methods:
- Utilized Fcγ-receptor-mediated phagocytosis and endocytosis with IgG-opsonized targets.
- Measured lysosomal proteolysis and bacterial killing of E. coli.
- Assessed nuclear translocation of Transcription Factor EB (TFEB) and lysosomal gene expression.
- Investigated the role of MCOLN1 (a lysosomal Ca2+ channel) and TFEB silencing.
Main Results:
- Fcγ receptor activation enhanced lysosomal proteolysis and killing of subsequent E. coli.
- Fcγ receptor activation induced TFEB nuclear translocation and increased lysosomal protein expression.
- TFEB silencing abrogated the enhanced degradation and bacterial killing.
- TFEB nuclear translocation depended on phagosome completion and MCOLN1, suggesting lysosomal Ca2+ signaling.
- Non-opsonic phagocytosis also enhanced lysosomal degradation in a TFEB-dependent manner.
Conclusions:
- Macrophages exhibit enhanced bactericidal capacity after an initial phagocytic event.
- Fcγ receptor-mediated phagocytosis activates TFEB via lysosomal Ca2+ signaling, upregulating lysosomal function.
- This adaptive response is TFEB-dependent and not exclusive to Fcγ receptors, indicating a general macrophage self-enhancement mechanism.
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